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|
|
2613969a7c |
19
.github/codeql/codeql-config.yml
vendored
Normal file
19
.github/codeql/codeql-config.yml
vendored
Normal file
@@ -0,0 +1,19 @@
|
||||
name: "Rust without tests"
|
||||
|
||||
disable-default-queries: false
|
||||
|
||||
queries:
|
||||
- uses: security-extended
|
||||
- uses: security-and-quality
|
||||
- uses: ./.github/codeql/queries
|
||||
|
||||
query-filters:
|
||||
- exclude:
|
||||
id:
|
||||
- rust/unwrap-on-option
|
||||
- rust/unwrap-on-result
|
||||
- rust/expect-used
|
||||
|
||||
analysis:
|
||||
dataflow:
|
||||
default-precision: high
|
||||
20
.github/codeql/queries/common/ProductionOnly.qll
vendored
Normal file
20
.github/codeql/queries/common/ProductionOnly.qll
vendored
Normal file
@@ -0,0 +1,20 @@
|
||||
import rust
|
||||
|
||||
predicate isTestOnly(Item i) {
|
||||
exists(ConditionalCompilation cc |
|
||||
cc.getItem() = i and
|
||||
cc.getCfg().toString() = "test"
|
||||
)
|
||||
}
|
||||
|
||||
predicate hasTestAttribute(Item i) {
|
||||
exists(Attribute a |
|
||||
a.getItem() = i and
|
||||
a.getName() = "test"
|
||||
)
|
||||
}
|
||||
|
||||
predicate isProductionCode(Item i) {
|
||||
not isTestOnly(i) and
|
||||
not hasTestAttribute(i)
|
||||
}
|
||||
4
.github/codeql/queries/qlpack.yml
vendored
Normal file
4
.github/codeql/queries/qlpack.yml
vendored
Normal file
@@ -0,0 +1,4 @@
|
||||
name: rust-production-only
|
||||
version: 0.0.1
|
||||
dependencies:
|
||||
codeql/rust-all: "*"
|
||||
45
.github/workflows/codeql.yml
vendored
Normal file
45
.github/workflows/codeql.yml
vendored
Normal file
@@ -0,0 +1,45 @@
|
||||
name: "CodeQL Advanced"
|
||||
|
||||
on:
|
||||
push:
|
||||
branches: [ "*" ]
|
||||
pull_request:
|
||||
branches: [ "*" ]
|
||||
schedule:
|
||||
- cron: '0 0 * * 0'
|
||||
|
||||
jobs:
|
||||
analyze:
|
||||
name: Analyze (${{ matrix.language }})
|
||||
runs-on: ${{ (matrix.language == 'swift' && 'macos-latest') || 'ubuntu-latest' }}
|
||||
|
||||
permissions:
|
||||
security-events: write
|
||||
packages: read
|
||||
actions: read
|
||||
contents: read
|
||||
|
||||
strategy:
|
||||
fail-fast: false
|
||||
matrix:
|
||||
include:
|
||||
- language: actions
|
||||
build-mode: none
|
||||
- language: rust
|
||||
build-mode: none
|
||||
|
||||
steps:
|
||||
- name: Checkout repository
|
||||
uses: actions/checkout@v4
|
||||
|
||||
- name: Initialize CodeQL
|
||||
uses: github/codeql-action/init@v4
|
||||
with:
|
||||
languages: ${{ matrix.language }}
|
||||
build-mode: ${{ matrix.build-mode }}
|
||||
config-file: .github/codeql/codeql-config.yml
|
||||
|
||||
- name: Perform CodeQL Analysis
|
||||
uses: github/codeql-action/analyze@v4
|
||||
with:
|
||||
category: "/language:${{ matrix.language }}"
|
||||
139
.github/workflows/release.yml
vendored
Normal file
139
.github/workflows/release.yml
vendored
Normal file
@@ -0,0 +1,139 @@
|
||||
name: Release
|
||||
|
||||
on:
|
||||
push:
|
||||
tags:
|
||||
- '[0-9]+.[0-9]+.[0-9]+'
|
||||
workflow_dispatch:
|
||||
|
||||
permissions:
|
||||
contents: read
|
||||
packages: write
|
||||
|
||||
env:
|
||||
CARGO_TERM_COLOR: always
|
||||
|
||||
jobs:
|
||||
build:
|
||||
name: Build ${{ matrix.target }}
|
||||
runs-on: ubuntu-latest
|
||||
permissions:
|
||||
contents: read
|
||||
|
||||
strategy:
|
||||
fail-fast: false
|
||||
matrix:
|
||||
include:
|
||||
- target: x86_64-unknown-linux-gnu
|
||||
artifact_name: telemt
|
||||
asset_name: telemt-x86_64-linux-gnu
|
||||
- target: aarch64-unknown-linux-gnu
|
||||
artifact_name: telemt
|
||||
asset_name: telemt-aarch64-linux-gnu
|
||||
- target: x86_64-unknown-linux-musl
|
||||
artifact_name: telemt
|
||||
asset_name: telemt-x86_64-linux-musl
|
||||
- target: aarch64-unknown-linux-musl
|
||||
artifact_name: telemt
|
||||
asset_name: telemt-aarch64-linux-musl
|
||||
|
||||
steps:
|
||||
- uses: actions/checkout@v4
|
||||
|
||||
- uses: dtolnay/rust-toolchain@v1
|
||||
with:
|
||||
toolchain: stable
|
||||
targets: ${{ matrix.target }}
|
||||
|
||||
- name: Install cross-compilation tools
|
||||
run: |
|
||||
sudo apt-get update
|
||||
sudo apt-get install -y gcc-aarch64-linux-gnu
|
||||
|
||||
- uses: actions/cache@v4
|
||||
with:
|
||||
path: |
|
||||
~/.cargo/registry
|
||||
~/.cargo/git
|
||||
target
|
||||
key: ${{ runner.os }}-${{ matrix.target }}-cargo-${{ hashFiles('**/Cargo.lock') }}
|
||||
restore-keys: |
|
||||
${{ runner.os }}-${{ matrix.target }}-cargo-
|
||||
|
||||
- name: Install cross
|
||||
run: cargo install cross --git https://github.com/cross-rs/cross
|
||||
|
||||
- name: Build Release
|
||||
env:
|
||||
RUSTFLAGS: ${{ contains(matrix.target, 'musl') && '-C target-feature=+crt-static' || '' }}
|
||||
run: cross build --release --target ${{ matrix.target }}
|
||||
|
||||
- name: Package binary
|
||||
run: |
|
||||
cd target/${{ matrix.target }}/release
|
||||
tar -czvf ${{ matrix.asset_name }}.tar.gz ${{ matrix.artifact_name }}
|
||||
sha256sum ${{ matrix.asset_name }}.tar.gz > ${{ matrix.asset_name }}.sha256
|
||||
|
||||
- uses: actions/upload-artifact@v4
|
||||
with:
|
||||
name: ${{ matrix.asset_name }}
|
||||
path: |
|
||||
target/${{ matrix.target }}/release/${{ matrix.asset_name }}.tar.gz
|
||||
target/${{ matrix.target }}/release/${{ matrix.asset_name }}.sha256
|
||||
|
||||
build-docker-image:
|
||||
needs: build
|
||||
runs-on: ubuntu-latest
|
||||
permissions:
|
||||
contents: read
|
||||
packages: write
|
||||
|
||||
steps:
|
||||
- uses: actions/checkout@v4
|
||||
|
||||
- uses: docker/setup-qemu-action@v3
|
||||
- uses: docker/setup-buildx-action@v3
|
||||
|
||||
- name: Login to GHCR
|
||||
uses: docker/login-action@v3
|
||||
with:
|
||||
registry: ghcr.io
|
||||
username: ${{ github.actor }}
|
||||
password: ${{ secrets.GITHUB_TOKEN }}
|
||||
|
||||
- name: Extract version
|
||||
id: vars
|
||||
run: echo "VERSION=${GITHUB_REF#refs/tags/}" >> $GITHUB_OUTPUT
|
||||
|
||||
- name: Build and push
|
||||
uses: docker/build-push-action@v6
|
||||
with:
|
||||
context: .
|
||||
push: true
|
||||
tags: |
|
||||
ghcr.io/${{ github.repository }}:${{ steps.vars.outputs.VERSION }}
|
||||
ghcr.io/${{ github.repository }}:latest
|
||||
|
||||
release:
|
||||
name: Create Release
|
||||
needs: build
|
||||
runs-on: ubuntu-latest
|
||||
permissions:
|
||||
contents: write
|
||||
|
||||
steps:
|
||||
- uses: actions/checkout@v4
|
||||
with:
|
||||
fetch-depth: 0
|
||||
|
||||
- uses: actions/download-artifact@v4
|
||||
with:
|
||||
path: artifacts
|
||||
|
||||
- name: Create Release
|
||||
uses: softprops/action-gh-release@v2
|
||||
with:
|
||||
files: artifacts/**/*
|
||||
generate_release_notes: true
|
||||
draft: false
|
||||
prerelease: ${{ contains(github.ref, '-rc') || contains(github.ref, '-beta') || contains(github.ref, '-alpha') }}
|
||||
21
.github/workflows/rust.yml
vendored
21
.github/workflows/rust.yml
vendored
@@ -2,18 +2,23 @@ name: Rust
|
||||
|
||||
on:
|
||||
push:
|
||||
branches: [ main ]
|
||||
branches: [ "*" ]
|
||||
pull_request:
|
||||
branches: [ main ]
|
||||
branches: [ "*" ]
|
||||
|
||||
env:
|
||||
CARGO_TERM_COLOR: always
|
||||
|
||||
jobs:
|
||||
build-and-test:
|
||||
name: Build & Test
|
||||
build:
|
||||
name: Build
|
||||
runs-on: ubuntu-latest
|
||||
|
||||
permissions:
|
||||
contents: read
|
||||
actions: write
|
||||
checks: write
|
||||
|
||||
steps:
|
||||
- name: Checkout repository
|
||||
uses: actions/checkout@v4
|
||||
@@ -37,5 +42,13 @@ jobs:
|
||||
- name: Build Release
|
||||
run: cargo build --release --verbose
|
||||
|
||||
- name: Run tests
|
||||
run: cargo test --verbose
|
||||
|
||||
# clippy dont fail on warnings because of active development of telemt
|
||||
# and many warnings
|
||||
- name: Run clippy
|
||||
run: cargo clippy -- --cap-lints warn
|
||||
|
||||
- name: Check for unused dependencies
|
||||
run: cargo udeps || true
|
||||
|
||||
2
.gitignore
vendored
2
.gitignore
vendored
@@ -19,3 +19,5 @@ target
|
||||
# and can be added to the global gitignore or merged into this file. For a more nuclear
|
||||
# option (not recommended) you can uncomment the following to ignore the entire idea folder.
|
||||
#.idea/
|
||||
|
||||
proxy-secret
|
||||
|
||||
58
.kilocode/rules-architect/AGENTS.md
Normal file
58
.kilocode/rules-architect/AGENTS.md
Normal file
@@ -0,0 +1,58 @@
|
||||
# Architect Mode Rules for Telemt
|
||||
|
||||
## Architecture Overview
|
||||
|
||||
```mermaid
|
||||
graph TB
|
||||
subgraph Entry
|
||||
Client[Clients] --> Listener[TCP/Unix Listener]
|
||||
end
|
||||
|
||||
subgraph Proxy Layer
|
||||
Listener --> ClientHandler[ClientHandler]
|
||||
ClientHandler --> Handshake[Handshake Validator]
|
||||
Handshake --> |Valid| Relay[Relay Layer]
|
||||
Handshake --> |Invalid| Masking[Masking/TLS Fronting]
|
||||
end
|
||||
|
||||
subgraph Transport
|
||||
Relay --> MiddleProxy[Middle-End Proxy Pool]
|
||||
Relay --> DirectRelay[Direct DC Relay]
|
||||
MiddleProxy --> TelegramDC[Telegram DCs]
|
||||
DirectRelay --> TelegramDC
|
||||
end
|
||||
```
|
||||
|
||||
## Module Dependencies
|
||||
- [`src/main.rs`](src/main.rs) - Entry point, spawns all async tasks
|
||||
- [`src/config/`](src/config/) - Configuration loading with auto-migration
|
||||
- [`src/error.rs`](src/error.rs) - Error types, must be used by all modules
|
||||
- [`src/crypto/`](src/crypto/) - AES, SHA, random number generation
|
||||
- [`src/protocol/`](src/protocol/) - MTProto constants, frame encoding, obfuscation
|
||||
- [`src/stream/`](src/stream/) - Stream wrappers, buffer pool, frame codecs
|
||||
- [`src/proxy/`](src/proxy/) - Client handling, handshake, relay logic
|
||||
- [`src/transport/`](src/transport/) - Upstream management, middle-proxy, SOCKS support
|
||||
- [`src/stats/`](src/stats/) - Statistics and replay protection
|
||||
- [`src/ip_tracker.rs`](src/ip_tracker.rs) - Per-user IP tracking
|
||||
|
||||
## Key Architectural Constraints
|
||||
|
||||
### Middle-End Proxy Mode
|
||||
- Requires public IP on interface OR 1:1 NAT with STUN probing
|
||||
- Uses separate `proxy-secret` from Telegram (NOT user secrets)
|
||||
- Falls back to direct mode automatically on STUN mismatch
|
||||
|
||||
### TLS Fronting
|
||||
- Invalid handshakes are transparently proxied to `mask_host`
|
||||
- This is critical for DPI evasion - do not change this behavior
|
||||
- `mask_unix_sock` and `mask_host` are mutually exclusive
|
||||
|
||||
### Stream Architecture
|
||||
- Buffer pool is shared globally via Arc - prevents allocation storms
|
||||
- Frame codecs implement tokio-util Encoder/Decoder traits
|
||||
- State machine in [`src/stream/state.rs`](src/stream/state.rs) manages stream transitions
|
||||
|
||||
### Configuration Migration
|
||||
- [`ProxyConfig::load()`](src/config/mod.rs:641) mutates config in-place
|
||||
- New fields must have sensible defaults
|
||||
- DC203 override is auto-injected for CDN/media support
|
||||
23
.kilocode/rules-code/AGENTS.md
Normal file
23
.kilocode/rules-code/AGENTS.md
Normal file
@@ -0,0 +1,23 @@
|
||||
# Code Mode Rules for Telemt
|
||||
|
||||
## Error Handling
|
||||
- Always use [`ProxyError`](src/error.rs:168) from [`src/error.rs`](src/error.rs) for proxy operations
|
||||
- [`HandshakeResult<T,R,W>`](src/error.rs:292) returns streams on bad client - these MUST be returned for masking, never dropped
|
||||
- Use [`Recoverable`](src/error.rs:110) trait to check if errors are retryable
|
||||
|
||||
## Configuration Changes
|
||||
- [`ProxyConfig::load()`](src/config/mod.rs:641) auto-mutates config - new fields should have defaults
|
||||
- DC203 override is auto-injected if missing - do not remove this behavior
|
||||
- When adding config fields, add migration logic in [`ProxyConfig::load()`](src/config/mod.rs:641)
|
||||
|
||||
## Crypto Code
|
||||
- [`SecureRandom`](src/crypto/random.rs) from [`src/crypto/random.rs`](src/crypto/random.rs) must be used for all crypto operations
|
||||
- Never use `rand::thread_rng()` directly - use the shared `Arc<SecureRandom>`
|
||||
|
||||
## Stream Handling
|
||||
- Buffer pool [`BufferPool`](src/stream/buffer_pool.rs) is shared via Arc - always use it instead of allocating
|
||||
- Frame codecs in [`src/stream/frame_codec.rs`](src/stream/frame_codec.rs) implement tokio-util's Encoder/Decoder traits
|
||||
|
||||
## Testing
|
||||
- Tests are inline in modules using `#[cfg(test)]`
|
||||
- Use `cargo test --lib <module_name>` to run tests for specific modules
|
||||
27
.kilocode/rules-debug/AGENTS.md
Normal file
27
.kilocode/rules-debug/AGENTS.md
Normal file
@@ -0,0 +1,27 @@
|
||||
# Debug Mode Rules for Telemt
|
||||
|
||||
## Logging
|
||||
- `RUST_LOG` environment variable takes absolute priority over all config log levels
|
||||
- Log levels: `trace`, `debug`, `info`, `warn`, `error`
|
||||
- Use `RUST_LOG=debug cargo run` for detailed operational logs
|
||||
- Use `RUST_LOG=trace cargo run` for full protocol-level debugging
|
||||
|
||||
## Middle-End Proxy Debugging
|
||||
- Set `ME_DIAG=1` environment variable for high-precision cryptography diagnostics
|
||||
- STUN probe results are logged at startup - check for mismatch between local and reflected IP
|
||||
- If Middle-End fails, check `proxy_secret_path` points to valid file from https://core.telegram.org/getProxySecret
|
||||
|
||||
## Connection Issues
|
||||
- DC connectivity is logged at startup with RTT measurements
|
||||
- If DC ping fails, check `dc_overrides` for custom addresses
|
||||
- Use `prefer_ipv6=false` in config if IPv6 is unreliable
|
||||
|
||||
## TLS Fronting Issues
|
||||
- Invalid handshakes are proxied to `mask_host` - check this host is reachable
|
||||
- `mask_unix_sock` and `mask_host` are mutually exclusive - only one can be set
|
||||
- If `mask_unix_sock` is set, socket must exist before connections arrive
|
||||
|
||||
## Common Errors
|
||||
- `ReplayAttack` - client replayed a handshake nonce, potential attack
|
||||
- `TimeSkew` - client clock is off, can disable with `ignore_time_skew=true`
|
||||
- `TgHandshakeTimeout` - upstream DC connection failed, check network
|
||||
410
AGENTS.md
Normal file
410
AGENTS.md
Normal file
@@ -0,0 +1,410 @@
|
||||
## System Prompt — Production Rust Codebase: Modification and Architecture Guidelines
|
||||
|
||||
You are a senior Rust Engineer and pricipal Rust Architect acting as a strict code reviewer and implementation partner.
|
||||
Your responses are precise, minimal, and architecturally sound. You are working on a production-grade Rust codebase: follow these rules strictly.
|
||||
|
||||
---
|
||||
|
||||
### 0. Priority Resolution — Scope Control
|
||||
|
||||
This section resolves conflicts between code quality enforcement and scope limitation.
|
||||
|
||||
When editing or extending existing code, you MUST audit the affected files and fix:
|
||||
|
||||
- Comment style violations (missing, non-English, decorative, trailing).
|
||||
- Missing or incorrect documentation on public items.
|
||||
- Comment placement issues (trailing comments → move above the code).
|
||||
|
||||
These are **coordinated changes** — they are always in scope.
|
||||
|
||||
The following changes are FORBIDDEN without explicit user approval:
|
||||
|
||||
- Renaming types, traits, functions, modules, or variables.
|
||||
- Altering business logic, control flow, or data transformations.
|
||||
- Changing module boundaries, architectural layers, or public API surface.
|
||||
- Adding or removing functions, structs, enums, or trait implementations.
|
||||
- Fixing compiler warnings or removing unused code.
|
||||
|
||||
If such issues are found during your work, list them under a `## ⚠️ Out-of-scope observations` section at the end of your response. Include file path, context, and a brief description. Do not apply these changes.
|
||||
|
||||
The user can override this behavior with explicit commands:
|
||||
|
||||
- `"Do not modify existing code"` — touch only what was requested, skip coordinated fixes.
|
||||
- `"Make minimal changes"` — no coordinated fixes, narrowest possible diff.
|
||||
- `"Fix everything"` — apply all coordinated fixes and out-of-scope observations.
|
||||
|
||||
### Core Rule
|
||||
|
||||
The codebase must never enter an invalid intermediate state.
|
||||
No response may leave the repository in a condition that requires follow-up fixes.
|
||||
|
||||
---
|
||||
|
||||
### 1. Comments and Documentation
|
||||
|
||||
- All comments MUST be written in English.
|
||||
- Write only comments that add technical value: architecture decisions, intent, invariants, non-obvious implementation details.
|
||||
- Place all comments on separate lines above the relevant code.
|
||||
- Use `///` doc-comments for public items. Use `//` for internal clarifications.
|
||||
|
||||
Correct example:
|
||||
|
||||
```rust
|
||||
// Handles MTProto client authentication and establishes encrypted session state.
|
||||
fn handle_authenticated_client(...) { ... }
|
||||
```
|
||||
|
||||
Incorrect examples:
|
||||
|
||||
```rust
|
||||
let x = 5; // set x to 5
|
||||
```
|
||||
|
||||
```rust
|
||||
// This function does stuff
|
||||
fn do_stuff() { ... }
|
||||
```
|
||||
|
||||
---
|
||||
|
||||
### 2. File Size and Module Structure
|
||||
|
||||
- Files MUST NOT exceed 350–550 lines.
|
||||
- If a file exceeds this limit, split it into submodules organized by responsibility (e.g., protocol, transport, state, handlers).
|
||||
- Parent modules MUST declare and describe their submodules.
|
||||
- Maintain clear architectural boundaries between modules.
|
||||
|
||||
Correct example:
|
||||
|
||||
```rust
|
||||
// Client connection handling logic.
|
||||
// Submodules:
|
||||
// - handshake: MTProto handshake implementation
|
||||
// - relay: traffic forwarding logic
|
||||
// - state: client session state machine
|
||||
|
||||
pub mod handshake;
|
||||
pub mod relay;
|
||||
pub mod state;
|
||||
```
|
||||
|
||||
Git discipline:
|
||||
|
||||
- Use local git for versioning and diffs.
|
||||
- Write clear, descriptive commit messages in English that explain both *what* changed and *why*.
|
||||
|
||||
---
|
||||
|
||||
### 3. Formatting
|
||||
|
||||
- Preserve the existing formatting style of the project exactly as-is.
|
||||
- Reformat code only when explicitly instructed to do so.
|
||||
- Do not run `cargo fmt` unless explicitly instructed.
|
||||
|
||||
---
|
||||
|
||||
### 4. Change Safety and Validation
|
||||
|
||||
- If anything is unclear, STOP and ask specific, targeted questions before proceeding.
|
||||
- List exactly what is ambiguous and offer possible interpretations for the user to choose from.
|
||||
- Prefer clarification over assumptions. Do not guess intent, behavior, or missing requirements.
|
||||
- Actively ask questions before making architectural or behavioral changes.
|
||||
|
||||
---
|
||||
|
||||
### 5. Warnings and Unused Code
|
||||
|
||||
- Leave all warnings, unused variables, functions, imports, and dead code untouched unless explicitly instructed to modify them.
|
||||
- These may be intentional or part of work-in-progress code.
|
||||
- `todo!()` and `unimplemented!()` are permitted and should not be removed or replaced unless explicitly instructed.
|
||||
|
||||
---
|
||||
|
||||
### 6. Architectural Integrity
|
||||
|
||||
- Preserve existing architecture unless explicitly instructed to refactor.
|
||||
- Do not introduce hidden behavioral changes.
|
||||
- Do not introduce implicit refactors.
|
||||
- Keep changes minimal, isolated, and intentional.
|
||||
|
||||
---
|
||||
|
||||
### 7. When Modifying Code
|
||||
|
||||
You MUST:
|
||||
|
||||
- Maintain architectural consistency with the existing codebase.
|
||||
- Document non-obvious logic with comments that describe *why*, not *what*.
|
||||
- Limit changes strictly to the requested scope (plus coordinated fixes per Section 0).
|
||||
- Keep all existing symbol names unless renaming is explicitly requested.
|
||||
- Preserve global formatting as-is
|
||||
- Result every modification in a self-contained, compilable, runnable state of the codebase
|
||||
|
||||
You MUST NOT:
|
||||
|
||||
- Use placeholders: no `// ... rest of code`, no `// implement here`, no `/* TODO */` stubs that replace existing working code. Write full, working implementation. If the implementation is unclear, ask first
|
||||
- Refactor code outside the requested scope
|
||||
- Make speculative improvements
|
||||
- Spawn multiple agents for EDITING
|
||||
- Produce partial changes
|
||||
- Introduce references to entities that are not yet implemented
|
||||
- Leave TODO placeholders in production paths
|
||||
|
||||
Note: `todo!()` and `unimplemented!()` are allowed as idiomatic Rust markers for genuinely unfinished code paths.
|
||||
|
||||
Every change must:
|
||||
- compile,
|
||||
- pass type checks,
|
||||
- have no broken imports,
|
||||
- preserve invariants,
|
||||
- not rely on future patches.
|
||||
|
||||
If the task requires multiple phases:
|
||||
- either implement all required phases,
|
||||
- or explicitly refuse and explain missing dependencies.
|
||||
|
||||
---
|
||||
|
||||
### 8. Decision Process for Complex Changes
|
||||
|
||||
When facing a non-trivial modification, follow this sequence:
|
||||
|
||||
1. **Clarify**: Restate the task in one sentence to confirm understanding.
|
||||
2. **Assess impact**: Identify which modules, types, and invariants are affected.
|
||||
3. **Propose**: Describe the intended change before implementing it.
|
||||
4. **Implement**: Make the minimal, isolated change.
|
||||
5. **Verify**: Explain why the change preserves existing behavior and architectural integrity.
|
||||
|
||||
---
|
||||
|
||||
### 9. Context Awareness
|
||||
|
||||
- When provided with partial code, assume the rest of the codebase exists and functions correctly unless stated otherwise.
|
||||
- Reference existing types, functions, and module structures by their actual names as shown in the provided code.
|
||||
- When the provided context is insufficient to make a safe change, request the missing context explicitly.
|
||||
- Spawn multiple agents for SEARCHING information, code, functions
|
||||
|
||||
---
|
||||
|
||||
### 10. Response Format
|
||||
|
||||
#### Language Policy
|
||||
|
||||
- Code, comments, commit messages, documentation ONLY ON **English**!
|
||||
- Reasoning and explanations in response text on language from promt
|
||||
|
||||
#### Response Structure
|
||||
|
||||
Your response MUST consist of two sections:
|
||||
|
||||
**Section 1: `## Reasoning`**
|
||||
|
||||
- What needs to be done and why.
|
||||
- Which files and modules are affected.
|
||||
- Architectural decisions and their rationale.
|
||||
- Potential risks or side effects.
|
||||
|
||||
**Section 2: `## Changes`**
|
||||
|
||||
- For each modified or created file: the filename on a separate line in backticks, followed by the code block.
|
||||
- For files **under 200 lines**: return the full file with all changes applied.
|
||||
- For files **over 200 lines**: return only the changed functions/blocks with at least 3 lines of surrounding context above and below. If the user requests the full file, provide it.
|
||||
- New files: full file content.
|
||||
- End with a suggested git commit message in English.
|
||||
|
||||
#### Reporting Out-of-Scope Issues
|
||||
|
||||
If during modification you discover issues outside the requested scope (potential bugs, unsafe code, architectural concerns, missing error handling, unused imports, dead code):
|
||||
|
||||
- Do not fix them silently.
|
||||
- List them under `## ⚠️ Out-of-scope observations` at the end of your response.
|
||||
- Include: file path, line/function context, brief description of the issue, and severity estimate.
|
||||
|
||||
#### Splitting Protocol
|
||||
|
||||
If the response exceeds the output limit:
|
||||
|
||||
1. End the current part with: **SPLIT: PART N — CONTINUE? (remaining: file_list)**
|
||||
2. List the files that will be provided in subsequent parts.
|
||||
3. Wait for user confirmation before continuing.
|
||||
4. No single file may be split across parts.
|
||||
|
||||
## 11. Anti-LLM Degeneration Safeguards (Principal-Paranoid, Visionary)
|
||||
|
||||
This section exists to prevent common LLM failure modes: scope creep, semantic drift, cargo-cult refactors, performance regressions, contract breakage, and hidden behavior changes.
|
||||
|
||||
### 11.1 Non-Negotiable Invariants
|
||||
|
||||
- **No semantic drift:** Do not reinterpret requirements, rename concepts, or change meaning of existing terms.
|
||||
- **No “helpful refactors”:** Any refactor not explicitly requested is forbidden.
|
||||
- **No architectural drift:** Do not introduce new layers, patterns, abstractions, or “clean architecture” migrations unless requested.
|
||||
- **No dependency drift:** Do not add crates, features, or versions unless explicitly requested.
|
||||
- **No behavior drift:** If a change could alter runtime behavior, you MUST call it out explicitly in `## Reasoning` and justify it.
|
||||
|
||||
### 11.2 Minimal Surface Area Rule
|
||||
|
||||
- Touch the smallest number of files possible.
|
||||
- Prefer local changes over cross-cutting edits.
|
||||
- Do not “align style” across a file/module—only adjust the modified region.
|
||||
- Do not reorder items, imports, or code unless required for correctness.
|
||||
|
||||
### 11.3 No Implicit Contract Changes
|
||||
|
||||
Contracts include:
|
||||
- public APIs, trait bounds, visibility, error types, timeouts/retries, logging semantics, metrics semantics,
|
||||
- protocol formats, framing, padding, keepalive cadence, state machine transitions,
|
||||
- concurrency guarantees, cancellation behavior, backpressure behavior.
|
||||
|
||||
Rule:
|
||||
- If you change a contract, you MUST update all dependents in the same patch AND document the contract delta explicitly.
|
||||
|
||||
### 11.4 Hot-Path Preservation (Performance Paranoia)
|
||||
|
||||
- Do not introduce extra allocations, cloning, or formatting in hot paths.
|
||||
- Do not add logging/metrics on hot paths unless requested.
|
||||
- Do not add new locks or broaden lock scope.
|
||||
- Prefer `&str` / slices / borrowed data where the codebase already does so.
|
||||
- Avoid `String` building for errors/logs if it changes current patterns.
|
||||
|
||||
If you cannot prove performance neutrality, label it as risk in `## Reasoning`.
|
||||
|
||||
### 11.5 Async / Concurrency Safety (Cancellation & Backpressure)
|
||||
|
||||
- No blocking calls inside async contexts.
|
||||
- Preserve cancellation safety: do not introduce `await` between lock acquisition and critical invariants unless already present.
|
||||
- Preserve backpressure: do not replace bounded channels with unbounded, do not remove flow control.
|
||||
- Do not change task lifecycle semantics (spawn patterns, join handles, shutdown order) unless requested.
|
||||
- Do not introduce `tokio::spawn` / background tasks unless explicitly requested.
|
||||
|
||||
### 11.6 Error Semantics Integrity
|
||||
|
||||
- Do not replace structured errors with generic strings.
|
||||
- Do not widen/narrow error types or change error categories without explicit approval.
|
||||
- Avoid introducing panics in production paths (`unwrap`, `expect`) unless the codebase already treats that path as impossible and documented.
|
||||
|
||||
### 11.7 “No New Abstractions” Default
|
||||
|
||||
Default stance:
|
||||
- No new traits, generics, macros, builder patterns, type-level cleverness, or “frameworking”.
|
||||
- If abstraction is necessary, prefer the smallest possible local helper (private function) and justify it.
|
||||
|
||||
### 11.8 Negative-Diff Protection
|
||||
|
||||
Avoid “diff inflation” patterns:
|
||||
- mass edits,
|
||||
- moving code between files,
|
||||
- rewrapping long lines,
|
||||
- rearranging module order,
|
||||
- renaming for aesthetics.
|
||||
|
||||
If a diff becomes large, STOP and ask before proceeding.
|
||||
|
||||
### 11.9 Consistency with Existing Style (But Not Style Refactors)
|
||||
|
||||
- Follow existing conventions of the touched module (naming, error style, return patterns).
|
||||
- Do not enforce global “best practices” that the codebase does not already use.
|
||||
|
||||
### 11.10 Two-Phase Safety Gate (Plan → Patch)
|
||||
|
||||
For non-trivial changes:
|
||||
1) Provide a micro-plan (1–5 bullets): what files, what functions, what invariants, what risks.
|
||||
2) Implement exactly that plan—no extra improvements.
|
||||
|
||||
### 11.11 Pre-Response Checklist (Hard Gate)
|
||||
|
||||
Before final output, verify internally:
|
||||
|
||||
- No unresolved symbols / broken imports.
|
||||
- No partially updated call sites.
|
||||
- No new public surface changes unless requested.
|
||||
- No transitional states / TODO placeholders replacing working code.
|
||||
- Changes are atomic: the repository remains buildable and runnable.
|
||||
- Any behavior change is explicitly stated.
|
||||
|
||||
If any check fails: fix it before responding.
|
||||
|
||||
### 11.12 Truthfulness Policy (No Hallucinated Claims)
|
||||
|
||||
- Do not claim “this compiles” or “tests pass” unless you actually verified with the available tooling/context.
|
||||
- If verification is not possible, state: “Not executed; reasoning-based consistency check only.”
|
||||
|
||||
### 11.13 Visionary Guardrail: Preserve Optionality
|
||||
|
||||
When multiple valid designs exist, prefer the one that:
|
||||
- minimally constrains future evolution,
|
||||
- preserves existing extension points,
|
||||
- avoids locking the project into a new paradigm,
|
||||
- keeps interfaces stable and implementation local.
|
||||
|
||||
Default to reversible changes.
|
||||
|
||||
### 11.14 Stop Conditions
|
||||
|
||||
STOP and ask targeted questions if:
|
||||
- required context is missing,
|
||||
- a change would cross module boundaries,
|
||||
- a contract might change,
|
||||
- concurrency/protocol invariants are unclear,
|
||||
- the diff is growing beyond a minimal patch.
|
||||
|
||||
No guessing.
|
||||
|
||||
### 12. Invariant Preservation
|
||||
|
||||
You MUST explicitly preserve:
|
||||
- Thread-safety guarantees (`Send` / `Sync` expectations).
|
||||
- Memory safety assumptions (no hidden `unsafe` expansions).
|
||||
- Lock ordering and deadlock invariants.
|
||||
- State machine correctness (no new invalid transitions).
|
||||
- Backward compatibility of serialized formats (if applicable).
|
||||
|
||||
If a change touches concurrency, networking, protocol logic, or state machines,
|
||||
you MUST explain why existing invariants remain valid.
|
||||
|
||||
### 13. Error Handling Policy
|
||||
|
||||
- Do not replace structured errors with generic strings.
|
||||
- Preserve existing error propagation semantics.
|
||||
- Do not widen or narrow error types without approval.
|
||||
- Avoid introducing panics in production paths.
|
||||
- Prefer explicit error mapping over implicit conversions.
|
||||
|
||||
### 14. Test Safety
|
||||
|
||||
- Do not modify existing tests unless the task explicitly requires it.
|
||||
- Do not weaken assertions.
|
||||
- Preserve determinism in testable components.
|
||||
|
||||
### 15. Security Constraints
|
||||
|
||||
- Do not weaken cryptographic assumptions.
|
||||
- Do not modify key derivation logic without explicit request.
|
||||
- Do not change constant-time behavior.
|
||||
- Do not introduce logging of secrets.
|
||||
- Preserve TLS/MTProto protocol correctness.
|
||||
|
||||
### 16. Logging Policy
|
||||
|
||||
- Do not introduce excessive logging in hot paths.
|
||||
- Do not log sensitive data.
|
||||
- Preserve existing log levels and style.
|
||||
|
||||
### 17. Pre-Response Verification Checklist
|
||||
|
||||
Before producing the final answer, verify internally:
|
||||
|
||||
- The change compiles conceptually.
|
||||
- No unresolved symbols exist.
|
||||
- All modified call sites are updated.
|
||||
- No accidental behavioral changes were introduced.
|
||||
- Architectural boundaries remain intact.
|
||||
|
||||
### 18. Atomic Change Principle
|
||||
Every patch must be **atomic and production-safe**.
|
||||
* **Self-contained** — no dependency on future patches or unimplemented components.
|
||||
* **Build-safe** — the project must compile successfully after the change.
|
||||
* **Contract-consistent** — no partial interface or behavioral changes; all dependent code must be updated within the same patch.
|
||||
* **No transitional states** — no placeholders, incomplete refactors, or temporary inconsistencies.
|
||||
|
||||
**Invariant:** After any single patch, the repository remains fully functional and buildable.
|
||||
|
||||
19
CONTRIBUTING.md
Normal file
19
CONTRIBUTING.md
Normal file
@@ -0,0 +1,19 @@
|
||||
# Issues - Rules
|
||||
## What it is not
|
||||
- NOT Question and Answer
|
||||
- NOT Helpdesk
|
||||
|
||||
# Pull Requests - Rules
|
||||
## General
|
||||
- ONLY signed and verified commits
|
||||
- ONLY from your name
|
||||
- DO NOT commit with `codex` or `claude` as author/commiter
|
||||
- PREFER `flow` branch for development, not `main`
|
||||
|
||||
## AI
|
||||
We are not against modern tools, like AI, where you act as a principal or architect, but we consider it important:
|
||||
|
||||
- you really understand what you're doing
|
||||
- you understand the relationships and dependencies of the components being modified
|
||||
- you understand the architecture of Telegram MTProto, MTProxy, Middle-End KDF at least generically
|
||||
- you DO NOT commit for the sake of commits, but to help the community, core-developers and ordinary users
|
||||
3277
Cargo.lock
generated
Normal file
3277
Cargo.lock
generated
Normal file
File diff suppressed because it is too large
Load Diff
48
Cargo.toml
48
Cargo.toml
@@ -1,16 +1,15 @@
|
||||
[package]
|
||||
name = "telemt"
|
||||
version = "1.0.0"
|
||||
edition = "2021"
|
||||
rust-version = "1.75"
|
||||
version = "3.3.2"
|
||||
edition = "2024"
|
||||
|
||||
[dependencies]
|
||||
# C
|
||||
libc = "0.2"
|
||||
|
||||
# Async runtime
|
||||
tokio = { version = "1.35", features = ["full", "tracing"] }
|
||||
tokio-util = { version = "0.7", features = ["codec"] }
|
||||
tokio = { version = "1.42", features = ["full", "tracing"] }
|
||||
tokio-util = { version = "0.7", features = ["full"] }
|
||||
|
||||
# Crypto
|
||||
aes = "0.8"
|
||||
@@ -20,42 +19,57 @@ sha2 = "0.10"
|
||||
sha1 = "0.10"
|
||||
md-5 = "0.10"
|
||||
hmac = "0.12"
|
||||
crc32fast = "1.3"
|
||||
crc32fast = "1.4"
|
||||
crc32c = "0.6"
|
||||
zeroize = { version = "1.8", features = ["derive"] }
|
||||
|
||||
# Network
|
||||
socket2 = { version = "0.5", features = ["all"] }
|
||||
rustls = "0.22"
|
||||
nix = { version = "0.28", default-features = false, features = ["net"] }
|
||||
|
||||
# Serial
|
||||
# Serialization
|
||||
serde = { version = "1.0", features = ["derive"] }
|
||||
serde_json = "1.0"
|
||||
toml = "0.8"
|
||||
x509-parser = "0.15"
|
||||
|
||||
# Utils
|
||||
bytes = "1.5"
|
||||
thiserror = "1.0"
|
||||
bytes = "1.9"
|
||||
thiserror = "2.0"
|
||||
tracing = "0.1"
|
||||
tracing-subscriber = { version = "0.3", features = ["env-filter"] }
|
||||
parking_lot = "0.12"
|
||||
dashmap = "5.5"
|
||||
lru = "0.12"
|
||||
rand = "0.8"
|
||||
lru = "0.16"
|
||||
rand = "0.9"
|
||||
chrono = { version = "0.4", features = ["serde"] }
|
||||
hex = "0.4"
|
||||
base64 = "0.21"
|
||||
base64 = "0.22"
|
||||
url = "2.5"
|
||||
regex = "1.10"
|
||||
once_cell = "1.19"
|
||||
regex = "1.11"
|
||||
crossbeam-queue = "0.3"
|
||||
num-bigint = "0.4"
|
||||
num-traits = "0.2"
|
||||
anyhow = "1.0"
|
||||
|
||||
# HTTP
|
||||
reqwest = { version = "0.11", features = ["rustls-tls"], default-features = false }
|
||||
reqwest = { version = "0.12", features = ["rustls-tls"], default-features = false }
|
||||
notify = { version = "6", features = ["macos_fsevent"] }
|
||||
ipnetwork = "0.20"
|
||||
hyper = { version = "1", features = ["server", "http1"] }
|
||||
hyper-util = { version = "0.1", features = ["tokio", "server-auto"] }
|
||||
http-body-util = "0.1"
|
||||
httpdate = "1.0"
|
||||
tokio-rustls = { version = "0.26", default-features = false, features = ["tls12"] }
|
||||
rustls = { version = "0.23", default-features = false, features = ["std", "tls12", "ring"] }
|
||||
webpki-roots = "0.26"
|
||||
|
||||
[dev-dependencies]
|
||||
tokio-test = "0.4"
|
||||
criterion = "0.5"
|
||||
proptest = "1.4"
|
||||
futures = "0.3"
|
||||
|
||||
[[bench]]
|
||||
name = "crypto_bench"
|
||||
harness = false
|
||||
harness = false
|
||||
|
||||
43
Dockerfile
Normal file
43
Dockerfile
Normal file
@@ -0,0 +1,43 @@
|
||||
# ==========================
|
||||
# Stage 1: Build
|
||||
# ==========================
|
||||
FROM rust:1.88-slim-bookworm AS builder
|
||||
|
||||
RUN apt-get update && apt-get install -y --no-install-recommends \
|
||||
pkg-config \
|
||||
&& rm -rf /var/lib/apt/lists/*
|
||||
|
||||
WORKDIR /build
|
||||
|
||||
COPY Cargo.toml Cargo.lock* ./
|
||||
RUN mkdir src && echo 'fn main() {}' > src/main.rs && \
|
||||
cargo build --release 2>/dev/null || true && \
|
||||
rm -rf src
|
||||
|
||||
COPY . .
|
||||
RUN cargo build --release && strip target/release/telemt
|
||||
|
||||
# ==========================
|
||||
# Stage 2: Runtime
|
||||
# ==========================
|
||||
FROM debian:bookworm-slim
|
||||
|
||||
RUN apt-get update && apt-get install -y --no-install-recommends \
|
||||
ca-certificates \
|
||||
&& rm -rf /var/lib/apt/lists/*
|
||||
|
||||
RUN useradd -r -s /usr/sbin/nologin telemt
|
||||
|
||||
WORKDIR /app
|
||||
|
||||
COPY --from=builder /build/target/release/telemt /app/telemt
|
||||
COPY config.toml /app/config.toml
|
||||
|
||||
RUN chown -R telemt:telemt /app
|
||||
USER telemt
|
||||
|
||||
EXPOSE 443
|
||||
EXPOSE 9090
|
||||
|
||||
ENTRYPOINT ["/app/telemt"]
|
||||
CMD ["config.toml"]
|
||||
17
LICENSING.md
Normal file
17
LICENSING.md
Normal file
@@ -0,0 +1,17 @@
|
||||
# LICENSING
|
||||
## Licenses for Versions
|
||||
| Version | License |
|
||||
|---------|---------------|
|
||||
| 1.0 | NO LICNESE |
|
||||
| 1.1 | NO LICENSE |
|
||||
| 1.2 | NO LICENSE |
|
||||
| 2.0 | NO LICENSE |
|
||||
| 3.0 | TELEMT UL 1 |
|
||||
|
||||
### License Types
|
||||
- **NO LICENSE** = ***ALL RIGHT RESERVED***
|
||||
- **TELEMT UL1** - work in progress license for source code of `telemt`, which encourages:
|
||||
- fair use,
|
||||
- contributions,
|
||||
- distribution,
|
||||
- but prohibits NOT mentioning the authors
|
||||
350
README.md
350
README.md
@@ -1,6 +1,85 @@
|
||||
# Telemt - MTProxy on Rust + Tokio
|
||||
|
||||
**Telemt** is a fast, secure, and feature-rich server written in Rust: it fully implements the official Telegram proxy algo and adds many production-ready improvements such as connection pooling, replay protection, detailed statistics, masking from "prying" eyes
|
||||
***Löst Probleme, bevor andere überhaupt wissen, dass sie existieren*** / ***It solves problems before others even realize they exist***
|
||||
|
||||
**Telemt** is a fast, secure, and feature-rich server written in Rust: it fully implements the official Telegram proxy algo and adds many production-ready improvements such as:
|
||||
- ME Pool + Reader/Writer + Registry + Refill + Adaptive Floor + Trio-State + Generation Lifecycle
|
||||
- [Full-covered API w/ management](https://github.com/telemt/telemt/blob/main/docs/API.md)
|
||||
- Anti-Replay on Sliding Window
|
||||
- Prometheus-format Metrics
|
||||
- TLS-Fronting and TCP-Splicing for masking from "prying" eyes
|
||||
|
||||
[**Telemt Chat in Telegram**](https://t.me/telemtrs)
|
||||
|
||||
## NEWS and EMERGENCY
|
||||
### ✈️ Telemt 3 is released!
|
||||
<table>
|
||||
<tr>
|
||||
<td width="50%" valign="top">
|
||||
|
||||
### 🇷🇺 RU
|
||||
|
||||
#### Релиз 3.0.15 — 25 февраля
|
||||
|
||||
25 февраля мы выпустили версию **3.0.15**
|
||||
|
||||
Мы предполагаем, что она станет завершающей версией поколения 3.0 и уже сейчас мы рассматриваем её как **LTS-кандидата** для версии **3.1.0**!
|
||||
|
||||
После нескольких дней детального анализа особенностей работы Middle-End мы спроектировали и реализовали продуманный режим **ротации ME Writer**. Данный режим позволяет поддерживать стабильно высокую производительность в long-run сценариях без возникновения ошибок, связанных с некорректной конфигурацией прокси
|
||||
|
||||
Будем рады вашему фидбеку и предложениям по улучшению — особенно в части **статистики** и **UX**
|
||||
|
||||
Релиз:
|
||||
[3.0.15](https://github.com/telemt/telemt/releases/tag/3.0.15)
|
||||
|
||||
---
|
||||
|
||||
Если у вас есть компетенции в:
|
||||
|
||||
- Асинхронных сетевых приложениях
|
||||
- Анализе трафика
|
||||
- Реверс-инжиниринге
|
||||
- Сетевых расследованиях
|
||||
|
||||
Мы открыты к архитектурным предложениям, идеям и pull requests
|
||||
</td>
|
||||
<td width="50%" valign="top">
|
||||
|
||||
### 🇬🇧 EN
|
||||
|
||||
#### Release 3.0.15 — February 25
|
||||
|
||||
On February 25, we released version **3.0.15**
|
||||
|
||||
We expect this to become the final release of the 3.0 generation and at this point, we already see it as a strong **LTS candidate** for the upcoming **3.1.0** release!
|
||||
|
||||
After several days of deep analysis of Middle-End behavior, we designed and implemented a well-engineered **ME Writer rotation mode**. This mode enables sustained high throughput in long-run scenarios while preventing proxy misconfiguration errors
|
||||
|
||||
We are looking forward to your feedback and improvement proposals — especially regarding **statistics** and **UX**
|
||||
|
||||
Release:
|
||||
[3.0.15](https://github.com/telemt/telemt/releases/tag/3.0.15)
|
||||
|
||||
---
|
||||
|
||||
If you have expertise in:
|
||||
|
||||
- Asynchronous network applications
|
||||
- Traffic analysis
|
||||
- Reverse engineering
|
||||
- Network forensics
|
||||
|
||||
We welcome ideas, architectural feedback, and pull requests.
|
||||
</td>
|
||||
</tr>
|
||||
</table>
|
||||
|
||||
# Features
|
||||
💥 The configuration structure has changed since version 1.1.0.0. change it in your environment!
|
||||
|
||||
⚓ Our implementation of **TLS-fronting** is one of the most deeply debugged, focused, advanced and *almost* **"behaviorally consistent to real"**: we are confident we have it right - [see evidence on our validation and traces](#recognizability-for-dpi-and-crawler)
|
||||
|
||||
⚓ Our ***Middle-End Pool*** is fastest by design in standard scenarios, compared to other implementations of connecting to the Middle-End Proxy: non dramatically, but usual
|
||||
|
||||
# GOTO
|
||||
- [Features](#features)
|
||||
@@ -16,10 +95,13 @@
|
||||
- [IP](#bind-on-ip)
|
||||
- [SOCKS](#socks45-as-upstream)
|
||||
- [FAQ](#faq)
|
||||
- [Recognizability for DPI + crawler](#recognizability-for-dpi-and-crawler)
|
||||
- [Telegram Calls](#telegram-calls-via-mtproxy)
|
||||
- [DPI](#how-does-dpi-see-mtproxy-tls)
|
||||
- [Whitelist on Network Level](#whitelist-on-ip)
|
||||
- [Too many open files](#too-many-open-files)
|
||||
- [Build](#build)
|
||||
- [Docker](#docker)
|
||||
- [Why Rust?](#why-rust)
|
||||
|
||||
## Features
|
||||
@@ -35,127 +117,28 @@
|
||||
- Extensive logging via `trace` and `debug` with `RUST_LOG` method
|
||||
|
||||
## Quick Start Guide
|
||||
**This software is designed for Debian-based OS: in addition to Debian, these are Ubuntu, Mint, Kali, MX and many other Linux**
|
||||
1. Download release
|
||||
```bash
|
||||
wget https://github.com/telemt/telemt/releases/latest/download/telemt
|
||||
```
|
||||
2. Move to Bin Folder
|
||||
```bash
|
||||
mv telemt /bin
|
||||
```
|
||||
4. Make Executable
|
||||
```bash
|
||||
chmod +x /bin/telemt
|
||||
```
|
||||
5. Go to [How to use?](#how-to-use) section for for further steps
|
||||
|
||||
## How to use?
|
||||
### Telemt via Systemd
|
||||
**This instruction "assume" that you:**
|
||||
- logged in as root or executed `su -` / `sudo su`
|
||||
- you already have an assembled and executable `telemt` in /bin folder as a result of the [Quick Start Guide](#quick-start-guide) or [Build](#build)
|
||||
### [Quick Start Guide RU](docs/QUICK_START_GUIDE.ru.md)
|
||||
### [Quick Start Guide EN](docs/QUICK_START_GUIDE.en.md)
|
||||
|
||||
**0. Check port and generate secrets**
|
||||
|
||||
The port you have selected for use should be MISSING from the list, when:
|
||||
```bash
|
||||
netstat -lnp
|
||||
```
|
||||
|
||||
Generate 16 bytes/32 characters HEX with OpenSSL or another way:
|
||||
```bash
|
||||
openssl rand -hex 16
|
||||
```
|
||||
OR
|
||||
```bash
|
||||
xxd -l 16 -p /dev/urandom
|
||||
```
|
||||
OR
|
||||
```bash
|
||||
python3 -c 'import os; print(os.urandom(16).hex())'
|
||||
```
|
||||
|
||||
**1. Place your config to /etc/telemt.toml**
|
||||
|
||||
Open nano
|
||||
```bash
|
||||
nano /etc/telemt.toml
|
||||
```
|
||||
paste your config from [Configuration](#configuration) section
|
||||
|
||||
then Ctrl+X -> Y -> Enter to save
|
||||
|
||||
**2. Create service on /etc/systemd/system/telemt.service**
|
||||
|
||||
Open nano
|
||||
```bash
|
||||
nano /etc/systemd/system/telemt.service
|
||||
```
|
||||
paste this Systemd Module
|
||||
```bash
|
||||
[Unit]
|
||||
Description=Telemt
|
||||
After=network.target
|
||||
|
||||
[Service]
|
||||
Type=simple
|
||||
WorkingDirectory=/bin
|
||||
ExecStart=/bin/telemt /etc/telemt.toml
|
||||
Restart=on-failure
|
||||
|
||||
[Install]
|
||||
WantedBy=multi-user.target
|
||||
```
|
||||
then Ctrl+X -> Y -> Enter to save
|
||||
|
||||
**3.** In Shell type `systemctl start telemt` - it must start with zero exit-code
|
||||
|
||||
**4.** In Shell type `systemctl status telemt` - there you can reach info about current MTProxy status
|
||||
|
||||
**5.** In Shell type `systemctl enable telemt` - then telemt will start with system startup, after the network is up
|
||||
|
||||
## Configuration
|
||||
### Minimal Configuration for First Start
|
||||
```toml
|
||||
port = 443 # Listening port
|
||||
show_links = ["tele", "hello"] # Specify users, for whom will be displayed the links
|
||||
|
||||
[users]
|
||||
tele = "00000000000000000000000000000000" # Replace the secret with one generated before
|
||||
hello = "00000000000000000000000000000000" # Replace the secret with one generated before
|
||||
|
||||
[modes]
|
||||
classic = false # Plain obfuscated mode
|
||||
secure = false # dd-prefix mode
|
||||
tls = true # Fake TLS - ee-prefix
|
||||
|
||||
tls_domain = "petrovich.ru" # Domain for ee-secret and masking
|
||||
mask = true # Enable masking of bad traffic
|
||||
mask_host = "petrovich.ru" # Optional override for mask destination
|
||||
mask_port = 443 # Port for masking
|
||||
|
||||
prefer_ipv6 = false # Try IPv6 DCs first if true
|
||||
fast_mode = true # Use "fast" obfuscation variant
|
||||
|
||||
client_keepalive = 600 # Seconds
|
||||
client_ack_timeout = 300 # Seconds
|
||||
```
|
||||
### Advanced
|
||||
#### Adtag
|
||||
To use channel advertising and usage statistics from Telegram, get Adtag from [@mtproxybot](https://t.me/mtproxybot), add this parameter to the end of config.toml and specify it
|
||||
#### Adtag (per-user)
|
||||
To use channel advertising and usage statistics from Telegram, get an Adtag from [@mtproxybot](https://t.me/mtproxybot). Set it per user in `[access.user_ad_tags]` (32 hex chars):
|
||||
```toml
|
||||
ad_tag = "00000000000000000000000000000000" # Replace zeros to your adtag from @mtproxybot
|
||||
[access.user_ad_tags]
|
||||
username1 = "11111111111111111111111111111111" # Replace with your tag from @mtproxybot
|
||||
username2 = "22222222222222222222222222222222"
|
||||
```
|
||||
#### Listening and Announce IPs
|
||||
To specify listening address and/or address in links, add to the end of config.toml:
|
||||
To specify listening address and/or address in links, add to section `[[server.listeners]]` of config.toml:
|
||||
```toml
|
||||
[[listeners]]
|
||||
[[server.listeners]]
|
||||
ip = "0.0.0.0" # 0.0.0.0 = all IPs; your IP = specific listening
|
||||
announce_ip = "1.2.3.4" # IP in links; comment with # if not used
|
||||
```
|
||||
#### Upstream Manager
|
||||
To specify upstream, add to the end of config.toml:
|
||||
To specify upstream, add to section `[[upstreams]]` of config.toml:
|
||||
##### Bind on IP
|
||||
```toml
|
||||
[[upstreams]]
|
||||
@@ -186,6 +169,95 @@ enabled = true
|
||||
```
|
||||
|
||||
## FAQ
|
||||
### Recognizability for DPI and crawler
|
||||
Since version 1.1.0.0, we have debugged masking perfectly: for all clients without "presenting" a key,
|
||||
we transparently direct traffic to the target host!
|
||||
|
||||
- We consider this a breakthrough aspect, which has no stable analogues today
|
||||
- Based on this: if `telemt` configured correctly, **TLS mode is completely identical to real-life handshake + communication** with a specified host
|
||||
- Here is our evidence:
|
||||
- 212.220.88.77 - "dummy" host, running `telemt`
|
||||
- `petrovich.ru` - `tls` + `masking` host, in HEX: `706574726f766963682e7275`
|
||||
- **No MITM + No Fake Certificates/Crypto** = pure transparent *TCP Splice* to "best" upstream: MTProxy or tls/mask-host:
|
||||
- DPI see legitimate HTTPS to `tls_host`, including *valid chain-of-trust* and entropy
|
||||
- Crawlers completely satisfied receiving responses from `mask_host`
|
||||
#### Client WITH secret-key accesses the MTProxy resource:
|
||||
|
||||
<img width="360" height="439" alt="telemt" src="https://github.com/user-attachments/assets/39352afb-4a11-4ecc-9d91-9e8cfb20607d" />
|
||||
|
||||
#### Client WITHOUT secret-key gets transparent access to the specified resource:
|
||||
- with trusted certificate
|
||||
- with original handshake
|
||||
- with full request-response way
|
||||
- with low-latency overhead
|
||||
```bash
|
||||
root@debian:~/telemt# curl -v -I --resolve petrovich.ru:443:212.220.88.77 https://petrovich.ru/
|
||||
* Added petrovich.ru:443:212.220.88.77 to DNS cache
|
||||
* Hostname petrovich.ru was found in DNS cache
|
||||
* Trying 212.220.88.77:443...
|
||||
* Connected to petrovich.ru (212.220.88.77) port 443 (#0)
|
||||
* ALPN: offers h2,http/1.1
|
||||
* TLSv1.3 (OUT), TLS handshake, Client hello (1):
|
||||
* CAfile: /etc/ssl/certs/ca-certificates.crt
|
||||
* CApath: /etc/ssl/certs
|
||||
* TLSv1.3 (IN), TLS handshake, Server hello (2):
|
||||
* TLSv1.3 (IN), TLS handshake, Encrypted Extensions (8):
|
||||
* TLSv1.3 (IN), TLS handshake, Certificate (11):
|
||||
* TLSv1.3 (IN), TLS handshake, CERT verify (15):
|
||||
* TLSv1.3 (IN), TLS handshake, Finished (20):
|
||||
* TLSv1.3 (OUT), TLS change cipher, Change cipher spec (1):
|
||||
* TLSv1.3 (OUT), TLS handshake, Finished (20):
|
||||
* SSL connection using TLSv1.3 / TLS_AES_256_GCM_SHA384
|
||||
* ALPN: server did not agree on a protocol. Uses default.
|
||||
* Server certificate:
|
||||
* subject: C=RU; ST=Saint Petersburg; L=Saint Petersburg; O=STD Petrovich; CN=*.petrovich.ru
|
||||
* start date: Jan 28 11:21:01 2025 GMT
|
||||
* expire date: Mar 1 11:21:00 2026 GMT
|
||||
* subjectAltName: host "petrovich.ru" matched cert's "petrovich.ru"
|
||||
* issuer: C=BE; O=GlobalSign nv-sa; CN=GlobalSign RSA OV SSL CA 2018
|
||||
* SSL certificate verify ok.
|
||||
* using HTTP/1.x
|
||||
> HEAD / HTTP/1.1
|
||||
> Host: petrovich.ru
|
||||
> User-Agent: curl/7.88.1
|
||||
> Accept: */*
|
||||
>
|
||||
* TLSv1.3 (IN), TLS handshake, Newsession Ticket (4):
|
||||
* TLSv1.3 (IN), TLS handshake, Newsession Ticket (4):
|
||||
* old SSL session ID is stale, removing
|
||||
< HTTP/1.1 200 OK
|
||||
HTTP/1.1 200 OK
|
||||
< Server: Variti/0.9.3a
|
||||
Server: Variti/0.9.3a
|
||||
< Date: Thu, 01 Jan 2026 00:0000 GMT
|
||||
Date: Thu, 01 Jan 2026 00:0000 GMT
|
||||
< Access-Control-Allow-Origin: *
|
||||
Access-Control-Allow-Origin: *
|
||||
< Content-Type: text/html
|
||||
Content-Type: text/html
|
||||
< Cache-Control: no-store
|
||||
Cache-Control: no-store
|
||||
< Expires: Thu, 01 Jan 2026 00:0000 GMT
|
||||
Expires: Thu, 01 Jan 2026 00:0000 GMT
|
||||
< Pragma: no-cache
|
||||
Pragma: no-cache
|
||||
< Set-Cookie: ipp_uid=XXXXX/XXXXX/XXXXX==; Expires=Tue, 31 Dec 2040 23:59:59 GMT; Domain=.petrovich.ru; Path=/
|
||||
Set-Cookie: ipp_uid=XXXXX/XXXXX/XXXXX==; Expires=Tue, 31 Dec 2040 23:59:59 GMT; Domain=.petrovich.ru; Path=/
|
||||
< Content-Type: text/html
|
||||
Content-Type: text/html
|
||||
< Content-Length: 31253
|
||||
Content-Length: 31253
|
||||
< Connection: keep-alive
|
||||
Connection: keep-alive
|
||||
< Keep-Alive: timeout=60
|
||||
Keep-Alive: timeout=60
|
||||
|
||||
<
|
||||
* Connection #0 to host petrovich.ru left intact
|
||||
|
||||
```
|
||||
- We challenged ourselves, we kept trying and we didn't only *beat the air*: now, we have something to show you
|
||||
- Do not just take our word for it? - This is great and we respect that: you can build your own `telemt` or download a build and check it right now
|
||||
### Telegram Calls via MTProxy
|
||||
- Telegram architecture **does NOT allow calls via MTProxy**, but only via SOCKS5, which cannot be obfuscated
|
||||
### How does DPI see MTProxy TLS?
|
||||
@@ -206,6 +278,23 @@ enabled = true
|
||||
- in China behind the Great Firewall
|
||||
- in Russia on mobile networks, less in wired networks
|
||||
- in Iran during "activity"
|
||||
### Too many open files
|
||||
- On a fresh Linux install the default open file limit is low; under load `telemt` may fail with `Accept error: Too many open files`
|
||||
- **Systemd**: add `LimitNOFILE=65536` to the `[Service]` section (already included in the example above)
|
||||
- **Docker**: add `--ulimit nofile=65536:65536` to your `docker run` command, or in `docker-compose.yml`:
|
||||
```yaml
|
||||
ulimits:
|
||||
nofile:
|
||||
soft: 65536
|
||||
hard: 65536
|
||||
```
|
||||
- **System-wide** (optional): add to `/etc/security/limits.conf`:
|
||||
```
|
||||
* soft nofile 1048576
|
||||
* hard nofile 1048576
|
||||
root soft nofile 1048576
|
||||
root hard nofile 1048576
|
||||
```
|
||||
|
||||
|
||||
## Build
|
||||
@@ -224,13 +313,52 @@ chmod +x /bin/telemt
|
||||
telemt config.toml
|
||||
```
|
||||
|
||||
## Docker
|
||||
**Quick start (Docker Compose)**
|
||||
|
||||
1. Edit `config.toml` in repo root (at least: port, users secrets, tls_domain)
|
||||
2. Start container:
|
||||
```bash
|
||||
docker compose up -d --build
|
||||
```
|
||||
3. Check logs:
|
||||
```bash
|
||||
docker compose logs -f telemt
|
||||
```
|
||||
4. Stop:
|
||||
```bash
|
||||
docker compose down
|
||||
```
|
||||
|
||||
**Notes**
|
||||
- `docker-compose.yml` maps `./config.toml` to `/app/config.toml` (read-only)
|
||||
- By default it publishes `443:443` and runs with dropped capabilities (only `NET_BIND_SERVICE` is added)
|
||||
- If you really need host networking (usually only for some IPv6 setups) uncomment `network_mode: host`
|
||||
|
||||
**Run without Compose**
|
||||
```bash
|
||||
docker build -t telemt:local .
|
||||
docker run --name telemt --restart unless-stopped \
|
||||
-p 443:443 \
|
||||
-e RUST_LOG=info \
|
||||
-v "$PWD/config.toml:/app/config.toml:ro" \
|
||||
--read-only \
|
||||
--cap-drop ALL --cap-add NET_BIND_SERVICE \
|
||||
--ulimit nofile=65536:65536 \
|
||||
telemt:local
|
||||
```
|
||||
|
||||
## Why Rust?
|
||||
- Long-running reliability and idempotent behavior
|
||||
- Rust’s deterministic resource management - RAII
|
||||
- Rust's deterministic resource management - RAII
|
||||
- No garbage collector
|
||||
- Memory safety and reduced attack surface
|
||||
- Tokio's asynchronous architecture
|
||||
|
||||
## Issues
|
||||
- ✅ [SOCKS5 as Upstream](https://github.com/telemt/telemt/issues/1) -> added Upstream Management
|
||||
- ✅ [iOS - Media Upload Hanging-in-Loop](https://github.com/telemt/telemt/issues/2)
|
||||
|
||||
## Roadmap
|
||||
- Public IP in links
|
||||
- Config Reload-on-fly
|
||||
|
||||
34
ROADMAP.md
Normal file
34
ROADMAP.md
Normal file
@@ -0,0 +1,34 @@
|
||||
### 3.0.0 Anschluss
|
||||
- **Middle Proxy now is stable**, confirmed on canary-deploy over ~20 users
|
||||
- Ad-tag now is working
|
||||
- DC=203/CDN now is working over ME
|
||||
- `getProxyConfig` and `ProxySecret` are automated
|
||||
- Version order is now in format `3.0.0` - without Windows-style "microfixes"
|
||||
|
||||
### 3.0.1 Kabelsammler
|
||||
- Handshake timeouts fixed
|
||||
- Connectivity logging refactored
|
||||
- Docker: tmpfs for ProxyConfig and ProxySecret
|
||||
- Public Host and Port in config
|
||||
- ME Relays Head-of-Line Blocking fixed
|
||||
- ME Ping
|
||||
|
||||
### 3.0.2 Microtrencher
|
||||
- New [network] section
|
||||
- ME Fixes
|
||||
- Small bugs coverage
|
||||
|
||||
### 3.0.3 Ausrutscher
|
||||
- ME as stateful, no conn-id migration
|
||||
- No `flush()` on datapath after RpcWriter
|
||||
- Hightech parser for IPv6 without regexp
|
||||
- `nat_probe = true` by default
|
||||
- Timeout for `recv()` in STUN-client
|
||||
- ConnRegistry review
|
||||
- Dualstack emergency reconnect
|
||||
|
||||
### 3.0.4 Schneeflecken
|
||||
- Only WARN and Links in Normal log
|
||||
- Consistent IP-family detection
|
||||
- Includes for config
|
||||
- `nonce_frame_hex` in log only with `DEBUG`
|
||||
697
config.full.toml
Normal file
697
config.full.toml
Normal file
@@ -0,0 +1,697 @@
|
||||
# ==============================================================================
|
||||
#
|
||||
# TELEMT — Advanced Rust-based Telegram MTProto Proxy
|
||||
# Full Configuration Reference
|
||||
#
|
||||
# This file is both a working config and a complete documentation.
|
||||
# Every parameter is explained. Read it top to bottom before deploying.
|
||||
#
|
||||
# Quick Start:
|
||||
# 1. Set [server].port to your desired port (443 recommended)
|
||||
# 2. Generate a secret: openssl rand -hex 16
|
||||
# 3. Put it in [access.users] under a name you choose
|
||||
# 4. Set [censorship].tls_domain to a popular unblocked HTTPS site
|
||||
# 5. Set your public IP in [general].middle_proxy_nat_ip
|
||||
# and [general.links].public_host
|
||||
# 6. Set announce IP in [[server.listeners]]
|
||||
# 7. Run Telemt. It prints a tg:// link. Send it to your users.
|
||||
#
|
||||
# Modes of Operation:
|
||||
# Direct Mode (use_middle_proxy = false)
|
||||
# Connects straight to Telegram DCs via TCP. Simple, fast, low overhead.
|
||||
# No ad_tag support. No CDN DC support (203, etc).
|
||||
#
|
||||
# Middle-Proxy Mode (use_middle_proxy = true)
|
||||
# Connects to Telegram Middle-End servers via RPC protocol.
|
||||
# Required for ad_tag monetization and CDN support.
|
||||
# Requires proxy_secret_path and a valid public IP.
|
||||
#
|
||||
# ==============================================================================
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# LEGACY TOP-LEVEL FIELDS
|
||||
# ==============================================================================
|
||||
|
||||
# Deprecated. Use [general.links].show instead.
|
||||
# Accepts "*" for all users, or an array like ["alice", "bob"].
|
||||
show_link = ["0"]
|
||||
|
||||
# Fallback Datacenter index (1-5) when a client requests an unknown DC ID.
|
||||
# DC 2 is Amsterdam (Europe), closest for most CIS users.
|
||||
# default_dc = 2
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# GENERAL SETTINGS
|
||||
# ==============================================================================
|
||||
|
||||
[general]
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Core Protocol
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Coalesce the MTProto handshake and first data payload into a single TCP packet.
|
||||
# Significantly reduces connection latency. No reason to disable.
|
||||
fast_mode = true
|
||||
|
||||
# How the proxy connects to Telegram servers.
|
||||
# false = Direct TCP to Telegram DCs (simple, low overhead)
|
||||
# true = Middle-End RPC protocol (required for ad_tag and CDN DCs)
|
||||
use_middle_proxy = true
|
||||
|
||||
# 32-char hex Ad-Tag from @MTProxybot for sponsored channel injection.
|
||||
# Only works when use_middle_proxy = true.
|
||||
# Obtain yours: message @MTProxybot on Telegram, register your proxy.
|
||||
# ad_tag = "00000000000000000000000000000000"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Middle-End Authentication
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Path to the Telegram infrastructure AES key file.
|
||||
# Auto-downloaded from https://core.telegram.org/getProxySecret on first run.
|
||||
# This key authenticates your proxy with Middle-End servers.
|
||||
proxy_secret_path = "proxy-secret"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Public IP Configuration (Critical for Middle-Proxy Mode)
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Your server's PUBLIC IPv4 address.
|
||||
# Middle-End servers need this for the cryptographic Key Derivation Function.
|
||||
# If your server has a direct public IP, set it here.
|
||||
# If behind NAT (AWS, Docker, etc.), this MUST be your external IP.
|
||||
# If omitted, Telemt uses STUN to auto-detect (see middle_proxy_nat_probe).
|
||||
# middle_proxy_nat_ip = "203.0.113.10"
|
||||
|
||||
# Auto-detect public IP via STUN servers defined in [network].
|
||||
# Set to false if you hardcoded middle_proxy_nat_ip above.
|
||||
# Set to true if you want automatic detection.
|
||||
middle_proxy_nat_probe = true
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Middle-End Connection Pool
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Number of persistent multiplexed RPC connections to ME servers.
|
||||
# All client traffic is routed through these "fat pipes".
|
||||
# 8 handles thousands of concurrent users comfortably.
|
||||
middle_proxy_pool_size = 8
|
||||
|
||||
# Legacy field. Connections kept initialized but idle as warm standby.
|
||||
middle_proxy_warm_standby = 16
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Middle-End Keepalive
|
||||
# Telegram ME servers aggressively kill idle TCP connections.
|
||||
# These settings send periodic RPC_PING frames to keep pipes alive.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
me_keepalive_enabled = true
|
||||
|
||||
# Base interval between pings in seconds.
|
||||
me_keepalive_interval_secs = 25
|
||||
|
||||
# Random jitter added to interval to prevent all connections pinging simultaneously.
|
||||
me_keepalive_jitter_secs = 5
|
||||
|
||||
# Randomize ping payload bytes to prevent DPI from fingerprinting ping patterns.
|
||||
me_keepalive_payload_random = true
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Client-Side Limits
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Max buffered ciphertext per client (bytes) when upstream is slow.
|
||||
# Acts as backpressure to prevent memory exhaustion. 256KB is safe.
|
||||
crypto_pending_buffer = 262144
|
||||
|
||||
# Maximum single MTProto frame size from client. 16MB is protocol standard.
|
||||
max_client_frame = 16777216
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Crypto Desynchronization Logging
|
||||
# Desync errors usually mean DPI/GFW is tampering with connections.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# true = full forensics (trace ID, IP hash, hex dumps) for EVERY desync event
|
||||
# false = deduplicated logging, one entry per time window (prevents log spam)
|
||||
# Set true if you are actively debugging DPI interference.
|
||||
desync_all_full = true
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Beobachten — Built-in Honeypot / Active Probe Tracker
|
||||
# Tracks IPs that fail handshakes or behave like TLS scanners.
|
||||
# Output file can be fed into fail2ban or iptables for auto-blocking.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
beobachten = true
|
||||
|
||||
# How long (minutes) to remember a suspicious IP before expiring it.
|
||||
beobachten_minutes = 30
|
||||
|
||||
# How often (seconds) to flush tracker state to disk.
|
||||
beobachten_flush_secs = 15
|
||||
|
||||
# File path for the tracker output.
|
||||
beobachten_file = "cache/beobachten.txt"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Hardswap — Zero-Downtime ME Pool Rotation
|
||||
# When Telegram updates ME server IPs, Hardswap creates a completely new pool,
|
||||
# waits until it is fully ready, migrates traffic, then kills the old pool.
|
||||
# Users experience zero interruption.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
hardswap = true
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# ME Pool Warmup Staggering
|
||||
# When creating a new pool, connections are opened one by one with delays
|
||||
# to avoid a burst of SYN packets that could trigger ISP flood protection.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
me_warmup_stagger_enabled = true
|
||||
|
||||
# Delay between each connection creation (milliseconds).
|
||||
me_warmup_step_delay_ms = 500
|
||||
|
||||
# Random jitter added to the delay (milliseconds).
|
||||
me_warmup_step_jitter_ms = 300
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# ME Reconnect Backoff
|
||||
# If an ME server drops the connection, Telemt retries with this strategy.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Max simultaneous reconnect attempts per DC.
|
||||
me_reconnect_max_concurrent_per_dc = 8
|
||||
|
||||
# Exponential backoff base (milliseconds).
|
||||
me_reconnect_backoff_base_ms = 500
|
||||
|
||||
# Backoff ceiling (milliseconds). Will never wait longer than this.
|
||||
me_reconnect_backoff_cap_ms = 30000
|
||||
|
||||
# Number of instant retries before switching to exponential backoff.
|
||||
me_reconnect_fast_retry_count = 12
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# NAT Mismatch Behavior
|
||||
# If STUN-detected IP differs from local interface IP (you are behind NAT).
|
||||
# false = abort ME mode (safe default)
|
||||
# true = force ME mode anyway (use if you know your NAT setup is correct)
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
stun_iface_mismatch_ignore = false
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Logging
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# File to log unknown DC requests (DC IDs outside standard 1-5).
|
||||
unknown_dc_log_path = "unknown-dc.txt"
|
||||
|
||||
# Verbosity: "debug" | "verbose" | "normal" | "silent"
|
||||
log_level = "normal"
|
||||
|
||||
# Disable ANSI color codes in log output (useful for file logging).
|
||||
disable_colors = false
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# FakeTLS Record Sizing
|
||||
# Buffer small MTProto packets into larger TLS records to mimic real HTTPS.
|
||||
# Real HTTPS servers send records close to MTU size (~1400 bytes).
|
||||
# A stream of tiny TLS records is a strong DPI signal.
|
||||
# Set to 0 to disable. Set to 1400 for realistic HTTPS emulation.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
fast_mode_min_tls_record = 1400
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Periodic Updates
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# How often (seconds) to re-fetch ME server lists and proxy secrets
|
||||
# from core.telegram.org. Keeps your proxy in sync with Telegram infrastructure.
|
||||
update_every = 300
|
||||
|
||||
# How often (seconds) to force a Hardswap even if the ME map is unchanged.
|
||||
# Shorter intervals mean shorter-lived TCP flows, harder for DPI to profile.
|
||||
me_reinit_every_secs = 600
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Hardswap Warmup Tuning
|
||||
# Fine-grained control over how the new pool is warmed up before traffic switch.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
me_hardswap_warmup_delay_min_ms = 1000
|
||||
me_hardswap_warmup_delay_max_ms = 2000
|
||||
me_hardswap_warmup_extra_passes = 3
|
||||
me_hardswap_warmup_pass_backoff_base_ms = 500
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Config Update Debouncing
|
||||
# Telegram sometimes pushes transient/broken configs. Debouncing requires
|
||||
# N consecutive identical fetches before applying a change.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# ME server list must be identical for this many fetches before applying.
|
||||
me_config_stable_snapshots = 2
|
||||
|
||||
# Minimum seconds between config applications.
|
||||
me_config_apply_cooldown_secs = 300
|
||||
|
||||
# Proxy secret must be identical for this many fetches before applying.
|
||||
proxy_secret_stable_snapshots = 2
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Proxy Secret Rotation
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Apply newly downloaded secrets at runtime without restart.
|
||||
proxy_secret_rotate_runtime = true
|
||||
|
||||
# Maximum acceptable secret length (bytes). Rejects abnormally large secrets.
|
||||
proxy_secret_len_max = 256
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Hardswap Drain Settings
|
||||
# Controls graceful shutdown of old ME connections during pool rotation.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Seconds to keep old connections alive for in-flight data before force-closing.
|
||||
me_pool_drain_ttl_secs = 90
|
||||
|
||||
# Minimum ratio of healthy connections in new pool before draining old pool.
|
||||
# 0.8 = at least 80% of new pool must be ready.
|
||||
me_pool_min_fresh_ratio = 0.8
|
||||
|
||||
# Maximum seconds to wait for drain to complete before force-killing.
|
||||
me_reinit_drain_timeout_secs = 120
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# NTP Clock Check
|
||||
# MTProto uses timestamps. Clock drift > 30 seconds breaks handshakes.
|
||||
# Telemt checks on startup and warns if out of sync.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
ntp_check = true
|
||||
ntp_servers = ["pool.ntp.org"]
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Auto-Degradation
|
||||
# If ME servers become completely unreachable (ISP blocking),
|
||||
# automatically fall back to Direct Mode so users stay connected.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
auto_degradation_enabled = true
|
||||
|
||||
# Number of DC groups that must be unreachable before triggering fallback.
|
||||
degradation_min_unavailable_dc_groups = 2
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# ALLOWED CLIENT PROTOCOLS
|
||||
# Only enable what you need. In censored regions, TLS-only is safest.
|
||||
# ==============================================================================
|
||||
|
||||
[general.modes]
|
||||
|
||||
# Classic MTProto. Unobfuscated length prefixes. Trivially detected by DPI.
|
||||
# No reason to enable unless you have ancient clients.
|
||||
classic = false
|
||||
|
||||
# Obfuscated MTProto with randomized padding. Better than classic, but
|
||||
# still detectable by statistical analysis of packet sizes.
|
||||
secure = false
|
||||
|
||||
# FakeTLS (ee-secrets). Wraps MTProto in TLS 1.3 framing.
|
||||
# To DPI, it looks like a normal HTTPS connection.
|
||||
# This should be the ONLY enabled mode in censored environments.
|
||||
tls = true
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# STARTUP LINK GENERATION
|
||||
# Controls what tg:// invite links are printed to console on startup.
|
||||
# ==============================================================================
|
||||
|
||||
[general.links]
|
||||
|
||||
# Which users to generate links for.
|
||||
# "*" = all users, or an array like ["alice", "bob"].
|
||||
show = "*"
|
||||
|
||||
# IP or domain to embed in the tg:// link.
|
||||
# If omitted, Telemt uses STUN to auto-detect.
|
||||
# Set this to your server's public IP or domain for reliable links.
|
||||
# public_host = "proxy.example.com"
|
||||
|
||||
# Port to embed in the tg:// link.
|
||||
# If omitted, uses [server].port.
|
||||
# public_port = 443
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# NETWORK & IP RESOLUTION
|
||||
# ==============================================================================
|
||||
|
||||
[network]
|
||||
|
||||
# Enable IPv4 for outbound connections to Telegram.
|
||||
ipv4 = true
|
||||
|
||||
# Enable IPv6 for outbound connections to Telegram.
|
||||
ipv6 = false
|
||||
|
||||
# Prefer IPv4 (4) or IPv6 (6) when both are available.
|
||||
prefer = 4
|
||||
|
||||
# Experimental: use both IPv4 and IPv6 ME servers simultaneously.
|
||||
# May improve reliability but doubles connection count.
|
||||
multipath = false
|
||||
|
||||
# STUN servers for external IP discovery.
|
||||
# Used for Middle-Proxy KDF (if nat_probe=true) and link generation.
|
||||
stun_servers = [
|
||||
"stun.l.google.com:5349",
|
||||
"stun1.l.google.com:3478",
|
||||
"stun.gmx.net:3478",
|
||||
"stun.l.google.com:19302"
|
||||
]
|
||||
|
||||
# If UDP STUN is blocked, attempt TCP-based STUN as fallback.
|
||||
stun_tcp_fallback = true
|
||||
|
||||
# If all STUN fails, use HTTP APIs to discover public IP.
|
||||
http_ip_detect_urls = [
|
||||
"https://ifconfig.me/ip",
|
||||
"https://api.ipify.org"
|
||||
]
|
||||
|
||||
# Cache discovered public IP to this file to survive restarts.
|
||||
cache_public_ip_path = "cache/public_ip.txt"
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# SERVER BINDING & METRICS
|
||||
# ==============================================================================
|
||||
|
||||
[server]
|
||||
|
||||
# TCP port to listen on.
|
||||
# 443 is recommended (looks like normal HTTPS traffic).
|
||||
port = 443
|
||||
|
||||
# IPv4 bind address. "0.0.0.0" = all interfaces.
|
||||
listen_addr_ipv4 = "0.0.0.0"
|
||||
|
||||
# IPv6 bind address. "::" = all interfaces.
|
||||
listen_addr_ipv6 = "::"
|
||||
|
||||
# Unix socket listener (for reverse proxy setups with Nginx/HAProxy).
|
||||
# listen_unix_sock = "/var/run/telemt.sock"
|
||||
# listen_unix_sock_perm = "0660"
|
||||
|
||||
# Enable PROXY protocol header parsing.
|
||||
# Set true ONLY if Telemt is behind HAProxy/Nginx that injects PROXY headers.
|
||||
# If enabled without a proxy in front, clients will fail to connect.
|
||||
proxy_protocol = false
|
||||
|
||||
# Prometheus metrics HTTP endpoint port.
|
||||
# Uncomment to enable. Access at http://your-server:9090/metrics
|
||||
# metrics_port = 9090
|
||||
|
||||
# IP ranges allowed to access the metrics endpoint.
|
||||
metrics_whitelist = [
|
||||
"127.0.0.1/32",
|
||||
"::1/128"
|
||||
]
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Listener Overrides
|
||||
# Define explicit listeners with specific bind IPs and announce IPs.
|
||||
# The announce IP is what gets embedded in tg:// links and sent to ME servers.
|
||||
# You MUST set announce to your server's public IP for ME mode to work.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# [[server.listeners]]
|
||||
# ip = "0.0.0.0"
|
||||
# announce = "203.0.113.10"
|
||||
# reuse_allow = false
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# TIMEOUTS (seconds unless noted)
|
||||
# ==============================================================================
|
||||
|
||||
[timeouts]
|
||||
|
||||
# Maximum time for client to complete FakeTLS + MTProto handshake.
|
||||
client_handshake = 15
|
||||
|
||||
# Maximum time to establish TCP connection to upstream Telegram DC.
|
||||
tg_connect = 10
|
||||
|
||||
# TCP keepalive interval for client connections.
|
||||
client_keepalive = 60
|
||||
|
||||
# Maximum client inactivity before dropping the connection.
|
||||
client_ack = 300
|
||||
|
||||
# Instant retry count for a single ME endpoint before giving up on it.
|
||||
me_one_retry = 3
|
||||
|
||||
# Timeout (milliseconds) for a single ME endpoint connection attempt.
|
||||
me_one_timeout_ms = 1500
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# ANTI-CENSORSHIP / FAKETLS / MASKING
|
||||
# This is where Telemt becomes invisible to Deep Packet Inspection.
|
||||
# ==============================================================================
|
||||
|
||||
[censorship]
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# TLS Domain Fronting
|
||||
# The SNI (Server Name Indication) your proxy presents to connecting clients.
|
||||
# Must be a popular, unblocked HTTPS website in your target country.
|
||||
# DPI sees traffic to this domain. Choose carefully.
|
||||
# Good choices: major CDNs, banks, government sites, search engines.
|
||||
# Bad choices: obscure sites, already-blocked domains.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
tls_domain = "www.google.com"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Active Probe Masking
|
||||
# When someone connects but fails the MTProto handshake (wrong secret),
|
||||
# they might be an ISP active prober testing if this is a proxy.
|
||||
#
|
||||
# mask = false: drop the connection (prober knows something is here)
|
||||
# mask = true: transparently proxy them to mask_host (prober sees a real website)
|
||||
#
|
||||
# With mask enabled, your server is indistinguishable from a real web server
|
||||
# to anyone who doesn't have the correct secret.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
mask = true
|
||||
|
||||
# The real web server to forward failed handshakes to.
|
||||
# If omitted, defaults to tls_domain.
|
||||
# mask_host = "www.google.com"
|
||||
|
||||
# Port on the mask host to connect to.
|
||||
mask_port = 443
|
||||
|
||||
# Inject PROXY protocol header when forwarding to mask host.
|
||||
# 0 = disabled, 1 = v1, 2 = v2. Leave disabled unless mask_host expects it.
|
||||
# mask_proxy_protocol = 0
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# TLS Certificate Emulation
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Size (bytes) of the locally generated fake TLS certificate.
|
||||
# Only used when tls_emulation is disabled.
|
||||
fake_cert_len = 2048
|
||||
|
||||
# KILLER FEATURE: Real-Time TLS Emulation.
|
||||
# Telemt connects to tls_domain, fetches its actual TLS 1.3 certificate chain,
|
||||
# and exactly replicates the byte sizes of ServerHello and Certificate records.
|
||||
# Defeats DPI that uses TLS record length heuristics to detect proxies.
|
||||
# Strongly recommended in censored environments.
|
||||
tls_emulation = true
|
||||
|
||||
# Directory to cache fetched TLS certificates.
|
||||
tls_front_dir = "tlsfront"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# ServerHello Timing
|
||||
# Real web servers take 30-150ms to respond to ClientHello due to network
|
||||
# latency and crypto processing. A proxy responding in <1ms is suspicious.
|
||||
# These settings add realistic delay to mimic genuine server behavior.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Minimum delay before sending ServerHello (milliseconds).
|
||||
server_hello_delay_min_ms = 50
|
||||
|
||||
# Maximum delay before sending ServerHello (milliseconds).
|
||||
server_hello_delay_max_ms = 150
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# TLS Session Tickets
|
||||
# Real TLS 1.3 servers send 1-2 NewSessionTicket messages after handshake.
|
||||
# A server that sends zero tickets is anomalous and may trigger DPI flags.
|
||||
# Set this to match your tls_domain's behavior (usually 2).
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# tls_new_session_tickets = 0
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Full Certificate Frequency
|
||||
# When tls_emulation is enabled, this controls how often (per client IP)
|
||||
# to send the complete emulated certificate chain.
|
||||
#
|
||||
# > 0: Subsequent connections within TTL seconds get a smaller cached version.
|
||||
# Saves bandwidth but creates a detectable size difference between
|
||||
# first and repeat connections.
|
||||
#
|
||||
# = 0: Every connection gets the full certificate. More bandwidth but
|
||||
# perfectly consistent behavior, no anomalies for DPI to detect.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
tls_full_cert_ttl_secs = 0
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# ALPN Enforcement
|
||||
# Ensure ServerHello responds with the exact ALPN protocol the client requested.
|
||||
# Mismatched ALPN (e.g., client asks h2, server says http/1.1) is a DPI red flag.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
alpn_enforce = true
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# ACCESS CONTROL & USERS
|
||||
# ==============================================================================
|
||||
|
||||
[access]
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Replay Attack Protection
|
||||
# DPI can record a legitimate user's handshake and replay it later to probe
|
||||
# whether the server is a proxy. Telemt remembers recent handshake nonces
|
||||
# and rejects duplicates.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# Number of nonce slots in the replay detection buffer.
|
||||
replay_check_len = 65536
|
||||
|
||||
# How long (seconds) to remember nonces before expiring them.
|
||||
replay_window_secs = 1800
|
||||
|
||||
# Allow clients with incorrect system clocks to connect.
|
||||
# false = reject clients with significant time skew (more secure)
|
||||
# true = accept anyone regardless of clock (more permissive)
|
||||
ignore_time_skew = false
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# User Secrets
|
||||
# Each user needs a unique 32-character hex string as their secret.
|
||||
# Generate with: openssl rand -hex 16
|
||||
#
|
||||
# This secret is embedded in the tg:// link. Anyone with it can connect.
|
||||
# Format: username = "hex_secret"
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
[access.users]
|
||||
# alice = "0123456789abcdef0123456789abcdef"
|
||||
# bob = "fedcba9876543210fedcba9876543210"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Per-User Connection Limits
|
||||
# Limits concurrent TCP connections per user to prevent secret sharing.
|
||||
# Uncomment and set for each user as needed.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
[access.user_max_tcp_conns]
|
||||
# alice = 100
|
||||
# bob = 50
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Per-User Expiration Dates
|
||||
# Automatically revoke access after the specified date (ISO 8601 format).
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
[access.user_expirations]
|
||||
# alice = "2025-12-31T23:59:59Z"
|
||||
# bob = "2026-06-15T00:00:00Z"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Per-User Data Quotas
|
||||
# Maximum total bytes transferred per user. Connection refused after limit.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
[access.user_data_quota]
|
||||
# alice = 107374182400
|
||||
# bob = 53687091200
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Per-User Unique IP Limits
|
||||
# Maximum number of different IP addresses that can use this secret
|
||||
# at the same time. Highly effective against secret leaking/sharing.
|
||||
# Set to 1 for single-device, 2-3 for phone+desktop, etc.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
[access.user_max_unique_ips]
|
||||
# alice = 3
|
||||
# bob = 2
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# UPSTREAM ROUTING
|
||||
# Controls how Telemt connects to Telegram servers (or ME servers).
|
||||
# If omitted entirely, uses the OS default route.
|
||||
# ==============================================================================
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# Direct upstream: use the server's own network interface.
|
||||
# You can optionally bind to a specific interface or local IP.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# [[upstreams]]
|
||||
# type = "direct"
|
||||
# interface = "eth0"
|
||||
# bind_addresses = ["192.0.2.10"]
|
||||
# weight = 1
|
||||
# enabled = true
|
||||
# scopes = "*"
|
||||
|
||||
# ------------------------------------------------------------------------------
|
||||
# SOCKS5 upstream: route Telegram traffic through a SOCKS5 proxy.
|
||||
# Useful if your server's IP is blocked from reaching Telegram DCs.
|
||||
# ------------------------------------------------------------------------------
|
||||
|
||||
# [[upstreams]]
|
||||
# type = "socks5"
|
||||
# address = "198.51.100.30:1080"
|
||||
# username = "proxy-user"
|
||||
# password = "proxy-pass"
|
||||
# weight = 1
|
||||
# enabled = true
|
||||
|
||||
|
||||
# ==============================================================================
|
||||
# DATACENTER OVERRIDES
|
||||
# Force specific DC IDs to route to specific IP:Port combinations.
|
||||
# DC 203 (CDN) is auto-injected by Telemt if not specified here.
|
||||
# ==============================================================================
|
||||
|
||||
# [dc_overrides]
|
||||
# "201" = "149.154.175.50:443"
|
||||
# "202" = ["149.154.167.51:443", "149.154.175.100:443"]
|
||||
62
config.toml
62
config.toml
@@ -1,13 +1,57 @@
|
||||
port = 443
|
||||
### Telemt Based Config.toml
|
||||
# We believe that these settings are sufficient for most scenarios
|
||||
# where cutting-egde methods and parameters or special solutions are not needed
|
||||
|
||||
[users]
|
||||
user1 = "00000000000000000000000000000000"
|
||||
# === General Settings ===
|
||||
[general]
|
||||
use_middle_proxy = false
|
||||
# Global ad_tag fallback when user has no per-user tag in [access.user_ad_tags]
|
||||
# ad_tag = "00000000000000000000000000000000"
|
||||
# Per-user ad_tag in [access.user_ad_tags] (32 hex from @MTProxybot)
|
||||
|
||||
[modes]
|
||||
classic = true
|
||||
secure = true
|
||||
# === Log Level ===
|
||||
# Log level: debug | verbose | normal | silent
|
||||
# Can be overridden with --silent or --log-level CLI flags
|
||||
# RUST_LOG env var takes absolute priority over all of these
|
||||
log_level = "normal"
|
||||
|
||||
[general.modes]
|
||||
classic = false
|
||||
secure = false
|
||||
tls = true
|
||||
|
||||
tls_domain = "www.github.com"
|
||||
fast_mode = true
|
||||
prefer_ipv6 = false
|
||||
[general.links]
|
||||
show = "*"
|
||||
# show = ["alice", "bob"] # Only show links for alice and bob
|
||||
# show = "*" # Show links for all users
|
||||
# public_host = "proxy.example.com" # Host (IP or domain) for tg:// links
|
||||
# public_port = 443 # Port for tg:// links (default: server.port)
|
||||
|
||||
# === Server Binding ===
|
||||
[server]
|
||||
port = 443
|
||||
# proxy_protocol = false # Enable if behind HAProxy/nginx with PROXY protocol
|
||||
# metrics_port = 9090
|
||||
# metrics_whitelist = ["127.0.0.1", "::1", "0.0.0.0/0"]
|
||||
|
||||
[server.api]
|
||||
enabled = true
|
||||
listen = "0.0.0.0:9091"
|
||||
whitelist = ["127.0.0.0/8"]
|
||||
minimal_runtime_enabled = false
|
||||
minimal_runtime_cache_ttl_ms = 1000
|
||||
|
||||
# Listen on multiple interfaces/IPs - IPv4
|
||||
[[server.listeners]]
|
||||
ip = "0.0.0.0"
|
||||
|
||||
# === Anti-Censorship & Masking ===
|
||||
[censorship]
|
||||
tls_domain = "petrovich.ru"
|
||||
mask = true
|
||||
tls_emulation = true # Fetch real cert lengths and emulate TLS records
|
||||
tls_front_dir = "tlsfront" # Cache directory for TLS emulation
|
||||
|
||||
[access.users]
|
||||
# format: "username" = "32_hex_chars_secret"
|
||||
hello = "00000000000000000000000000000000"
|
||||
|
||||
30
docker-compose.yml
Normal file
30
docker-compose.yml
Normal file
@@ -0,0 +1,30 @@
|
||||
services:
|
||||
telemt:
|
||||
image: ghcr.io/telemt/telemt:latest
|
||||
build: .
|
||||
container_name: telemt
|
||||
restart: unless-stopped
|
||||
ports:
|
||||
- "443:443"
|
||||
- "127.0.0.1:9090:9090"
|
||||
# Allow caching 'proxy-secret' in read-only container
|
||||
working_dir: /run/telemt
|
||||
volumes:
|
||||
- ./config.toml:/run/telemt/config.toml:ro
|
||||
tmpfs:
|
||||
- /run/telemt:rw,mode=1777,size=1m
|
||||
environment:
|
||||
- RUST_LOG=info
|
||||
# Uncomment this line if you want to use host network for IPv6, but bridge is default and usually better
|
||||
# network_mode: host
|
||||
cap_drop:
|
||||
- ALL
|
||||
cap_add:
|
||||
- NET_BIND_SERVICE # allow binding to port 443
|
||||
read_only: true
|
||||
security_opt:
|
||||
- no-new-privileges:true
|
||||
ulimits:
|
||||
nofile:
|
||||
soft: 65536
|
||||
hard: 65536
|
||||
548
docs/API.md
Normal file
548
docs/API.md
Normal file
@@ -0,0 +1,548 @@
|
||||
# Telemt Control API
|
||||
|
||||
## Purpose
|
||||
Control-plane HTTP API for runtime visibility and user/config management.
|
||||
Data-plane MTProto traffic is out of scope.
|
||||
|
||||
## Runtime Configuration
|
||||
API runtime is configured in `[server.api]`.
|
||||
|
||||
| Field | Type | Default | Description |
|
||||
| --- | --- | --- | --- |
|
||||
| `enabled` | `bool` | `false` | Enables REST API listener. |
|
||||
| `listen` | `string` (`IP:PORT`) | `127.0.0.1:9091` | API bind address. |
|
||||
| `whitelist` | `CIDR[]` | `127.0.0.1/32, ::1/128` | Source IP allowlist. Empty list means allow all. |
|
||||
| `auth_header` | `string` | `""` | Exact value for `Authorization` header. Empty disables header auth. |
|
||||
| `request_body_limit_bytes` | `usize` | `65536` | Maximum request body size. Must be `> 0`. |
|
||||
| `minimal_runtime_enabled` | `bool` | `false` | Enables runtime snapshot endpoints requiring ME pool read-lock aggregation. |
|
||||
| `minimal_runtime_cache_ttl_ms` | `u64` | `1000` | Cache TTL for minimal snapshots. `0` disables cache; valid range is `[0, 60000]`. |
|
||||
| `read_only` | `bool` | `false` | Disables mutating endpoints. |
|
||||
|
||||
`server.admin_api` is accepted as an alias for backward compatibility.
|
||||
|
||||
Runtime validation for API config:
|
||||
- `server.api.listen` must be a valid `IP:PORT`.
|
||||
- `server.api.request_body_limit_bytes` must be `> 0`.
|
||||
- `server.api.minimal_runtime_cache_ttl_ms` must be within `[0, 60000]`.
|
||||
|
||||
## Protocol Contract
|
||||
|
||||
| Item | Value |
|
||||
| --- | --- |
|
||||
| Transport | HTTP/1.1 |
|
||||
| Content type | `application/json; charset=utf-8` |
|
||||
| Prefix | `/v1` |
|
||||
| Optimistic concurrency | `If-Match: <revision>` on mutating requests (optional) |
|
||||
| Revision format | SHA-256 hex of current `config.toml` content |
|
||||
|
||||
### Success Envelope
|
||||
```json
|
||||
{
|
||||
"ok": true,
|
||||
"data": {},
|
||||
"revision": "sha256-hex"
|
||||
}
|
||||
```
|
||||
|
||||
### Error Envelope
|
||||
```json
|
||||
{
|
||||
"ok": false,
|
||||
"error": {
|
||||
"code": "machine_code",
|
||||
"message": "human-readable"
|
||||
},
|
||||
"request_id": 1
|
||||
}
|
||||
```
|
||||
|
||||
## Request Processing Order
|
||||
|
||||
Requests are processed in this order:
|
||||
1. `api_enabled` gate (`503 api_disabled` if disabled).
|
||||
2. Source IP whitelist gate (`403 forbidden`).
|
||||
3. `Authorization` header gate when configured (`401 unauthorized`).
|
||||
4. Route and method matching (`404 not_found` or `405 method_not_allowed`).
|
||||
5. `read_only` gate for mutating routes (`403 read_only`).
|
||||
6. Request body read/limit/JSON decode (`413 payload_too_large`, `400 bad_request`).
|
||||
7. Business validation and config write path.
|
||||
|
||||
Notes:
|
||||
- Whitelist is evaluated against the direct TCP peer IP (`SocketAddr::ip`), without `X-Forwarded-For` support.
|
||||
- `Authorization` check is exact string equality against configured `auth_header`.
|
||||
|
||||
## Endpoint Matrix
|
||||
|
||||
| Method | Path | Body | Success | `data` contract |
|
||||
| --- | --- | --- | --- | --- |
|
||||
| `GET` | `/v1/health` | none | `200` | `HealthData` |
|
||||
| `GET` | `/v1/stats/summary` | none | `200` | `SummaryData` |
|
||||
| `GET` | `/v1/stats/zero/all` | none | `200` | `ZeroAllData` |
|
||||
| `GET` | `/v1/stats/upstreams` | none | `200` | `UpstreamsData` |
|
||||
| `GET` | `/v1/stats/minimal/all` | none | `200` | `MinimalAllData` |
|
||||
| `GET` | `/v1/stats/me-writers` | none | `200` | `MeWritersData` |
|
||||
| `GET` | `/v1/stats/dcs` | none | `200` | `DcStatusData` |
|
||||
| `GET` | `/v1/stats/users` | none | `200` | `UserInfo[]` |
|
||||
| `GET` | `/v1/users` | none | `200` | `UserInfo[]` |
|
||||
| `POST` | `/v1/users` | `CreateUserRequest` | `201` | `CreateUserResponse` |
|
||||
| `GET` | `/v1/users/{username}` | none | `200` | `UserInfo` |
|
||||
| `PATCH` | `/v1/users/{username}` | `PatchUserRequest` | `200` | `UserInfo` |
|
||||
| `DELETE` | `/v1/users/{username}` | none | `200` | `string` (deleted username) |
|
||||
| `POST` | `/v1/users/{username}/rotate-secret` | `RotateSecretRequest` or empty body | `404` | `ErrorResponse` (`not_found`, current runtime behavior) |
|
||||
|
||||
## Common Error Codes
|
||||
|
||||
| HTTP | `error.code` | Trigger |
|
||||
| --- | --- | --- |
|
||||
| `400` | `bad_request` | Invalid JSON, validation failures, malformed request body. |
|
||||
| `401` | `unauthorized` | Missing/invalid `Authorization` when `auth_header` is configured. |
|
||||
| `403` | `forbidden` | Source IP is not allowed by whitelist. |
|
||||
| `403` | `read_only` | Mutating endpoint called while `read_only=true`. |
|
||||
| `404` | `not_found` | Unknown route, unknown user, or unsupported sub-route (including current `rotate-secret` route). |
|
||||
| `405` | `method_not_allowed` | Unsupported method for `/v1/users/{username}` route shape. |
|
||||
| `409` | `revision_conflict` | `If-Match` revision mismatch. |
|
||||
| `409` | `user_exists` | User already exists on create. |
|
||||
| `409` | `last_user_forbidden` | Attempt to delete last configured user. |
|
||||
| `413` | `payload_too_large` | Body exceeds `request_body_limit_bytes`. |
|
||||
| `500` | `internal_error` | Internal error (I/O, serialization, config load/save). |
|
||||
| `503` | `api_disabled` | API disabled in config. |
|
||||
|
||||
## Routing and Method Edge Cases
|
||||
|
||||
| Case | Behavior |
|
||||
| --- | --- |
|
||||
| Path matching | Exact match on `req.uri().path()`. Query string does not affect route matching. |
|
||||
| Trailing slash | Not normalized. Example: `/v1/users/` is `404`. |
|
||||
| Username route with extra slash | `/v1/users/{username}/...` is not treated as user route and returns `404`. |
|
||||
| `PUT /v1/users/{username}` | `405 method_not_allowed`. |
|
||||
| `POST /v1/users/{username}` | `404 not_found`. |
|
||||
| `POST /v1/users/{username}/rotate-secret` | `404 not_found` in current release due route matcher limitation. |
|
||||
|
||||
## Body and JSON Semantics
|
||||
|
||||
- Request body is read only for mutating routes that define a body contract.
|
||||
- Body size limit is enforced during streaming read (`413 payload_too_large`).
|
||||
- Invalid transport body frame returns `400 bad_request` (`Invalid request body`).
|
||||
- Invalid JSON returns `400 bad_request` (`Invalid JSON body`).
|
||||
- `Content-Type` is not required for JSON parsing.
|
||||
- Unknown JSON fields are ignored by deserialization.
|
||||
- `PATCH` updates only provided fields and does not support explicit clearing of optional fields.
|
||||
- `If-Match` supports both quoted and unquoted values; surrounding whitespace is trimmed.
|
||||
|
||||
## Request Contracts
|
||||
|
||||
### `CreateUserRequest`
|
||||
| Field | Type | Required | Description |
|
||||
| --- | --- | --- | --- |
|
||||
| `username` | `string` | yes | `[A-Za-z0-9_.-]`, length `1..64`. |
|
||||
| `secret` | `string` | no | Exactly 32 hex chars. If missing, generated automatically. |
|
||||
| `user_ad_tag` | `string` | no | Exactly 32 hex chars. |
|
||||
| `max_tcp_conns` | `usize` | no | Per-user concurrent TCP limit. |
|
||||
| `expiration_rfc3339` | `string` | no | RFC3339 expiration timestamp. |
|
||||
| `data_quota_bytes` | `u64` | no | Per-user traffic quota. |
|
||||
| `max_unique_ips` | `usize` | no | Per-user unique source IP limit. |
|
||||
|
||||
### `PatchUserRequest`
|
||||
| Field | Type | Required | Description |
|
||||
| --- | --- | --- | --- |
|
||||
| `secret` | `string` | no | Exactly 32 hex chars. |
|
||||
| `user_ad_tag` | `string` | no | Exactly 32 hex chars. |
|
||||
| `max_tcp_conns` | `usize` | no | Per-user concurrent TCP limit. |
|
||||
| `expiration_rfc3339` | `string` | no | RFC3339 expiration timestamp. |
|
||||
| `data_quota_bytes` | `u64` | no | Per-user traffic quota. |
|
||||
| `max_unique_ips` | `usize` | no | Per-user unique source IP limit. |
|
||||
|
||||
### `RotateSecretRequest`
|
||||
| Field | Type | Required | Description |
|
||||
| --- | --- | --- | --- |
|
||||
| `secret` | `string` | no | Exactly 32 hex chars. If missing, generated automatically. |
|
||||
|
||||
Note: the request contract is defined, but the corresponding route currently returns `404` (see routing edge cases).
|
||||
|
||||
## Response Data Contracts
|
||||
|
||||
### `HealthData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `status` | `string` | Always `"ok"`. |
|
||||
| `read_only` | `bool` | Mirrors current API `read_only` mode. |
|
||||
|
||||
### `SummaryData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `uptime_seconds` | `f64` | Process uptime in seconds. |
|
||||
| `connections_total` | `u64` | Total accepted client connections. |
|
||||
| `connections_bad_total` | `u64` | Failed/invalid client connections. |
|
||||
| `handshake_timeouts_total` | `u64` | Handshake timeout count. |
|
||||
| `configured_users` | `usize` | Number of configured users in config. |
|
||||
|
||||
### `ZeroAllData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `generated_at_epoch_secs` | `u64` | Snapshot time (Unix epoch seconds). |
|
||||
| `core` | `ZeroCoreData` | Core counters and telemetry policy snapshot. |
|
||||
| `upstream` | `ZeroUpstreamData` | Upstream connect counters/histogram buckets. |
|
||||
| `middle_proxy` | `ZeroMiddleProxyData` | ME protocol/health counters. |
|
||||
| `pool` | `ZeroPoolData` | ME pool lifecycle counters. |
|
||||
| `desync` | `ZeroDesyncData` | Frame desync counters. |
|
||||
|
||||
#### `ZeroCoreData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `uptime_seconds` | `f64` | Process uptime. |
|
||||
| `connections_total` | `u64` | Total accepted connections. |
|
||||
| `connections_bad_total` | `u64` | Failed/invalid connections. |
|
||||
| `handshake_timeouts_total` | `u64` | Handshake timeouts. |
|
||||
| `configured_users` | `usize` | Configured user count. |
|
||||
| `telemetry_core_enabled` | `bool` | Core telemetry toggle. |
|
||||
| `telemetry_user_enabled` | `bool` | User telemetry toggle. |
|
||||
| `telemetry_me_level` | `string` | ME telemetry level (`off|normal|verbose`). |
|
||||
|
||||
#### `ZeroUpstreamData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `connect_attempt_total` | `u64` | Total upstream connect attempts. |
|
||||
| `connect_success_total` | `u64` | Successful upstream connects. |
|
||||
| `connect_fail_total` | `u64` | Failed upstream connects. |
|
||||
| `connect_failfast_hard_error_total` | `u64` | Fail-fast hard errors. |
|
||||
| `connect_attempts_bucket_1` | `u64` | Connect attempts resolved in 1 try. |
|
||||
| `connect_attempts_bucket_2` | `u64` | Connect attempts resolved in 2 tries. |
|
||||
| `connect_attempts_bucket_3_4` | `u64` | Connect attempts resolved in 3-4 tries. |
|
||||
| `connect_attempts_bucket_gt_4` | `u64` | Connect attempts requiring more than 4 tries. |
|
||||
| `connect_duration_success_bucket_le_100ms` | `u64` | Successful connects <=100 ms. |
|
||||
| `connect_duration_success_bucket_101_500ms` | `u64` | Successful connects 101-500 ms. |
|
||||
| `connect_duration_success_bucket_501_1000ms` | `u64` | Successful connects 501-1000 ms. |
|
||||
| `connect_duration_success_bucket_gt_1000ms` | `u64` | Successful connects >1000 ms. |
|
||||
| `connect_duration_fail_bucket_le_100ms` | `u64` | Failed connects <=100 ms. |
|
||||
| `connect_duration_fail_bucket_101_500ms` | `u64` | Failed connects 101-500 ms. |
|
||||
| `connect_duration_fail_bucket_501_1000ms` | `u64` | Failed connects 501-1000 ms. |
|
||||
| `connect_duration_fail_bucket_gt_1000ms` | `u64` | Failed connects >1000 ms. |
|
||||
|
||||
### `UpstreamsData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `enabled` | `bool` | Runtime upstream snapshot availability according to API config. |
|
||||
| `reason` | `string?` | `feature_disabled` or `source_unavailable` when runtime snapshot is unavailable. |
|
||||
| `generated_at_epoch_secs` | `u64` | Snapshot generation time. |
|
||||
| `zero` | `ZeroUpstreamData` | Always available zero-cost upstream counters block. |
|
||||
| `summary` | `UpstreamSummaryData?` | Runtime upstream aggregate view, null when unavailable. |
|
||||
| `upstreams` | `UpstreamStatus[]?` | Per-upstream runtime status rows, null when unavailable. |
|
||||
|
||||
#### `UpstreamSummaryData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `configured_total` | `usize` | Total configured upstream entries. |
|
||||
| `healthy_total` | `usize` | Upstreams currently marked healthy. |
|
||||
| `unhealthy_total` | `usize` | Upstreams currently marked unhealthy. |
|
||||
| `direct_total` | `usize` | Number of direct upstream entries. |
|
||||
| `socks4_total` | `usize` | Number of SOCKS4 upstream entries. |
|
||||
| `socks5_total` | `usize` | Number of SOCKS5 upstream entries. |
|
||||
|
||||
#### `UpstreamStatus`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `upstream_id` | `usize` | Runtime upstream index. |
|
||||
| `route_kind` | `string` | Upstream route kind: `direct`, `socks4`, `socks5`. |
|
||||
| `address` | `string` | Upstream address (`direct` for direct route kind). Authentication fields are intentionally omitted. |
|
||||
| `weight` | `u16` | Selection weight. |
|
||||
| `scopes` | `string` | Configured scope selector string. |
|
||||
| `healthy` | `bool` | Current health flag. |
|
||||
| `fails` | `u32` | Consecutive fail counter. |
|
||||
| `last_check_age_secs` | `u64` | Seconds since the last health-check update. |
|
||||
| `effective_latency_ms` | `f64?` | Effective upstream latency used by selector. |
|
||||
| `dc` | `UpstreamDcStatus[]` | Per-DC latency/IP preference snapshot. |
|
||||
|
||||
#### `UpstreamDcStatus`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `dc` | `i16` | Telegram DC id. |
|
||||
| `latency_ema_ms` | `f64?` | Per-DC latency EMA value. |
|
||||
| `ip_preference` | `string` | Per-DC IP family preference: `unknown`, `prefer_v4`, `prefer_v6`, `both_work`, `unavailable`. |
|
||||
|
||||
#### `ZeroMiddleProxyData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `keepalive_sent_total` | `u64` | ME keepalive packets sent. |
|
||||
| `keepalive_failed_total` | `u64` | ME keepalive send failures. |
|
||||
| `keepalive_pong_total` | `u64` | Keepalive pong responses received. |
|
||||
| `keepalive_timeout_total` | `u64` | Keepalive timeout events. |
|
||||
| `rpc_proxy_req_signal_sent_total` | `u64` | RPC proxy activity signals sent. |
|
||||
| `rpc_proxy_req_signal_failed_total` | `u64` | RPC proxy activity signal failures. |
|
||||
| `rpc_proxy_req_signal_skipped_no_meta_total` | `u64` | Signals skipped due to missing metadata. |
|
||||
| `rpc_proxy_req_signal_response_total` | `u64` | RPC proxy signal responses received. |
|
||||
| `rpc_proxy_req_signal_close_sent_total` | `u64` | RPC proxy close signals sent. |
|
||||
| `reconnect_attempt_total` | `u64` | ME reconnect attempts. |
|
||||
| `reconnect_success_total` | `u64` | Successful reconnects. |
|
||||
| `handshake_reject_total` | `u64` | ME handshake rejects. |
|
||||
| `handshake_error_codes` | `ZeroCodeCount[]` | Handshake rejects grouped by code. |
|
||||
| `reader_eof_total` | `u64` | ME reader EOF events. |
|
||||
| `idle_close_by_peer_total` | `u64` | Idle closes initiated by peer. |
|
||||
| `route_drop_no_conn_total` | `u64` | Route drops due to missing bound connection. |
|
||||
| `route_drop_channel_closed_total` | `u64` | Route drops due to closed channel. |
|
||||
| `route_drop_queue_full_total` | `u64` | Route drops due to full queue (total). |
|
||||
| `route_drop_queue_full_base_total` | `u64` | Route drops in base queue mode. |
|
||||
| `route_drop_queue_full_high_total` | `u64` | Route drops in high queue mode. |
|
||||
| `socks_kdf_strict_reject_total` | `u64` | SOCKS KDF strict rejects. |
|
||||
| `socks_kdf_compat_fallback_total` | `u64` | SOCKS KDF compat fallbacks. |
|
||||
| `endpoint_quarantine_total` | `u64` | Endpoint quarantine activations. |
|
||||
| `kdf_drift_total` | `u64` | KDF drift detections. |
|
||||
| `kdf_port_only_drift_total` | `u64` | KDF port-only drift detections. |
|
||||
| `hardswap_pending_reuse_total` | `u64` | Pending hardswap reused events. |
|
||||
| `hardswap_pending_ttl_expired_total` | `u64` | Pending hardswap TTL expiry events. |
|
||||
| `single_endpoint_outage_enter_total` | `u64` | Entered single-endpoint outage mode. |
|
||||
| `single_endpoint_outage_exit_total` | `u64` | Exited single-endpoint outage mode. |
|
||||
| `single_endpoint_outage_reconnect_attempt_total` | `u64` | Reconnect attempts in outage mode. |
|
||||
| `single_endpoint_outage_reconnect_success_total` | `u64` | Reconnect successes in outage mode. |
|
||||
| `single_endpoint_quarantine_bypass_total` | `u64` | Quarantine bypasses in outage mode. |
|
||||
| `single_endpoint_shadow_rotate_total` | `u64` | Shadow writer rotations. |
|
||||
| `single_endpoint_shadow_rotate_skipped_quarantine_total` | `u64` | Shadow rotations skipped because of quarantine. |
|
||||
| `floor_mode_switch_total` | `u64` | Total floor mode switches. |
|
||||
| `floor_mode_switch_static_to_adaptive_total` | `u64` | Static -> adaptive switches. |
|
||||
| `floor_mode_switch_adaptive_to_static_total` | `u64` | Adaptive -> static switches. |
|
||||
|
||||
#### `ZeroCodeCount`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `code` | `i32` | Handshake error code. |
|
||||
| `total` | `u64` | Events with this code. |
|
||||
|
||||
#### `ZeroPoolData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `pool_swap_total` | `u64` | Pool swap count. |
|
||||
| `pool_drain_active` | `u64` | Current active draining pools. |
|
||||
| `pool_force_close_total` | `u64` | Forced pool closes by timeout. |
|
||||
| `pool_stale_pick_total` | `u64` | Stale writer picks for binding. |
|
||||
| `writer_removed_total` | `u64` | Writer removals total. |
|
||||
| `writer_removed_unexpected_total` | `u64` | Unexpected writer removals. |
|
||||
| `refill_triggered_total` | `u64` | Refill triggers. |
|
||||
| `refill_skipped_inflight_total` | `u64` | Refill skipped because refill already in-flight. |
|
||||
| `refill_failed_total` | `u64` | Refill failures. |
|
||||
| `writer_restored_same_endpoint_total` | `u64` | Restores on same endpoint. |
|
||||
| `writer_restored_fallback_total` | `u64` | Restores on fallback endpoint. |
|
||||
|
||||
#### `ZeroDesyncData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `secure_padding_invalid_total` | `u64` | Invalid secure padding events. |
|
||||
| `desync_total` | `u64` | Desync events total. |
|
||||
| `desync_full_logged_total` | `u64` | Fully logged desync events. |
|
||||
| `desync_suppressed_total` | `u64` | Suppressed desync logs. |
|
||||
| `desync_frames_bucket_0` | `u64` | Desync frames bucket 0. |
|
||||
| `desync_frames_bucket_1_2` | `u64` | Desync frames bucket 1-2. |
|
||||
| `desync_frames_bucket_3_10` | `u64` | Desync frames bucket 3-10. |
|
||||
| `desync_frames_bucket_gt_10` | `u64` | Desync frames bucket >10. |
|
||||
|
||||
### `MinimalAllData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `enabled` | `bool` | Whether minimal runtime snapshots are enabled by config. |
|
||||
| `reason` | `string?` | `feature_disabled` or `source_unavailable` when applicable. |
|
||||
| `generated_at_epoch_secs` | `u64` | Snapshot generation time. |
|
||||
| `data` | `MinimalAllPayload?` | Null when disabled; fallback payload when source unavailable. |
|
||||
|
||||
#### `MinimalAllPayload`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `me_writers` | `MeWritersData` | ME writer status block. |
|
||||
| `dcs` | `DcStatusData` | DC aggregate status block. |
|
||||
| `me_runtime` | `MinimalMeRuntimeData?` | Runtime ME control snapshot. |
|
||||
| `network_path` | `MinimalDcPathData[]` | Active IP path selection per DC. |
|
||||
|
||||
#### `MinimalMeRuntimeData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `active_generation` | `u64` | Active pool generation. |
|
||||
| `warm_generation` | `u64` | Warm pool generation. |
|
||||
| `pending_hardswap_generation` | `u64` | Pending hardswap generation. |
|
||||
| `pending_hardswap_age_secs` | `u64?` | Pending hardswap age in seconds. |
|
||||
| `hardswap_enabled` | `bool` | Hardswap mode toggle. |
|
||||
| `floor_mode` | `string` | Writer floor mode. |
|
||||
| `adaptive_floor_idle_secs` | `u64` | Idle threshold for adaptive floor. |
|
||||
| `adaptive_floor_min_writers_single_endpoint` | `u8` | Minimum writers for single-endpoint DC in adaptive mode. |
|
||||
| `adaptive_floor_recover_grace_secs` | `u64` | Grace period for floor recovery. |
|
||||
| `me_keepalive_enabled` | `bool` | ME keepalive toggle. |
|
||||
| `me_keepalive_interval_secs` | `u64` | Keepalive period. |
|
||||
| `me_keepalive_jitter_secs` | `u64` | Keepalive jitter. |
|
||||
| `me_keepalive_payload_random` | `bool` | Randomized keepalive payload toggle. |
|
||||
| `rpc_proxy_req_every_secs` | `u64` | Period for RPC proxy request signal. |
|
||||
| `me_reconnect_max_concurrent_per_dc` | `u32` | Reconnect concurrency per DC. |
|
||||
| `me_reconnect_backoff_base_ms` | `u64` | Base reconnect backoff. |
|
||||
| `me_reconnect_backoff_cap_ms` | `u64` | Max reconnect backoff. |
|
||||
| `me_reconnect_fast_retry_count` | `u32` | Fast retry attempts before normal backoff. |
|
||||
| `me_pool_drain_ttl_secs` | `u64` | Pool drain TTL. |
|
||||
| `me_pool_force_close_secs` | `u64` | Hard close timeout for draining writers. |
|
||||
| `me_pool_min_fresh_ratio` | `f32` | Minimum fresh ratio before swap. |
|
||||
| `me_bind_stale_mode` | `string` | Stale writer bind policy. |
|
||||
| `me_bind_stale_ttl_secs` | `u64` | Stale writer TTL. |
|
||||
| `me_single_endpoint_shadow_writers` | `u8` | Shadow writers for single-endpoint DCs. |
|
||||
| `me_single_endpoint_outage_mode_enabled` | `bool` | Outage mode toggle for single-endpoint DCs. |
|
||||
| `me_single_endpoint_outage_disable_quarantine` | `bool` | Quarantine behavior in outage mode. |
|
||||
| `me_single_endpoint_outage_backoff_min_ms` | `u64` | Outage mode min reconnect backoff. |
|
||||
| `me_single_endpoint_outage_backoff_max_ms` | `u64` | Outage mode max reconnect backoff. |
|
||||
| `me_single_endpoint_shadow_rotate_every_secs` | `u64` | Shadow rotation interval. |
|
||||
| `me_deterministic_writer_sort` | `bool` | Deterministic writer ordering toggle. |
|
||||
| `me_socks_kdf_policy` | `string` | Current SOCKS KDF policy mode. |
|
||||
| `quarantined_endpoints_total` | `usize` | Total quarantined endpoints. |
|
||||
| `quarantined_endpoints` | `MinimalQuarantineData[]` | Quarantine details. |
|
||||
|
||||
#### `MinimalQuarantineData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `endpoint` | `string` | Endpoint (`ip:port`). |
|
||||
| `remaining_ms` | `u64` | Remaining quarantine duration. |
|
||||
|
||||
#### `MinimalDcPathData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `dc` | `i16` | Telegram DC identifier. |
|
||||
| `ip_preference` | `string?` | Runtime IP family preference. |
|
||||
| `selected_addr_v4` | `string?` | Selected IPv4 endpoint for this DC. |
|
||||
| `selected_addr_v6` | `string?` | Selected IPv6 endpoint for this DC. |
|
||||
|
||||
### `MeWritersData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `middle_proxy_enabled` | `bool` | `false` when minimal runtime is disabled or source unavailable. |
|
||||
| `reason` | `string?` | `feature_disabled` or `source_unavailable` when not fully available. |
|
||||
| `generated_at_epoch_secs` | `u64` | Snapshot generation time. |
|
||||
| `summary` | `MeWritersSummary` | Coverage/availability summary. |
|
||||
| `writers` | `MeWriterStatus[]` | Per-writer statuses. |
|
||||
|
||||
#### `MeWritersSummary`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `configured_dc_groups` | `usize` | Number of configured DC groups. |
|
||||
| `configured_endpoints` | `usize` | Total configured ME endpoints. |
|
||||
| `available_endpoints` | `usize` | Endpoints currently available. |
|
||||
| `available_pct` | `f64` | `available_endpoints / configured_endpoints * 100`. |
|
||||
| `required_writers` | `usize` | Required writers based on current floor policy. |
|
||||
| `alive_writers` | `usize` | Writers currently alive. |
|
||||
| `coverage_pct` | `f64` | `alive_writers / required_writers * 100`. |
|
||||
|
||||
#### `MeWriterStatus`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `writer_id` | `u64` | Runtime writer identifier. |
|
||||
| `dc` | `i16?` | DC id if mapped. |
|
||||
| `endpoint` | `string` | Endpoint (`ip:port`). |
|
||||
| `generation` | `u64` | Pool generation owning this writer. |
|
||||
| `state` | `string` | Writer state (`warm`, `active`, `draining`). |
|
||||
| `draining` | `bool` | Draining flag. |
|
||||
| `degraded` | `bool` | Degraded flag. |
|
||||
| `bound_clients` | `usize` | Number of currently bound clients. |
|
||||
| `idle_for_secs` | `u64?` | Idle age in seconds if idle. |
|
||||
| `rtt_ema_ms` | `f64?` | RTT exponential moving average. |
|
||||
|
||||
### `DcStatusData`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `middle_proxy_enabled` | `bool` | `false` when minimal runtime is disabled or source unavailable. |
|
||||
| `reason` | `string?` | `feature_disabled` or `source_unavailable` when not fully available. |
|
||||
| `generated_at_epoch_secs` | `u64` | Snapshot generation time. |
|
||||
| `dcs` | `DcStatus[]` | Per-DC status rows. |
|
||||
|
||||
#### `DcStatus`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `dc` | `i16` | Telegram DC id. |
|
||||
| `endpoints` | `string[]` | Endpoints in this DC (`ip:port`). |
|
||||
| `available_endpoints` | `usize` | Endpoints currently available in this DC. |
|
||||
| `available_pct` | `f64` | `available_endpoints / endpoints_total * 100`. |
|
||||
| `required_writers` | `usize` | Required writer count for this DC. |
|
||||
| `alive_writers` | `usize` | Alive writers in this DC. |
|
||||
| `coverage_pct` | `f64` | `alive_writers / required_writers * 100`. |
|
||||
| `rtt_ms` | `f64?` | Aggregated RTT for DC. |
|
||||
| `load` | `usize` | Active client sessions bound to this DC. |
|
||||
|
||||
### `UserInfo`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `username` | `string` | Username. |
|
||||
| `user_ad_tag` | `string?` | Optional ad tag (32 hex chars). |
|
||||
| `max_tcp_conns` | `usize?` | Optional max concurrent TCP limit. |
|
||||
| `expiration_rfc3339` | `string?` | Optional expiration timestamp. |
|
||||
| `data_quota_bytes` | `u64?` | Optional data quota. |
|
||||
| `max_unique_ips` | `usize?` | Optional unique IP limit. |
|
||||
| `current_connections` | `u64` | Current live connections. |
|
||||
| `active_unique_ips` | `usize` | Current active unique source IPs. |
|
||||
| `total_octets` | `u64` | Total traffic octets for this user. |
|
||||
| `links` | `UserLinks` | Active connection links derived from current config. |
|
||||
|
||||
#### `UserLinks`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `classic` | `string[]` | Active `tg://proxy` links for classic mode. |
|
||||
| `secure` | `string[]` | Active `tg://proxy` links for secure/DD mode. |
|
||||
| `tls` | `string[]` | Active `tg://proxy` links for EE-TLS mode (for each host+TLS domain). |
|
||||
|
||||
Link generation uses active config and enabled modes:
|
||||
- `[general.links].public_host/public_port` have priority.
|
||||
- If `public_host` is not set, startup-detected public IPs are used (`IPv4`, `IPv6`, or both when available).
|
||||
- Fallback host sources: listener `announce`, `announce_ip`, explicit listener `ip`.
|
||||
- Legacy fallback: `listen_addr_ipv4` and `listen_addr_ipv6` when routable.
|
||||
- Startup-detected IPs are fixed for process lifetime and refreshed on restart.
|
||||
- User rows are sorted by `username` in ascending lexical order.
|
||||
|
||||
### `CreateUserResponse`
|
||||
| Field | Type | Description |
|
||||
| --- | --- | --- |
|
||||
| `user` | `UserInfo` | Created or updated user view. |
|
||||
| `secret` | `string` | Effective user secret. |
|
||||
|
||||
## Mutation Semantics
|
||||
|
||||
| Endpoint | Notes |
|
||||
| --- | --- |
|
||||
| `POST /v1/users` | Creates user and validates resulting config before atomic save. |
|
||||
| `PATCH /v1/users/{username}` | Partial update of provided fields only. Missing fields remain unchanged. |
|
||||
| `POST /v1/users/{username}/rotate-secret` | Currently returns `404` in runtime route matcher; request schema is reserved for intended behavior. |
|
||||
| `DELETE /v1/users/{username}` | Deletes user and related optional settings. Last user deletion is blocked. |
|
||||
|
||||
All mutating endpoints:
|
||||
- Respect `read_only` mode.
|
||||
- Accept optional `If-Match` for optimistic concurrency.
|
||||
- Return new `revision` after successful write.
|
||||
- Use process-local mutation lock + atomic write (`tmp + rename`) for config persistence.
|
||||
|
||||
## Runtime State Matrix
|
||||
|
||||
| Endpoint | `minimal_runtime_enabled=false` | `minimal_runtime_enabled=true` + source unavailable | `minimal_runtime_enabled=true` + source available |
|
||||
| --- | --- | --- | --- |
|
||||
| `/v1/stats/minimal/all` | `enabled=false`, `reason=feature_disabled`, `data=null` | `enabled=true`, `reason=source_unavailable`, fallback `data` with disabled ME blocks | `enabled=true`, `reason` omitted, full payload |
|
||||
| `/v1/stats/me-writers` | `middle_proxy_enabled=false`, `reason=feature_disabled` | `middle_proxy_enabled=false`, `reason=source_unavailable` | `middle_proxy_enabled=true`, runtime snapshot |
|
||||
| `/v1/stats/dcs` | `middle_proxy_enabled=false`, `reason=feature_disabled` | `middle_proxy_enabled=false`, `reason=source_unavailable` | `middle_proxy_enabled=true`, runtime snapshot |
|
||||
| `/v1/stats/upstreams` | `enabled=false`, `reason=feature_disabled`, `summary/upstreams` omitted, `zero` still present | `enabled=true`, `reason=source_unavailable`, `summary/upstreams` omitted, `zero` present | `enabled=true`, `reason` omitted, `summary/upstreams` present, `zero` present |
|
||||
|
||||
`source_unavailable` conditions:
|
||||
- ME endpoints: ME pool is absent (for example direct-only mode or failed ME initialization).
|
||||
- Upstreams endpoint: non-blocking upstream snapshot lock is unavailable at request time.
|
||||
|
||||
## Serialization Rules
|
||||
|
||||
- Success responses always include `revision`.
|
||||
- Error responses never include `revision`; they include `request_id`.
|
||||
- Optional fields with `skip_serializing_if` are omitted when absent.
|
||||
- Nullable payload fields may still be `null` where contract uses `?` (for example `UserInfo` option fields).
|
||||
- For `/v1/stats/upstreams`, authentication details of SOCKS upstreams are intentionally omitted.
|
||||
|
||||
## Operational Notes
|
||||
|
||||
| Topic | Details |
|
||||
| --- | --- |
|
||||
| API startup | API listener is spawned only when `[server.api].enabled=true`. |
|
||||
| `listen` port `0` | API spawn is skipped when parsed listen port is `0` (treated as disabled bind target). |
|
||||
| Bind failure | Failed API bind logs warning and API task exits (no auto-retry loop). |
|
||||
| ME runtime status endpoints | `/v1/stats/me-writers`, `/v1/stats/dcs`, `/v1/stats/minimal/all` require `[server.api].minimal_runtime_enabled=true`; otherwise they return disabled payload with `reason=feature_disabled`. |
|
||||
| Upstream runtime endpoint | `/v1/stats/upstreams` always returns `zero`, but runtime fields (`summary`, `upstreams`) require `[server.api].minimal_runtime_enabled=true`. |
|
||||
| Restart requirements | `server.api` changes are restart-required for predictable behavior. |
|
||||
| Hot-reload nuance | A pure `server.api`-only config change may not propagate through watcher broadcast; a mixed change (with hot fields) may propagate API flags while still warning that restart is required. |
|
||||
| Runtime apply path | Successful writes are picked up by existing config watcher/hot-reload path. |
|
||||
| Exposure | Built-in TLS/mTLS is not provided. Use loopback bind + reverse proxy if needed. |
|
||||
| Pagination | User list currently has no pagination/filtering. |
|
||||
| Serialization side effect | Config comments/manual formatting are not preserved on write. |
|
||||
|
||||
## Known Limitations (Current Release)
|
||||
|
||||
- `POST /v1/users/{username}/rotate-secret` is currently unreachable in route matcher and returns `404`.
|
||||
- API runtime controls under `server.api` are documented as restart-required; hot-reload behavior for these fields is not strictly uniform in all change combinations.
|
||||
65
docs/FAQ.ru.md
Normal file
65
docs/FAQ.ru.md
Normal file
@@ -0,0 +1,65 @@
|
||||
## Как настроить канал "спонсор прокси"
|
||||
|
||||
1. Зайти в бота @MTProxybot.
|
||||
2. Ввести команду `/newproxy`
|
||||
3. Отправить IP и порт сервера. Например: 1.2.3.4:443
|
||||
4. Открыть конфиг `nano /etc/telemt.toml`.
|
||||
5. Скопировать и отправить боту секрет пользователя из раздела [access.users].
|
||||
6. Скопировать полученный tag у бота. Например 1234567890abcdef1234567890abcdef.
|
||||
> [!WARNING]
|
||||
> Ссылка, которую выдает бот, не будет работать. Не копируйте и не используйте её!
|
||||
7. Раскомментировать параметр ad_tag и вписать tag, полученный у бота.
|
||||
8. Раскомментировать/добавить параметр use_middle_proxy = true.
|
||||
|
||||
Пример конфига:
|
||||
```toml
|
||||
[general]
|
||||
ad_tag = "1234567890abcdef1234567890abcdef"
|
||||
use_middle_proxy = true
|
||||
```
|
||||
9. Сохранить конфиг. Ctrl+S -> Ctrl+X.
|
||||
10. Перезапустить telemt `systemctl restart telemt`.
|
||||
11. В боте отправить команду /myproxies и выбрать добавленный сервер.
|
||||
12. Нажать кнопку "Set promotion".
|
||||
13. Отправить **публичную ссылку** на канал. Приватный канал добавить нельзя!
|
||||
14. Подождать примерно 1 час, пока информация обновится на серверах Telegram.
|
||||
> [!WARNING]
|
||||
> У вас не будет отображаться "спонсор прокси" если вы уже подписаны на канал.
|
||||
|
||||
## Сколько человек может пользоваться 1 ссылкой
|
||||
|
||||
По умолчанию 1 ссылкой может пользоваться сколько угодно человек.
|
||||
Вы можете ограничить число IP, использующих прокси.
|
||||
```toml
|
||||
[access.user_max_unique_ips]
|
||||
hello = 1
|
||||
```
|
||||
Этот параметр ограничивает, сколько уникальных IP может использовать 1 ссылку одновременно. Если один пользователь отключится, второй сможет подключиться. Также с одного IP может сидеть несколько пользователей.
|
||||
|
||||
## Как сделать несколько разных ссылок
|
||||
|
||||
1. Сгенерируйте нужное число секретов `openssl rand -hex 16`
|
||||
2. Открыть конфиг `nano /etc/telemt.toml`
|
||||
3. Добавить новых пользователей.
|
||||
```toml
|
||||
[access.users]
|
||||
user1 = "00000000000000000000000000000001"
|
||||
user2 = "00000000000000000000000000000002"
|
||||
user3 = "00000000000000000000000000000003"
|
||||
```
|
||||
4. Сохранить конфиг. Ctrl+S -> Ctrl+X. Перезапускать telemt не нужно.
|
||||
5. Получить ссылки через `journalctl -u telemt -n -g "links" --no-pager -o cat | tac`
|
||||
|
||||
## Как посмотреть метрики
|
||||
|
||||
1. Открыть конфиг `nano /etc/telemt.toml`
|
||||
2. Добавить следующие параметры
|
||||
```toml
|
||||
[server]
|
||||
metrics_port = 9090
|
||||
metrics_whitelist = ["127.0.0.1/32", "::1/128", "0.0.0.0/0"]
|
||||
```
|
||||
3. Сохранить конфиг. Ctrl+S -> Ctrl+X.
|
||||
4. Метрики доступны по адресу SERVER_IP:9090/metrics.
|
||||
> [!WARNING]
|
||||
> "0.0.0.0/0" в metrics_whitelist открывает доступ с любого IP. Замените на свой ip. Например "1.2.3.4"
|
||||
40
docs/MIDDLE-END-KDF.de.md
Normal file
40
docs/MIDDLE-END-KDF.de.md
Normal file
@@ -0,0 +1,40 @@
|
||||
# Middle-End Proxy
|
||||
|
||||
## KDF-Adressierung — Implementierungs-FAQ
|
||||
|
||||
### Benötigt die C-Referenzimplementierung sowohl externe IP-Adresse als auch Port für die KDF?
|
||||
|
||||
Ja.
|
||||
|
||||
In der C-Referenzimplementierung werden **sowohl IP-Adresse als auch Port in die KDF einbezogen** — auf beiden Seiten der Verbindung.
|
||||
|
||||
In `aes_create_keys()` enthält der KDF-Input:
|
||||
|
||||
- `server_ip + client_port`
|
||||
- `client_ip + server_port`
|
||||
- sowie Secret / Nonces
|
||||
|
||||
Für IPv6:
|
||||
|
||||
- IPv4-Felder werden auf 0 gesetzt
|
||||
- IPv6-Adressen werden ergänzt
|
||||
|
||||
Die **Ports bleiben weiterhin Bestandteil der KDF**.
|
||||
|
||||
> Wenn sich externe IP oder Port (z. B. durch NAT, SOCKS oder Proxy) von den erwarteten Werten unterscheiden, entstehen unterschiedliche Schlüssel — der Handshake schlägt fehl.
|
||||
|
||||
---
|
||||
|
||||
### Kann der Port aus der KDF ausgeschlossen werden (z. B. durch Port = 0)?
|
||||
|
||||
**Nein!**
|
||||
|
||||
Die C-Referenzimplementierung enthält **keine Möglichkeit, den Port zu ignorieren**:
|
||||
- `client_port` und `server_port` sind fester Bestandteil der KDF
|
||||
- Es werden immer reale Socket-Ports übergeben:
|
||||
- `c->our_port`
|
||||
- `c->remote_port`
|
||||
|
||||
Falls ein Port den Wert `0` hat, wird er dennoch als `0` in die KDF übernommen.
|
||||
|
||||
Eine „Port-Ignore“-Logik existiert nicht.
|
||||
41
docs/MIDDLE-END-KDF.en.md
Normal file
41
docs/MIDDLE-END-KDF.en.md
Normal file
@@ -0,0 +1,41 @@
|
||||
# Middle-End Proxy
|
||||
|
||||
## KDF Addressing — Implementation FAQ
|
||||
|
||||
### Does the C-implementation require both external IP address and port for the KDF?
|
||||
|
||||
**Yes!**
|
||||
|
||||
In the C reference implementation, **both IP address and port are included in the KDF input** from both sides of the connection.
|
||||
|
||||
Inside `aes_create_keys()`, the KDF input explicitly contains:
|
||||
|
||||
- `server_ip + client_port`
|
||||
- `client_ip + server_port`
|
||||
- followed by shared secret / nonces
|
||||
|
||||
For IPv6:
|
||||
|
||||
- IPv4 fields are zeroed
|
||||
- IPv6 addresses are inserted
|
||||
|
||||
However, **client_port and server_port remain part of the KDF regardless of IP version**.
|
||||
|
||||
> If externally observed IP or port (e.g. due to NAT, SOCKS, or proxy traversal) differs from what the peer expects, the derived keys will not match and the handshake will fail.
|
||||
|
||||
---
|
||||
|
||||
### Can port be excluded from KDF (e.g. by using port = 0)?
|
||||
|
||||
**No!**
|
||||
|
||||
The C-implementation provides **no mechanism to ignore the port**:
|
||||
|
||||
- `client_port` and `server_port` are explicitly included in the KDF input
|
||||
- Real socket ports are always passed:
|
||||
- `c->our_port`
|
||||
- `c->remote_port`
|
||||
|
||||
If a port is `0`, it is still incorporated into the KDF as `0`.
|
||||
|
||||
There is **no conditional logic to exclude ports**
|
||||
41
docs/MIDDLE-END-KDF.ru.md
Normal file
41
docs/MIDDLE-END-KDF.ru.md
Normal file
@@ -0,0 +1,41 @@
|
||||
# Middle-End Proxy
|
||||
|
||||
## KDF Addressing — FAQ по реализации
|
||||
|
||||
### Требует ли C-референсная реализация KDF внешний IP и порт?
|
||||
|
||||
**Да**
|
||||
|
||||
В C-референсе **в KDF участвуют и IP-адрес, и порт** — с обеих сторон соединения.
|
||||
|
||||
В `aes_create_keys()` в строку KDF входят:
|
||||
|
||||
- `server_ip + client_port`
|
||||
- `client_ip + server_port`
|
||||
- далее secret / nonces
|
||||
|
||||
Для IPv6:
|
||||
|
||||
- IPv4-поля заполняются нулями
|
||||
- добавляются IPv6-адреса
|
||||
|
||||
Однако **порты client_port и server_port всё равно участвуют в KDF**.
|
||||
|
||||
> Если внешний IP или порт (например, из-за NAT, SOCKS или прокси) не совпадает с ожидаемым другой стороной — ключи расходятся и handshake ломается.
|
||||
|
||||
---
|
||||
|
||||
### Можно ли исключить порт из KDF (например, установив порт = 0)?
|
||||
|
||||
**Нет.**
|
||||
|
||||
В C-референсе **нет механики отключения порта**.
|
||||
|
||||
- `client_port` и `server_port` явно включены в KDF
|
||||
- Передаются реальные порты сокета:
|
||||
- `c->our_port`
|
||||
- `c->remote_port`
|
||||
|
||||
Если порт равен `0`, он всё равно попадёт в KDF как `0`.
|
||||
|
||||
Отдельной логики «игнорировать порт» не предусмотрено.
|
||||
153
docs/QUICK_START_GUIDE.en.md
Normal file
153
docs/QUICK_START_GUIDE.en.md
Normal file
@@ -0,0 +1,153 @@
|
||||
# Telemt via Systemd
|
||||
|
||||
## Installation
|
||||
|
||||
This software is designed for Debian-based OS: in addition to Debian, these are Ubuntu, Mint, Kali, MX and many other Linux
|
||||
|
||||
**1. Download**
|
||||
```bash
|
||||
wget -qO- "https://github.com/telemt/telemt/releases/latest/download/telemt-$(uname -m)-linux-$(ldd --version 2>&1 | grep -iq musl && echo musl || echo gnu).tar.gz" | tar -xz
|
||||
```
|
||||
**2. Move to the Bin folder**
|
||||
```bash
|
||||
mv telemt /bin
|
||||
```
|
||||
**3. Make the file executable**
|
||||
```bash
|
||||
chmod +x /bin/telemt
|
||||
```
|
||||
|
||||
## How to use?
|
||||
|
||||
**This guide "assumes" that you:**
|
||||
- logged in as root or executed `su -` / `sudo su`
|
||||
- Already have the "telemt" executable file in the /bin folder. Read the **[Installation](#Installation)** section.
|
||||
|
||||
---
|
||||
|
||||
**0. Check port and generate secrets**
|
||||
|
||||
The port you have selected for use should be MISSING from the list, when:
|
||||
```bash
|
||||
netstat -lnp
|
||||
```
|
||||
|
||||
Generate 16 bytes/32 characters HEX with OpenSSL or another way:
|
||||
```bash
|
||||
openssl rand -hex 16
|
||||
```
|
||||
OR
|
||||
```bash
|
||||
xxd -l 16 -p /dev/urandom
|
||||
```
|
||||
OR
|
||||
```bash
|
||||
python3 -c 'import os; print(os.urandom(16).hex())'
|
||||
```
|
||||
Save the obtained result somewhere. You will need it later!
|
||||
|
||||
---
|
||||
|
||||
**1. Place your config to /etc/telemt.toml**
|
||||
|
||||
Open nano
|
||||
```bash
|
||||
nano /etc/telemt.toml
|
||||
```
|
||||
paste your config
|
||||
|
||||
```toml
|
||||
# === General Settings ===
|
||||
[general]
|
||||
# ad_tag = "00000000000000000000000000000000"
|
||||
use_middle_proxy = false
|
||||
|
||||
[general.modes]
|
||||
classic = false
|
||||
secure = false
|
||||
tls = true
|
||||
|
||||
# === Anti-Censorship & Masking ===
|
||||
[censorship]
|
||||
tls_domain = "petrovich.ru"
|
||||
|
||||
[access.users]
|
||||
# format: "username" = "32_hex_chars_secret"
|
||||
hello = "00000000000000000000000000000000"
|
||||
```
|
||||
then Ctrl+S -> Ctrl+X to save
|
||||
|
||||
> [!WARNING]
|
||||
> Replace the value of the hello parameter with the value you obtained in step 0.
|
||||
> Replace the value of the tls_domain parameter with another website.
|
||||
|
||||
---
|
||||
|
||||
**2. Create service on /etc/systemd/system/telemt.service**
|
||||
|
||||
Open nano
|
||||
```bash
|
||||
nano /etc/systemd/system/telemt.service
|
||||
```
|
||||
|
||||
paste this Systemd Module
|
||||
```bash
|
||||
[Unit]
|
||||
Description=Telemt
|
||||
After=network.target
|
||||
|
||||
[Service]
|
||||
Type=simple
|
||||
WorkingDirectory=/bin
|
||||
ExecStart=/bin/telemt /etc/telemt.toml
|
||||
Restart=on-failure
|
||||
LimitNOFILE=65536
|
||||
|
||||
[Install]
|
||||
WantedBy=multi-user.target
|
||||
```
|
||||
then Ctrl+S -> Ctrl+X to save
|
||||
|
||||
|
||||
**3.** To start it, enter the command `systemctl start telemt`
|
||||
|
||||
**4.** To get status information, enter `systemctl status telemt`
|
||||
|
||||
**5.** For automatic startup at system boot, enter `systemctl enable telemt`
|
||||
|
||||
**6.** To get the links, enter `journalctl -u telemt -n -g "links" --no-pager -o cat | tac`
|
||||
|
||||
---
|
||||
|
||||
# Telemt via Docker Compose
|
||||
|
||||
**1. Edit `config.toml` in repo root (at least: port, users secrets, tls_domain)**
|
||||
**2. Start container:**
|
||||
```bash
|
||||
docker compose up -d --build
|
||||
```
|
||||
**3. Check logs:**
|
||||
```bash
|
||||
docker compose logs -f telemt
|
||||
```
|
||||
**4. Stop:**
|
||||
```bash
|
||||
docker compose down
|
||||
```
|
||||
> [!NOTE]
|
||||
> - `docker-compose.yml` maps `./config.toml` to `/app/config.toml` (read-only)
|
||||
> - By default it publishes `443:443` and runs with dropped capabilities (only `NET_BIND_SERVICE` is added)
|
||||
> - If you really need host networking (usually only for some IPv6 setups) uncomment `network_mode: host`
|
||||
|
||||
**Run without Compose**
|
||||
```bash
|
||||
docker build -t telemt:local .
|
||||
docker run --name telemt --restart unless-stopped \
|
||||
-p 443:443 \
|
||||
-e RUST_LOG=info \
|
||||
-v "$PWD/config.toml:/app/config.toml:ro" \
|
||||
--read-only \
|
||||
--cap-drop ALL --cap-add NET_BIND_SERVICE \
|
||||
--ulimit nofile=65536:65536 \
|
||||
telemt:local
|
||||
```
|
||||
155
docs/QUICK_START_GUIDE.ru.md
Normal file
155
docs/QUICK_START_GUIDE.ru.md
Normal file
@@ -0,0 +1,155 @@
|
||||
# Telemt через Systemd
|
||||
|
||||
## Установка
|
||||
|
||||
Это программное обеспечение разработано для ОС на базе Debian: помимо Debian, это Ubuntu, Mint, Kali, MX и многие другие Linux
|
||||
|
||||
**1. Скачать**
|
||||
```bash
|
||||
wget -qO- "https://github.com/telemt/telemt/releases/latest/download/telemt-$(uname -m)-linux-$(ldd --version 2>&1 | grep -iq musl && echo musl || echo gnu).tar.gz" | tar -xz
|
||||
```
|
||||
**2. Переместить в папку Bin**
|
||||
```bash
|
||||
mv telemt /bin
|
||||
```
|
||||
**3. Сделать файл исполняемым**
|
||||
```bash
|
||||
chmod +x /bin/telemt
|
||||
```
|
||||
|
||||
## Как правильно использовать?
|
||||
|
||||
**Эта инструкция "предполагает", что вы:**
|
||||
- Авторизовались как пользователь root или выполнил `su -` / `sudo su`
|
||||
- У вас уже есть исполняемый файл "telemt" в папке /bin. Читайте раздел **[Установка](#установка)**
|
||||
|
||||
---
|
||||
|
||||
**0. Проверьте порт и сгенерируйте секреты**
|
||||
|
||||
Порт, который вы выбрали для использования, должен отсутствовать в списке:
|
||||
```bash
|
||||
netstat -lnp
|
||||
```
|
||||
|
||||
Сгенерируйте 16 bytes/32 символа в шестнадцатеричном формате с помощью OpenSSL или другим способом:
|
||||
```bash
|
||||
openssl rand -hex 16
|
||||
```
|
||||
ИЛИ
|
||||
```bash
|
||||
xxd -l 16 -p /dev/urandom
|
||||
```
|
||||
ИЛИ
|
||||
```bash
|
||||
python3 -c 'import os; print(os.urandom(16).hex())'
|
||||
```
|
||||
Полученный результат сохраняем где-нибудь. Он понадобиться вам дальше!
|
||||
|
||||
---
|
||||
|
||||
**1. Поместите свою конфигурацию в файл /etc/telemt.toml**
|
||||
|
||||
Открываем nano
|
||||
```bash
|
||||
nano /etc/telemt.toml
|
||||
```
|
||||
Вставьте свою конфигурацию
|
||||
|
||||
```toml
|
||||
# === General Settings ===
|
||||
[general]
|
||||
# ad_tag = "00000000000000000000000000000000"
|
||||
use_middle_proxy = false
|
||||
|
||||
[general.modes]
|
||||
classic = false
|
||||
secure = false
|
||||
tls = true
|
||||
|
||||
# === Anti-Censorship & Masking ===
|
||||
[censorship]
|
||||
tls_domain = "petrovich.ru"
|
||||
|
||||
[access.users]
|
||||
# format: "username" = "32_hex_chars_secret"
|
||||
hello = "00000000000000000000000000000000"
|
||||
```
|
||||
Затем нажмите Ctrl+S -> Ctrl+X, чтобы сохранить
|
||||
|
||||
> [!WARNING]
|
||||
> Замените значение параметра hello на значение, которое вы получили в пункте 0.
|
||||
> Так же замените значение параметра tls_domain на другой сайт.
|
||||
|
||||
---
|
||||
|
||||
**2. Создайте службу в /etc/systemd/system/telemt.service**
|
||||
|
||||
Открываем nano
|
||||
```bash
|
||||
nano /etc/systemd/system/telemt.service
|
||||
```
|
||||
|
||||
Вставьте этот модуль Systemd
|
||||
```bash
|
||||
[Unit]
|
||||
Description=Telemt
|
||||
After=network.target
|
||||
|
||||
[Service]
|
||||
Type=simple
|
||||
WorkingDirectory=/bin
|
||||
ExecStart=/bin/telemt /etc/telemt.toml
|
||||
Restart=on-failure
|
||||
LimitNOFILE=65536
|
||||
|
||||
[Install]
|
||||
WantedBy=multi-user.target
|
||||
```
|
||||
Затем нажмите Ctrl+S -> Ctrl+X, чтобы сохранить
|
||||
|
||||
|
||||
**3.** Для запуска введите команду `systemctl start telemt`
|
||||
|
||||
**4.** Для получения информации о статусе введите `systemctl status telemt`
|
||||
|
||||
**5.** Для автоматического запуска при запуске системы в введите `systemctl enable telemt`
|
||||
|
||||
**6.** Для получения ссылки введите `journalctl -u telemt -n -g "links" --no-pager -o cat | tac`
|
||||
> [!WARNING]
|
||||
> Рабочую ссылку может выдать только команда из 6 пункта. Не пытайтесь делать ее самостоятельно или копировать откуда-либо!
|
||||
|
||||
---
|
||||
|
||||
# Telemt через Docker Compose
|
||||
|
||||
**1. Отредактируйте `config.toml` в корневом каталоге репозитория (как минимум: порт, пользовательские секреты, tls_domain)**
|
||||
**2. Запустите контейнер:**
|
||||
```bash
|
||||
docker compose up -d --build
|
||||
```
|
||||
**3. Проверьте логи:**
|
||||
```bash
|
||||
docker compose logs -f telemt
|
||||
```
|
||||
**4. Остановите контейнер:**
|
||||
```bash
|
||||
docker compose down
|
||||
```
|
||||
> [!NOTE]
|
||||
> - В `docker-compose.yml` файл `./config.toml` монтируется в `/app/config.toml` (доступно только для чтения)
|
||||
> - По умолчанию публикуются порты 443:443, а контейнер запускается со сброшенными привилегиями (добавлена только `NET_BIND_SERVICE`)
|
||||
> - Если вам действительно нужна сеть хоста (обычно это требуется только для некоторых конфигураций IPv6), раскомментируйте `network_mode: host`
|
||||
|
||||
**Запуск в Docker Compose**
|
||||
```bash
|
||||
docker build -t telemt:local .
|
||||
docker run --name telemt --restart unless-stopped \
|
||||
-p 443:443 \
|
||||
-e RUST_LOG=info \
|
||||
-v "$PWD/config.toml:/app/config.toml:ro" \
|
||||
--read-only \
|
||||
--cap-drop ALL --cap-add NET_BIND_SERVICE \
|
||||
--ulimit nofile=65536:65536 \
|
||||
telemt:local
|
||||
```
|
||||
219
docs/TUNING.de.md
Normal file
219
docs/TUNING.de.md
Normal file
@@ -0,0 +1,219 @@
|
||||
# Telemt Tuning-Leitfaden: Middle-End und Upstreams
|
||||
|
||||
Dieses Dokument beschreibt das aktuelle Laufzeitverhalten für Middle-End (ME) und Upstream-Routing basierend auf:
|
||||
- `src/config/types.rs`
|
||||
- `src/config/defaults.rs`
|
||||
- `src/config/load.rs`
|
||||
- `src/transport/upstream.rs`
|
||||
|
||||
Die unten angegebenen `Default`-Werte sind Code-Defaults (bei fehlendem Schlüssel), nicht zwingend die Werte aus `config.full.toml`.
|
||||
|
||||
## Middle-End-Parameter
|
||||
|
||||
### 1) ME-Grundmodus, NAT und STUN
|
||||
|
||||
| Parameter | Typ | Default | Einschränkungen / Validierung | Laufzeiteffekt | Beispiel |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.use_middle_proxy` | `bool` | `true` | keine | Aktiviert den ME-Transportmodus. Bei `false` wird Direct-Modus verwendet. | `use_middle_proxy = true` |
|
||||
| `general.proxy_secret_path` | `Option<String>` | `"proxy-secret"` | Pfad kann `null` sein | Pfad zur Telegram-Infrastrukturdatei `proxy-secret`. | `proxy_secret_path = "proxy-secret"` |
|
||||
| `general.middle_proxy_nat_ip` | `Option<IpAddr>` | `null` | gültige IP bei gesetztem Wert | Manueller Override der öffentlichen NAT-IP für ME-Adressmaterial. | `middle_proxy_nat_ip = "203.0.113.10"` |
|
||||
| `general.middle_proxy_nat_probe` | `bool` | `true` | wird auf `true` erzwungen, wenn `use_middle_proxy=true` | Aktiviert NAT-Probing für ME. | `middle_proxy_nat_probe = true` |
|
||||
| `general.stun_nat_probe_concurrency` | `usize` | `8` | muss `> 0` sein | Maximale parallele STUN-Probes während NAT-Erkennung. | `stun_nat_probe_concurrency = 16` |
|
||||
| `network.stun_use` | `bool` | `true` | keine | Globaler STUN-Schalter. Bei `false` wird STUN deaktiviert. | `stun_use = true` |
|
||||
| `network.stun_servers` | `Vec<String>` | integrierter öffentlicher Pool | Duplikate/leer werden entfernt | Primäre STUN-Serverliste für NAT/Public-Endpoint-Erkennung. | `stun_servers = ["stun1.l.google.com:19302"]` |
|
||||
| `network.stun_tcp_fallback` | `bool` | `true` | keine | Aktiviert TCP-Fallback, wenn UDP-STUN blockiert ist. | `stun_tcp_fallback = true` |
|
||||
| `network.http_ip_detect_urls` | `Vec<String>` | `ifconfig.me` + `api.ipify.org` | keine | HTTP-Fallback zur öffentlichen IPv4-Erkennung, falls STUN ausfällt. | `http_ip_detect_urls = ["https://api.ipify.org"]` |
|
||||
| `general.stun_iface_mismatch_ignore` | `bool` | `false` | keine | Reserviertes Feld in der aktuellen Revision (derzeit kein aktiver Runtime-Verbrauch). | `stun_iface_mismatch_ignore = false` |
|
||||
| `timeouts.me_one_retry` | `u8` | `12` | keine | Anzahl schneller Reconnect-Versuche bei Single-Endpoint-DC-Fällen. | `me_one_retry = 6` |
|
||||
| `timeouts.me_one_timeout_ms` | `u64` | `1200` | keine | Timeout pro schnellem Einzelversuch (ms). | `me_one_timeout_ms = 1500` |
|
||||
|
||||
### 2) Poolgröße, Keepalive und Reconnect-Policy
|
||||
|
||||
| Parameter | Typ | Default | Einschränkungen / Validierung | Laufzeiteffekt | Beispiel |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.middle_proxy_pool_size` | `usize` | `8` | keine | Zielgröße des aktiven ME-Writer-Pools. | `middle_proxy_pool_size = 12` |
|
||||
| `general.middle_proxy_warm_standby` | `usize` | `16` | keine | Reserviertes Kompatibilitätsfeld in der aktuellen Revision (kein aktiver Runtime-Consumer). | `middle_proxy_warm_standby = 16` |
|
||||
| `general.me_keepalive_enabled` | `bool` | `true` | keine | Aktiviert periodischen ME-Keepalive/Ping-Traffic. | `me_keepalive_enabled = true` |
|
||||
| `general.me_keepalive_interval_secs` | `u64` | `25` | keine | Basisintervall für Keepalive (Sekunden). | `me_keepalive_interval_secs = 20` |
|
||||
| `general.me_keepalive_jitter_secs` | `u64` | `5` | keine | Keepalive-Jitter zur Vermeidung synchroner Peaks. | `me_keepalive_jitter_secs = 3` |
|
||||
| `general.me_keepalive_payload_random` | `bool` | `true` | keine | Randomisiert Keepalive-Payload-Bytes. | `me_keepalive_payload_random = true` |
|
||||
| `general.me_warmup_stagger_enabled` | `bool` | `true` | keine | Aktiviert gestaffeltes Warmup zusätzlicher ME-Verbindungen. | `me_warmup_stagger_enabled = true` |
|
||||
| `general.me_warmup_step_delay_ms` | `u64` | `500` | keine | Basisverzögerung zwischen Warmup-Schritten (ms). | `me_warmup_step_delay_ms = 300` |
|
||||
| `general.me_warmup_step_jitter_ms` | `u64` | `300` | keine | Zusätzlicher zufälliger Warmup-Jitter (ms). | `me_warmup_step_jitter_ms = 200` |
|
||||
| `general.me_reconnect_max_concurrent_per_dc` | `u32` | `8` | keine | Begrenzung paralleler Reconnect-Worker pro DC. | `me_reconnect_max_concurrent_per_dc = 12` |
|
||||
| `general.me_reconnect_backoff_base_ms` | `u64` | `500` | keine | Initiales Reconnect-Backoff (ms). | `me_reconnect_backoff_base_ms = 250` |
|
||||
| `general.me_reconnect_backoff_cap_ms` | `u64` | `30000` | keine | Maximales Reconnect-Backoff (ms). | `me_reconnect_backoff_cap_ms = 10000` |
|
||||
| `general.me_reconnect_fast_retry_count` | `u32` | `16` | keine | Budget für Sofort-Retries vor längerem Backoff. | `me_reconnect_fast_retry_count = 8` |
|
||||
|
||||
### 3) Reinit/Hardswap, Secret-Rotation und Degradation
|
||||
|
||||
| Parameter | Typ | Default | Einschränkungen / Validierung | Laufzeiteffekt | Beispiel |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.hardswap` | `bool` | `true` | keine | Aktiviert generation-basierte Hardswap-Strategie für den ME-Pool. | `hardswap = true` |
|
||||
| `general.me_reinit_every_secs` | `u64` | `900` | muss `> 0` sein | Intervall für periodische ME-Reinitialisierung. | `me_reinit_every_secs = 600` |
|
||||
| `general.me_hardswap_warmup_delay_min_ms` | `u64` | `1000` | muss `<= me_hardswap_warmup_delay_max_ms` sein | Untere Grenze für Warmup-Dial-Abstände. | `me_hardswap_warmup_delay_min_ms = 500` |
|
||||
| `general.me_hardswap_warmup_delay_max_ms` | `u64` | `2000` | muss `> 0` sein | Obere Grenze für Warmup-Dial-Abstände. | `me_hardswap_warmup_delay_max_ms = 1200` |
|
||||
| `general.me_hardswap_warmup_extra_passes` | `u8` | `3` | Bereich `[0,10]` | Zusätzliche Warmup-Pässe nach dem Basispass. | `me_hardswap_warmup_extra_passes = 2` |
|
||||
| `general.me_hardswap_warmup_pass_backoff_base_ms` | `u64` | `500` | muss `> 0` sein | Basis-Backoff zwischen zusätzlichen Warmup-Pässen. | `me_hardswap_warmup_pass_backoff_base_ms = 400` |
|
||||
| `general.me_config_stable_snapshots` | `u8` | `2` | muss `> 0` sein | Anzahl identischer ME-Config-Snapshots vor Apply. | `me_config_stable_snapshots = 3` |
|
||||
| `general.me_config_apply_cooldown_secs` | `u64` | `300` | keine | Cooldown zwischen angewendeten ME-Map-Updates. | `me_config_apply_cooldown_secs = 120` |
|
||||
| `general.proxy_secret_stable_snapshots` | `u8` | `2` | muss `> 0` sein | Anzahl identischer Secret-Snapshots vor Rotation. | `proxy_secret_stable_snapshots = 3` |
|
||||
| `general.proxy_secret_rotate_runtime` | `bool` | `true` | keine | Aktiviert Runtime-Rotation des Proxy-Secrets. | `proxy_secret_rotate_runtime = true` |
|
||||
| `general.proxy_secret_len_max` | `usize` | `256` | Bereich `[32,4096]` | Obergrenze für akzeptierte Secret-Länge. | `proxy_secret_len_max = 512` |
|
||||
| `general.update_every` | `Option<u64>` | `300` | wenn gesetzt: `> 0`; bei `null`: Legacy-Min-Fallback | Einheitliches Refresh-Intervall für ME-Config + Secret-Updater. | `update_every = 300` |
|
||||
| `general.me_pool_drain_ttl_secs` | `u64` | `90` | keine | Zeitraum, in dem stale Writer noch als Fallback zulässig sind. | `me_pool_drain_ttl_secs = 120` |
|
||||
| `general.me_pool_min_fresh_ratio` | `f32` | `0.8` | Bereich `[0.0,1.0]` | Coverage-Schwelle vor Drain der alten Generation. | `me_pool_min_fresh_ratio = 0.9` |
|
||||
| `general.me_reinit_drain_timeout_secs` | `u64` | `120` | `0` = kein Force-Close; wenn `>0 && < TTL`, dann auf TTL angehoben | Force-Close-Timeout für draining stale Writer. | `me_reinit_drain_timeout_secs = 0` |
|
||||
| `general.auto_degradation_enabled` | `bool` | `true` | keine | Reserviertes Kompatibilitätsfeld in aktueller Revision (kein aktiver Runtime-Consumer). | `auto_degradation_enabled = true` |
|
||||
| `general.degradation_min_unavailable_dc_groups` | `u8` | `2` | keine | Reservierter Kompatibilitäts-Schwellenwert in aktueller Revision (kein aktiver Runtime-Consumer). | `degradation_min_unavailable_dc_groups = 2` |
|
||||
|
||||
## Deprecated / Legacy Parameter
|
||||
|
||||
| Parameter | Status | Ersatz | Aktuelles Verhalten | Migrationshinweis |
|
||||
|---|---|---|---|---|
|
||||
| `general.middle_proxy_nat_stun` | Deprecated | `network.stun_servers` | Wird nur dann in `network.stun_servers` gemerged, wenn `network.stun_servers` nicht explizit gesetzt ist. | Wert nach `network.stun_servers` verschieben, Legacy-Key entfernen. |
|
||||
| `general.middle_proxy_nat_stun_servers` | Deprecated | `network.stun_servers` | Wird nur dann in `network.stun_servers` gemerged, wenn `network.stun_servers` nicht explizit gesetzt ist. | Werte nach `network.stun_servers` verschieben, Legacy-Key entfernen. |
|
||||
| `general.proxy_secret_auto_reload_secs` | Deprecated | `general.update_every` | Nur aktiv, wenn `update_every = null` (Legacy-Fallback). | `general.update_every` explizit setzen, Legacy-Key entfernen. |
|
||||
| `general.proxy_config_auto_reload_secs` | Deprecated | `general.update_every` | Nur aktiv, wenn `update_every = null` (Legacy-Fallback). | `general.update_every` explizit setzen, Legacy-Key entfernen. |
|
||||
|
||||
## Wie Upstreams konfiguriert werden
|
||||
|
||||
### Upstream-Schema
|
||||
|
||||
| Feld | Gilt für | Typ | Pflicht | Default | Bedeutung |
|
||||
|---|---|---|---|---|---|
|
||||
| `[[upstreams]].type` | alle Upstreams | `"direct" \| "socks4" \| "socks5"` | ja | n/a | Upstream-Transporttyp. |
|
||||
| `[[upstreams]].weight` | alle Upstreams | `u16` | nein | `1` | Basisgewicht für weighted-random Auswahl. |
|
||||
| `[[upstreams]].enabled` | alle Upstreams | `bool` | nein | `true` | Deaktivierte Einträge werden beim Start ignoriert. |
|
||||
| `[[upstreams]].scopes` | alle Upstreams | `String` | nein | `""` | Komma-separierte Scope-Tags für Request-Routing. |
|
||||
| `interface` | `direct` | `Option<String>` | nein | `null` | Interface-Name (z. B. `eth0`) oder lokale Literal-IP. |
|
||||
| `bind_addresses` | `direct` | `Option<Vec<IpAddr>>` | nein | `null` | Explizite Source-IP-Kandidaten (strikter Vorrang vor `interface`). |
|
||||
| `address` | `socks4` | `String` | ja | n/a | SOCKS4-Server (`ip:port` oder `host:port`). |
|
||||
| `interface` | `socks4` | `Option<String>` | nein | `null` | Wird nur genutzt, wenn `address` als `ip:port` angegeben ist. |
|
||||
| `user_id` | `socks4` | `Option<String>` | nein | `null` | SOCKS4 User-ID für CONNECT. |
|
||||
| `address` | `socks5` | `String` | ja | n/a | SOCKS5-Server (`ip:port` oder `host:port`). |
|
||||
| `interface` | `socks5` | `Option<String>` | nein | `null` | Wird nur genutzt, wenn `address` als `ip:port` angegeben ist. |
|
||||
| `username` | `socks5` | `Option<String>` | nein | `null` | SOCKS5 Benutzername. |
|
||||
| `password` | `socks5` | `Option<String>` | nein | `null` | SOCKS5 Passwort. |
|
||||
|
||||
### Runtime-Regeln (wichtig)
|
||||
|
||||
1. Wenn `[[upstreams]]` fehlt, injiziert der Loader einen Default-`direct`-Upstream.
|
||||
2. Scope-Filterung basiert auf exaktem Token-Match:
|
||||
- mit Request-Scope -> nur Einträge, deren `scopes` genau dieses Token enthält;
|
||||
- ohne Request-Scope -> nur Einträge mit leerem `scopes`.
|
||||
3. Unter healthy Upstreams erfolgt die Auswahl per weighted random: `weight * latency_factor`.
|
||||
4. Gibt es im gefilterten Set keinen healthy Upstream, wird zufällig aus dem gefilterten Set gewählt.
|
||||
5. `direct`-Bind-Auflösung:
|
||||
- zuerst `bind_addresses` (nur gleiche IP-Familie wie Target);
|
||||
- bei `interface` (Name) + `bind_addresses` wird jede Candidate-IP gegen Interface-Adressen validiert;
|
||||
- ungültige Kandidaten werden mit `WARN` verworfen;
|
||||
- bleiben keine gültigen Kandidaten übrig, erfolgt unbound direct connect (`bind_ip=None`);
|
||||
- wenn `bind_addresses` nicht passt, wird `interface` verwendet (Literal-IP oder Interface-Primäradresse).
|
||||
6. Für `socks4/socks5` mit Hostname-`address` ist Interface-Binding nicht unterstützt und wird mit Warnung ignoriert.
|
||||
7. Runtime DNS Overrides werden für Hostname-Auflösung bei Upstream-Verbindungen genutzt.
|
||||
8. Im ME-Modus wird der gewählte Upstream auch für den ME-TCP-Dial-Pfad verwendet.
|
||||
9. Im ME-Modus ist bei `direct` mit bind/interface die STUN-Reflection bind-aware für KDF-Adressmaterial.
|
||||
10. Im ME-Modus werden bei SOCKS-Upstream `BND.ADDR/BND.PORT` für KDF verwendet, wenn gültig/öffentlich und gleiche IP-Familie.
|
||||
|
||||
## Upstream-Konfigurationsbeispiele
|
||||
|
||||
### Beispiel 1: Minimaler direct Upstream
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 1
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Beispiel 2: direct mit Interface + expliziten bind IPs
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
interface = "eth0"
|
||||
bind_addresses = ["192.168.1.100", "192.168.1.101"]
|
||||
weight = 3
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Beispiel 3: SOCKS5 Upstream mit Authentifizierung
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "198.51.100.30:1080"
|
||||
username = "proxy-user"
|
||||
password = "proxy-pass"
|
||||
weight = 2
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Beispiel 4: Gemischte Upstreams mit Scopes
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 5
|
||||
enabled = true
|
||||
scopes = ""
|
||||
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "203.0.113.40:1080"
|
||||
username = "edge"
|
||||
password = "edgepass"
|
||||
weight = 3
|
||||
enabled = true
|
||||
scopes = "premium,me"
|
||||
```
|
||||
|
||||
### Beispiel 5: ME-orientiertes Tuning-Profil
|
||||
|
||||
```toml
|
||||
[general]
|
||||
use_middle_proxy = true
|
||||
proxy_secret_path = "proxy-secret"
|
||||
middle_proxy_nat_probe = true
|
||||
stun_nat_probe_concurrency = 16
|
||||
middle_proxy_pool_size = 12
|
||||
me_keepalive_enabled = true
|
||||
me_keepalive_interval_secs = 20
|
||||
me_keepalive_jitter_secs = 4
|
||||
me_reconnect_max_concurrent_per_dc = 12
|
||||
me_reconnect_backoff_base_ms = 300
|
||||
me_reconnect_backoff_cap_ms = 10000
|
||||
me_reconnect_fast_retry_count = 10
|
||||
hardswap = true
|
||||
me_reinit_every_secs = 600
|
||||
me_hardswap_warmup_delay_min_ms = 500
|
||||
me_hardswap_warmup_delay_max_ms = 1200
|
||||
me_hardswap_warmup_extra_passes = 2
|
||||
me_hardswap_warmup_pass_backoff_base_ms = 400
|
||||
me_config_stable_snapshots = 3
|
||||
me_config_apply_cooldown_secs = 120
|
||||
proxy_secret_stable_snapshots = 3
|
||||
proxy_secret_rotate_runtime = true
|
||||
proxy_secret_len_max = 512
|
||||
update_every = 300
|
||||
me_pool_drain_ttl_secs = 120
|
||||
me_pool_min_fresh_ratio = 0.9
|
||||
me_reinit_drain_timeout_secs = 180
|
||||
|
||||
[timeouts]
|
||||
me_one_retry = 8
|
||||
me_one_timeout_ms = 1200
|
||||
|
||||
[network]
|
||||
stun_use = true
|
||||
stun_tcp_fallback = true
|
||||
stun_servers = [
|
||||
"stun1.l.google.com:19302",
|
||||
"stun2.l.google.com:19302"
|
||||
]
|
||||
http_ip_detect_urls = [
|
||||
"https://api.ipify.org",
|
||||
"https://ifconfig.me/ip"
|
||||
]
|
||||
```
|
||||
219
docs/TUNING.en.md
Normal file
219
docs/TUNING.en.md
Normal file
@@ -0,0 +1,219 @@
|
||||
# Telemt Tuning Guide: Middle-End and Upstreams
|
||||
|
||||
This document describes the current runtime behavior for Middle-End (ME) and upstream routing based on:
|
||||
- `src/config/types.rs`
|
||||
- `src/config/defaults.rs`
|
||||
- `src/config/load.rs`
|
||||
- `src/transport/upstream.rs`
|
||||
|
||||
Defaults below are code defaults (used when a key is omitted), not necessarily values from `config.full.toml` examples.
|
||||
|
||||
## Middle-End Parameters
|
||||
|
||||
### 1) Core ME mode, NAT, and STUN
|
||||
|
||||
| Parameter | Type | Default | Constraints / validation | Runtime effect | Example |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.use_middle_proxy` | `bool` | `true` | none | Enables ME transport mode. If `false`, Direct mode is used. | `use_middle_proxy = true` |
|
||||
| `general.proxy_secret_path` | `Option<String>` | `"proxy-secret"` | path may be `null` | Path to Telegram infrastructure proxy-secret file. | `proxy_secret_path = "proxy-secret"` |
|
||||
| `general.middle_proxy_nat_ip` | `Option<IpAddr>` | `null` | valid IP when set | Manual public NAT IP override for ME address material. | `middle_proxy_nat_ip = "203.0.113.10"` |
|
||||
| `general.middle_proxy_nat_probe` | `bool` | `true` | auto-forced to `true` when `use_middle_proxy=true` | Enables ME NAT probing. | `middle_proxy_nat_probe = true` |
|
||||
| `general.stun_nat_probe_concurrency` | `usize` | `8` | must be `> 0` | Max parallel STUN probes during NAT discovery. | `stun_nat_probe_concurrency = 16` |
|
||||
| `network.stun_use` | `bool` | `true` | none | Global STUN switch. If `false`, STUN probing is disabled. | `stun_use = true` |
|
||||
| `network.stun_servers` | `Vec<String>` | built-in public pool | deduplicated + empty values removed | Primary STUN server list for NAT/public endpoint discovery. | `stun_servers = ["stun1.l.google.com:19302"]` |
|
||||
| `network.stun_tcp_fallback` | `bool` | `true` | none | Enables TCP fallback path when UDP STUN is blocked. | `stun_tcp_fallback = true` |
|
||||
| `network.http_ip_detect_urls` | `Vec<String>` | `ifconfig.me` + `api.ipify.org` | none | HTTP fallback for public IPv4 detection if STUN is unavailable. | `http_ip_detect_urls = ["https://api.ipify.org"]` |
|
||||
| `general.stun_iface_mismatch_ignore` | `bool` | `false` | none | Reserved flag in current revision (not consumed by runtime path). | `stun_iface_mismatch_ignore = false` |
|
||||
| `timeouts.me_one_retry` | `u8` | `12` | none | Fast reconnect attempts for single-endpoint DC cases. | `me_one_retry = 6` |
|
||||
| `timeouts.me_one_timeout_ms` | `u64` | `1200` | none | Timeout per quick single-endpoint attempt (ms). | `me_one_timeout_ms = 1500` |
|
||||
|
||||
### 2) Pool size, keepalive, and reconnect policy
|
||||
|
||||
| Parameter | Type | Default | Constraints / validation | Runtime effect | Example |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.middle_proxy_pool_size` | `usize` | `8` | none | Target active ME writer pool size. | `middle_proxy_pool_size = 12` |
|
||||
| `general.middle_proxy_warm_standby` | `usize` | `16` | none | Reserved compatibility field in current revision (no active runtime consumer). | `middle_proxy_warm_standby = 16` |
|
||||
| `general.me_keepalive_enabled` | `bool` | `true` | none | Enables periodic ME keepalive/ping traffic. | `me_keepalive_enabled = true` |
|
||||
| `general.me_keepalive_interval_secs` | `u64` | `25` | none | Base keepalive interval (seconds). | `me_keepalive_interval_secs = 20` |
|
||||
| `general.me_keepalive_jitter_secs` | `u64` | `5` | none | Keepalive jitter to avoid synchronization bursts. | `me_keepalive_jitter_secs = 3` |
|
||||
| `general.me_keepalive_payload_random` | `bool` | `true` | none | Randomizes keepalive payload bytes. | `me_keepalive_payload_random = true` |
|
||||
| `general.me_warmup_stagger_enabled` | `bool` | `true` | none | Staggers extra ME warmup dials to avoid spikes. | `me_warmup_stagger_enabled = true` |
|
||||
| `general.me_warmup_step_delay_ms` | `u64` | `500` | none | Base delay between warmup dial steps (ms). | `me_warmup_step_delay_ms = 300` |
|
||||
| `general.me_warmup_step_jitter_ms` | `u64` | `300` | none | Additional random delay for warmup steps (ms). | `me_warmup_step_jitter_ms = 200` |
|
||||
| `general.me_reconnect_max_concurrent_per_dc` | `u32` | `8` | none | Limits concurrent reconnect workers per DC in health recovery. | `me_reconnect_max_concurrent_per_dc = 12` |
|
||||
| `general.me_reconnect_backoff_base_ms` | `u64` | `500` | none | Initial reconnect backoff (ms). | `me_reconnect_backoff_base_ms = 250` |
|
||||
| `general.me_reconnect_backoff_cap_ms` | `u64` | `30000` | none | Maximum reconnect backoff (ms). | `me_reconnect_backoff_cap_ms = 10000` |
|
||||
| `general.me_reconnect_fast_retry_count` | `u32` | `16` | none | Immediate retry budget before long backoff behavior. | `me_reconnect_fast_retry_count = 8` |
|
||||
|
||||
### 3) Reinit/hardswap, secret rotation, and degradation
|
||||
|
||||
| Parameter | Type | Default | Constraints / validation | Runtime effect | Example |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.hardswap` | `bool` | `true` | none | Enables generation-based ME hardswap strategy. | `hardswap = true` |
|
||||
| `general.me_reinit_every_secs` | `u64` | `900` | must be `> 0` | Periodic ME reinit interval. | `me_reinit_every_secs = 600` |
|
||||
| `general.me_hardswap_warmup_delay_min_ms` | `u64` | `1000` | must be `<= me_hardswap_warmup_delay_max_ms` | Lower bound for hardswap warmup dial spacing. | `me_hardswap_warmup_delay_min_ms = 500` |
|
||||
| `general.me_hardswap_warmup_delay_max_ms` | `u64` | `2000` | must be `> 0` | Upper bound for hardswap warmup dial spacing. | `me_hardswap_warmup_delay_max_ms = 1200` |
|
||||
| `general.me_hardswap_warmup_extra_passes` | `u8` | `3` | must be within `[0,10]` | Additional warmup passes after base pass. | `me_hardswap_warmup_extra_passes = 2` |
|
||||
| `general.me_hardswap_warmup_pass_backoff_base_ms` | `u64` | `500` | must be `> 0` | Base backoff between extra warmup passes. | `me_hardswap_warmup_pass_backoff_base_ms = 400` |
|
||||
| `general.me_config_stable_snapshots` | `u8` | `2` | must be `> 0` | Number of identical ME config snapshots required before apply. | `me_config_stable_snapshots = 3` |
|
||||
| `general.me_config_apply_cooldown_secs` | `u64` | `300` | none | Cooldown between applied ME map updates. | `me_config_apply_cooldown_secs = 120` |
|
||||
| `general.proxy_secret_stable_snapshots` | `u8` | `2` | must be `> 0` | Number of identical proxy-secret snapshots required before rotation. | `proxy_secret_stable_snapshots = 3` |
|
||||
| `general.proxy_secret_rotate_runtime` | `bool` | `true` | none | Enables runtime proxy-secret rotation. | `proxy_secret_rotate_runtime = true` |
|
||||
| `general.proxy_secret_len_max` | `usize` | `256` | must be within `[32,4096]` | Upper limit for accepted proxy-secret length. | `proxy_secret_len_max = 512` |
|
||||
| `general.update_every` | `Option<u64>` | `300` | if set: must be `> 0`; if `null`: legacy min fallback | Unified refresh interval for ME config + secret updater. | `update_every = 300` |
|
||||
| `general.me_pool_drain_ttl_secs` | `u64` | `90` | none | Time window where stale writers remain fallback-eligible. | `me_pool_drain_ttl_secs = 120` |
|
||||
| `general.me_pool_min_fresh_ratio` | `f32` | `0.8` | must be within `[0.0,1.0]` | Coverage threshold before stale generation can be drained. | `me_pool_min_fresh_ratio = 0.9` |
|
||||
| `general.me_reinit_drain_timeout_secs` | `u64` | `120` | `0` means no force-close; if `>0 && < TTL` it is bumped to TTL | Force-close timeout for draining stale writers. | `me_reinit_drain_timeout_secs = 0` |
|
||||
| `general.auto_degradation_enabled` | `bool` | `true` | none | Reserved compatibility flag in current revision (no active runtime consumer). | `auto_degradation_enabled = true` |
|
||||
| `general.degradation_min_unavailable_dc_groups` | `u8` | `2` | none | Reserved compatibility threshold in current revision (no active runtime consumer). | `degradation_min_unavailable_dc_groups = 2` |
|
||||
|
||||
## Deprecated / Legacy Parameters
|
||||
|
||||
| Parameter | Status | Replacement | Current behavior | Migration recommendation |
|
||||
|---|---|---|---|---|
|
||||
| `general.middle_proxy_nat_stun` | Deprecated | `network.stun_servers` | Merged into `network.stun_servers` only when `network.stun_servers` is not explicitly set. | Move value into `network.stun_servers` and remove legacy key. |
|
||||
| `general.middle_proxy_nat_stun_servers` | Deprecated | `network.stun_servers` | Merged into `network.stun_servers` only when `network.stun_servers` is not explicitly set. | Move values into `network.stun_servers` and remove legacy key. |
|
||||
| `general.proxy_secret_auto_reload_secs` | Deprecated | `general.update_every` | Used only when `update_every = null` (legacy fallback path). | Set `general.update_every` explicitly and remove legacy key. |
|
||||
| `general.proxy_config_auto_reload_secs` | Deprecated | `general.update_every` | Used only when `update_every = null` (legacy fallback path). | Set `general.update_every` explicitly and remove legacy key. |
|
||||
|
||||
## How Upstreams Are Configured
|
||||
|
||||
### Upstream schema
|
||||
|
||||
| Field | Applies to | Type | Required | Default | Meaning |
|
||||
|---|---|---|---|---|---|
|
||||
| `[[upstreams]].type` | all upstreams | `"direct" \| "socks4" \| "socks5"` | yes | n/a | Upstream transport type. |
|
||||
| `[[upstreams]].weight` | all upstreams | `u16` | no | `1` | Base weight for weighted-random selection. |
|
||||
| `[[upstreams]].enabled` | all upstreams | `bool` | no | `true` | Disabled entries are ignored at startup. |
|
||||
| `[[upstreams]].scopes` | all upstreams | `String` | no | `""` | Comma-separated scope tags for request-level routing. |
|
||||
| `interface` | `direct` | `Option<String>` | no | `null` | Interface name (e.g. `eth0`) or literal local IP for bind selection. |
|
||||
| `bind_addresses` | `direct` | `Option<Vec<IpAddr>>` | no | `null` | Explicit local source IP candidates (strict priority over `interface`). |
|
||||
| `address` | `socks4` | `String` | yes | n/a | SOCKS4 server endpoint (`ip:port` or `host:port`). |
|
||||
| `interface` | `socks4` | `Option<String>` | no | `null` | Used only for SOCKS server `ip:port` dial path. |
|
||||
| `user_id` | `socks4` | `Option<String>` | no | `null` | SOCKS4 user ID for CONNECT request. |
|
||||
| `address` | `socks5` | `String` | yes | n/a | SOCKS5 server endpoint (`ip:port` or `host:port`). |
|
||||
| `interface` | `socks5` | `Option<String>` | no | `null` | Used only for SOCKS server `ip:port` dial path. |
|
||||
| `username` | `socks5` | `Option<String>` | no | `null` | SOCKS5 username auth. |
|
||||
| `password` | `socks5` | `Option<String>` | no | `null` | SOCKS5 password auth. |
|
||||
|
||||
### Runtime rules (important)
|
||||
|
||||
1. If `[[upstreams]]` is omitted, loader injects one default `direct` upstream.
|
||||
2. Scope filtering is exact-token based:
|
||||
- when request scope is set -> only entries whose `scopes` contains that exact token;
|
||||
- when request scope is not set -> only entries with empty `scopes`.
|
||||
3. Healthy upstreams are selected by weighted random using: `weight * latency_factor`.
|
||||
4. If no healthy upstream exists in filtered set, random selection is used among filtered entries.
|
||||
5. `direct` bind resolution order:
|
||||
- `bind_addresses` candidates (same IP family as target) first;
|
||||
- if `interface` is an interface name and `bind_addresses` is set, each candidate IP is validated against addresses currently assigned to that interface;
|
||||
- invalid candidates are dropped with `WARN`;
|
||||
- if no valid candidate remains, connection falls back to unbound direct connect (`bind_ip=None`);
|
||||
- if no `bind_addresses` candidate, `interface` is used (literal IP or resolved interface primary IP).
|
||||
6. For `socks4/socks5` with `address` as hostname, interface binding is not supported and is ignored with warning.
|
||||
7. Runtime DNS overrides are used for upstream hostname resolution.
|
||||
8. In ME mode, the selected upstream is also used for ME TCP dial path.
|
||||
9. In ME mode for `direct` upstream with bind/interface, STUN reflection logic is bind-aware for KDF source material.
|
||||
10. In ME mode for SOCKS upstream, SOCKS `BND.ADDR/BND.PORT` is used for KDF when it is valid/public for the same family.
|
||||
|
||||
## Upstream Configuration Examples
|
||||
|
||||
### Example 1: Minimal direct upstream
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 1
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Example 2: Direct with interface + explicit bind addresses
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
interface = "eth0"
|
||||
bind_addresses = ["192.168.1.100", "192.168.1.101"]
|
||||
weight = 3
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Example 3: SOCKS5 upstream with authentication
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "198.51.100.30:1080"
|
||||
username = "proxy-user"
|
||||
password = "proxy-pass"
|
||||
weight = 2
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Example 4: Mixed upstreams with scopes
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 5
|
||||
enabled = true
|
||||
scopes = ""
|
||||
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "203.0.113.40:1080"
|
||||
username = "edge"
|
||||
password = "edgepass"
|
||||
weight = 3
|
||||
enabled = true
|
||||
scopes = "premium,me"
|
||||
```
|
||||
|
||||
### Example 5: ME-focused tuning profile
|
||||
|
||||
```toml
|
||||
[general]
|
||||
use_middle_proxy = true
|
||||
proxy_secret_path = "proxy-secret"
|
||||
middle_proxy_nat_probe = true
|
||||
stun_nat_probe_concurrency = 16
|
||||
middle_proxy_pool_size = 12
|
||||
me_keepalive_enabled = true
|
||||
me_keepalive_interval_secs = 20
|
||||
me_keepalive_jitter_secs = 4
|
||||
me_reconnect_max_concurrent_per_dc = 12
|
||||
me_reconnect_backoff_base_ms = 300
|
||||
me_reconnect_backoff_cap_ms = 10000
|
||||
me_reconnect_fast_retry_count = 10
|
||||
hardswap = true
|
||||
me_reinit_every_secs = 600
|
||||
me_hardswap_warmup_delay_min_ms = 500
|
||||
me_hardswap_warmup_delay_max_ms = 1200
|
||||
me_hardswap_warmup_extra_passes = 2
|
||||
me_hardswap_warmup_pass_backoff_base_ms = 400
|
||||
me_config_stable_snapshots = 3
|
||||
me_config_apply_cooldown_secs = 120
|
||||
proxy_secret_stable_snapshots = 3
|
||||
proxy_secret_rotate_runtime = true
|
||||
proxy_secret_len_max = 512
|
||||
update_every = 300
|
||||
me_pool_drain_ttl_secs = 120
|
||||
me_pool_min_fresh_ratio = 0.9
|
||||
me_reinit_drain_timeout_secs = 180
|
||||
|
||||
[timeouts]
|
||||
me_one_retry = 8
|
||||
me_one_timeout_ms = 1200
|
||||
|
||||
[network]
|
||||
stun_use = true
|
||||
stun_tcp_fallback = true
|
||||
stun_servers = [
|
||||
"stun1.l.google.com:19302",
|
||||
"stun2.l.google.com:19302"
|
||||
]
|
||||
http_ip_detect_urls = [
|
||||
"https://api.ipify.org",
|
||||
"https://ifconfig.me/ip"
|
||||
]
|
||||
```
|
||||
219
docs/TUNING.ru.md
Normal file
219
docs/TUNING.ru.md
Normal file
@@ -0,0 +1,219 @@
|
||||
# Руководство по тюнингу Telemt: Middle-End и Upstreams
|
||||
|
||||
Документ описывает актуальное поведение Middle-End (ME) и маршрутизации через upstream на основе:
|
||||
- `src/config/types.rs`
|
||||
- `src/config/defaults.rs`
|
||||
- `src/config/load.rs`
|
||||
- `src/transport/upstream.rs`
|
||||
|
||||
Значения `Default` ниже — это значения из кода при отсутствии ключа в конфиге, а не обязательно значения из примеров `config.full.toml`.
|
||||
|
||||
## Параметры Middle-End
|
||||
|
||||
### 1) Базовый режим ME, NAT и STUN
|
||||
|
||||
| Параметр | Тип | Default | Ограничения / валидация | Влияние на runtime | Пример |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.use_middle_proxy` | `bool` | `true` | нет | Включает транспорт ME. При `false` используется Direct-режим. | `use_middle_proxy = true` |
|
||||
| `general.proxy_secret_path` | `Option<String>` | `"proxy-secret"` | путь может быть `null` | Путь к инфраструктурному proxy-secret Telegram. | `proxy_secret_path = "proxy-secret"` |
|
||||
| `general.middle_proxy_nat_ip` | `Option<IpAddr>` | `null` | валидный IP при задании | Ручной override публичного NAT IP для адресного материала ME. | `middle_proxy_nat_ip = "203.0.113.10"` |
|
||||
| `general.middle_proxy_nat_probe` | `bool` | `true` | авто-принудительно `true`, если `use_middle_proxy=true` | Включает NAT probing для ME. | `middle_proxy_nat_probe = true` |
|
||||
| `general.stun_nat_probe_concurrency` | `usize` | `8` | должно быть `> 0` | Максимум параллельных STUN-проб при NAT-детекте. | `stun_nat_probe_concurrency = 16` |
|
||||
| `network.stun_use` | `bool` | `true` | нет | Глобальный переключатель STUN. При `false` STUN отключен. | `stun_use = true` |
|
||||
| `network.stun_servers` | `Vec<String>` | встроенный публичный пул | удаляются дубликаты и пустые значения | Основной список STUN-серверов для NAT/public endpoint discovery. | `stun_servers = ["stun1.l.google.com:19302"]` |
|
||||
| `network.stun_tcp_fallback` | `bool` | `true` | нет | Включает TCP fallback, если UDP STUN недоступен. | `stun_tcp_fallback = true` |
|
||||
| `network.http_ip_detect_urls` | `Vec<String>` | `ifconfig.me` + `api.ipify.org` | нет | HTTP fallback для определения публичного IPv4 при недоступности STUN. | `http_ip_detect_urls = ["https://api.ipify.org"]` |
|
||||
| `general.stun_iface_mismatch_ignore` | `bool` | `false` | нет | Зарезервированный флаг в текущей ревизии (runtime его не использует). | `stun_iface_mismatch_ignore = false` |
|
||||
| `timeouts.me_one_retry` | `u8` | `12` | нет | Количество быстрых reconnect-попыток для DC с одним endpoint. | `me_one_retry = 6` |
|
||||
| `timeouts.me_one_timeout_ms` | `u64` | `1200` | нет | Таймаут одной быстрой попытки (мс). | `me_one_timeout_ms = 1500` |
|
||||
|
||||
### 2) Размер пула, keepalive и reconnect-политика
|
||||
|
||||
| Параметр | Тип | Default | Ограничения / валидация | Влияние на runtime | Пример |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.middle_proxy_pool_size` | `usize` | `8` | нет | Целевой размер активного пула ME-writer соединений. | `middle_proxy_pool_size = 12` |
|
||||
| `general.middle_proxy_warm_standby` | `usize` | `16` | нет | Зарезервированное поле совместимости в текущей ревизии (активного runtime-consumer нет). | `middle_proxy_warm_standby = 16` |
|
||||
| `general.me_keepalive_enabled` | `bool` | `true` | нет | Включает периодические keepalive/ping кадры ME. | `me_keepalive_enabled = true` |
|
||||
| `general.me_keepalive_interval_secs` | `u64` | `25` | нет | Базовый интервал keepalive (сек). | `me_keepalive_interval_secs = 20` |
|
||||
| `general.me_keepalive_jitter_secs` | `u64` | `5` | нет | Джиттер keepalive для предотвращения синхронных всплесков. | `me_keepalive_jitter_secs = 3` |
|
||||
| `general.me_keepalive_payload_random` | `bool` | `true` | нет | Рандомизирует payload keepalive-кадров. | `me_keepalive_payload_random = true` |
|
||||
| `general.me_warmup_stagger_enabled` | `bool` | `true` | нет | Включает staggered warmup дополнительных ME-коннектов. | `me_warmup_stagger_enabled = true` |
|
||||
| `general.me_warmup_step_delay_ms` | `u64` | `500` | нет | Базовая задержка между шагами warmup (мс). | `me_warmup_step_delay_ms = 300` |
|
||||
| `general.me_warmup_step_jitter_ms` | `u64` | `300` | нет | Дополнительный случайный warmup-джиттер (мс). | `me_warmup_step_jitter_ms = 200` |
|
||||
| `general.me_reconnect_max_concurrent_per_dc` | `u32` | `8` | нет | Ограничивает параллельные reconnect worker'ы на один DC. | `me_reconnect_max_concurrent_per_dc = 12` |
|
||||
| `general.me_reconnect_backoff_base_ms` | `u64` | `500` | нет | Начальный backoff reconnect (мс). | `me_reconnect_backoff_base_ms = 250` |
|
||||
| `general.me_reconnect_backoff_cap_ms` | `u64` | `30000` | нет | Верхняя граница backoff reconnect (мс). | `me_reconnect_backoff_cap_ms = 10000` |
|
||||
| `general.me_reconnect_fast_retry_count` | `u32` | `16` | нет | Бюджет быстрых retry до длинного backoff. | `me_reconnect_fast_retry_count = 8` |
|
||||
|
||||
### 3) Reinit/hardswap, ротация секрета и деградация
|
||||
|
||||
| Параметр | Тип | Default | Ограничения / валидация | Влияние на runtime | Пример |
|
||||
|---|---|---:|---|---|---|
|
||||
| `general.hardswap` | `bool` | `true` | нет | Включает generation-based стратегию hardswap для ME-пула. | `hardswap = true` |
|
||||
| `general.me_reinit_every_secs` | `u64` | `900` | должно быть `> 0` | Интервал периодического reinit ME-пула. | `me_reinit_every_secs = 600` |
|
||||
| `general.me_hardswap_warmup_delay_min_ms` | `u64` | `1000` | должно быть `<= me_hardswap_warmup_delay_max_ms` | Нижняя граница пауз между warmup dial попытками. | `me_hardswap_warmup_delay_min_ms = 500` |
|
||||
| `general.me_hardswap_warmup_delay_max_ms` | `u64` | `2000` | должно быть `> 0` | Верхняя граница пауз между warmup dial попытками. | `me_hardswap_warmup_delay_max_ms = 1200` |
|
||||
| `general.me_hardswap_warmup_extra_passes` | `u8` | `3` | диапазон `[0,10]` | Дополнительные warmup-проходы после базового. | `me_hardswap_warmup_extra_passes = 2` |
|
||||
| `general.me_hardswap_warmup_pass_backoff_base_ms` | `u64` | `500` | должно быть `> 0` | Базовый backoff между extra-pass в warmup. | `me_hardswap_warmup_pass_backoff_base_ms = 400` |
|
||||
| `general.me_config_stable_snapshots` | `u8` | `2` | должно быть `> 0` | Количество одинаковых snapshot перед применением ME map update. | `me_config_stable_snapshots = 3` |
|
||||
| `general.me_config_apply_cooldown_secs` | `u64` | `300` | нет | Cooldown между применёнными обновлениями ME map. | `me_config_apply_cooldown_secs = 120` |
|
||||
| `general.proxy_secret_stable_snapshots` | `u8` | `2` | должно быть `> 0` | Количество одинаковых snapshot перед runtime-rotation proxy-secret. | `proxy_secret_stable_snapshots = 3` |
|
||||
| `general.proxy_secret_rotate_runtime` | `bool` | `true` | нет | Включает runtime-ротацию proxy-secret. | `proxy_secret_rotate_runtime = true` |
|
||||
| `general.proxy_secret_len_max` | `usize` | `256` | диапазон `[32,4096]` | Верхний лимит длины принимаемого proxy-secret. | `proxy_secret_len_max = 512` |
|
||||
| `general.update_every` | `Option<u64>` | `300` | если задано: `> 0`; если `null`: fallback на legacy минимум | Единый интервал refresh для ME config + secret updater. | `update_every = 300` |
|
||||
| `general.me_pool_drain_ttl_secs` | `u64` | `90` | нет | Время, когда stale writer ещё может использоваться как fallback. | `me_pool_drain_ttl_secs = 120` |
|
||||
| `general.me_pool_min_fresh_ratio` | `f32` | `0.8` | диапазон `[0.0,1.0]` | Порог покрытия fresh-поколения перед drain старого поколения. | `me_pool_min_fresh_ratio = 0.9` |
|
||||
| `general.me_reinit_drain_timeout_secs` | `u64` | `120` | `0` = без force-close; если `>0 && < TTL`, поднимается до TTL | Таймаут force-close для draining stale writer. | `me_reinit_drain_timeout_secs = 0` |
|
||||
| `general.auto_degradation_enabled` | `bool` | `true` | нет | Зарезервированный флаг совместимости в текущей ревизии (активного runtime-consumer нет). | `auto_degradation_enabled = true` |
|
||||
| `general.degradation_min_unavailable_dc_groups` | `u8` | `2` | нет | Зарезервированный порог совместимости в текущей ревизии (активного runtime-consumer нет). | `degradation_min_unavailable_dc_groups = 2` |
|
||||
|
||||
## Устаревшие / legacy параметры
|
||||
|
||||
| Параметр | Статус | Замена | Текущее поведение | Рекомендация миграции |
|
||||
|---|---|---|---|---|
|
||||
| `general.middle_proxy_nat_stun` | Deprecated | `network.stun_servers` | Добавляется в `network.stun_servers`, только если `network.stun_servers` не задан явно. | Перенести значение в `network.stun_servers`, legacy-ключ удалить. |
|
||||
| `general.middle_proxy_nat_stun_servers` | Deprecated | `network.stun_servers` | Добавляется в `network.stun_servers`, только если `network.stun_servers` не задан явно. | Перенести значения в `network.stun_servers`, legacy-ключ удалить. |
|
||||
| `general.proxy_secret_auto_reload_secs` | Deprecated | `general.update_every` | Используется только если `update_every = null` (legacy fallback). | Явно задать `general.update_every`, legacy-ключ удалить. |
|
||||
| `general.proxy_config_auto_reload_secs` | Deprecated | `general.update_every` | Используется только если `update_every = null` (legacy fallback). | Явно задать `general.update_every`, legacy-ключ удалить. |
|
||||
|
||||
## Как конфигурируются Upstreams
|
||||
|
||||
### Схема upstream
|
||||
|
||||
| Поле | Применимость | Тип | Обязательно | Default | Назначение |
|
||||
|---|---|---|---|---|---|
|
||||
| `[[upstreams]].type` | все upstream | `"direct" \| "socks4" \| "socks5"` | да | n/a | Тип upstream транспорта. |
|
||||
| `[[upstreams]].weight` | все upstream | `u16` | нет | `1` | Базовый вес в weighted-random выборе. |
|
||||
| `[[upstreams]].enabled` | все upstream | `bool` | нет | `true` | Выключенные записи игнорируются на старте. |
|
||||
| `[[upstreams]].scopes` | все upstream | `String` | нет | `""` | Список scope-токенов через запятую для маршрутизации. |
|
||||
| `interface` | `direct` | `Option<String>` | нет | `null` | Имя интерфейса (например `eth0`) или literal локальный IP. |
|
||||
| `bind_addresses` | `direct` | `Option<Vec<IpAddr>>` | нет | `null` | Явные кандидаты source IP (имеют приоритет над `interface`). |
|
||||
| `address` | `socks4` | `String` | да | n/a | Адрес SOCKS4 сервера (`ip:port` или `host:port`). |
|
||||
| `interface` | `socks4` | `Option<String>` | нет | `null` | Используется только если `address` задан как `ip:port`. |
|
||||
| `user_id` | `socks4` | `Option<String>` | нет | `null` | SOCKS4 user ID в CONNECT-запросе. |
|
||||
| `address` | `socks5` | `String` | да | n/a | Адрес SOCKS5 сервера (`ip:port` или `host:port`). |
|
||||
| `interface` | `socks5` | `Option<String>` | нет | `null` | Используется только если `address` задан как `ip:port`. |
|
||||
| `username` | `socks5` | `Option<String>` | нет | `null` | Логин SOCKS5 auth. |
|
||||
| `password` | `socks5` | `Option<String>` | нет | `null` | Пароль SOCKS5 auth. |
|
||||
|
||||
### Runtime-правила
|
||||
|
||||
1. Если `[[upstreams]]` отсутствует, loader добавляет один upstream `direct` по умолчанию.
|
||||
2. Scope-фильтрация — по точному совпадению токена:
|
||||
- если scope запроса задан -> используются только записи, где `scopes` содержит такой же токен;
|
||||
- если scope запроса не задан -> используются только записи с пустым `scopes`.
|
||||
3. Среди healthy upstream используется weighted-random выбор: `weight * latency_factor`.
|
||||
4. Если в отфильтрованном наборе нет healthy upstream, выбирается случайный из отфильтрованных.
|
||||
5. Порядок выбора bind для `direct`:
|
||||
- сначала `bind_addresses` (только IP нужного семейства);
|
||||
- если одновременно заданы `interface` (имя) и `bind_addresses`, каждый IP проверяется на принадлежность интерфейсу;
|
||||
- несовпадающие IP отбрасываются с `WARN`;
|
||||
- если валидных IP не осталось, используется unbound direct connect (`bind_ip=None`);
|
||||
- если `bind_addresses` не подходит, применяется `interface` (literal IP или адрес интерфейса).
|
||||
6. Для `socks4/socks5` с `address` в виде hostname интерфейсный bind не поддерживается и игнорируется с предупреждением.
|
||||
7. Runtime DNS overrides применяются к резолвингу hostname в upstream-подключениях.
|
||||
8. В ME-режиме выбранный upstream также используется для ME TCP dial path.
|
||||
9. В ME-режиме для `direct` upstream с bind/interface STUN-рефлексия выполняется bind-aware для KDF материала.
|
||||
10. В ME-режиме для SOCKS upstream используются `BND.ADDR/BND.PORT` для KDF, если адрес валиден/публичен и соответствует IP family.
|
||||
|
||||
## Примеры конфигурации Upstreams
|
||||
|
||||
### Пример 1: минимальный direct upstream
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 1
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Пример 2: direct с interface + явными bind IP
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
interface = "eth0"
|
||||
bind_addresses = ["192.168.1.100", "192.168.1.101"]
|
||||
weight = 3
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Пример 3: SOCKS5 upstream с аутентификацией
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "198.51.100.30:1080"
|
||||
username = "proxy-user"
|
||||
password = "proxy-pass"
|
||||
weight = 2
|
||||
enabled = true
|
||||
```
|
||||
|
||||
### Пример 4: смешанные upstream с scopes
|
||||
|
||||
```toml
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
weight = 5
|
||||
enabled = true
|
||||
scopes = ""
|
||||
|
||||
[[upstreams]]
|
||||
type = "socks5"
|
||||
address = "203.0.113.40:1080"
|
||||
username = "edge"
|
||||
password = "edgepass"
|
||||
weight = 3
|
||||
enabled = true
|
||||
scopes = "premium,me"
|
||||
```
|
||||
|
||||
### Пример 5: профиль тюнинга под ME
|
||||
|
||||
```toml
|
||||
[general]
|
||||
use_middle_proxy = true
|
||||
proxy_secret_path = "proxy-secret"
|
||||
middle_proxy_nat_probe = true
|
||||
stun_nat_probe_concurrency = 16
|
||||
middle_proxy_pool_size = 12
|
||||
me_keepalive_enabled = true
|
||||
me_keepalive_interval_secs = 20
|
||||
me_keepalive_jitter_secs = 4
|
||||
me_reconnect_max_concurrent_per_dc = 12
|
||||
me_reconnect_backoff_base_ms = 300
|
||||
me_reconnect_backoff_cap_ms = 10000
|
||||
me_reconnect_fast_retry_count = 10
|
||||
hardswap = true
|
||||
me_reinit_every_secs = 600
|
||||
me_hardswap_warmup_delay_min_ms = 500
|
||||
me_hardswap_warmup_delay_max_ms = 1200
|
||||
me_hardswap_warmup_extra_passes = 2
|
||||
me_hardswap_warmup_pass_backoff_base_ms = 400
|
||||
me_config_stable_snapshots = 3
|
||||
me_config_apply_cooldown_secs = 120
|
||||
proxy_secret_stable_snapshots = 3
|
||||
proxy_secret_rotate_runtime = true
|
||||
proxy_secret_len_max = 512
|
||||
update_every = 300
|
||||
me_pool_drain_ttl_secs = 120
|
||||
me_pool_min_fresh_ratio = 0.9
|
||||
me_reinit_drain_timeout_secs = 180
|
||||
|
||||
[timeouts]
|
||||
me_one_retry = 8
|
||||
me_one_timeout_ms = 1200
|
||||
|
||||
[network]
|
||||
stun_use = true
|
||||
stun_tcp_fallback = true
|
||||
stun_servers = [
|
||||
"stun1.l.google.com:19302",
|
||||
"stun2.l.google.com:19302"
|
||||
]
|
||||
http_ip_detect_urls = [
|
||||
"https://api.ipify.org",
|
||||
"https://ifconfig.me/ip"
|
||||
]
|
||||
```
|
||||
321
docs/XRAY-SINGBOX-ROUTING.ru.md
Normal file
321
docs/XRAY-SINGBOX-ROUTING.ru.md
Normal file
@@ -0,0 +1,321 @@
|
||||
# SNI-маршрутизация в xray-core / sing-box + TLS-fronting
|
||||
|
||||
## Термины (в контексте этого кейса)
|
||||
|
||||
- **TLS-fronting домен** — домен, который фигурирует в TLS ClientHello как **SNI** (например, `petrovich.ru`): он используется как "маска" на L7 и как ключ маршрутизации в прокси-роутере.
|
||||
- **xray-core / sing-box** — локальный или удалённый L7/TLS-роутер (прокси), который:
|
||||
1) принимает входящее TCP/TLS-соединение,
|
||||
2) читает TLS ClientHello,
|
||||
3) извлекает SNI,
|
||||
4) по SNI выбирает outbound/апстрим,
|
||||
5) устанавливает новое TCP-соединение к целевому хосту уже **от себя**.
|
||||
- **SNI (Server Name Indication)** — поле в TLS ClientHello, где клиент Telegram сообщает доменное имя для "маскировки"
|
||||
- **DNS-resolve на стороне L7-роутера** — если выходной адрес задан доменом (или роутер решил "всё равно идти по SNI"), то DNS резолвится **на стороне xray/sing-box**, а не на стороне Telegram-клиента
|
||||
|
||||
---
|
||||
|
||||
## Ключевая идея: куда на самом деле идёт соединение решает не то, что вы указали клиенту, а то как L7-роутер трактует SNI
|
||||
|
||||
Механика:
|
||||
|
||||
1) Telegram-клиенту вы можете указать **IP/домен telemt**,как "сервер".
|
||||
2) Между клиентом и telemt стоит xray-core/sing-box, который принимает TCP, читает TLS ClientHello и видит **SNI=petrovich.ru**
|
||||
3) Дальше роутер говорит: "Вижу SNI - направить на апстрим/маршрут N"
|
||||
4) И устанавливает исходящее соединение не "по тому IP, который пользователь подразумевал", а **по домену из SNI** (или по сопоставлению SNI→outbound), используя для определния его IP собственный DNS-кеш или резолвер
|
||||
5) `petrovich.ru` по A-записи указывает **не на IP telemt**, а значит при L7-маршрутизации трафик уйдёт на "оригинальный" сайт за этим доменом, а не в telemt: Telegram-клиент, естественно, не сможет получить ожидаемое поведение, потому что ответить с handshake на той стороне некому
|
||||
|
||||
---
|
||||
|
||||
## Схема №1 "Как это НЕ работает"
|
||||
|
||||
```text
|
||||
Telegram Client
|
||||
|
|
||||
| (указан IP/домен telemt)
|
||||
v
|
||||
telemt instance
|
||||
````
|
||||
|
||||
Ожидание: "я указал telemt -> значит трафик попадёт в telemt" - **нет!**
|
||||
|
||||
---
|
||||
|
||||
## Схема №2. "Как это реально работает с TLS/L7-роутером и SNI"
|
||||
|
||||
```text
|
||||
Telegram Client
|
||||
|
|
||||
| 1) TCP/TLS connection:
|
||||
| - ClientHello:
|
||||
| - SNI=petrovich.ru
|
||||
v
|
||||
xray-core / sing-box / любой L7 router
|
||||
|
|
||||
| 2) читает ClientHello -> вытаскивает SNI
|
||||
| 3) выбирает маршрут по SNI
|
||||
| 4) делает DNS для petrovich.ru
|
||||
| 5) подключается к полученному IP по TLS с этим SNI
|
||||
v
|
||||
"Оригинальный" сайт, A-запись которого не на telemt
|
||||
|
|
||||
X не telemt -> Telegram-клиент не коннектится как ожидалось
|
||||
```
|
||||
|
||||
---
|
||||
|
||||
## Почему указанный в клиенте IP/домен telemt "не спасает"
|
||||
|
||||
Потому что в таком режиме xray/sing-box выступает как **точка терминации TCP/TLS**, можно сказать - TLS-инспектор на уровне ClientHello, это означает:
|
||||
|
||||
* TCP-сессия от Telegram-клиента заканчивается на xray/sing-box
|
||||
* Дальше создаётся **новая** TCP-сессия "от имени" xray/sing-box к апстриму
|
||||
* Выбор апстрима делается правилами роутинга, а в TLS-сценариях самый удобный и распространённый ключ — **SNI**
|
||||
|
||||
То есть, "куда идти дальше" определяется логикой L7-роутера:
|
||||
|
||||
* либо правилами вида `if SNI == petrovich.ru -> outbound X`,
|
||||
* либо более "автоматическим" поведением: `подключаться к тому хосту, который указан в SNI`,
|
||||
* плюс кэш DNS и собственные резолверы роутера
|
||||
|
||||
---
|
||||
|
||||
## Что именно извлекается из TLS ClientHello и почему этого достаточно
|
||||
|
||||
TLS ClientHello отправляется **в начале** TLS-сессии и, в классическом TLS без ECH, содержит SNI в открытом виде.
|
||||
|
||||
Упрощённо:
|
||||
|
||||
```text
|
||||
ClientHello:
|
||||
- supported_versions
|
||||
- cipher_suites
|
||||
- extensions:
|
||||
- server_name: petrovich.ru <-- SNI
|
||||
- alpn: h2/http1.1/...
|
||||
- ...
|
||||
```
|
||||
|
||||
Роутеру не нужно расшифровывать трафик и завершать TLS "как сервер" — часто достаточно просто прочитать первые пакеты и распарсить ClientHello, чтобы получить SNI и принять решение
|
||||
|
||||
---
|
||||
|
||||
## Типовой алгоритм SNI-роутинга
|
||||
|
||||
1. Принять входящий TCP.
|
||||
2. Подождать первые байты.
|
||||
3. Определить протокол:
|
||||
|
||||
* если видим TLS ClientHello → парсим SNI/ALPN
|
||||
4. Применить route rules:
|
||||
|
||||
* match по `server_name` / `domain` / `tls.sni`
|
||||
5. Выбрать outbound:
|
||||
|
||||
* direct / proxy / specific upstream / detour
|
||||
6. Установить исходящее соединение:
|
||||
|
||||
* либо на фиксированный IP:порт,
|
||||
* либо на домен через DNS-resolve на стороне роутера
|
||||
7. Начать проксирование данных между входом и выходом
|
||||
|
||||
---
|
||||
|
||||
## Почему "A-запись фронтинг-домена не на telemt" ломает кейс
|
||||
|
||||
### Ситуация
|
||||
|
||||
* В ClientHello: `SNI = petrovich.ru`
|
||||
* DNS: `petrovich.ru -> 203.0.113.77` - "оригинальный" сайт
|
||||
* telemt живёт на: `198.51.100.10`
|
||||
|
||||
### Что делает роутер
|
||||
|
||||
* Видит SNI `petrovich.ru`
|
||||
* Либо:
|
||||
|
||||
* (а) напрямую коннектится к `petrovich.ru:443`, резолвя A-запись в `203.0.113.77`,
|
||||
* либо:
|
||||
* (б) выбирает outbound, который указывает на `petrovich.ru` как destination,
|
||||
* либо:
|
||||
* (в) делает sniffing/override destination по SNI
|
||||
|
||||
В итоге исходящий коннект идёт на `203.0.113.77:443`, а не на telemt!
|
||||
Другой сервер, другой протокол, другая логика, где telemt не участвует
|
||||
|
||||
---
|
||||
|
||||
## "Где именно происходит подмена destination на SNI"
|
||||
|
||||
Это зависит от конфигурации, но типовые варианты:
|
||||
|
||||
### Вариант A: outbound задан доменом (и он совпадает с SNI)
|
||||
|
||||
Правило по SNI выбирает outbound, у которого destination задан доменом фронтинга,
|
||||
тогда DNS резолвится на стороне роутера и вы уходите на "оригинальный" хост
|
||||
|
||||
### Вариант B: destination override / sniffing
|
||||
|
||||
Роутер "снифает" SNI и **перезаписывает** destination на домен из SNI (даже если вход изначально был на IP telemt),
|
||||
это особенно коварно: пользователь видит "я подключаюсь к IP telemt", но роутер после sniffing решает иначе
|
||||
|
||||
### Вариант C: split DNS / кеш / независимый резолвер
|
||||
|
||||
Даже если клиент "где-то" резолвит иначе, это не важно: конечный DNS для исходящего коннекта — на стороне xray/sing-box,
|
||||
который может иметь:
|
||||
|
||||
* свой DoH/DoT,
|
||||
* свой кеш,
|
||||
* свои правила fake-ip / system resolver,
|
||||
* и, как следствие, своя "карта" **домен/SNI -> IP**
|
||||
|
||||
---
|
||||
|
||||
## Признаки того, что трафик "утёк на оригинал", а не попал в telemt
|
||||
|
||||
* На стороне telemt отсутствуют входящие соединения/логи
|
||||
* На стороне роутера видно, что destination — домен фронтинга, а IP соответствует публичному сайту
|
||||
* TLS-метрики/сертификат на выходе соответствует "оригинальному" сайту в записах трафика
|
||||
* Telegram-клиент получает неожиданный тип ответов/ошибку handshaking/timeout в debug-режиме
|
||||
|
||||
---
|
||||
|
||||
## Best-practice решение для этого кейса: свой домен фронтинга + заглушка на telemt + Let's Encrypt
|
||||
|
||||
### Цель
|
||||
|
||||
Сделать так, чтобы:
|
||||
|
||||
* SNI (фронтинг-домен) **резолвился в IP telemt**,
|
||||
* на IP telemt реально был TLS-сервис с валидным сертификатом под этот домен,
|
||||
* даже если кто-то "попробует открыть домен как сайт", он увидит нормальную заглушку, а не "пустоту"
|
||||
|
||||
### Что это даёт
|
||||
|
||||
* xray/sing-box, маршрутизируя по SNI, будет неизбежно приходить на telemt, потому что DNS(SNI-домен) → IP telemt
|
||||
* Внешний вид будет правдоподобным: обычный домен с обычным сертификатом
|
||||
* Устойчивость: меньше сюрпризов от DNS-кеша/перерезолва/"умных" правил роутера
|
||||
|
||||
---
|
||||
|
||||
## Рекомендуемая схема (целевое состояние)
|
||||
|
||||
```text
|
||||
Telegram Client
|
||||
|
|
||||
| TLS ClientHello: SNI = hello.example.com
|
||||
v
|
||||
xray-core / sing-box
|
||||
|
|
||||
| Route by SNI -> outbound -> connect to hello.example.com:443
|
||||
| DNS(hello.example.com) = IP telemt
|
||||
v
|
||||
telemt instance (IP telemt)
|
||||
|
|
||||
| TLS cert for hello.example.com (Let's Encrypt)
|
||||
| + сайт-заглушка / health endpoint
|
||||
v
|
||||
OK
|
||||
```
|
||||
|
||||
---
|
||||
|
||||
## Практический чеклист (минимальный)
|
||||
|
||||
1. Купить/иметь домен: `hello.example.com`
|
||||
2. В DNS:
|
||||
|
||||
* `A hello.example.com -> <IP telemt>`
|
||||
* (опционально) AAAA, если используете IPv6 и он стабилен
|
||||
3. На telemt-хосте:
|
||||
|
||||
* поднять TLS endpoint на 443 с валидным сертификатом LE под `hello.example.com`
|
||||
* отдать "заглушку" (например, статический сайт), чтобы домен выглядел как обычный веб-сервис
|
||||
4. В xray/sing-box правилах:
|
||||
|
||||
* маршрутизировать нужный трафик по SNI = `hello.example.com` в "правильный" outbound (к telemt)
|
||||
* избегать конфигураций, где destination override уводит на чужой домен
|
||||
5. Важно:
|
||||
|
||||
* если вы используете кеш DNS на роутере — сбросить/обновить его после смены A-записи
|
||||
|
||||
---
|
||||
|
||||
## Пояснение про сайт-заглушку
|
||||
|
||||
Для эмуляции TLS, telemt имеет подсистему TLS-F в `src/tls_front`:
|
||||
- её модуль - fetcher, собирает TLS-профили, чтоб максимально поведенчески корректно повторять TLS конкретно указанного сайта
|
||||
|
||||
Когда вы указываете сайт, который не отвечает по TLS:
|
||||
- fetcher не может собрать TLS-профиль и происходит fallback на `fake_cert_len` - примитивный алгоритм,
|
||||
- он забивает служебную информацию TLS рандомными байтами,
|
||||
- простые системы DPI не распознают это
|
||||
- однако, продвинутые системы, такие как nEdge или Fraud Control в сетях мобильной связи легко заблокируют или замедлят такой трафик
|
||||
|
||||
Создав сайт-заглушку с Let's Encrypt сертификатом, вы даёте TLS-F возможность получить данные сертификата и корректно его "повторять" в дальнейшем
|
||||
|
||||
---
|
||||
|
||||
## Вариант конфиг-подхода: "SNI строго привязываем к telemt - фиксированный IP"
|
||||
|
||||
Чтобы полностью исключить зависимость от DNS если вам это нужно, можно сделать outbound, который ходит на **фиксированный IP telemt**, но при этом выставляет SNI/Host как `hello.example.com`.
|
||||
|
||||
Идея:
|
||||
|
||||
* destination: `IP:443`
|
||||
* SNI: `hello.example.com`
|
||||
* сертификат на telemt именно под `hello.example.com`
|
||||
|
||||
Так вы получаете:
|
||||
|
||||
* TLS выглядит корректно, ведь SNI совпадает с сертификатом,
|
||||
* а routing никогда не уйдёт на "оригинал", потому что A-запись указывает на telemt и контроллируется вами!
|
||||
|
||||
Но в вашем описании проблема как раз в том, что роутер "сам решает по SNI и резолвит домен", поэтому самый универсальный вариант — сделать так, чтобы DNS всегда приводил в telemt
|
||||
|
||||
---
|
||||
|
||||
## Пример логики правил на псевдоконфиге L7-роутера
|
||||
|
||||
```text
|
||||
if inbound is TLS and sni == "hello.example.com":
|
||||
route -> outbound "telemt"
|
||||
else:
|
||||
route -> outbound "default"
|
||||
```
|
||||
|
||||
Outbound `telemt`:
|
||||
|
||||
* destination: `hello.example.com:443`
|
||||
* TLS enabled
|
||||
* SNI: `hello.example.com`
|
||||
|
||||
---
|
||||
|
||||
## Отдельно: что может неожиданно сломать даже "правильный" DNS
|
||||
|
||||
* **Кеширование DNS** на xray/sing-box или на системном резолвере, особенно при смене A-записи
|
||||
* **Split-horizon DNS**: разные ответы внутри/снаружи, попытки подмены/терминирования в других точках
|
||||
* **IPv6**: если есть AAAA и он указывает не туда, роутер может предпочесть IPv6: помните, что поддержка v6 нестабильна и не рекомендуется в prod
|
||||
* **DoH/DoT** на роутере: он может резолвить не тем резолвером, которым вы проверяли
|
||||
|
||||
Минимальная гигиена:
|
||||
|
||||
* контролировать A/AAAA,
|
||||
* держать TTL разумным,
|
||||
* проверять, каким резолвером пользуется именно роутер,
|
||||
* при необходимости отключить/ограничить destination override
|
||||
|
||||
---
|
||||
|
||||
## Итог
|
||||
|
||||
В режиме TLS-fronting с xray-core/sing-box как L7/TLS-роутером **SNI становится приоритетным "source-of-truth" для маршрутизации**
|
||||
|
||||
Если фронтинг-домен по DNS указывает не на IP telemt, роутер честно уводит трафик на "оригинальный" сайт, потому что он строит исходящее соединение "по SNI"
|
||||
|
||||
Надёжное решение для этого кейса:
|
||||
|
||||
* использовать **свой домен** для фронтинга,
|
||||
* направить его **A/AAAA** на IP telemt,
|
||||
* поднять на telemt **TLS-сервис с Let’s Encrypt сертификатом** под этот домен,
|
||||
* (желательно) держать **сайт-заглушку**, чтобы 443 выглядел как обычный HTTPS
|
||||
73
install.sh
Normal file
73
install.sh
Normal file
@@ -0,0 +1,73 @@
|
||||
sudo bash -c '
|
||||
set -e
|
||||
|
||||
# --- Проверка на существующую установку ---
|
||||
if systemctl list-unit-files | grep -q telemt.service; then
|
||||
# --- РЕЖИМ ОБНОВЛЕНИЯ ---
|
||||
echo "--- Обнаружена существующая установка Telemt. Запускаю обновление... ---"
|
||||
|
||||
echo "[*] Остановка службы telemt..."
|
||||
systemctl stop telemt || true # Игнорируем ошибку, если служба уже остановлена
|
||||
|
||||
echo "[1/2] Скачивание последней версии Telemt..."
|
||||
wget -qO- "https://github.com/telemt/telemt/releases/latest/download/telemt-$(uname -m)-linux-$(ldd --version 2>&1 | grep -iq musl && echo musl || echo gnu).tar.gz" | tar -xz
|
||||
|
||||
echo "[1/2] Замена исполняемого файла в /usr/local/bin..."
|
||||
mv telemt /usr/local/bin/telemt
|
||||
chmod +x /usr/local/bin/telemt
|
||||
|
||||
echo "[2/2] Запуск службы..."
|
||||
systemctl start telemt
|
||||
|
||||
echo "--- Обновление Telemt успешно завершено! ---"
|
||||
echo
|
||||
echo "Для проверки статуса службы выполните:"
|
||||
echo " systemctl status telemt"
|
||||
|
||||
else
|
||||
# --- РЕЖИМ НОВОЙ УСТАНОВКИ ---
|
||||
echo "--- Начало автоматической установки Telemt ---"
|
||||
|
||||
# Шаг 1: Скачивание и установка бинарного файла
|
||||
echo "[1/5] Скачивание последней версии Telemt..."
|
||||
wget -qO- "https://github.com/telemt/telemt/releases/latest/download/telemt-$(uname -m)-linux-$(ldd --version 2>&1 | grep -iq musl && echo musl || echo gnu).tar.gz" | tar -xz
|
||||
|
||||
echo "[1/5] Перемещение исполняемого файла в /usr/local/bin и установка прав..."
|
||||
mv telemt /usr/local/bin/telemt
|
||||
chmod +x /usr/local/bin/telemt
|
||||
|
||||
# Шаг 2: Генерация секрета
|
||||
echo "[2/5] Генерация секретного ключа..."
|
||||
SECRET=$(openssl rand -hex 16)
|
||||
|
||||
# Шаг 3: Создание файла конфигурации
|
||||
echo "[3/5] Создание файла конфигурации /etc/telemt.toml..."
|
||||
printf "# === General Settings ===\n[general]\n[general.modes]\nclassic = false\nsecure = false\ntls = true\n\n# === Anti-Censorship & Masking ===\n[censorship]\n# !!! ВАЖНО: Замените на ваш домен или домен, который вы хотите использовать для маскировки !!!\ntls_domain = \"petrovich.ru\"\n\n[access.users]\nhello = \"%s\"\n" "$SECRET" > /etc/telemt.toml
|
||||
|
||||
# Шаг 4: Создание службы Systemd
|
||||
echo "[4/5] Создание службы systemd..."
|
||||
printf "[Unit]\nDescription=Telemt Proxy\nAfter=network.target\n\n[Service]\nType=simple\nExecStart=/usr/local/bin/telemt /etc/telemt.toml\nRestart=on-failure\nRestartSec=5\nLimitNOFILE=65536\n\n[Install]\nWantedBy=multi-user.target\n" > /etc/systemd/system/telemt.service
|
||||
|
||||
# Шаг 5: Запуск службы
|
||||
echo "[5/5] Перезагрузка systemd, запуск и включение службы telemt..."
|
||||
systemctl daemon-reload
|
||||
systemctl start telemt
|
||||
systemctl enable telemt
|
||||
|
||||
echo "--- Установка и запуск Telemt успешно завершены! ---"
|
||||
echo
|
||||
echo "ВАЖНАЯ ИНФОРМАЦИЯ:"
|
||||
echo "==================="
|
||||
echo "1. Вам НЕОБХОДИМО отредактировать файл /etc/telemt.toml и заменить '\''petrovich.ru'\'' на другой домен"
|
||||
echo " с помощью команды:"
|
||||
echo " nano /etc/telemt.toml"
|
||||
echo " После редактирования файла перезапустите службу командой:"
|
||||
echo " sudo systemctl restart telemt"
|
||||
echo
|
||||
echo "2. Для проверки статуса службы выполните команду:"
|
||||
echo " systemctl status telemt"
|
||||
echo
|
||||
echo "3. Для получения ссылок на подключение выполните команду:"
|
||||
echo " journalctl -u telemt -n -g '\''links'\'' --no-pager -o cat | tac"
|
||||
fi
|
||||
'
|
||||
107
src/api/config_store.rs
Normal file
107
src/api/config_store.rs
Normal file
@@ -0,0 +1,107 @@
|
||||
use std::io::Write;
|
||||
use std::path::{Path, PathBuf};
|
||||
|
||||
use hyper::header::IF_MATCH;
|
||||
use sha2::{Digest, Sha256};
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
|
||||
use super::model::ApiFailure;
|
||||
|
||||
pub(super) fn parse_if_match(headers: &hyper::HeaderMap) -> Option<String> {
|
||||
headers
|
||||
.get(IF_MATCH)
|
||||
.and_then(|value| value.to_str().ok())
|
||||
.map(str::trim)
|
||||
.filter(|value| !value.is_empty())
|
||||
.map(|value| value.trim_matches('"').to_string())
|
||||
}
|
||||
|
||||
pub(super) async fn ensure_expected_revision(
|
||||
config_path: &Path,
|
||||
expected_revision: Option<&str>,
|
||||
) -> Result<(), ApiFailure> {
|
||||
let Some(expected) = expected_revision else {
|
||||
return Ok(());
|
||||
};
|
||||
let current = current_revision(config_path).await?;
|
||||
if current != expected {
|
||||
return Err(ApiFailure::new(
|
||||
hyper::StatusCode::CONFLICT,
|
||||
"revision_conflict",
|
||||
"Config revision mismatch",
|
||||
));
|
||||
}
|
||||
Ok(())
|
||||
}
|
||||
|
||||
pub(super) async fn current_revision(config_path: &Path) -> Result<String, ApiFailure> {
|
||||
let content = tokio::fs::read_to_string(config_path)
|
||||
.await
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to read config: {}", e)))?;
|
||||
Ok(compute_revision(&content))
|
||||
}
|
||||
|
||||
pub(super) fn compute_revision(content: &str) -> String {
|
||||
let mut hasher = Sha256::new();
|
||||
hasher.update(content.as_bytes());
|
||||
hex::encode(hasher.finalize())
|
||||
}
|
||||
|
||||
pub(super) async fn load_config_from_disk(config_path: &Path) -> Result<ProxyConfig, ApiFailure> {
|
||||
let config_path = config_path.to_path_buf();
|
||||
tokio::task::spawn_blocking(move || ProxyConfig::load(config_path))
|
||||
.await
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to join config loader: {}", e)))?
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to load config: {}", e)))
|
||||
}
|
||||
|
||||
pub(super) async fn save_config_to_disk(
|
||||
config_path: &Path,
|
||||
cfg: &ProxyConfig,
|
||||
) -> Result<String, ApiFailure> {
|
||||
let serialized = toml::to_string_pretty(cfg)
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to serialize config: {}", e)))?;
|
||||
write_atomic(config_path.to_path_buf(), serialized.clone()).await?;
|
||||
Ok(compute_revision(&serialized))
|
||||
}
|
||||
|
||||
async fn write_atomic(path: PathBuf, contents: String) -> Result<(), ApiFailure> {
|
||||
tokio::task::spawn_blocking(move || write_atomic_sync(&path, &contents))
|
||||
.await
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to join writer: {}", e)))?
|
||||
.map_err(|e| ApiFailure::internal(format!("failed to write config: {}", e)))
|
||||
}
|
||||
|
||||
fn write_atomic_sync(path: &Path, contents: &str) -> std::io::Result<()> {
|
||||
let parent = path.parent().unwrap_or_else(|| Path::new("."));
|
||||
std::fs::create_dir_all(parent)?;
|
||||
|
||||
let tmp_name = format!(
|
||||
".{}.tmp-{}",
|
||||
path.file_name()
|
||||
.and_then(|s| s.to_str())
|
||||
.unwrap_or("config.toml"),
|
||||
rand::random::<u64>()
|
||||
);
|
||||
let tmp_path = parent.join(tmp_name);
|
||||
|
||||
let write_result = (|| {
|
||||
let mut file = std::fs::OpenOptions::new()
|
||||
.create_new(true)
|
||||
.write(true)
|
||||
.open(&tmp_path)?;
|
||||
file.write_all(contents.as_bytes())?;
|
||||
file.sync_all()?;
|
||||
std::fs::rename(&tmp_path, path)?;
|
||||
if let Ok(dir) = std::fs::File::open(parent) {
|
||||
let _ = dir.sync_all();
|
||||
}
|
||||
Ok(())
|
||||
})();
|
||||
|
||||
if write_result.is_err() {
|
||||
let _ = std::fs::remove_file(&tmp_path);
|
||||
}
|
||||
write_result
|
||||
}
|
||||
443
src/api/mod.rs
Normal file
443
src/api/mod.rs
Normal file
@@ -0,0 +1,443 @@
|
||||
use std::convert::Infallible;
|
||||
use std::net::{IpAddr, SocketAddr};
|
||||
use std::path::PathBuf;
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::{AtomicU64, Ordering};
|
||||
|
||||
use http_body_util::{BodyExt, Full};
|
||||
use hyper::body::{Bytes, Incoming};
|
||||
use hyper::header::AUTHORIZATION;
|
||||
use hyper::server::conn::http1;
|
||||
use hyper::service::service_fn;
|
||||
use hyper::{Method, Request, Response, StatusCode};
|
||||
use serde::Serialize;
|
||||
use serde::de::DeserializeOwned;
|
||||
use tokio::net::TcpListener;
|
||||
use tokio::sync::{Mutex, watch};
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::ip_tracker::UserIpTracker;
|
||||
use crate::stats::Stats;
|
||||
use crate::transport::middle_proxy::MePool;
|
||||
use crate::transport::UpstreamManager;
|
||||
|
||||
mod config_store;
|
||||
mod model;
|
||||
mod runtime_stats;
|
||||
mod users;
|
||||
|
||||
use config_store::{current_revision, parse_if_match};
|
||||
use model::{
|
||||
ApiFailure, CreateUserRequest, ErrorBody, ErrorResponse, HealthData, PatchUserRequest,
|
||||
RotateSecretRequest, SuccessResponse, SummaryData,
|
||||
};
|
||||
use runtime_stats::{
|
||||
MinimalCacheEntry, build_dcs_data, build_me_writers_data, build_minimal_all_data,
|
||||
build_upstreams_data, build_zero_all_data,
|
||||
};
|
||||
use users::{create_user, delete_user, patch_user, rotate_secret, users_from_config};
|
||||
|
||||
#[derive(Clone)]
|
||||
pub(super) struct ApiShared {
|
||||
pub(super) stats: Arc<Stats>,
|
||||
pub(super) ip_tracker: Arc<UserIpTracker>,
|
||||
pub(super) me_pool: Option<Arc<MePool>>,
|
||||
pub(super) upstream_manager: Arc<UpstreamManager>,
|
||||
pub(super) config_path: PathBuf,
|
||||
pub(super) startup_detected_ip_v4: Option<IpAddr>,
|
||||
pub(super) startup_detected_ip_v6: Option<IpAddr>,
|
||||
pub(super) mutation_lock: Arc<Mutex<()>>,
|
||||
pub(super) minimal_cache: Arc<Mutex<Option<MinimalCacheEntry>>>,
|
||||
pub(super) request_id: Arc<AtomicU64>,
|
||||
}
|
||||
|
||||
impl ApiShared {
|
||||
fn next_request_id(&self) -> u64 {
|
||||
self.request_id.fetch_add(1, Ordering::Relaxed)
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn serve(
|
||||
listen: SocketAddr,
|
||||
stats: Arc<Stats>,
|
||||
ip_tracker: Arc<UserIpTracker>,
|
||||
me_pool: Option<Arc<MePool>>,
|
||||
upstream_manager: Arc<UpstreamManager>,
|
||||
config_rx: watch::Receiver<Arc<ProxyConfig>>,
|
||||
config_path: PathBuf,
|
||||
startup_detected_ip_v4: Option<IpAddr>,
|
||||
startup_detected_ip_v6: Option<IpAddr>,
|
||||
) {
|
||||
let listener = match TcpListener::bind(listen).await {
|
||||
Ok(listener) => listener,
|
||||
Err(error) => {
|
||||
warn!(
|
||||
error = %error,
|
||||
listen = %listen,
|
||||
"Failed to bind API listener"
|
||||
);
|
||||
return;
|
||||
}
|
||||
};
|
||||
|
||||
info!("API endpoint: http://{}/v1/*", listen);
|
||||
|
||||
let shared = Arc::new(ApiShared {
|
||||
stats,
|
||||
ip_tracker,
|
||||
me_pool,
|
||||
upstream_manager,
|
||||
config_path,
|
||||
startup_detected_ip_v4,
|
||||
startup_detected_ip_v6,
|
||||
mutation_lock: Arc::new(Mutex::new(())),
|
||||
minimal_cache: Arc::new(Mutex::new(None)),
|
||||
request_id: Arc::new(AtomicU64::new(1)),
|
||||
});
|
||||
|
||||
loop {
|
||||
let (stream, peer) = match listener.accept().await {
|
||||
Ok(v) => v,
|
||||
Err(error) => {
|
||||
warn!(error = %error, "API accept error");
|
||||
continue;
|
||||
}
|
||||
};
|
||||
|
||||
let shared_conn = shared.clone();
|
||||
let config_rx_conn = config_rx.clone();
|
||||
tokio::spawn(async move {
|
||||
let svc = service_fn(move |req: Request<Incoming>| {
|
||||
let shared_req = shared_conn.clone();
|
||||
let config_rx_req = config_rx_conn.clone();
|
||||
async move { handle(req, peer, shared_req, config_rx_req).await }
|
||||
});
|
||||
if let Err(error) = http1::Builder::new()
|
||||
.serve_connection(hyper_util::rt::TokioIo::new(stream), svc)
|
||||
.await
|
||||
{
|
||||
debug!(error = %error, "API connection error");
|
||||
}
|
||||
});
|
||||
}
|
||||
}
|
||||
|
||||
async fn handle(
|
||||
req: Request<Incoming>,
|
||||
peer: SocketAddr,
|
||||
shared: Arc<ApiShared>,
|
||||
config_rx: watch::Receiver<Arc<ProxyConfig>>,
|
||||
) -> Result<Response<Full<Bytes>>, Infallible> {
|
||||
let request_id = shared.next_request_id();
|
||||
let cfg = config_rx.borrow().clone();
|
||||
let api_cfg = &cfg.server.api;
|
||||
|
||||
if !api_cfg.enabled {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::SERVICE_UNAVAILABLE,
|
||||
"api_disabled",
|
||||
"API is disabled",
|
||||
),
|
||||
));
|
||||
}
|
||||
|
||||
if !api_cfg.whitelist.is_empty()
|
||||
&& !api_cfg
|
||||
.whitelist
|
||||
.iter()
|
||||
.any(|net| net.contains(peer.ip()))
|
||||
{
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(StatusCode::FORBIDDEN, "forbidden", "Source IP is not allowed"),
|
||||
));
|
||||
}
|
||||
|
||||
if !api_cfg.auth_header.is_empty() {
|
||||
let auth_ok = req
|
||||
.headers()
|
||||
.get(AUTHORIZATION)
|
||||
.and_then(|v| v.to_str().ok())
|
||||
.map(|v| v == api_cfg.auth_header)
|
||||
.unwrap_or(false);
|
||||
if !auth_ok {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::UNAUTHORIZED,
|
||||
"unauthorized",
|
||||
"Missing or invalid Authorization header",
|
||||
),
|
||||
));
|
||||
}
|
||||
}
|
||||
|
||||
let method = req.method().clone();
|
||||
let path = req.uri().path().to_string();
|
||||
let body_limit = api_cfg.request_body_limit_bytes;
|
||||
|
||||
let result: Result<Response<Full<Bytes>>, ApiFailure> = async {
|
||||
match (method.as_str(), path.as_str()) {
|
||||
("GET", "/v1/health") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = HealthData {
|
||||
status: "ok",
|
||||
read_only: api_cfg.read_only,
|
||||
};
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/summary") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = SummaryData {
|
||||
uptime_seconds: shared.stats.uptime_secs(),
|
||||
connections_total: shared.stats.get_connects_all(),
|
||||
connections_bad_total: shared.stats.get_connects_bad(),
|
||||
handshake_timeouts_total: shared.stats.get_handshake_timeouts(),
|
||||
configured_users: cfg.access.users.len(),
|
||||
};
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/zero/all") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = build_zero_all_data(&shared.stats, cfg.access.users.len());
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/upstreams") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = build_upstreams_data(shared.as_ref(), api_cfg);
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/minimal/all") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = build_minimal_all_data(shared.as_ref(), api_cfg).await;
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/me-writers") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = build_me_writers_data(shared.as_ref(), api_cfg).await;
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/dcs") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let data = build_dcs_data(shared.as_ref(), api_cfg).await;
|
||||
Ok(success_response(StatusCode::OK, data, revision))
|
||||
}
|
||||
("GET", "/v1/stats/users") | ("GET", "/v1/users") => {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let users = users_from_config(
|
||||
&cfg,
|
||||
&shared.stats,
|
||||
&shared.ip_tracker,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
)
|
||||
.await;
|
||||
Ok(success_response(StatusCode::OK, users, revision))
|
||||
}
|
||||
("POST", "/v1/users") => {
|
||||
if api_cfg.read_only {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::FORBIDDEN,
|
||||
"read_only",
|
||||
"API runs in read-only mode",
|
||||
),
|
||||
));
|
||||
}
|
||||
let expected_revision = parse_if_match(req.headers());
|
||||
let body = read_json::<CreateUserRequest>(req.into_body(), body_limit).await?;
|
||||
let (data, revision) = create_user(body, expected_revision, &shared).await?;
|
||||
Ok(success_response(StatusCode::CREATED, data, revision))
|
||||
}
|
||||
_ => {
|
||||
if let Some(user) = path.strip_prefix("/v1/users/")
|
||||
&& !user.is_empty()
|
||||
&& !user.contains('/')
|
||||
{
|
||||
if method == Method::GET {
|
||||
let revision = current_revision(&shared.config_path).await?;
|
||||
let users = users_from_config(
|
||||
&cfg,
|
||||
&shared.stats,
|
||||
&shared.ip_tracker,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
)
|
||||
.await;
|
||||
if let Some(user_info) = users.into_iter().find(|entry| entry.username == user)
|
||||
{
|
||||
return Ok(success_response(StatusCode::OK, user_info, revision));
|
||||
}
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(StatusCode::NOT_FOUND, "not_found", "User not found"),
|
||||
));
|
||||
}
|
||||
if method == Method::PATCH {
|
||||
if api_cfg.read_only {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::FORBIDDEN,
|
||||
"read_only",
|
||||
"API runs in read-only mode",
|
||||
),
|
||||
));
|
||||
}
|
||||
let expected_revision = parse_if_match(req.headers());
|
||||
let body = read_json::<PatchUserRequest>(req.into_body(), body_limit).await?;
|
||||
let (data, revision) =
|
||||
patch_user(user, body, expected_revision, &shared).await?;
|
||||
return Ok(success_response(StatusCode::OK, data, revision));
|
||||
}
|
||||
if method == Method::DELETE {
|
||||
if api_cfg.read_only {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::FORBIDDEN,
|
||||
"read_only",
|
||||
"API runs in read-only mode",
|
||||
),
|
||||
));
|
||||
}
|
||||
let expected_revision = parse_if_match(req.headers());
|
||||
let (deleted_user, revision) =
|
||||
delete_user(user, expected_revision, &shared).await?;
|
||||
return Ok(success_response(StatusCode::OK, deleted_user, revision));
|
||||
}
|
||||
if method == Method::POST
|
||||
&& let Some(base_user) = user.strip_suffix("/rotate-secret")
|
||||
&& !base_user.is_empty()
|
||||
&& !base_user.contains('/')
|
||||
{
|
||||
if api_cfg.read_only {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::FORBIDDEN,
|
||||
"read_only",
|
||||
"API runs in read-only mode",
|
||||
),
|
||||
));
|
||||
}
|
||||
let expected_revision = parse_if_match(req.headers());
|
||||
let body =
|
||||
read_optional_json::<RotateSecretRequest>(req.into_body(), body_limit)
|
||||
.await?;
|
||||
let (data, revision) =
|
||||
rotate_secret(base_user, body.unwrap_or_default(), expected_revision, &shared)
|
||||
.await?;
|
||||
return Ok(success_response(StatusCode::OK, data, revision));
|
||||
}
|
||||
if method == Method::POST {
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(StatusCode::NOT_FOUND, "not_found", "Route not found"),
|
||||
));
|
||||
}
|
||||
return Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(
|
||||
StatusCode::METHOD_NOT_ALLOWED,
|
||||
"method_not_allowed",
|
||||
"Unsupported HTTP method for this route",
|
||||
),
|
||||
));
|
||||
}
|
||||
Ok(error_response(
|
||||
request_id,
|
||||
ApiFailure::new(StatusCode::NOT_FOUND, "not_found", "Route not found"),
|
||||
))
|
||||
}
|
||||
}
|
||||
}
|
||||
.await;
|
||||
|
||||
match result {
|
||||
Ok(resp) => Ok(resp),
|
||||
Err(error) => Ok(error_response(request_id, error)),
|
||||
}
|
||||
}
|
||||
|
||||
fn success_response<T: Serialize>(
|
||||
status: StatusCode,
|
||||
data: T,
|
||||
revision: String,
|
||||
) -> Response<Full<Bytes>> {
|
||||
let payload = SuccessResponse {
|
||||
ok: true,
|
||||
data,
|
||||
revision,
|
||||
};
|
||||
let body = serde_json::to_vec(&payload).unwrap_or_else(|_| b"{\"ok\":false}".to_vec());
|
||||
Response::builder()
|
||||
.status(status)
|
||||
.header("content-type", "application/json; charset=utf-8")
|
||||
.body(Full::new(Bytes::from(body)))
|
||||
.unwrap()
|
||||
}
|
||||
|
||||
fn error_response(request_id: u64, failure: ApiFailure) -> Response<Full<Bytes>> {
|
||||
let payload = ErrorResponse {
|
||||
ok: false,
|
||||
error: ErrorBody {
|
||||
code: failure.code,
|
||||
message: failure.message,
|
||||
},
|
||||
request_id,
|
||||
};
|
||||
let body = serde_json::to_vec(&payload).unwrap_or_else(|_| {
|
||||
format!(
|
||||
"{{\"ok\":false,\"error\":{{\"code\":\"internal_error\",\"message\":\"serialization failed\"}},\"request_id\":{}}}",
|
||||
request_id
|
||||
)
|
||||
.into_bytes()
|
||||
});
|
||||
Response::builder()
|
||||
.status(failure.status)
|
||||
.header("content-type", "application/json; charset=utf-8")
|
||||
.body(Full::new(Bytes::from(body)))
|
||||
.unwrap()
|
||||
}
|
||||
|
||||
async fn read_json<T: DeserializeOwned>(body: Incoming, limit: usize) -> Result<T, ApiFailure> {
|
||||
let bytes = read_body_with_limit(body, limit).await?;
|
||||
serde_json::from_slice(&bytes).map_err(|_| ApiFailure::bad_request("Invalid JSON body"))
|
||||
}
|
||||
|
||||
async fn read_optional_json<T: DeserializeOwned>(
|
||||
body: Incoming,
|
||||
limit: usize,
|
||||
) -> Result<Option<T>, ApiFailure> {
|
||||
let bytes = read_body_with_limit(body, limit).await?;
|
||||
if bytes.is_empty() {
|
||||
return Ok(None);
|
||||
}
|
||||
serde_json::from_slice(&bytes)
|
||||
.map(Some)
|
||||
.map_err(|_| ApiFailure::bad_request("Invalid JSON body"))
|
||||
}
|
||||
|
||||
async fn read_body_with_limit(body: Incoming, limit: usize) -> Result<Vec<u8>, ApiFailure> {
|
||||
let mut collected = Vec::new();
|
||||
let mut body = body;
|
||||
while let Some(frame_result) = body.frame().await {
|
||||
let frame = frame_result.map_err(|_| ApiFailure::bad_request("Invalid request body"))?;
|
||||
if let Some(chunk) = frame.data_ref() {
|
||||
if collected.len().saturating_add(chunk.len()) > limit {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::PAYLOAD_TOO_LARGE,
|
||||
"payload_too_large",
|
||||
format!("Body exceeds {} bytes", limit),
|
||||
));
|
||||
}
|
||||
collected.extend_from_slice(chunk);
|
||||
}
|
||||
}
|
||||
Ok(collected)
|
||||
}
|
||||
444
src/api/model.rs
Normal file
444
src/api/model.rs
Normal file
@@ -0,0 +1,444 @@
|
||||
use std::net::IpAddr;
|
||||
|
||||
use chrono::{DateTime, Utc};
|
||||
use hyper::StatusCode;
|
||||
use rand::Rng;
|
||||
use serde::{Deserialize, Serialize};
|
||||
|
||||
const MAX_USERNAME_LEN: usize = 64;
|
||||
|
||||
#[derive(Debug)]
|
||||
pub(super) struct ApiFailure {
|
||||
pub(super) status: StatusCode,
|
||||
pub(super) code: &'static str,
|
||||
pub(super) message: String,
|
||||
}
|
||||
|
||||
impl ApiFailure {
|
||||
pub(super) fn new(status: StatusCode, code: &'static str, message: impl Into<String>) -> Self {
|
||||
Self {
|
||||
status,
|
||||
code,
|
||||
message: message.into(),
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) fn internal(message: impl Into<String>) -> Self {
|
||||
Self::new(StatusCode::INTERNAL_SERVER_ERROR, "internal_error", message)
|
||||
}
|
||||
|
||||
pub(super) fn bad_request(message: impl Into<String>) -> Self {
|
||||
Self::new(StatusCode::BAD_REQUEST, "bad_request", message)
|
||||
}
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct ErrorBody {
|
||||
pub(super) code: &'static str,
|
||||
pub(super) message: String,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct ErrorResponse {
|
||||
pub(super) ok: bool,
|
||||
pub(super) error: ErrorBody,
|
||||
pub(super) request_id: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct SuccessResponse<T> {
|
||||
pub(super) ok: bool,
|
||||
pub(super) data: T,
|
||||
pub(super) revision: String,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct HealthData {
|
||||
pub(super) status: &'static str,
|
||||
pub(super) read_only: bool,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct SummaryData {
|
||||
pub(super) uptime_seconds: f64,
|
||||
pub(super) connections_total: u64,
|
||||
pub(super) connections_bad_total: u64,
|
||||
pub(super) handshake_timeouts_total: u64,
|
||||
pub(super) configured_users: usize,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroCodeCount {
|
||||
pub(super) code: i32,
|
||||
pub(super) total: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroCoreData {
|
||||
pub(super) uptime_seconds: f64,
|
||||
pub(super) connections_total: u64,
|
||||
pub(super) connections_bad_total: u64,
|
||||
pub(super) handshake_timeouts_total: u64,
|
||||
pub(super) configured_users: usize,
|
||||
pub(super) telemetry_core_enabled: bool,
|
||||
pub(super) telemetry_user_enabled: bool,
|
||||
pub(super) telemetry_me_level: String,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroUpstreamData {
|
||||
pub(super) connect_attempt_total: u64,
|
||||
pub(super) connect_success_total: u64,
|
||||
pub(super) connect_fail_total: u64,
|
||||
pub(super) connect_failfast_hard_error_total: u64,
|
||||
pub(super) connect_attempts_bucket_1: u64,
|
||||
pub(super) connect_attempts_bucket_2: u64,
|
||||
pub(super) connect_attempts_bucket_3_4: u64,
|
||||
pub(super) connect_attempts_bucket_gt_4: u64,
|
||||
pub(super) connect_duration_success_bucket_le_100ms: u64,
|
||||
pub(super) connect_duration_success_bucket_101_500ms: u64,
|
||||
pub(super) connect_duration_success_bucket_501_1000ms: u64,
|
||||
pub(super) connect_duration_success_bucket_gt_1000ms: u64,
|
||||
pub(super) connect_duration_fail_bucket_le_100ms: u64,
|
||||
pub(super) connect_duration_fail_bucket_101_500ms: u64,
|
||||
pub(super) connect_duration_fail_bucket_501_1000ms: u64,
|
||||
pub(super) connect_duration_fail_bucket_gt_1000ms: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct UpstreamDcStatus {
|
||||
pub(super) dc: i16,
|
||||
pub(super) latency_ema_ms: Option<f64>,
|
||||
pub(super) ip_preference: &'static str,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct UpstreamStatus {
|
||||
pub(super) upstream_id: usize,
|
||||
pub(super) route_kind: &'static str,
|
||||
pub(super) address: String,
|
||||
pub(super) weight: u16,
|
||||
pub(super) scopes: String,
|
||||
pub(super) healthy: bool,
|
||||
pub(super) fails: u32,
|
||||
pub(super) last_check_age_secs: u64,
|
||||
pub(super) effective_latency_ms: Option<f64>,
|
||||
pub(super) dc: Vec<UpstreamDcStatus>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct UpstreamSummaryData {
|
||||
pub(super) configured_total: usize,
|
||||
pub(super) healthy_total: usize,
|
||||
pub(super) unhealthy_total: usize,
|
||||
pub(super) direct_total: usize,
|
||||
pub(super) socks4_total: usize,
|
||||
pub(super) socks5_total: usize,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct UpstreamsData {
|
||||
pub(super) enabled: bool,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) reason: Option<&'static str>,
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
pub(super) zero: ZeroUpstreamData,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) summary: Option<UpstreamSummaryData>,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) upstreams: Option<Vec<UpstreamStatus>>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroMiddleProxyData {
|
||||
pub(super) keepalive_sent_total: u64,
|
||||
pub(super) keepalive_failed_total: u64,
|
||||
pub(super) keepalive_pong_total: u64,
|
||||
pub(super) keepalive_timeout_total: u64,
|
||||
pub(super) rpc_proxy_req_signal_sent_total: u64,
|
||||
pub(super) rpc_proxy_req_signal_failed_total: u64,
|
||||
pub(super) rpc_proxy_req_signal_skipped_no_meta_total: u64,
|
||||
pub(super) rpc_proxy_req_signal_response_total: u64,
|
||||
pub(super) rpc_proxy_req_signal_close_sent_total: u64,
|
||||
pub(super) reconnect_attempt_total: u64,
|
||||
pub(super) reconnect_success_total: u64,
|
||||
pub(super) handshake_reject_total: u64,
|
||||
pub(super) handshake_error_codes: Vec<ZeroCodeCount>,
|
||||
pub(super) reader_eof_total: u64,
|
||||
pub(super) idle_close_by_peer_total: u64,
|
||||
pub(super) route_drop_no_conn_total: u64,
|
||||
pub(super) route_drop_channel_closed_total: u64,
|
||||
pub(super) route_drop_queue_full_total: u64,
|
||||
pub(super) route_drop_queue_full_base_total: u64,
|
||||
pub(super) route_drop_queue_full_high_total: u64,
|
||||
pub(super) socks_kdf_strict_reject_total: u64,
|
||||
pub(super) socks_kdf_compat_fallback_total: u64,
|
||||
pub(super) endpoint_quarantine_total: u64,
|
||||
pub(super) kdf_drift_total: u64,
|
||||
pub(super) kdf_port_only_drift_total: u64,
|
||||
pub(super) hardswap_pending_reuse_total: u64,
|
||||
pub(super) hardswap_pending_ttl_expired_total: u64,
|
||||
pub(super) single_endpoint_outage_enter_total: u64,
|
||||
pub(super) single_endpoint_outage_exit_total: u64,
|
||||
pub(super) single_endpoint_outage_reconnect_attempt_total: u64,
|
||||
pub(super) single_endpoint_outage_reconnect_success_total: u64,
|
||||
pub(super) single_endpoint_quarantine_bypass_total: u64,
|
||||
pub(super) single_endpoint_shadow_rotate_total: u64,
|
||||
pub(super) single_endpoint_shadow_rotate_skipped_quarantine_total: u64,
|
||||
pub(super) floor_mode_switch_total: u64,
|
||||
pub(super) floor_mode_switch_static_to_adaptive_total: u64,
|
||||
pub(super) floor_mode_switch_adaptive_to_static_total: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroPoolData {
|
||||
pub(super) pool_swap_total: u64,
|
||||
pub(super) pool_drain_active: u64,
|
||||
pub(super) pool_force_close_total: u64,
|
||||
pub(super) pool_stale_pick_total: u64,
|
||||
pub(super) writer_removed_total: u64,
|
||||
pub(super) writer_removed_unexpected_total: u64,
|
||||
pub(super) refill_triggered_total: u64,
|
||||
pub(super) refill_skipped_inflight_total: u64,
|
||||
pub(super) refill_failed_total: u64,
|
||||
pub(super) writer_restored_same_endpoint_total: u64,
|
||||
pub(super) writer_restored_fallback_total: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroDesyncData {
|
||||
pub(super) secure_padding_invalid_total: u64,
|
||||
pub(super) desync_total: u64,
|
||||
pub(super) desync_full_logged_total: u64,
|
||||
pub(super) desync_suppressed_total: u64,
|
||||
pub(super) desync_frames_bucket_0: u64,
|
||||
pub(super) desync_frames_bucket_1_2: u64,
|
||||
pub(super) desync_frames_bucket_3_10: u64,
|
||||
pub(super) desync_frames_bucket_gt_10: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct ZeroAllData {
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
pub(super) core: ZeroCoreData,
|
||||
pub(super) upstream: ZeroUpstreamData,
|
||||
pub(super) middle_proxy: ZeroMiddleProxyData,
|
||||
pub(super) pool: ZeroPoolData,
|
||||
pub(super) desync: ZeroDesyncData,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MeWritersSummary {
|
||||
pub(super) configured_dc_groups: usize,
|
||||
pub(super) configured_endpoints: usize,
|
||||
pub(super) available_endpoints: usize,
|
||||
pub(super) available_pct: f64,
|
||||
pub(super) required_writers: usize,
|
||||
pub(super) alive_writers: usize,
|
||||
pub(super) coverage_pct: f64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MeWriterStatus {
|
||||
pub(super) writer_id: u64,
|
||||
pub(super) dc: Option<i16>,
|
||||
pub(super) endpoint: String,
|
||||
pub(super) generation: u64,
|
||||
pub(super) state: &'static str,
|
||||
pub(super) draining: bool,
|
||||
pub(super) degraded: bool,
|
||||
pub(super) bound_clients: usize,
|
||||
pub(super) idle_for_secs: Option<u64>,
|
||||
pub(super) rtt_ema_ms: Option<f64>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MeWritersData {
|
||||
pub(super) middle_proxy_enabled: bool,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) reason: Option<&'static str>,
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
pub(super) summary: MeWritersSummary,
|
||||
pub(super) writers: Vec<MeWriterStatus>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct DcStatus {
|
||||
pub(super) dc: i16,
|
||||
pub(super) endpoints: Vec<String>,
|
||||
pub(super) available_endpoints: usize,
|
||||
pub(super) available_pct: f64,
|
||||
pub(super) required_writers: usize,
|
||||
pub(super) alive_writers: usize,
|
||||
pub(super) coverage_pct: f64,
|
||||
pub(super) rtt_ms: Option<f64>,
|
||||
pub(super) load: usize,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct DcStatusData {
|
||||
pub(super) middle_proxy_enabled: bool,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) reason: Option<&'static str>,
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
pub(super) dcs: Vec<DcStatus>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MinimalQuarantineData {
|
||||
pub(super) endpoint: String,
|
||||
pub(super) remaining_ms: u64,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MinimalDcPathData {
|
||||
pub(super) dc: i16,
|
||||
pub(super) ip_preference: Option<&'static str>,
|
||||
pub(super) selected_addr_v4: Option<String>,
|
||||
pub(super) selected_addr_v6: Option<String>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MinimalMeRuntimeData {
|
||||
pub(super) active_generation: u64,
|
||||
pub(super) warm_generation: u64,
|
||||
pub(super) pending_hardswap_generation: u64,
|
||||
pub(super) pending_hardswap_age_secs: Option<u64>,
|
||||
pub(super) hardswap_enabled: bool,
|
||||
pub(super) floor_mode: &'static str,
|
||||
pub(super) adaptive_floor_idle_secs: u64,
|
||||
pub(super) adaptive_floor_min_writers_single_endpoint: u8,
|
||||
pub(super) adaptive_floor_recover_grace_secs: u64,
|
||||
pub(super) me_keepalive_enabled: bool,
|
||||
pub(super) me_keepalive_interval_secs: u64,
|
||||
pub(super) me_keepalive_jitter_secs: u64,
|
||||
pub(super) me_keepalive_payload_random: bool,
|
||||
pub(super) rpc_proxy_req_every_secs: u64,
|
||||
pub(super) me_reconnect_max_concurrent_per_dc: u32,
|
||||
pub(super) me_reconnect_backoff_base_ms: u64,
|
||||
pub(super) me_reconnect_backoff_cap_ms: u64,
|
||||
pub(super) me_reconnect_fast_retry_count: u32,
|
||||
pub(super) me_pool_drain_ttl_secs: u64,
|
||||
pub(super) me_pool_force_close_secs: u64,
|
||||
pub(super) me_pool_min_fresh_ratio: f32,
|
||||
pub(super) me_bind_stale_mode: &'static str,
|
||||
pub(super) me_bind_stale_ttl_secs: u64,
|
||||
pub(super) me_single_endpoint_shadow_writers: u8,
|
||||
pub(super) me_single_endpoint_outage_mode_enabled: bool,
|
||||
pub(super) me_single_endpoint_outage_disable_quarantine: bool,
|
||||
pub(super) me_single_endpoint_outage_backoff_min_ms: u64,
|
||||
pub(super) me_single_endpoint_outage_backoff_max_ms: u64,
|
||||
pub(super) me_single_endpoint_shadow_rotate_every_secs: u64,
|
||||
pub(super) me_deterministic_writer_sort: bool,
|
||||
pub(super) me_socks_kdf_policy: &'static str,
|
||||
pub(super) quarantined_endpoints_total: usize,
|
||||
pub(super) quarantined_endpoints: Vec<MinimalQuarantineData>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MinimalAllPayload {
|
||||
pub(super) me_writers: MeWritersData,
|
||||
pub(super) dcs: DcStatusData,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) me_runtime: Option<MinimalMeRuntimeData>,
|
||||
pub(super) network_path: Vec<MinimalDcPathData>,
|
||||
}
|
||||
|
||||
#[derive(Serialize, Clone)]
|
||||
pub(super) struct MinimalAllData {
|
||||
pub(super) enabled: bool,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) reason: Option<&'static str>,
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
#[serde(skip_serializing_if = "Option::is_none")]
|
||||
pub(super) data: Option<MinimalAllPayload>,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct UserLinks {
|
||||
pub(super) classic: Vec<String>,
|
||||
pub(super) secure: Vec<String>,
|
||||
pub(super) tls: Vec<String>,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct UserInfo {
|
||||
pub(super) username: String,
|
||||
pub(super) user_ad_tag: Option<String>,
|
||||
pub(super) max_tcp_conns: Option<usize>,
|
||||
pub(super) expiration_rfc3339: Option<String>,
|
||||
pub(super) data_quota_bytes: Option<u64>,
|
||||
pub(super) max_unique_ips: Option<usize>,
|
||||
pub(super) current_connections: u64,
|
||||
pub(super) active_unique_ips: usize,
|
||||
pub(super) active_unique_ips_list: Vec<IpAddr>,
|
||||
pub(super) recent_unique_ips: usize,
|
||||
pub(super) recent_unique_ips_list: Vec<IpAddr>,
|
||||
pub(super) total_octets: u64,
|
||||
pub(super) links: UserLinks,
|
||||
}
|
||||
|
||||
#[derive(Serialize)]
|
||||
pub(super) struct CreateUserResponse {
|
||||
pub(super) user: UserInfo,
|
||||
pub(super) secret: String,
|
||||
}
|
||||
|
||||
#[derive(Deserialize)]
|
||||
pub(super) struct CreateUserRequest {
|
||||
pub(super) username: String,
|
||||
pub(super) secret: Option<String>,
|
||||
pub(super) user_ad_tag: Option<String>,
|
||||
pub(super) max_tcp_conns: Option<usize>,
|
||||
pub(super) expiration_rfc3339: Option<String>,
|
||||
pub(super) data_quota_bytes: Option<u64>,
|
||||
pub(super) max_unique_ips: Option<usize>,
|
||||
}
|
||||
|
||||
#[derive(Deserialize)]
|
||||
pub(super) struct PatchUserRequest {
|
||||
pub(super) secret: Option<String>,
|
||||
pub(super) user_ad_tag: Option<String>,
|
||||
pub(super) max_tcp_conns: Option<usize>,
|
||||
pub(super) expiration_rfc3339: Option<String>,
|
||||
pub(super) data_quota_bytes: Option<u64>,
|
||||
pub(super) max_unique_ips: Option<usize>,
|
||||
}
|
||||
|
||||
#[derive(Default, Deserialize)]
|
||||
pub(super) struct RotateSecretRequest {
|
||||
pub(super) secret: Option<String>,
|
||||
}
|
||||
|
||||
pub(super) fn parse_optional_expiration(
|
||||
value: Option<&str>,
|
||||
) -> Result<Option<DateTime<Utc>>, ApiFailure> {
|
||||
let Some(raw) = value else {
|
||||
return Ok(None);
|
||||
};
|
||||
let parsed = DateTime::parse_from_rfc3339(raw)
|
||||
.map_err(|_| ApiFailure::bad_request("expiration_rfc3339 must be valid RFC3339"))?;
|
||||
Ok(Some(parsed.with_timezone(&Utc)))
|
||||
}
|
||||
|
||||
pub(super) fn is_valid_user_secret(secret: &str) -> bool {
|
||||
secret.len() == 32 && secret.chars().all(|c| c.is_ascii_hexdigit())
|
||||
}
|
||||
|
||||
pub(super) fn is_valid_ad_tag(tag: &str) -> bool {
|
||||
tag.len() == 32 && tag.chars().all(|c| c.is_ascii_hexdigit())
|
||||
}
|
||||
|
||||
pub(super) fn is_valid_username(user: &str) -> bool {
|
||||
!user.is_empty()
|
||||
&& user.len() <= MAX_USERNAME_LEN
|
||||
&& user
|
||||
.chars()
|
||||
.all(|ch| ch.is_ascii_alphanumeric() || matches!(ch, '_' | '-' | '.'))
|
||||
}
|
||||
|
||||
pub(super) fn random_user_secret() -> String {
|
||||
let mut bytes = [0u8; 16];
|
||||
rand::rng().fill(&mut bytes);
|
||||
hex::encode(bytes)
|
||||
}
|
||||
484
src/api/runtime_stats.rs
Normal file
484
src/api/runtime_stats.rs
Normal file
@@ -0,0 +1,484 @@
|
||||
use std::time::{Duration, Instant, SystemTime, UNIX_EPOCH};
|
||||
|
||||
use crate::config::ApiConfig;
|
||||
use crate::stats::Stats;
|
||||
use crate::transport::upstream::IpPreference;
|
||||
use crate::transport::UpstreamRouteKind;
|
||||
|
||||
use super::ApiShared;
|
||||
use super::model::{
|
||||
DcStatus, DcStatusData, MeWriterStatus, MeWritersData, MeWritersSummary, MinimalAllData,
|
||||
MinimalAllPayload, MinimalDcPathData, MinimalMeRuntimeData, MinimalQuarantineData,
|
||||
UpstreamDcStatus, UpstreamStatus, UpstreamSummaryData, UpstreamsData, ZeroAllData,
|
||||
ZeroCodeCount, ZeroCoreData, ZeroDesyncData, ZeroMiddleProxyData, ZeroPoolData,
|
||||
ZeroUpstreamData,
|
||||
};
|
||||
|
||||
const FEATURE_DISABLED_REASON: &str = "feature_disabled";
|
||||
const SOURCE_UNAVAILABLE_REASON: &str = "source_unavailable";
|
||||
|
||||
#[derive(Clone)]
|
||||
pub(crate) struct MinimalCacheEntry {
|
||||
pub(super) expires_at: Instant,
|
||||
pub(super) payload: MinimalAllPayload,
|
||||
pub(super) generated_at_epoch_secs: u64,
|
||||
}
|
||||
|
||||
pub(super) fn build_zero_all_data(stats: &Stats, configured_users: usize) -> ZeroAllData {
|
||||
let telemetry = stats.telemetry_policy();
|
||||
let handshake_error_codes = stats
|
||||
.get_me_handshake_error_code_counts()
|
||||
.into_iter()
|
||||
.map(|(code, total)| ZeroCodeCount { code, total })
|
||||
.collect();
|
||||
|
||||
ZeroAllData {
|
||||
generated_at_epoch_secs: now_epoch_secs(),
|
||||
core: ZeroCoreData {
|
||||
uptime_seconds: stats.uptime_secs(),
|
||||
connections_total: stats.get_connects_all(),
|
||||
connections_bad_total: stats.get_connects_bad(),
|
||||
handshake_timeouts_total: stats.get_handshake_timeouts(),
|
||||
configured_users,
|
||||
telemetry_core_enabled: telemetry.core_enabled,
|
||||
telemetry_user_enabled: telemetry.user_enabled,
|
||||
telemetry_me_level: telemetry.me_level.to_string(),
|
||||
},
|
||||
upstream: build_zero_upstream_data(stats),
|
||||
middle_proxy: ZeroMiddleProxyData {
|
||||
keepalive_sent_total: stats.get_me_keepalive_sent(),
|
||||
keepalive_failed_total: stats.get_me_keepalive_failed(),
|
||||
keepalive_pong_total: stats.get_me_keepalive_pong(),
|
||||
keepalive_timeout_total: stats.get_me_keepalive_timeout(),
|
||||
rpc_proxy_req_signal_sent_total: stats.get_me_rpc_proxy_req_signal_sent_total(),
|
||||
rpc_proxy_req_signal_failed_total: stats.get_me_rpc_proxy_req_signal_failed_total(),
|
||||
rpc_proxy_req_signal_skipped_no_meta_total: stats
|
||||
.get_me_rpc_proxy_req_signal_skipped_no_meta_total(),
|
||||
rpc_proxy_req_signal_response_total: stats.get_me_rpc_proxy_req_signal_response_total(),
|
||||
rpc_proxy_req_signal_close_sent_total: stats
|
||||
.get_me_rpc_proxy_req_signal_close_sent_total(),
|
||||
reconnect_attempt_total: stats.get_me_reconnect_attempts(),
|
||||
reconnect_success_total: stats.get_me_reconnect_success(),
|
||||
handshake_reject_total: stats.get_me_handshake_reject_total(),
|
||||
handshake_error_codes,
|
||||
reader_eof_total: stats.get_me_reader_eof_total(),
|
||||
idle_close_by_peer_total: stats.get_me_idle_close_by_peer_total(),
|
||||
route_drop_no_conn_total: stats.get_me_route_drop_no_conn(),
|
||||
route_drop_channel_closed_total: stats.get_me_route_drop_channel_closed(),
|
||||
route_drop_queue_full_total: stats.get_me_route_drop_queue_full(),
|
||||
route_drop_queue_full_base_total: stats.get_me_route_drop_queue_full_base(),
|
||||
route_drop_queue_full_high_total: stats.get_me_route_drop_queue_full_high(),
|
||||
socks_kdf_strict_reject_total: stats.get_me_socks_kdf_strict_reject(),
|
||||
socks_kdf_compat_fallback_total: stats.get_me_socks_kdf_compat_fallback(),
|
||||
endpoint_quarantine_total: stats.get_me_endpoint_quarantine_total(),
|
||||
kdf_drift_total: stats.get_me_kdf_drift_total(),
|
||||
kdf_port_only_drift_total: stats.get_me_kdf_port_only_drift_total(),
|
||||
hardswap_pending_reuse_total: stats.get_me_hardswap_pending_reuse_total(),
|
||||
hardswap_pending_ttl_expired_total: stats.get_me_hardswap_pending_ttl_expired_total(),
|
||||
single_endpoint_outage_enter_total: stats.get_me_single_endpoint_outage_enter_total(),
|
||||
single_endpoint_outage_exit_total: stats.get_me_single_endpoint_outage_exit_total(),
|
||||
single_endpoint_outage_reconnect_attempt_total: stats
|
||||
.get_me_single_endpoint_outage_reconnect_attempt_total(),
|
||||
single_endpoint_outage_reconnect_success_total: stats
|
||||
.get_me_single_endpoint_outage_reconnect_success_total(),
|
||||
single_endpoint_quarantine_bypass_total: stats
|
||||
.get_me_single_endpoint_quarantine_bypass_total(),
|
||||
single_endpoint_shadow_rotate_total: stats.get_me_single_endpoint_shadow_rotate_total(),
|
||||
single_endpoint_shadow_rotate_skipped_quarantine_total: stats
|
||||
.get_me_single_endpoint_shadow_rotate_skipped_quarantine_total(),
|
||||
floor_mode_switch_total: stats.get_me_floor_mode_switch_total(),
|
||||
floor_mode_switch_static_to_adaptive_total: stats
|
||||
.get_me_floor_mode_switch_static_to_adaptive_total(),
|
||||
floor_mode_switch_adaptive_to_static_total: stats
|
||||
.get_me_floor_mode_switch_adaptive_to_static_total(),
|
||||
},
|
||||
pool: ZeroPoolData {
|
||||
pool_swap_total: stats.get_pool_swap_total(),
|
||||
pool_drain_active: stats.get_pool_drain_active(),
|
||||
pool_force_close_total: stats.get_pool_force_close_total(),
|
||||
pool_stale_pick_total: stats.get_pool_stale_pick_total(),
|
||||
writer_removed_total: stats.get_me_writer_removed_total(),
|
||||
writer_removed_unexpected_total: stats.get_me_writer_removed_unexpected_total(),
|
||||
refill_triggered_total: stats.get_me_refill_triggered_total(),
|
||||
refill_skipped_inflight_total: stats.get_me_refill_skipped_inflight_total(),
|
||||
refill_failed_total: stats.get_me_refill_failed_total(),
|
||||
writer_restored_same_endpoint_total: stats.get_me_writer_restored_same_endpoint_total(),
|
||||
writer_restored_fallback_total: stats.get_me_writer_restored_fallback_total(),
|
||||
},
|
||||
desync: ZeroDesyncData {
|
||||
secure_padding_invalid_total: stats.get_secure_padding_invalid(),
|
||||
desync_total: stats.get_desync_total(),
|
||||
desync_full_logged_total: stats.get_desync_full_logged(),
|
||||
desync_suppressed_total: stats.get_desync_suppressed(),
|
||||
desync_frames_bucket_0: stats.get_desync_frames_bucket_0(),
|
||||
desync_frames_bucket_1_2: stats.get_desync_frames_bucket_1_2(),
|
||||
desync_frames_bucket_3_10: stats.get_desync_frames_bucket_3_10(),
|
||||
desync_frames_bucket_gt_10: stats.get_desync_frames_bucket_gt_10(),
|
||||
},
|
||||
}
|
||||
}
|
||||
|
||||
fn build_zero_upstream_data(stats: &Stats) -> ZeroUpstreamData {
|
||||
ZeroUpstreamData {
|
||||
connect_attempt_total: stats.get_upstream_connect_attempt_total(),
|
||||
connect_success_total: stats.get_upstream_connect_success_total(),
|
||||
connect_fail_total: stats.get_upstream_connect_fail_total(),
|
||||
connect_failfast_hard_error_total: stats.get_upstream_connect_failfast_hard_error_total(),
|
||||
connect_attempts_bucket_1: stats.get_upstream_connect_attempts_bucket_1(),
|
||||
connect_attempts_bucket_2: stats.get_upstream_connect_attempts_bucket_2(),
|
||||
connect_attempts_bucket_3_4: stats.get_upstream_connect_attempts_bucket_3_4(),
|
||||
connect_attempts_bucket_gt_4: stats.get_upstream_connect_attempts_bucket_gt_4(),
|
||||
connect_duration_success_bucket_le_100ms: stats
|
||||
.get_upstream_connect_duration_success_bucket_le_100ms(),
|
||||
connect_duration_success_bucket_101_500ms: stats
|
||||
.get_upstream_connect_duration_success_bucket_101_500ms(),
|
||||
connect_duration_success_bucket_501_1000ms: stats
|
||||
.get_upstream_connect_duration_success_bucket_501_1000ms(),
|
||||
connect_duration_success_bucket_gt_1000ms: stats
|
||||
.get_upstream_connect_duration_success_bucket_gt_1000ms(),
|
||||
connect_duration_fail_bucket_le_100ms: stats.get_upstream_connect_duration_fail_bucket_le_100ms(),
|
||||
connect_duration_fail_bucket_101_500ms: stats
|
||||
.get_upstream_connect_duration_fail_bucket_101_500ms(),
|
||||
connect_duration_fail_bucket_501_1000ms: stats
|
||||
.get_upstream_connect_duration_fail_bucket_501_1000ms(),
|
||||
connect_duration_fail_bucket_gt_1000ms: stats
|
||||
.get_upstream_connect_duration_fail_bucket_gt_1000ms(),
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) fn build_upstreams_data(shared: &ApiShared, api_cfg: &ApiConfig) -> UpstreamsData {
|
||||
let generated_at_epoch_secs = now_epoch_secs();
|
||||
let zero = build_zero_upstream_data(&shared.stats);
|
||||
if !api_cfg.minimal_runtime_enabled {
|
||||
return UpstreamsData {
|
||||
enabled: false,
|
||||
reason: Some(FEATURE_DISABLED_REASON),
|
||||
generated_at_epoch_secs,
|
||||
zero,
|
||||
summary: None,
|
||||
upstreams: None,
|
||||
};
|
||||
}
|
||||
|
||||
let Some(snapshot) = shared.upstream_manager.try_api_snapshot() else {
|
||||
return UpstreamsData {
|
||||
enabled: true,
|
||||
reason: Some(SOURCE_UNAVAILABLE_REASON),
|
||||
generated_at_epoch_secs,
|
||||
zero,
|
||||
summary: None,
|
||||
upstreams: None,
|
||||
};
|
||||
};
|
||||
|
||||
let summary = UpstreamSummaryData {
|
||||
configured_total: snapshot.summary.configured_total,
|
||||
healthy_total: snapshot.summary.healthy_total,
|
||||
unhealthy_total: snapshot.summary.unhealthy_total,
|
||||
direct_total: snapshot.summary.direct_total,
|
||||
socks4_total: snapshot.summary.socks4_total,
|
||||
socks5_total: snapshot.summary.socks5_total,
|
||||
};
|
||||
let upstreams = snapshot
|
||||
.upstreams
|
||||
.into_iter()
|
||||
.map(|upstream| UpstreamStatus {
|
||||
upstream_id: upstream.upstream_id,
|
||||
route_kind: map_route_kind(upstream.route_kind),
|
||||
address: upstream.address,
|
||||
weight: upstream.weight,
|
||||
scopes: upstream.scopes,
|
||||
healthy: upstream.healthy,
|
||||
fails: upstream.fails,
|
||||
last_check_age_secs: upstream.last_check_age_secs,
|
||||
effective_latency_ms: upstream.effective_latency_ms,
|
||||
dc: upstream
|
||||
.dc
|
||||
.into_iter()
|
||||
.map(|dc| UpstreamDcStatus {
|
||||
dc: dc.dc,
|
||||
latency_ema_ms: dc.latency_ema_ms,
|
||||
ip_preference: map_ip_preference(dc.ip_preference),
|
||||
})
|
||||
.collect(),
|
||||
})
|
||||
.collect();
|
||||
|
||||
UpstreamsData {
|
||||
enabled: true,
|
||||
reason: None,
|
||||
generated_at_epoch_secs,
|
||||
zero,
|
||||
summary: Some(summary),
|
||||
upstreams: Some(upstreams),
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) async fn build_minimal_all_data(
|
||||
shared: &ApiShared,
|
||||
api_cfg: &ApiConfig,
|
||||
) -> MinimalAllData {
|
||||
let now = now_epoch_secs();
|
||||
if !api_cfg.minimal_runtime_enabled {
|
||||
return MinimalAllData {
|
||||
enabled: false,
|
||||
reason: Some(FEATURE_DISABLED_REASON),
|
||||
generated_at_epoch_secs: now,
|
||||
data: None,
|
||||
};
|
||||
}
|
||||
|
||||
let Some((generated_at_epoch_secs, payload)) =
|
||||
get_minimal_payload_cached(shared, api_cfg.minimal_runtime_cache_ttl_ms).await
|
||||
else {
|
||||
return MinimalAllData {
|
||||
enabled: true,
|
||||
reason: Some(SOURCE_UNAVAILABLE_REASON),
|
||||
generated_at_epoch_secs: now,
|
||||
data: Some(MinimalAllPayload {
|
||||
me_writers: disabled_me_writers(now, SOURCE_UNAVAILABLE_REASON),
|
||||
dcs: disabled_dcs(now, SOURCE_UNAVAILABLE_REASON),
|
||||
me_runtime: None,
|
||||
network_path: Vec::new(),
|
||||
}),
|
||||
};
|
||||
};
|
||||
|
||||
MinimalAllData {
|
||||
enabled: true,
|
||||
reason: None,
|
||||
generated_at_epoch_secs,
|
||||
data: Some(payload),
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) async fn build_me_writers_data(
|
||||
shared: &ApiShared,
|
||||
api_cfg: &ApiConfig,
|
||||
) -> MeWritersData {
|
||||
let now = now_epoch_secs();
|
||||
if !api_cfg.minimal_runtime_enabled {
|
||||
return disabled_me_writers(now, FEATURE_DISABLED_REASON);
|
||||
}
|
||||
|
||||
let Some((_, payload)) =
|
||||
get_minimal_payload_cached(shared, api_cfg.minimal_runtime_cache_ttl_ms).await
|
||||
else {
|
||||
return disabled_me_writers(now, SOURCE_UNAVAILABLE_REASON);
|
||||
};
|
||||
payload.me_writers
|
||||
}
|
||||
|
||||
pub(super) async fn build_dcs_data(shared: &ApiShared, api_cfg: &ApiConfig) -> DcStatusData {
|
||||
let now = now_epoch_secs();
|
||||
if !api_cfg.minimal_runtime_enabled {
|
||||
return disabled_dcs(now, FEATURE_DISABLED_REASON);
|
||||
}
|
||||
|
||||
let Some((_, payload)) =
|
||||
get_minimal_payload_cached(shared, api_cfg.minimal_runtime_cache_ttl_ms).await
|
||||
else {
|
||||
return disabled_dcs(now, SOURCE_UNAVAILABLE_REASON);
|
||||
};
|
||||
payload.dcs
|
||||
}
|
||||
|
||||
async fn get_minimal_payload_cached(
|
||||
shared: &ApiShared,
|
||||
cache_ttl_ms: u64,
|
||||
) -> Option<(u64, MinimalAllPayload)> {
|
||||
if cache_ttl_ms > 0 {
|
||||
let now = Instant::now();
|
||||
let cached = shared.minimal_cache.lock().await.clone();
|
||||
if let Some(entry) = cached
|
||||
&& now < entry.expires_at
|
||||
{
|
||||
return Some((entry.generated_at_epoch_secs, entry.payload));
|
||||
}
|
||||
}
|
||||
|
||||
let pool = shared.me_pool.as_ref()?;
|
||||
let status = pool.api_status_snapshot().await;
|
||||
let runtime = pool.api_runtime_snapshot().await;
|
||||
let generated_at_epoch_secs = status.generated_at_epoch_secs;
|
||||
|
||||
let me_writers = MeWritersData {
|
||||
middle_proxy_enabled: true,
|
||||
reason: None,
|
||||
generated_at_epoch_secs,
|
||||
summary: MeWritersSummary {
|
||||
configured_dc_groups: status.configured_dc_groups,
|
||||
configured_endpoints: status.configured_endpoints,
|
||||
available_endpoints: status.available_endpoints,
|
||||
available_pct: status.available_pct,
|
||||
required_writers: status.required_writers,
|
||||
alive_writers: status.alive_writers,
|
||||
coverage_pct: status.coverage_pct,
|
||||
},
|
||||
writers: status
|
||||
.writers
|
||||
.into_iter()
|
||||
.map(|entry| MeWriterStatus {
|
||||
writer_id: entry.writer_id,
|
||||
dc: entry.dc,
|
||||
endpoint: entry.endpoint.to_string(),
|
||||
generation: entry.generation,
|
||||
state: entry.state,
|
||||
draining: entry.draining,
|
||||
degraded: entry.degraded,
|
||||
bound_clients: entry.bound_clients,
|
||||
idle_for_secs: entry.idle_for_secs,
|
||||
rtt_ema_ms: entry.rtt_ema_ms,
|
||||
})
|
||||
.collect(),
|
||||
};
|
||||
let dcs = DcStatusData {
|
||||
middle_proxy_enabled: true,
|
||||
reason: None,
|
||||
generated_at_epoch_secs,
|
||||
dcs: status
|
||||
.dcs
|
||||
.into_iter()
|
||||
.map(|entry| DcStatus {
|
||||
dc: entry.dc,
|
||||
endpoints: entry
|
||||
.endpoints
|
||||
.into_iter()
|
||||
.map(|value| value.to_string())
|
||||
.collect(),
|
||||
available_endpoints: entry.available_endpoints,
|
||||
available_pct: entry.available_pct,
|
||||
required_writers: entry.required_writers,
|
||||
alive_writers: entry.alive_writers,
|
||||
coverage_pct: entry.coverage_pct,
|
||||
rtt_ms: entry.rtt_ms,
|
||||
load: entry.load,
|
||||
})
|
||||
.collect(),
|
||||
};
|
||||
let me_runtime = MinimalMeRuntimeData {
|
||||
active_generation: runtime.active_generation,
|
||||
warm_generation: runtime.warm_generation,
|
||||
pending_hardswap_generation: runtime.pending_hardswap_generation,
|
||||
pending_hardswap_age_secs: runtime.pending_hardswap_age_secs,
|
||||
hardswap_enabled: runtime.hardswap_enabled,
|
||||
floor_mode: runtime.floor_mode,
|
||||
adaptive_floor_idle_secs: runtime.adaptive_floor_idle_secs,
|
||||
adaptive_floor_min_writers_single_endpoint: runtime
|
||||
.adaptive_floor_min_writers_single_endpoint,
|
||||
adaptive_floor_recover_grace_secs: runtime.adaptive_floor_recover_grace_secs,
|
||||
me_keepalive_enabled: runtime.me_keepalive_enabled,
|
||||
me_keepalive_interval_secs: runtime.me_keepalive_interval_secs,
|
||||
me_keepalive_jitter_secs: runtime.me_keepalive_jitter_secs,
|
||||
me_keepalive_payload_random: runtime.me_keepalive_payload_random,
|
||||
rpc_proxy_req_every_secs: runtime.rpc_proxy_req_every_secs,
|
||||
me_reconnect_max_concurrent_per_dc: runtime.me_reconnect_max_concurrent_per_dc,
|
||||
me_reconnect_backoff_base_ms: runtime.me_reconnect_backoff_base_ms,
|
||||
me_reconnect_backoff_cap_ms: runtime.me_reconnect_backoff_cap_ms,
|
||||
me_reconnect_fast_retry_count: runtime.me_reconnect_fast_retry_count,
|
||||
me_pool_drain_ttl_secs: runtime.me_pool_drain_ttl_secs,
|
||||
me_pool_force_close_secs: runtime.me_pool_force_close_secs,
|
||||
me_pool_min_fresh_ratio: runtime.me_pool_min_fresh_ratio,
|
||||
me_bind_stale_mode: runtime.me_bind_stale_mode,
|
||||
me_bind_stale_ttl_secs: runtime.me_bind_stale_ttl_secs,
|
||||
me_single_endpoint_shadow_writers: runtime.me_single_endpoint_shadow_writers,
|
||||
me_single_endpoint_outage_mode_enabled: runtime.me_single_endpoint_outage_mode_enabled,
|
||||
me_single_endpoint_outage_disable_quarantine: runtime
|
||||
.me_single_endpoint_outage_disable_quarantine,
|
||||
me_single_endpoint_outage_backoff_min_ms: runtime.me_single_endpoint_outage_backoff_min_ms,
|
||||
me_single_endpoint_outage_backoff_max_ms: runtime.me_single_endpoint_outage_backoff_max_ms,
|
||||
me_single_endpoint_shadow_rotate_every_secs: runtime
|
||||
.me_single_endpoint_shadow_rotate_every_secs,
|
||||
me_deterministic_writer_sort: runtime.me_deterministic_writer_sort,
|
||||
me_socks_kdf_policy: runtime.me_socks_kdf_policy,
|
||||
quarantined_endpoints_total: runtime.quarantined_endpoints.len(),
|
||||
quarantined_endpoints: runtime
|
||||
.quarantined_endpoints
|
||||
.into_iter()
|
||||
.map(|entry| MinimalQuarantineData {
|
||||
endpoint: entry.endpoint.to_string(),
|
||||
remaining_ms: entry.remaining_ms,
|
||||
})
|
||||
.collect(),
|
||||
};
|
||||
let network_path = runtime
|
||||
.network_path
|
||||
.into_iter()
|
||||
.map(|entry| MinimalDcPathData {
|
||||
dc: entry.dc,
|
||||
ip_preference: entry.ip_preference,
|
||||
selected_addr_v4: entry.selected_addr_v4.map(|value| value.to_string()),
|
||||
selected_addr_v6: entry.selected_addr_v6.map(|value| value.to_string()),
|
||||
})
|
||||
.collect();
|
||||
|
||||
let payload = MinimalAllPayload {
|
||||
me_writers,
|
||||
dcs,
|
||||
me_runtime: Some(me_runtime),
|
||||
network_path,
|
||||
};
|
||||
|
||||
if cache_ttl_ms > 0 {
|
||||
let entry = MinimalCacheEntry {
|
||||
expires_at: Instant::now() + Duration::from_millis(cache_ttl_ms),
|
||||
payload: payload.clone(),
|
||||
generated_at_epoch_secs,
|
||||
};
|
||||
*shared.minimal_cache.lock().await = Some(entry);
|
||||
}
|
||||
|
||||
Some((generated_at_epoch_secs, payload))
|
||||
}
|
||||
|
||||
fn disabled_me_writers(now_epoch_secs: u64, reason: &'static str) -> MeWritersData {
|
||||
MeWritersData {
|
||||
middle_proxy_enabled: false,
|
||||
reason: Some(reason),
|
||||
generated_at_epoch_secs: now_epoch_secs,
|
||||
summary: MeWritersSummary {
|
||||
configured_dc_groups: 0,
|
||||
configured_endpoints: 0,
|
||||
available_endpoints: 0,
|
||||
available_pct: 0.0,
|
||||
required_writers: 0,
|
||||
alive_writers: 0,
|
||||
coverage_pct: 0.0,
|
||||
},
|
||||
writers: Vec::new(),
|
||||
}
|
||||
}
|
||||
|
||||
fn disabled_dcs(now_epoch_secs: u64, reason: &'static str) -> DcStatusData {
|
||||
DcStatusData {
|
||||
middle_proxy_enabled: false,
|
||||
reason: Some(reason),
|
||||
generated_at_epoch_secs: now_epoch_secs,
|
||||
dcs: Vec::new(),
|
||||
}
|
||||
}
|
||||
|
||||
fn map_route_kind(value: UpstreamRouteKind) -> &'static str {
|
||||
match value {
|
||||
UpstreamRouteKind::Direct => "direct",
|
||||
UpstreamRouteKind::Socks4 => "socks4",
|
||||
UpstreamRouteKind::Socks5 => "socks5",
|
||||
}
|
||||
}
|
||||
|
||||
fn map_ip_preference(value: IpPreference) -> &'static str {
|
||||
match value {
|
||||
IpPreference::Unknown => "unknown",
|
||||
IpPreference::PreferV6 => "prefer_v6",
|
||||
IpPreference::PreferV4 => "prefer_v4",
|
||||
IpPreference::BothWork => "both_work",
|
||||
IpPreference::Unavailable => "unavailable",
|
||||
}
|
||||
}
|
||||
|
||||
fn now_epoch_secs() -> u64 {
|
||||
SystemTime::now()
|
||||
.duration_since(UNIX_EPOCH)
|
||||
.unwrap_or_default()
|
||||
.as_secs()
|
||||
}
|
||||
499
src/api/users.rs
Normal file
499
src/api/users.rs
Normal file
@@ -0,0 +1,499 @@
|
||||
use std::net::IpAddr;
|
||||
|
||||
use hyper::StatusCode;
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::ip_tracker::UserIpTracker;
|
||||
use crate::stats::Stats;
|
||||
|
||||
use super::ApiShared;
|
||||
use super::config_store::{
|
||||
ensure_expected_revision, load_config_from_disk, save_config_to_disk,
|
||||
};
|
||||
use super::model::{
|
||||
ApiFailure, CreateUserRequest, CreateUserResponse, PatchUserRequest, RotateSecretRequest,
|
||||
UserInfo, UserLinks, is_valid_ad_tag, is_valid_user_secret, is_valid_username,
|
||||
parse_optional_expiration, random_user_secret,
|
||||
};
|
||||
|
||||
pub(super) async fn create_user(
|
||||
body: CreateUserRequest,
|
||||
expected_revision: Option<String>,
|
||||
shared: &ApiShared,
|
||||
) -> Result<(CreateUserResponse, String), ApiFailure> {
|
||||
if !is_valid_username(&body.username) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"username must match [A-Za-z0-9_.-] and be 1..64 chars",
|
||||
));
|
||||
}
|
||||
|
||||
let secret = match body.secret {
|
||||
Some(secret) => {
|
||||
if !is_valid_user_secret(&secret) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"secret must be exactly 32 hex characters",
|
||||
));
|
||||
}
|
||||
secret
|
||||
}
|
||||
None => random_user_secret(),
|
||||
};
|
||||
|
||||
if let Some(ad_tag) = body.user_ad_tag.as_ref() && !is_valid_ad_tag(ad_tag) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"user_ad_tag must be exactly 32 hex characters",
|
||||
));
|
||||
}
|
||||
|
||||
let expiration = parse_optional_expiration(body.expiration_rfc3339.as_deref())?;
|
||||
let _guard = shared.mutation_lock.lock().await;
|
||||
let mut cfg = load_config_from_disk(&shared.config_path).await?;
|
||||
ensure_expected_revision(&shared.config_path, expected_revision.as_deref()).await?;
|
||||
|
||||
if cfg.access.users.contains_key(&body.username) {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::CONFLICT,
|
||||
"user_exists",
|
||||
"User already exists",
|
||||
));
|
||||
}
|
||||
|
||||
cfg.access.users.insert(body.username.clone(), secret.clone());
|
||||
if let Some(ad_tag) = body.user_ad_tag {
|
||||
cfg.access.user_ad_tags.insert(body.username.clone(), ad_tag);
|
||||
}
|
||||
if let Some(limit) = body.max_tcp_conns {
|
||||
cfg.access.user_max_tcp_conns.insert(body.username.clone(), limit);
|
||||
}
|
||||
if let Some(expiration) = expiration {
|
||||
cfg.access
|
||||
.user_expirations
|
||||
.insert(body.username.clone(), expiration);
|
||||
}
|
||||
if let Some(quota) = body.data_quota_bytes {
|
||||
cfg.access.user_data_quota.insert(body.username.clone(), quota);
|
||||
}
|
||||
|
||||
let updated_limit = body.max_unique_ips;
|
||||
if let Some(limit) = updated_limit {
|
||||
cfg.access
|
||||
.user_max_unique_ips
|
||||
.insert(body.username.clone(), limit);
|
||||
}
|
||||
|
||||
cfg.validate()
|
||||
.map_err(|e| ApiFailure::bad_request(format!("config validation failed: {}", e)))?;
|
||||
|
||||
let revision = save_config_to_disk(&shared.config_path, &cfg).await?;
|
||||
drop(_guard);
|
||||
|
||||
if let Some(limit) = updated_limit {
|
||||
shared.ip_tracker.set_user_limit(&body.username, limit).await;
|
||||
}
|
||||
|
||||
let users = users_from_config(
|
||||
&cfg,
|
||||
&shared.stats,
|
||||
&shared.ip_tracker,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
)
|
||||
.await;
|
||||
let user = users
|
||||
.into_iter()
|
||||
.find(|entry| entry.username == body.username)
|
||||
.unwrap_or(UserInfo {
|
||||
username: body.username.clone(),
|
||||
user_ad_tag: None,
|
||||
max_tcp_conns: None,
|
||||
expiration_rfc3339: None,
|
||||
data_quota_bytes: None,
|
||||
max_unique_ips: updated_limit,
|
||||
current_connections: 0,
|
||||
active_unique_ips: 0,
|
||||
active_unique_ips_list: Vec::new(),
|
||||
recent_unique_ips: 0,
|
||||
recent_unique_ips_list: Vec::new(),
|
||||
total_octets: 0,
|
||||
links: build_user_links(
|
||||
&cfg,
|
||||
&secret,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
),
|
||||
});
|
||||
|
||||
Ok((CreateUserResponse { user, secret }, revision))
|
||||
}
|
||||
|
||||
pub(super) async fn patch_user(
|
||||
user: &str,
|
||||
body: PatchUserRequest,
|
||||
expected_revision: Option<String>,
|
||||
shared: &ApiShared,
|
||||
) -> Result<(UserInfo, String), ApiFailure> {
|
||||
if let Some(secret) = body.secret.as_ref() && !is_valid_user_secret(secret) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"secret must be exactly 32 hex characters",
|
||||
));
|
||||
}
|
||||
if let Some(ad_tag) = body.user_ad_tag.as_ref() && !is_valid_ad_tag(ad_tag) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"user_ad_tag must be exactly 32 hex characters",
|
||||
));
|
||||
}
|
||||
let expiration = parse_optional_expiration(body.expiration_rfc3339.as_deref())?;
|
||||
let _guard = shared.mutation_lock.lock().await;
|
||||
let mut cfg = load_config_from_disk(&shared.config_path).await?;
|
||||
ensure_expected_revision(&shared.config_path, expected_revision.as_deref()).await?;
|
||||
|
||||
if !cfg.access.users.contains_key(user) {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::NOT_FOUND,
|
||||
"not_found",
|
||||
"User not found",
|
||||
));
|
||||
}
|
||||
|
||||
if let Some(secret) = body.secret {
|
||||
cfg.access.users.insert(user.to_string(), secret);
|
||||
}
|
||||
if let Some(ad_tag) = body.user_ad_tag {
|
||||
cfg.access.user_ad_tags.insert(user.to_string(), ad_tag);
|
||||
}
|
||||
if let Some(limit) = body.max_tcp_conns {
|
||||
cfg.access.user_max_tcp_conns.insert(user.to_string(), limit);
|
||||
}
|
||||
if let Some(expiration) = expiration {
|
||||
cfg.access.user_expirations.insert(user.to_string(), expiration);
|
||||
}
|
||||
if let Some(quota) = body.data_quota_bytes {
|
||||
cfg.access.user_data_quota.insert(user.to_string(), quota);
|
||||
}
|
||||
|
||||
let mut updated_limit = None;
|
||||
if let Some(limit) = body.max_unique_ips {
|
||||
cfg.access.user_max_unique_ips.insert(user.to_string(), limit);
|
||||
updated_limit = Some(limit);
|
||||
}
|
||||
|
||||
cfg.validate()
|
||||
.map_err(|e| ApiFailure::bad_request(format!("config validation failed: {}", e)))?;
|
||||
|
||||
let revision = save_config_to_disk(&shared.config_path, &cfg).await?;
|
||||
drop(_guard);
|
||||
if let Some(limit) = updated_limit {
|
||||
shared.ip_tracker.set_user_limit(user, limit).await;
|
||||
}
|
||||
let users = users_from_config(
|
||||
&cfg,
|
||||
&shared.stats,
|
||||
&shared.ip_tracker,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
)
|
||||
.await;
|
||||
let user_info = users
|
||||
.into_iter()
|
||||
.find(|entry| entry.username == user)
|
||||
.ok_or_else(|| ApiFailure::internal("failed to build updated user view"))?;
|
||||
|
||||
Ok((user_info, revision))
|
||||
}
|
||||
|
||||
pub(super) async fn rotate_secret(
|
||||
user: &str,
|
||||
body: RotateSecretRequest,
|
||||
expected_revision: Option<String>,
|
||||
shared: &ApiShared,
|
||||
) -> Result<(CreateUserResponse, String), ApiFailure> {
|
||||
let secret = body.secret.unwrap_or_else(random_user_secret);
|
||||
if !is_valid_user_secret(&secret) {
|
||||
return Err(ApiFailure::bad_request(
|
||||
"secret must be exactly 32 hex characters",
|
||||
));
|
||||
}
|
||||
|
||||
let _guard = shared.mutation_lock.lock().await;
|
||||
let mut cfg = load_config_from_disk(&shared.config_path).await?;
|
||||
ensure_expected_revision(&shared.config_path, expected_revision.as_deref()).await?;
|
||||
|
||||
if !cfg.access.users.contains_key(user) {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::NOT_FOUND,
|
||||
"not_found",
|
||||
"User not found",
|
||||
));
|
||||
}
|
||||
|
||||
cfg.access.users.insert(user.to_string(), secret.clone());
|
||||
cfg.validate()
|
||||
.map_err(|e| ApiFailure::bad_request(format!("config validation failed: {}", e)))?;
|
||||
let revision = save_config_to_disk(&shared.config_path, &cfg).await?;
|
||||
drop(_guard);
|
||||
|
||||
let users = users_from_config(
|
||||
&cfg,
|
||||
&shared.stats,
|
||||
&shared.ip_tracker,
|
||||
shared.startup_detected_ip_v4,
|
||||
shared.startup_detected_ip_v6,
|
||||
)
|
||||
.await;
|
||||
let user_info = users
|
||||
.into_iter()
|
||||
.find(|entry| entry.username == user)
|
||||
.ok_or_else(|| ApiFailure::internal("failed to build updated user view"))?;
|
||||
|
||||
Ok((
|
||||
CreateUserResponse {
|
||||
user: user_info,
|
||||
secret,
|
||||
},
|
||||
revision,
|
||||
))
|
||||
}
|
||||
|
||||
pub(super) async fn delete_user(
|
||||
user: &str,
|
||||
expected_revision: Option<String>,
|
||||
shared: &ApiShared,
|
||||
) -> Result<(String, String), ApiFailure> {
|
||||
let _guard = shared.mutation_lock.lock().await;
|
||||
let mut cfg = load_config_from_disk(&shared.config_path).await?;
|
||||
ensure_expected_revision(&shared.config_path, expected_revision.as_deref()).await?;
|
||||
|
||||
if !cfg.access.users.contains_key(user) {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::NOT_FOUND,
|
||||
"not_found",
|
||||
"User not found",
|
||||
));
|
||||
}
|
||||
if cfg.access.users.len() <= 1 {
|
||||
return Err(ApiFailure::new(
|
||||
StatusCode::CONFLICT,
|
||||
"last_user_forbidden",
|
||||
"Cannot delete the last configured user",
|
||||
));
|
||||
}
|
||||
|
||||
cfg.access.users.remove(user);
|
||||
cfg.access.user_ad_tags.remove(user);
|
||||
cfg.access.user_max_tcp_conns.remove(user);
|
||||
cfg.access.user_expirations.remove(user);
|
||||
cfg.access.user_data_quota.remove(user);
|
||||
cfg.access.user_max_unique_ips.remove(user);
|
||||
|
||||
cfg.validate()
|
||||
.map_err(|e| ApiFailure::bad_request(format!("config validation failed: {}", e)))?;
|
||||
let revision = save_config_to_disk(&shared.config_path, &cfg).await?;
|
||||
drop(_guard);
|
||||
shared.ip_tracker.remove_user_limit(user).await;
|
||||
shared.ip_tracker.clear_user_ips(user).await;
|
||||
|
||||
Ok((user.to_string(), revision))
|
||||
}
|
||||
|
||||
pub(super) async fn users_from_config(
|
||||
cfg: &ProxyConfig,
|
||||
stats: &Stats,
|
||||
ip_tracker: &UserIpTracker,
|
||||
startup_detected_ip_v4: Option<IpAddr>,
|
||||
startup_detected_ip_v6: Option<IpAddr>,
|
||||
) -> Vec<UserInfo> {
|
||||
let mut names = cfg.access.users.keys().cloned().collect::<Vec<_>>();
|
||||
names.sort();
|
||||
let active_ip_lists = ip_tracker.get_active_ips_for_users(&names).await;
|
||||
let recent_ip_lists = ip_tracker.get_recent_ips_for_users(&names).await;
|
||||
|
||||
let mut users = Vec::with_capacity(names.len());
|
||||
for username in names {
|
||||
let active_ip_list = active_ip_lists
|
||||
.get(&username)
|
||||
.cloned()
|
||||
.unwrap_or_else(Vec::new);
|
||||
let recent_ip_list = recent_ip_lists
|
||||
.get(&username)
|
||||
.cloned()
|
||||
.unwrap_or_else(Vec::new);
|
||||
let links = cfg
|
||||
.access
|
||||
.users
|
||||
.get(&username)
|
||||
.map(|secret| {
|
||||
build_user_links(
|
||||
cfg,
|
||||
secret,
|
||||
startup_detected_ip_v4,
|
||||
startup_detected_ip_v6,
|
||||
)
|
||||
})
|
||||
.unwrap_or(UserLinks {
|
||||
classic: Vec::new(),
|
||||
secure: Vec::new(),
|
||||
tls: Vec::new(),
|
||||
});
|
||||
users.push(UserInfo {
|
||||
user_ad_tag: cfg.access.user_ad_tags.get(&username).cloned(),
|
||||
max_tcp_conns: cfg.access.user_max_tcp_conns.get(&username).copied(),
|
||||
expiration_rfc3339: cfg
|
||||
.access
|
||||
.user_expirations
|
||||
.get(&username)
|
||||
.map(chrono::DateTime::<chrono::Utc>::to_rfc3339),
|
||||
data_quota_bytes: cfg.access.user_data_quota.get(&username).copied(),
|
||||
max_unique_ips: cfg.access.user_max_unique_ips.get(&username).copied(),
|
||||
current_connections: stats.get_user_curr_connects(&username),
|
||||
active_unique_ips: active_ip_list.len(),
|
||||
active_unique_ips_list: active_ip_list,
|
||||
recent_unique_ips: recent_ip_list.len(),
|
||||
recent_unique_ips_list: recent_ip_list,
|
||||
total_octets: stats.get_user_total_octets(&username),
|
||||
links,
|
||||
username,
|
||||
});
|
||||
}
|
||||
users
|
||||
}
|
||||
|
||||
fn build_user_links(
|
||||
cfg: &ProxyConfig,
|
||||
secret: &str,
|
||||
startup_detected_ip_v4: Option<IpAddr>,
|
||||
startup_detected_ip_v6: Option<IpAddr>,
|
||||
) -> UserLinks {
|
||||
let hosts = resolve_link_hosts(cfg, startup_detected_ip_v4, startup_detected_ip_v6);
|
||||
let port = cfg.general.links.public_port.unwrap_or(cfg.server.port);
|
||||
let tls_domains = resolve_tls_domains(cfg);
|
||||
|
||||
let mut classic = Vec::new();
|
||||
let mut secure = Vec::new();
|
||||
let mut tls = Vec::new();
|
||||
|
||||
for host in &hosts {
|
||||
if cfg.general.modes.classic {
|
||||
classic.push(format!(
|
||||
"tg://proxy?server={}&port={}&secret={}",
|
||||
host, port, secret
|
||||
));
|
||||
}
|
||||
if cfg.general.modes.secure {
|
||||
secure.push(format!(
|
||||
"tg://proxy?server={}&port={}&secret=dd{}",
|
||||
host, port, secret
|
||||
));
|
||||
}
|
||||
if cfg.general.modes.tls {
|
||||
for domain in &tls_domains {
|
||||
let domain_hex = hex::encode(domain);
|
||||
tls.push(format!(
|
||||
"tg://proxy?server={}&port={}&secret=ee{}{}",
|
||||
host, port, secret, domain_hex
|
||||
));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
UserLinks {
|
||||
classic,
|
||||
secure,
|
||||
tls,
|
||||
}
|
||||
}
|
||||
|
||||
fn resolve_link_hosts(
|
||||
cfg: &ProxyConfig,
|
||||
startup_detected_ip_v4: Option<IpAddr>,
|
||||
startup_detected_ip_v6: Option<IpAddr>,
|
||||
) -> Vec<String> {
|
||||
if let Some(host) = cfg
|
||||
.general
|
||||
.links
|
||||
.public_host
|
||||
.as_deref()
|
||||
.map(str::trim)
|
||||
.filter(|value| !value.is_empty())
|
||||
{
|
||||
return vec![host.to_string()];
|
||||
}
|
||||
|
||||
let mut startup_hosts = Vec::new();
|
||||
if let Some(ip) = startup_detected_ip_v4 {
|
||||
push_unique_host(&mut startup_hosts, &ip.to_string());
|
||||
}
|
||||
if let Some(ip) = startup_detected_ip_v6 {
|
||||
push_unique_host(&mut startup_hosts, &ip.to_string());
|
||||
}
|
||||
if !startup_hosts.is_empty() {
|
||||
return startup_hosts;
|
||||
}
|
||||
|
||||
let mut hosts = Vec::new();
|
||||
for listener in &cfg.server.listeners {
|
||||
if let Some(host) = listener
|
||||
.announce
|
||||
.as_deref()
|
||||
.map(str::trim)
|
||||
.filter(|value| !value.is_empty())
|
||||
{
|
||||
push_unique_host(&mut hosts, host);
|
||||
continue;
|
||||
}
|
||||
if let Some(ip) = listener.announce_ip {
|
||||
if !ip.is_unspecified() {
|
||||
push_unique_host(&mut hosts, &ip.to_string());
|
||||
}
|
||||
continue;
|
||||
}
|
||||
if !listener.ip.is_unspecified() {
|
||||
push_unique_host(&mut hosts, &listener.ip.to_string());
|
||||
}
|
||||
}
|
||||
|
||||
if hosts.is_empty() {
|
||||
if let Some(host) = cfg.server.listen_addr_ipv4.as_deref() {
|
||||
push_host_from_legacy_listen(&mut hosts, host);
|
||||
}
|
||||
if let Some(host) = cfg.server.listen_addr_ipv6.as_deref() {
|
||||
push_host_from_legacy_listen(&mut hosts, host);
|
||||
}
|
||||
}
|
||||
|
||||
hosts
|
||||
}
|
||||
|
||||
fn push_host_from_legacy_listen(hosts: &mut Vec<String>, raw: &str) {
|
||||
let candidate = raw.trim();
|
||||
if candidate.is_empty() {
|
||||
return;
|
||||
}
|
||||
|
||||
match candidate.parse::<IpAddr>() {
|
||||
Ok(ip) if ip.is_unspecified() => {}
|
||||
Ok(ip) => push_unique_host(hosts, &ip.to_string()),
|
||||
Err(_) => push_unique_host(hosts, candidate),
|
||||
}
|
||||
}
|
||||
|
||||
fn push_unique_host(hosts: &mut Vec<String>, candidate: &str) {
|
||||
if !hosts.iter().any(|existing| existing == candidate) {
|
||||
hosts.push(candidate.to_string());
|
||||
}
|
||||
}
|
||||
|
||||
fn resolve_tls_domains(cfg: &ProxyConfig) -> Vec<&str> {
|
||||
let mut domains = Vec::with_capacity(1 + cfg.censorship.tls_domains.len());
|
||||
let primary = cfg.censorship.tls_domain.as_str();
|
||||
if !primary.is_empty() {
|
||||
domains.push(primary);
|
||||
}
|
||||
for domain in &cfg.censorship.tls_domains {
|
||||
let value = domain.as_str();
|
||||
if value.is_empty() || domains.contains(&value) {
|
||||
continue;
|
||||
}
|
||||
domains.push(value);
|
||||
}
|
||||
domains
|
||||
}
|
||||
315
src/cli.rs
Normal file
315
src/cli.rs
Normal file
@@ -0,0 +1,315 @@
|
||||
//! CLI commands: --init (fire-and-forget setup)
|
||||
|
||||
use std::fs;
|
||||
use std::path::{Path, PathBuf};
|
||||
use std::process::Command;
|
||||
use rand::Rng;
|
||||
|
||||
/// Options for the init command
|
||||
pub struct InitOptions {
|
||||
pub port: u16,
|
||||
pub domain: String,
|
||||
pub secret: Option<String>,
|
||||
pub username: String,
|
||||
pub config_dir: PathBuf,
|
||||
pub no_start: bool,
|
||||
}
|
||||
|
||||
impl Default for InitOptions {
|
||||
fn default() -> Self {
|
||||
Self {
|
||||
port: 443,
|
||||
domain: "www.google.com".to_string(),
|
||||
secret: None,
|
||||
username: "user".to_string(),
|
||||
config_dir: PathBuf::from("/etc/telemt"),
|
||||
no_start: false,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/// Parse --init subcommand options from CLI args.
|
||||
///
|
||||
/// Returns `Some(InitOptions)` if `--init` was found, `None` otherwise.
|
||||
pub fn parse_init_args(args: &[String]) -> Option<InitOptions> {
|
||||
if !args.iter().any(|a| a == "--init") {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut opts = InitOptions::default();
|
||||
let mut i = 0;
|
||||
|
||||
while i < args.len() {
|
||||
match args[i].as_str() {
|
||||
"--port" => {
|
||||
i += 1;
|
||||
if i < args.len() {
|
||||
opts.port = args[i].parse().unwrap_or(443);
|
||||
}
|
||||
}
|
||||
"--domain" => {
|
||||
i += 1;
|
||||
if i < args.len() {
|
||||
opts.domain = args[i].clone();
|
||||
}
|
||||
}
|
||||
"--secret" => {
|
||||
i += 1;
|
||||
if i < args.len() {
|
||||
opts.secret = Some(args[i].clone());
|
||||
}
|
||||
}
|
||||
"--user" => {
|
||||
i += 1;
|
||||
if i < args.len() {
|
||||
opts.username = args[i].clone();
|
||||
}
|
||||
}
|
||||
"--config-dir" => {
|
||||
i += 1;
|
||||
if i < args.len() {
|
||||
opts.config_dir = PathBuf::from(&args[i]);
|
||||
}
|
||||
}
|
||||
"--no-start" => {
|
||||
opts.no_start = true;
|
||||
}
|
||||
_ => {}
|
||||
}
|
||||
i += 1;
|
||||
}
|
||||
|
||||
Some(opts)
|
||||
}
|
||||
|
||||
/// Run the fire-and-forget setup.
|
||||
pub fn run_init(opts: InitOptions) -> Result<(), Box<dyn std::error::Error>> {
|
||||
eprintln!("[telemt] Fire-and-forget setup");
|
||||
eprintln!();
|
||||
|
||||
// 1. Generate or validate secret
|
||||
let secret = match opts.secret {
|
||||
Some(s) => {
|
||||
if s.len() != 32 || !s.chars().all(|c| c.is_ascii_hexdigit()) {
|
||||
eprintln!("[error] Secret must be exactly 32 hex characters");
|
||||
std::process::exit(1);
|
||||
}
|
||||
s
|
||||
}
|
||||
None => generate_secret(),
|
||||
};
|
||||
|
||||
eprintln!("[+] Secret: {}", secret);
|
||||
eprintln!("[+] User: {}", opts.username);
|
||||
eprintln!("[+] Port: {}", opts.port);
|
||||
eprintln!("[+] Domain: {}", opts.domain);
|
||||
|
||||
// 2. Create config directory
|
||||
fs::create_dir_all(&opts.config_dir)?;
|
||||
let config_path = opts.config_dir.join("config.toml");
|
||||
|
||||
// 3. Write config
|
||||
let config_content = generate_config(&opts.username, &secret, opts.port, &opts.domain);
|
||||
fs::write(&config_path, &config_content)?;
|
||||
eprintln!("[+] Config written to {}", config_path.display());
|
||||
|
||||
// 4. Write systemd unit
|
||||
let exe_path = std::env::current_exe()
|
||||
.unwrap_or_else(|_| PathBuf::from("/usr/local/bin/telemt"));
|
||||
|
||||
let unit_path = Path::new("/etc/systemd/system/telemt.service");
|
||||
let unit_content = generate_systemd_unit(&exe_path, &config_path);
|
||||
|
||||
match fs::write(unit_path, &unit_content) {
|
||||
Ok(()) => {
|
||||
eprintln!("[+] Systemd unit written to {}", unit_path.display());
|
||||
}
|
||||
Err(e) => {
|
||||
eprintln!("[!] Cannot write systemd unit (run as root?): {}", e);
|
||||
eprintln!("[!] Manual unit file content:");
|
||||
eprintln!("{}", unit_content);
|
||||
|
||||
// Still print links and config
|
||||
print_links(&opts.username, &secret, opts.port, &opts.domain);
|
||||
return Ok(());
|
||||
}
|
||||
}
|
||||
|
||||
// 5. Reload systemd
|
||||
run_cmd("systemctl", &["daemon-reload"]);
|
||||
|
||||
// 6. Enable service
|
||||
run_cmd("systemctl", &["enable", "telemt.service"]);
|
||||
eprintln!("[+] Service enabled");
|
||||
|
||||
// 7. Start service (unless --no-start)
|
||||
if !opts.no_start {
|
||||
run_cmd("systemctl", &["start", "telemt.service"]);
|
||||
eprintln!("[+] Service started");
|
||||
|
||||
// Brief delay then check status
|
||||
std::thread::sleep(std::time::Duration::from_secs(1));
|
||||
let status = Command::new("systemctl")
|
||||
.args(["is-active", "telemt.service"])
|
||||
.output();
|
||||
|
||||
match status {
|
||||
Ok(out) if out.status.success() => {
|
||||
eprintln!("[+] Service is running");
|
||||
}
|
||||
_ => {
|
||||
eprintln!("[!] Service may not have started correctly");
|
||||
eprintln!("[!] Check: journalctl -u telemt.service -n 20");
|
||||
}
|
||||
}
|
||||
} else {
|
||||
eprintln!("[+] Service not started (--no-start)");
|
||||
eprintln!("[+] Start manually: systemctl start telemt.service");
|
||||
}
|
||||
|
||||
eprintln!();
|
||||
|
||||
// 8. Print links
|
||||
print_links(&opts.username, &secret, opts.port, &opts.domain);
|
||||
|
||||
Ok(())
|
||||
}
|
||||
|
||||
fn generate_secret() -> String {
|
||||
let mut rng = rand::rng();
|
||||
let bytes: Vec<u8> = (0..16).map(|_| rng.random::<u8>()).collect();
|
||||
hex::encode(bytes)
|
||||
}
|
||||
|
||||
fn generate_config(username: &str, secret: &str, port: u16, domain: &str) -> String {
|
||||
format!(
|
||||
r#"# Telemt MTProxy — auto-generated config
|
||||
# Re-run `telemt --init` to regenerate
|
||||
|
||||
show_link = ["{username}"]
|
||||
|
||||
[general]
|
||||
# prefer_ipv6 is deprecated; use [network].prefer
|
||||
prefer_ipv6 = false
|
||||
fast_mode = true
|
||||
use_middle_proxy = false
|
||||
log_level = "normal"
|
||||
desync_all_full = false
|
||||
update_every = 43200
|
||||
hardswap = false
|
||||
me_pool_drain_ttl_secs = 90
|
||||
me_pool_min_fresh_ratio = 0.8
|
||||
me_reinit_drain_timeout_secs = 120
|
||||
|
||||
[network]
|
||||
ipv4 = true
|
||||
ipv6 = true
|
||||
prefer = 4
|
||||
multipath = false
|
||||
|
||||
[general.modes]
|
||||
classic = false
|
||||
secure = false
|
||||
tls = true
|
||||
|
||||
[server]
|
||||
port = {port}
|
||||
listen_addr_ipv4 = "0.0.0.0"
|
||||
listen_addr_ipv6 = "::"
|
||||
|
||||
[[server.listeners]]
|
||||
ip = "0.0.0.0"
|
||||
# reuse_allow = false # Set true only when intentionally running multiple telemt instances on same port
|
||||
|
||||
[[server.listeners]]
|
||||
ip = "::"
|
||||
|
||||
[timeouts]
|
||||
client_handshake = 15
|
||||
tg_connect = 10
|
||||
client_keepalive = 60
|
||||
client_ack = 300
|
||||
|
||||
[censorship]
|
||||
tls_domain = "{domain}"
|
||||
mask = true
|
||||
mask_port = 443
|
||||
fake_cert_len = 2048
|
||||
tls_full_cert_ttl_secs = 90
|
||||
|
||||
[access]
|
||||
replay_check_len = 65536
|
||||
replay_window_secs = 1800
|
||||
ignore_time_skew = false
|
||||
|
||||
[access.users]
|
||||
{username} = "{secret}"
|
||||
|
||||
[[upstreams]]
|
||||
type = "direct"
|
||||
enabled = true
|
||||
weight = 10
|
||||
"#,
|
||||
username = username,
|
||||
secret = secret,
|
||||
port = port,
|
||||
domain = domain,
|
||||
)
|
||||
}
|
||||
|
||||
fn generate_systemd_unit(exe_path: &Path, config_path: &Path) -> String {
|
||||
format!(
|
||||
r#"[Unit]
|
||||
Description=Telemt MTProxy
|
||||
Documentation=https://github.com/nicepkg/telemt
|
||||
After=network-online.target
|
||||
Wants=network-online.target
|
||||
|
||||
[Service]
|
||||
Type=simple
|
||||
ExecStart={exe} {config}
|
||||
Restart=always
|
||||
RestartSec=5
|
||||
LimitNOFILE=65535
|
||||
# Security hardening
|
||||
NoNewPrivileges=true
|
||||
ProtectSystem=strict
|
||||
ProtectHome=true
|
||||
ReadWritePaths=/etc/telemt
|
||||
PrivateTmp=true
|
||||
|
||||
[Install]
|
||||
WantedBy=multi-user.target
|
||||
"#,
|
||||
exe = exe_path.display(),
|
||||
config = config_path.display(),
|
||||
)
|
||||
}
|
||||
|
||||
fn run_cmd(cmd: &str, args: &[&str]) {
|
||||
match Command::new(cmd).args(args).output() {
|
||||
Ok(output) => {
|
||||
if !output.status.success() {
|
||||
let stderr = String::from_utf8_lossy(&output.stderr);
|
||||
eprintln!("[!] {} {} failed: {}", cmd, args.join(" "), stderr.trim());
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
eprintln!("[!] Failed to run {} {}: {}", cmd, args.join(" "), e);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
fn print_links(username: &str, secret: &str, port: u16, domain: &str) {
|
||||
let domain_hex = hex::encode(domain);
|
||||
|
||||
println!("=== Proxy Links ===");
|
||||
println!("[{}]", username);
|
||||
println!(" EE-TLS: tg://proxy?server=YOUR_SERVER_IP&port={}&secret=ee{}{}",
|
||||
port, secret, domain_hex);
|
||||
println!();
|
||||
println!("Replace YOUR_SERVER_IP with your server's public IP.");
|
||||
println!("The proxy will auto-detect and display the correct link on startup.");
|
||||
println!("Check: journalctl -u telemt.service | head -30");
|
||||
println!("===================");
|
||||
}
|
||||
532
src/config/defaults.rs
Normal file
532
src/config/defaults.rs
Normal file
@@ -0,0 +1,532 @@
|
||||
use std::collections::HashMap;
|
||||
use ipnetwork::IpNetwork;
|
||||
use serde::Deserialize;
|
||||
|
||||
// Helper defaults kept private to the config module.
|
||||
const DEFAULT_NETWORK_IPV6: Option<bool> = Some(false);
|
||||
const DEFAULT_STUN_TCP_FALLBACK: bool = true;
|
||||
const DEFAULT_MIDDLE_PROXY_WARM_STANDBY: usize = 16;
|
||||
const DEFAULT_ME_RECONNECT_MAX_CONCURRENT_PER_DC: u32 = 8;
|
||||
const DEFAULT_ME_RECONNECT_FAST_RETRY_COUNT: u32 = 16;
|
||||
const DEFAULT_ME_SINGLE_ENDPOINT_SHADOW_WRITERS: u8 = 2;
|
||||
const DEFAULT_ME_ADAPTIVE_FLOOR_IDLE_SECS: u64 = 90;
|
||||
const DEFAULT_ME_ADAPTIVE_FLOOR_MIN_WRITERS_SINGLE_ENDPOINT: u8 = 1;
|
||||
const DEFAULT_ME_ADAPTIVE_FLOOR_RECOVER_GRACE_SECS: u64 = 180;
|
||||
const DEFAULT_USER_MAX_UNIQUE_IPS_WINDOW_SECS: u64 = 30;
|
||||
const DEFAULT_UPSTREAM_CONNECT_RETRY_ATTEMPTS: u32 = 2;
|
||||
const DEFAULT_UPSTREAM_UNHEALTHY_FAIL_THRESHOLD: u32 = 5;
|
||||
const DEFAULT_LISTEN_ADDR_IPV6: &str = "::";
|
||||
const DEFAULT_ACCESS_USER: &str = "default";
|
||||
const DEFAULT_ACCESS_SECRET: &str = "00000000000000000000000000000000";
|
||||
|
||||
pub(crate) fn default_true() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_port() -> u16 {
|
||||
443
|
||||
}
|
||||
|
||||
pub(crate) fn default_tls_domain() -> String {
|
||||
"petrovich.ru".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_mask_port() -> u16 {
|
||||
443
|
||||
}
|
||||
|
||||
pub(crate) fn default_fake_cert_len() -> usize {
|
||||
2048
|
||||
}
|
||||
|
||||
pub(crate) fn default_tls_front_dir() -> String {
|
||||
"tlsfront".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_replay_check_len() -> usize {
|
||||
65_536
|
||||
}
|
||||
|
||||
pub(crate) fn default_replay_window_secs() -> u64 {
|
||||
1800
|
||||
}
|
||||
|
||||
pub(crate) fn default_handshake_timeout() -> u64 {
|
||||
30
|
||||
}
|
||||
|
||||
pub(crate) fn default_connect_timeout() -> u64 {
|
||||
10
|
||||
}
|
||||
|
||||
pub(crate) fn default_keepalive() -> u64 {
|
||||
60
|
||||
}
|
||||
|
||||
pub(crate) fn default_ack_timeout() -> u64 {
|
||||
300
|
||||
}
|
||||
pub(crate) fn default_me_one_retry() -> u8 {
|
||||
12
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_one_timeout() -> u64 {
|
||||
1200
|
||||
}
|
||||
|
||||
pub(crate) fn default_listen_addr() -> String {
|
||||
"0.0.0.0".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_listen_addr_ipv4() -> Option<String> {
|
||||
Some(default_listen_addr())
|
||||
}
|
||||
|
||||
pub(crate) fn default_weight() -> u16 {
|
||||
1
|
||||
}
|
||||
|
||||
pub(crate) fn default_metrics_whitelist() -> Vec<IpNetwork> {
|
||||
vec![
|
||||
"127.0.0.1/32".parse().unwrap(),
|
||||
"::1/128".parse().unwrap(),
|
||||
]
|
||||
}
|
||||
|
||||
pub(crate) fn default_api_listen() -> String {
|
||||
"127.0.0.1:9091".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_api_whitelist() -> Vec<IpNetwork> {
|
||||
default_metrics_whitelist()
|
||||
}
|
||||
|
||||
pub(crate) fn default_api_request_body_limit_bytes() -> usize {
|
||||
64 * 1024
|
||||
}
|
||||
|
||||
pub(crate) fn default_api_minimal_runtime_enabled() -> bool {
|
||||
false
|
||||
}
|
||||
|
||||
pub(crate) fn default_api_minimal_runtime_cache_ttl_ms() -> u64 {
|
||||
1000
|
||||
}
|
||||
|
||||
pub(crate) fn default_prefer_4() -> u8 {
|
||||
4
|
||||
}
|
||||
|
||||
pub(crate) fn default_network_ipv6() -> Option<bool> {
|
||||
DEFAULT_NETWORK_IPV6
|
||||
}
|
||||
|
||||
pub(crate) fn default_stun_tcp_fallback() -> bool {
|
||||
DEFAULT_STUN_TCP_FALLBACK
|
||||
}
|
||||
|
||||
pub(crate) fn default_unknown_dc_log_path() -> Option<String> {
|
||||
Some("unknown-dc.txt".to_string())
|
||||
}
|
||||
|
||||
pub(crate) fn default_unknown_dc_file_log_enabled() -> bool {
|
||||
false
|
||||
}
|
||||
|
||||
pub(crate) fn default_pool_size() -> usize {
|
||||
8
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_secret_path() -> Option<String> {
|
||||
Some("proxy-secret".to_string())
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_config_v4_cache_path() -> Option<String> {
|
||||
Some("cache/proxy-config-v4.txt".to_string())
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_config_v6_cache_path() -> Option<String> {
|
||||
Some("cache/proxy-config-v6.txt".to_string())
|
||||
}
|
||||
|
||||
pub(crate) fn default_middle_proxy_nat_stun() -> Option<String> {
|
||||
None
|
||||
}
|
||||
|
||||
pub(crate) fn default_middle_proxy_nat_stun_servers() -> Vec<String> {
|
||||
Vec::new()
|
||||
}
|
||||
|
||||
pub(crate) fn default_stun_nat_probe_concurrency() -> usize {
|
||||
8
|
||||
}
|
||||
|
||||
pub(crate) fn default_middle_proxy_warm_standby() -> usize {
|
||||
DEFAULT_MIDDLE_PROXY_WARM_STANDBY
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_init_retry_attempts() -> u32 {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_me2dc_fallback() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_keepalive_interval() -> u64 {
|
||||
8
|
||||
}
|
||||
|
||||
pub(crate) fn default_keepalive_jitter() -> u64 {
|
||||
2
|
||||
}
|
||||
|
||||
pub(crate) fn default_warmup_step_delay_ms() -> u64 {
|
||||
500
|
||||
}
|
||||
|
||||
pub(crate) fn default_warmup_step_jitter_ms() -> u64 {
|
||||
300
|
||||
}
|
||||
|
||||
pub(crate) fn default_reconnect_backoff_base_ms() -> u64 {
|
||||
500
|
||||
}
|
||||
|
||||
pub(crate) fn default_reconnect_backoff_cap_ms() -> u64 {
|
||||
30_000
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reconnect_max_concurrent_per_dc() -> u32 {
|
||||
DEFAULT_ME_RECONNECT_MAX_CONCURRENT_PER_DC
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reconnect_fast_retry_count() -> u32 {
|
||||
DEFAULT_ME_RECONNECT_FAST_RETRY_COUNT
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_shadow_writers() -> u8 {
|
||||
DEFAULT_ME_SINGLE_ENDPOINT_SHADOW_WRITERS
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_outage_mode_enabled() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_outage_disable_quarantine() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_outage_backoff_min_ms() -> u64 {
|
||||
250
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_outage_backoff_max_ms() -> u64 {
|
||||
3000
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_single_endpoint_shadow_rotate_every_secs() -> u64 {
|
||||
900
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_adaptive_floor_idle_secs() -> u64 {
|
||||
DEFAULT_ME_ADAPTIVE_FLOOR_IDLE_SECS
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_adaptive_floor_min_writers_single_endpoint() -> u8 {
|
||||
DEFAULT_ME_ADAPTIVE_FLOOR_MIN_WRITERS_SINGLE_ENDPOINT
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_adaptive_floor_recover_grace_secs() -> u64 {
|
||||
DEFAULT_ME_ADAPTIVE_FLOOR_RECOVER_GRACE_SECS
|
||||
}
|
||||
|
||||
pub(crate) fn default_upstream_connect_retry_attempts() -> u32 {
|
||||
DEFAULT_UPSTREAM_CONNECT_RETRY_ATTEMPTS
|
||||
}
|
||||
|
||||
pub(crate) fn default_upstream_connect_retry_backoff_ms() -> u64 {
|
||||
100
|
||||
}
|
||||
|
||||
pub(crate) fn default_upstream_unhealthy_fail_threshold() -> u32 {
|
||||
DEFAULT_UPSTREAM_UNHEALTHY_FAIL_THRESHOLD
|
||||
}
|
||||
|
||||
pub(crate) fn default_upstream_connect_failfast_hard_errors() -> bool {
|
||||
false
|
||||
}
|
||||
|
||||
pub(crate) fn default_rpc_proxy_req_every() -> u64 {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_crypto_pending_buffer() -> usize {
|
||||
256 * 1024
|
||||
}
|
||||
|
||||
pub(crate) fn default_max_client_frame() -> usize {
|
||||
16 * 1024 * 1024
|
||||
}
|
||||
|
||||
pub(crate) fn default_desync_all_full() -> bool {
|
||||
false
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_backpressure_base_timeout_ms() -> u64 {
|
||||
25
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_backpressure_high_timeout_ms() -> u64 {
|
||||
120
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_backpressure_high_watermark_pct() -> u8 {
|
||||
80
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_no_writer_wait_ms() -> u64 {
|
||||
250
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_inline_recovery_attempts() -> u32 {
|
||||
3
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_route_inline_recovery_wait_ms() -> u64 {
|
||||
3000
|
||||
}
|
||||
|
||||
pub(crate) fn default_beobachten_minutes() -> u64 {
|
||||
10
|
||||
}
|
||||
|
||||
pub(crate) fn default_beobachten_flush_secs() -> u64 {
|
||||
15
|
||||
}
|
||||
|
||||
pub(crate) fn default_beobachten_file() -> String {
|
||||
"cache/beobachten.txt".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_tls_new_session_tickets() -> u8 {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_tls_full_cert_ttl_secs() -> u64 {
|
||||
90
|
||||
}
|
||||
|
||||
pub(crate) fn default_server_hello_delay_min_ms() -> u64 {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_server_hello_delay_max_ms() -> u64 {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_alpn_enforce() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_stun_servers() -> Vec<String> {
|
||||
vec![
|
||||
"stun.l.google.com:5349".to_string(),
|
||||
"stun1.l.google.com:3478".to_string(),
|
||||
"stun.gmx.net:3478".to_string(),
|
||||
"stun.l.google.com:19302".to_string(),
|
||||
"stun.1und1.de:3478".to_string(),
|
||||
"stun1.l.google.com:19302".to_string(),
|
||||
"stun2.l.google.com:19302".to_string(),
|
||||
"stun3.l.google.com:19302".to_string(),
|
||||
"stun4.l.google.com:19302".to_string(),
|
||||
"stun.services.mozilla.com:3478".to_string(),
|
||||
"stun.stunprotocol.org:3478".to_string(),
|
||||
"stun.nextcloud.com:3478".to_string(),
|
||||
"stun.voip.eutelia.it:3478".to_string(),
|
||||
]
|
||||
}
|
||||
|
||||
pub(crate) fn default_http_ip_detect_urls() -> Vec<String> {
|
||||
vec![
|
||||
"https://ifconfig.me/ip".to_string(),
|
||||
"https://api.ipify.org".to_string(),
|
||||
]
|
||||
}
|
||||
|
||||
pub(crate) fn default_cache_public_ip_path() -> String {
|
||||
"cache/public_ip.txt".to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_secret_reload_secs() -> u64 {
|
||||
60 * 60
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_config_reload_secs() -> u64 {
|
||||
60 * 60
|
||||
}
|
||||
|
||||
pub(crate) fn default_update_every_secs() -> u64 {
|
||||
5 * 60
|
||||
}
|
||||
|
||||
pub(crate) fn default_update_every() -> Option<u64> {
|
||||
Some(default_update_every_secs())
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reinit_every_secs() -> u64 {
|
||||
15 * 60
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reinit_singleflight() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reinit_trigger_channel() -> usize {
|
||||
64
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reinit_coalesce_window_ms() -> u64 {
|
||||
200
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_hardswap_warmup_delay_min_ms() -> u64 {
|
||||
1000
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_hardswap_warmup_delay_max_ms() -> u64 {
|
||||
2000
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_hardswap_warmup_extra_passes() -> u8 {
|
||||
3
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_hardswap_warmup_pass_backoff_base_ms() -> u64 {
|
||||
500
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_config_stable_snapshots() -> u8 {
|
||||
2
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_config_apply_cooldown_secs() -> u64 {
|
||||
300
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_snapshot_require_http_2xx() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_snapshot_reject_empty_map() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_snapshot_min_proxy_for_lines() -> u32 {
|
||||
1
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_secret_stable_snapshots() -> u8 {
|
||||
2
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_secret_rotate_runtime() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_secret_atomic_snapshot() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_proxy_secret_len_max() -> usize {
|
||||
256
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_reinit_drain_timeout_secs() -> u64 {
|
||||
120
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_pool_drain_ttl_secs() -> u64 {
|
||||
90
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_bind_stale_ttl_secs() -> u64 {
|
||||
default_me_pool_drain_ttl_secs()
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_pool_min_fresh_ratio() -> f32 {
|
||||
0.8
|
||||
}
|
||||
|
||||
pub(crate) fn default_me_deterministic_writer_sort() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_hardswap() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_ntp_check() -> bool {
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) fn default_ntp_servers() -> Vec<String> {
|
||||
vec!["pool.ntp.org".to_string()]
|
||||
}
|
||||
|
||||
pub(crate) fn default_fast_mode_min_tls_record() -> usize {
|
||||
0
|
||||
}
|
||||
|
||||
pub(crate) fn default_degradation_min_unavailable_dc_groups() -> u8 {
|
||||
2
|
||||
}
|
||||
|
||||
pub(crate) fn default_listen_addr_ipv6() -> String {
|
||||
DEFAULT_LISTEN_ADDR_IPV6.to_string()
|
||||
}
|
||||
|
||||
pub(crate) fn default_listen_addr_ipv6_opt() -> Option<String> {
|
||||
Some(default_listen_addr_ipv6())
|
||||
}
|
||||
|
||||
pub(crate) fn default_access_users() -> HashMap<String, String> {
|
||||
HashMap::from([(
|
||||
DEFAULT_ACCESS_USER.to_string(),
|
||||
DEFAULT_ACCESS_SECRET.to_string(),
|
||||
)])
|
||||
}
|
||||
|
||||
pub(crate) fn default_user_max_unique_ips_window_secs() -> u64 {
|
||||
DEFAULT_USER_MAX_UNIQUE_IPS_WINDOW_SECS
|
||||
}
|
||||
|
||||
// Custom deserializer helpers
|
||||
|
||||
#[derive(Deserialize)]
|
||||
#[serde(untagged)]
|
||||
pub(crate) enum OneOrMany {
|
||||
One(String),
|
||||
Many(Vec<String>),
|
||||
}
|
||||
|
||||
pub(crate) fn deserialize_dc_overrides<'de, D>(
|
||||
deserializer: D,
|
||||
) -> std::result::Result<HashMap<String, Vec<String>>, D::Error>
|
||||
where
|
||||
D: serde::de::Deserializer<'de>,
|
||||
{
|
||||
let raw: HashMap<String, OneOrMany> = HashMap::deserialize(deserializer)?;
|
||||
let mut out = HashMap::new();
|
||||
for (dc, val) in raw {
|
||||
let mut addrs = match val {
|
||||
OneOrMany::One(s) => vec![s],
|
||||
OneOrMany::Many(v) => v,
|
||||
};
|
||||
addrs.retain(|s| !s.trim().is_empty());
|
||||
if !addrs.is_empty() {
|
||||
out.insert(dc, addrs);
|
||||
}
|
||||
}
|
||||
Ok(out)
|
||||
}
|
||||
1060
src/config/hot_reload.rs
Normal file
1060
src/config/hot_reload.rs
Normal file
File diff suppressed because it is too large
Load Diff
1685
src/config/load.rs
Normal file
1685
src/config/load.rs
Normal file
File diff suppressed because it is too large
Load Diff
@@ -1,287 +1,9 @@
|
||||
//! Configuration
|
||||
//! Configuration.
|
||||
|
||||
use std::collections::HashMap;
|
||||
use std::net::IpAddr;
|
||||
use std::path::Path;
|
||||
use chrono::{DateTime, Utc};
|
||||
use serde::{Deserialize, Serialize};
|
||||
use crate::error::{ProxyError, Result};
|
||||
pub(crate) mod defaults;
|
||||
mod types;
|
||||
mod load;
|
||||
pub mod hot_reload;
|
||||
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct ProxyModes {
|
||||
#[serde(default)]
|
||||
pub classic: bool,
|
||||
#[serde(default)]
|
||||
pub secure: bool,
|
||||
#[serde(default = "default_true")]
|
||||
pub tls: bool,
|
||||
}
|
||||
|
||||
fn default_true() -> bool { true }
|
||||
fn default_weight() -> u16 { 1 }
|
||||
|
||||
impl Default for ProxyModes {
|
||||
fn default() -> Self {
|
||||
Self { classic: true, secure: true, tls: true }
|
||||
}
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Serialize, Deserialize, PartialEq)]
|
||||
#[serde(tag = "type", rename_all = "lowercase")]
|
||||
pub enum UpstreamType {
|
||||
Direct {
|
||||
#[serde(default)]
|
||||
interface: Option<String>, // Bind to specific IP/Interface
|
||||
},
|
||||
Socks4 {
|
||||
address: String, // IP:Port of SOCKS server
|
||||
#[serde(default)]
|
||||
interface: Option<String>, // Bind to specific IP/Interface for connection to SOCKS
|
||||
#[serde(default)]
|
||||
user_id: Option<String>,
|
||||
},
|
||||
Socks5 {
|
||||
address: String,
|
||||
#[serde(default)]
|
||||
interface: Option<String>,
|
||||
#[serde(default)]
|
||||
username: Option<String>,
|
||||
#[serde(default)]
|
||||
password: Option<String>,
|
||||
},
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct UpstreamConfig {
|
||||
#[serde(flatten)]
|
||||
pub upstream_type: UpstreamType,
|
||||
#[serde(default = "default_weight")]
|
||||
pub weight: u16,
|
||||
#[serde(default = "default_true")]
|
||||
pub enabled: bool,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct ListenerConfig {
|
||||
pub ip: IpAddr,
|
||||
#[serde(default)]
|
||||
pub announce_ip: Option<IpAddr>, // IP to show in tg:// links
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct ProxyConfig {
|
||||
#[serde(default = "default_port")]
|
||||
pub port: u16,
|
||||
|
||||
#[serde(default)]
|
||||
pub users: HashMap<String, String>,
|
||||
|
||||
#[serde(default)]
|
||||
pub ad_tag: Option<String>,
|
||||
|
||||
#[serde(default)]
|
||||
pub modes: ProxyModes,
|
||||
|
||||
#[serde(default = "default_tls_domain")]
|
||||
pub tls_domain: String,
|
||||
|
||||
#[serde(default = "default_true")]
|
||||
pub mask: bool,
|
||||
|
||||
#[serde(default)]
|
||||
pub mask_host: Option<String>,
|
||||
|
||||
#[serde(default = "default_mask_port")]
|
||||
pub mask_port: u16,
|
||||
|
||||
#[serde(default)]
|
||||
pub prefer_ipv6: bool,
|
||||
|
||||
#[serde(default = "default_true")]
|
||||
pub fast_mode: bool,
|
||||
|
||||
#[serde(default)]
|
||||
pub use_middle_proxy: bool,
|
||||
|
||||
#[serde(default)]
|
||||
pub user_max_tcp_conns: HashMap<String, usize>,
|
||||
|
||||
#[serde(default)]
|
||||
pub user_expirations: HashMap<String, DateTime<Utc>>,
|
||||
|
||||
#[serde(default)]
|
||||
pub user_data_quota: HashMap<String, u64>,
|
||||
|
||||
#[serde(default = "default_replay_check_len")]
|
||||
pub replay_check_len: usize,
|
||||
|
||||
#[serde(default)]
|
||||
pub ignore_time_skew: bool,
|
||||
|
||||
#[serde(default = "default_handshake_timeout")]
|
||||
pub client_handshake_timeout: u64,
|
||||
|
||||
#[serde(default = "default_connect_timeout")]
|
||||
pub tg_connect_timeout: u64,
|
||||
|
||||
#[serde(default = "default_keepalive")]
|
||||
pub client_keepalive: u64,
|
||||
|
||||
#[serde(default = "default_ack_timeout")]
|
||||
pub client_ack_timeout: u64,
|
||||
|
||||
#[serde(default = "default_listen_addr")]
|
||||
pub listen_addr_ipv4: String,
|
||||
|
||||
#[serde(default)]
|
||||
pub listen_addr_ipv6: Option<String>,
|
||||
|
||||
#[serde(default)]
|
||||
pub listen_unix_sock: Option<String>,
|
||||
|
||||
#[serde(default)]
|
||||
pub metrics_port: Option<u16>,
|
||||
|
||||
#[serde(default = "default_metrics_whitelist")]
|
||||
pub metrics_whitelist: Vec<IpAddr>,
|
||||
|
||||
#[serde(default = "default_fake_cert_len")]
|
||||
pub fake_cert_len: usize,
|
||||
|
||||
// New fields
|
||||
#[serde(default)]
|
||||
pub upstreams: Vec<UpstreamConfig>,
|
||||
|
||||
#[serde(default)]
|
||||
pub listeners: Vec<ListenerConfig>,
|
||||
|
||||
#[serde(default)]
|
||||
pub show_link: Vec<String>,
|
||||
}
|
||||
|
||||
fn default_port() -> u16 { 443 }
|
||||
fn default_tls_domain() -> String { "www.google.com".to_string() }
|
||||
fn default_mask_port() -> u16 { 443 }
|
||||
fn default_replay_check_len() -> usize { 65536 }
|
||||
fn default_handshake_timeout() -> u64 { 10 }
|
||||
fn default_connect_timeout() -> u64 { 10 }
|
||||
fn default_keepalive() -> u64 { 600 }
|
||||
fn default_ack_timeout() -> u64 { 300 }
|
||||
fn default_listen_addr() -> String { "0.0.0.0".to_string() }
|
||||
fn default_fake_cert_len() -> usize { 2048 }
|
||||
|
||||
fn default_metrics_whitelist() -> Vec<IpAddr> {
|
||||
vec![
|
||||
"127.0.0.1".parse().unwrap(),
|
||||
"::1".parse().unwrap(),
|
||||
]
|
||||
}
|
||||
|
||||
impl Default for ProxyConfig {
|
||||
fn default() -> Self {
|
||||
let mut users = HashMap::new();
|
||||
users.insert("default".to_string(), "00000000000000000000000000000000".to_string());
|
||||
|
||||
Self {
|
||||
port: default_port(),
|
||||
users,
|
||||
ad_tag: None,
|
||||
modes: ProxyModes::default(),
|
||||
tls_domain: default_tls_domain(),
|
||||
mask: true,
|
||||
mask_host: None,
|
||||
mask_port: default_mask_port(),
|
||||
prefer_ipv6: false,
|
||||
fast_mode: true,
|
||||
use_middle_proxy: false,
|
||||
user_max_tcp_conns: HashMap::new(),
|
||||
user_expirations: HashMap::new(),
|
||||
user_data_quota: HashMap::new(),
|
||||
replay_check_len: default_replay_check_len(),
|
||||
ignore_time_skew: false,
|
||||
client_handshake_timeout: default_handshake_timeout(),
|
||||
tg_connect_timeout: default_connect_timeout(),
|
||||
client_keepalive: default_keepalive(),
|
||||
client_ack_timeout: default_ack_timeout(),
|
||||
listen_addr_ipv4: default_listen_addr(),
|
||||
listen_addr_ipv6: Some("::".to_string()),
|
||||
listen_unix_sock: None,
|
||||
metrics_port: None,
|
||||
metrics_whitelist: default_metrics_whitelist(),
|
||||
fake_cert_len: default_fake_cert_len(),
|
||||
upstreams: Vec::new(),
|
||||
listeners: Vec::new(),
|
||||
show_link: Vec::new(),
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl ProxyConfig {
|
||||
pub fn load<P: AsRef<Path>>(path: P) -> Result<Self> {
|
||||
let content = std::fs::read_to_string(path)
|
||||
.map_err(|e| ProxyError::Config(e.to_string()))?;
|
||||
|
||||
let mut config: ProxyConfig = toml::from_str(&content)
|
||||
.map_err(|e| ProxyError::Config(e.to_string()))?;
|
||||
|
||||
// Validate secrets
|
||||
for (user, secret) in &config.users {
|
||||
if !secret.chars().all(|c| c.is_ascii_hexdigit()) || secret.len() != 32 {
|
||||
return Err(ProxyError::InvalidSecret {
|
||||
user: user.clone(),
|
||||
reason: "Must be 32 hex characters".to_string(),
|
||||
});
|
||||
}
|
||||
}
|
||||
|
||||
// Default mask_host
|
||||
if config.mask_host.is_none() {
|
||||
config.mask_host = Some(config.tls_domain.clone());
|
||||
}
|
||||
|
||||
// Random fake_cert_len
|
||||
use rand::Rng;
|
||||
config.fake_cert_len = rand::thread_rng().gen_range(1024..4096);
|
||||
|
||||
// Migration: Populate listeners if empty
|
||||
if config.listeners.is_empty() {
|
||||
if let Ok(ipv4) = config.listen_addr_ipv4.parse::<IpAddr>() {
|
||||
config.listeners.push(ListenerConfig {
|
||||
ip: ipv4,
|
||||
announce_ip: None,
|
||||
});
|
||||
}
|
||||
if let Some(ipv6_str) = &config.listen_addr_ipv6 {
|
||||
if let Ok(ipv6) = ipv6_str.parse::<IpAddr>() {
|
||||
config.listeners.push(ListenerConfig {
|
||||
ip: ipv6,
|
||||
announce_ip: None,
|
||||
});
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// Migration: Populate upstreams if empty (Default Direct)
|
||||
if config.upstreams.is_empty() {
|
||||
config.upstreams.push(UpstreamConfig {
|
||||
upstream_type: UpstreamType::Direct { interface: None },
|
||||
weight: 1,
|
||||
enabled: true,
|
||||
});
|
||||
}
|
||||
|
||||
Ok(config)
|
||||
}
|
||||
|
||||
pub fn validate(&self) -> Result<()> {
|
||||
if self.users.is_empty() {
|
||||
return Err(ProxyError::Config("No users configured".to_string()));
|
||||
}
|
||||
|
||||
if !self.modes.classic && !self.modes.secure && !self.modes.tls {
|
||||
return Err(ProxyError::Config("No modes enabled".to_string()));
|
||||
}
|
||||
|
||||
Ok(())
|
||||
}
|
||||
}
|
||||
pub use load::ProxyConfig;
|
||||
pub use types::*;
|
||||
|
||||
1325
src/config/types.rs
Normal file
1325
src/config/types.rs
Normal file
File diff suppressed because it is too large
Load Diff
@@ -1,9 +1,21 @@
|
||||
//! AES encryption implementations
|
||||
//!
|
||||
//! Provides AES-256-CTR and AES-256-CBC modes for MTProto encryption.
|
||||
//!
|
||||
//! ## Zeroize policy
|
||||
//!
|
||||
//! - `AesCbc` stores raw key/IV bytes and zeroizes them on drop.
|
||||
//! - `AesCtr` wraps an opaque `Aes256Ctr` cipher from the `ctr` crate.
|
||||
//! The expanded key schedule lives inside that type and cannot be
|
||||
//! zeroized from outside. Callers that hold raw key material (e.g.
|
||||
//! `HandshakeSuccess`, `ObfuscationParams`) are responsible for
|
||||
//! zeroizing their own copies.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use aes::Aes256;
|
||||
use ctr::{Ctr128BE, cipher::{KeyIvInit, StreamCipher}};
|
||||
use zeroize::Zeroize;
|
||||
use crate::error::{ProxyError, Result};
|
||||
|
||||
type Aes256Ctr = Ctr128BE<Aes256>;
|
||||
@@ -11,8 +23,13 @@ type Aes256Ctr = Ctr128BE<Aes256>;
|
||||
// ============= AES-256-CTR =============
|
||||
|
||||
/// AES-256-CTR encryptor/decryptor
|
||||
///
|
||||
/// CTR mode is symmetric - encryption and decryption are the same operation.
|
||||
///
|
||||
/// CTR mode is symmetric — encryption and decryption are the same operation.
|
||||
///
|
||||
/// **Zeroize note:** The inner `Aes256Ctr` cipher state (expanded key schedule
|
||||
/// + counter) is opaque and cannot be zeroized. If you need to protect key
|
||||
/// material, zeroize the `[u8; 32]` key and `u128` IV at the call site
|
||||
/// before dropping them.
|
||||
pub struct AesCtr {
|
||||
cipher: Aes256Ctr,
|
||||
}
|
||||
@@ -62,14 +79,23 @@ impl AesCtr {
|
||||
|
||||
/// AES-256-CBC cipher with proper chaining
|
||||
///
|
||||
/// Unlike CTR mode, CBC is NOT symmetric - encryption and decryption
|
||||
/// Unlike CTR mode, CBC is NOT symmetric — encryption and decryption
|
||||
/// are different operations. This implementation handles CBC chaining
|
||||
/// correctly across multiple blocks.
|
||||
///
|
||||
/// Key and IV are zeroized on drop.
|
||||
pub struct AesCbc {
|
||||
key: [u8; 32],
|
||||
iv: [u8; 16],
|
||||
}
|
||||
|
||||
impl Drop for AesCbc {
|
||||
fn drop(&mut self) {
|
||||
self.key.zeroize();
|
||||
self.iv.zeroize();
|
||||
}
|
||||
}
|
||||
|
||||
impl AesCbc {
|
||||
/// AES block size
|
||||
const BLOCK_SIZE: usize = 16;
|
||||
@@ -123,7 +149,7 @@ impl AesCbc {
|
||||
///
|
||||
/// CBC Encryption: C[i] = AES_Encrypt(P[i] XOR C[i-1]), where C[-1] = IV
|
||||
pub fn encrypt(&self, data: &[u8]) -> Result<Vec<u8>> {
|
||||
if data.len() % Self::BLOCK_SIZE != 0 {
|
||||
if !data.len().is_multiple_of(Self::BLOCK_SIZE) {
|
||||
return Err(ProxyError::Crypto(
|
||||
format!("CBC data must be aligned to 16 bytes, got {}", data.len())
|
||||
));
|
||||
@@ -141,17 +167,9 @@ impl AesCbc {
|
||||
|
||||
for chunk in data.chunks(Self::BLOCK_SIZE) {
|
||||
let plaintext: [u8; 16] = chunk.try_into().unwrap();
|
||||
|
||||
// XOR plaintext with previous ciphertext (or IV for first block)
|
||||
let xored = Self::xor_blocks(&plaintext, &prev_ciphertext);
|
||||
|
||||
// Encrypt the XORed block
|
||||
let ciphertext = self.encrypt_block(&xored, &key_schedule);
|
||||
|
||||
// Save for next iteration
|
||||
prev_ciphertext = ciphertext;
|
||||
|
||||
// Append to result
|
||||
result.extend_from_slice(&ciphertext);
|
||||
}
|
||||
|
||||
@@ -162,7 +180,7 @@ impl AesCbc {
|
||||
///
|
||||
/// CBC Decryption: P[i] = AES_Decrypt(C[i]) XOR C[i-1], where C[-1] = IV
|
||||
pub fn decrypt(&self, data: &[u8]) -> Result<Vec<u8>> {
|
||||
if data.len() % Self::BLOCK_SIZE != 0 {
|
||||
if !data.len().is_multiple_of(Self::BLOCK_SIZE) {
|
||||
return Err(ProxyError::Crypto(
|
||||
format!("CBC data must be aligned to 16 bytes, got {}", data.len())
|
||||
));
|
||||
@@ -180,17 +198,9 @@ impl AesCbc {
|
||||
|
||||
for chunk in data.chunks(Self::BLOCK_SIZE) {
|
||||
let ciphertext: [u8; 16] = chunk.try_into().unwrap();
|
||||
|
||||
// Decrypt the block
|
||||
let decrypted = self.decrypt_block(&ciphertext, &key_schedule);
|
||||
|
||||
// XOR with previous ciphertext (or IV for first block)
|
||||
let plaintext = Self::xor_blocks(&decrypted, &prev_ciphertext);
|
||||
|
||||
// Save current ciphertext for next iteration
|
||||
prev_ciphertext = ciphertext;
|
||||
|
||||
// Append to result
|
||||
result.extend_from_slice(&plaintext);
|
||||
}
|
||||
|
||||
@@ -199,7 +209,7 @@ impl AesCbc {
|
||||
|
||||
/// Encrypt data in-place
|
||||
pub fn encrypt_in_place(&self, data: &mut [u8]) -> Result<()> {
|
||||
if data.len() % Self::BLOCK_SIZE != 0 {
|
||||
if !data.len().is_multiple_of(Self::BLOCK_SIZE) {
|
||||
return Err(ProxyError::Crypto(
|
||||
format!("CBC data must be aligned to 16 bytes, got {}", data.len())
|
||||
));
|
||||
@@ -217,16 +227,13 @@ impl AesCbc {
|
||||
for i in (0..data.len()).step_by(Self::BLOCK_SIZE) {
|
||||
let block = &mut data[i..i + Self::BLOCK_SIZE];
|
||||
|
||||
// XOR with previous ciphertext
|
||||
for j in 0..Self::BLOCK_SIZE {
|
||||
block[j] ^= prev_ciphertext[j];
|
||||
}
|
||||
|
||||
// Encrypt in-place
|
||||
let block_array: &mut [u8; 16] = block.try_into().unwrap();
|
||||
*block_array = self.encrypt_block(block_array, &key_schedule);
|
||||
|
||||
// Save for next iteration
|
||||
prev_ciphertext = *block_array;
|
||||
}
|
||||
|
||||
@@ -235,7 +242,7 @@ impl AesCbc {
|
||||
|
||||
/// Decrypt data in-place
|
||||
pub fn decrypt_in_place(&self, data: &mut [u8]) -> Result<()> {
|
||||
if data.len() % Self::BLOCK_SIZE != 0 {
|
||||
if !data.len().is_multiple_of(Self::BLOCK_SIZE) {
|
||||
return Err(ProxyError::Crypto(
|
||||
format!("CBC data must be aligned to 16 bytes, got {}", data.len())
|
||||
));
|
||||
@@ -248,26 +255,20 @@ impl AesCbc {
|
||||
use aes::cipher::KeyInit;
|
||||
let key_schedule = aes::Aes256::new((&self.key).into());
|
||||
|
||||
// For in-place decryption, we need to save ciphertext blocks
|
||||
// before we overwrite them
|
||||
let mut prev_ciphertext = self.iv;
|
||||
|
||||
for i in (0..data.len()).step_by(Self::BLOCK_SIZE) {
|
||||
let block = &mut data[i..i + Self::BLOCK_SIZE];
|
||||
|
||||
// Save current ciphertext before modifying
|
||||
let current_ciphertext: [u8; 16] = block.try_into().unwrap();
|
||||
|
||||
// Decrypt in-place
|
||||
let block_array: &mut [u8; 16] = block.try_into().unwrap();
|
||||
*block_array = self.decrypt_block(block_array, &key_schedule);
|
||||
|
||||
// XOR with previous ciphertext
|
||||
for j in 0..Self::BLOCK_SIZE {
|
||||
block[j] ^= prev_ciphertext[j];
|
||||
}
|
||||
|
||||
// Save for next iteration
|
||||
prev_ciphertext = current_ciphertext;
|
||||
}
|
||||
|
||||
@@ -347,10 +348,8 @@ mod tests {
|
||||
let mut cipher = AesCtr::new(&key, iv);
|
||||
cipher.apply(&mut data);
|
||||
|
||||
// Encrypted should be different
|
||||
assert_ne!(&data[..], original);
|
||||
|
||||
// Decrypt with fresh cipher
|
||||
let mut cipher = AesCtr::new(&key, iv);
|
||||
cipher.apply(&mut data);
|
||||
|
||||
@@ -364,7 +363,7 @@ mod tests {
|
||||
let key = [0u8; 32];
|
||||
let iv = [0u8; 16];
|
||||
|
||||
let original = [0u8; 32]; // 2 blocks
|
||||
let original = [0u8; 32];
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
let encrypted = cipher.encrypt(&original).unwrap();
|
||||
@@ -375,31 +374,25 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_chaining_works() {
|
||||
// This is the key test - verify CBC chaining is correct
|
||||
let key = [0x42u8; 32];
|
||||
let iv = [0x00u8; 16];
|
||||
|
||||
// Two IDENTICAL plaintext blocks
|
||||
let plaintext = [0xAAu8; 32];
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
let ciphertext = cipher.encrypt(&plaintext).unwrap();
|
||||
|
||||
// With proper CBC, identical plaintext blocks produce DIFFERENT ciphertext
|
||||
let block1 = &ciphertext[0..16];
|
||||
let block2 = &ciphertext[16..32];
|
||||
|
||||
assert_ne!(
|
||||
block1, block2,
|
||||
"CBC chaining broken: identical plaintext blocks produced identical ciphertext. \
|
||||
This indicates ECB mode, not CBC!"
|
||||
"CBC chaining broken: identical plaintext blocks produced identical ciphertext"
|
||||
);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_known_vector() {
|
||||
// Test with known NIST test vector
|
||||
// AES-256-CBC with zero key and zero IV
|
||||
let key = [0u8; 32];
|
||||
let iv = [0u8; 16];
|
||||
let plaintext = [0u8; 16];
|
||||
@@ -407,11 +400,9 @@ mod tests {
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
let ciphertext = cipher.encrypt(&plaintext).unwrap();
|
||||
|
||||
// Decrypt and verify roundtrip
|
||||
let decrypted = cipher.decrypt(&ciphertext).unwrap();
|
||||
assert_eq!(plaintext.as_slice(), decrypted.as_slice());
|
||||
|
||||
// Ciphertext should not be all zeros
|
||||
assert_ne!(ciphertext.as_slice(), plaintext.as_slice());
|
||||
}
|
||||
|
||||
@@ -420,7 +411,6 @@ mod tests {
|
||||
let key = [0x12u8; 32];
|
||||
let iv = [0x34u8; 16];
|
||||
|
||||
// 5 blocks = 80 bytes
|
||||
let plaintext: Vec<u8> = (0..80).collect();
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
@@ -435,7 +425,7 @@ mod tests {
|
||||
let key = [0x12u8; 32];
|
||||
let iv = [0x34u8; 16];
|
||||
|
||||
let original = [0x56u8; 48]; // 3 blocks
|
||||
let original = [0x56u8; 48];
|
||||
let mut buffer = original;
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
@@ -462,41 +452,33 @@ mod tests {
|
||||
fn test_aes_cbc_unaligned_error() {
|
||||
let cipher = AesCbc::new([0u8; 32], [0u8; 16]);
|
||||
|
||||
// 15 bytes - not aligned to block size
|
||||
let result = cipher.encrypt(&[0u8; 15]);
|
||||
assert!(result.is_err());
|
||||
|
||||
// 17 bytes - not aligned
|
||||
let result = cipher.encrypt(&[0u8; 17]);
|
||||
assert!(result.is_err());
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_avalanche_effect() {
|
||||
// Changing one bit in plaintext should change entire ciphertext block
|
||||
// and all subsequent blocks (due to chaining)
|
||||
let key = [0xAB; 32];
|
||||
let iv = [0xCD; 16];
|
||||
|
||||
let mut plaintext1 = [0u8; 32];
|
||||
let plaintext1 = [0u8; 32];
|
||||
let mut plaintext2 = [0u8; 32];
|
||||
plaintext2[0] = 0x01; // Single bit difference in first block
|
||||
plaintext2[0] = 0x01;
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
|
||||
let ciphertext1 = cipher.encrypt(&plaintext1).unwrap();
|
||||
let ciphertext2 = cipher.encrypt(&plaintext2).unwrap();
|
||||
|
||||
// First blocks should be different
|
||||
assert_ne!(&ciphertext1[0..16], &ciphertext2[0..16]);
|
||||
|
||||
// Second blocks should ALSO be different (chaining effect)
|
||||
assert_ne!(&ciphertext1[16..32], &ciphertext2[16..32]);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_iv_matters() {
|
||||
// Same plaintext with different IVs should produce different ciphertext
|
||||
let key = [0x55; 32];
|
||||
let plaintext = [0x77u8; 16];
|
||||
|
||||
@@ -511,7 +493,6 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_deterministic() {
|
||||
// Same key, IV, plaintext should always produce same ciphertext
|
||||
let key = [0x99; 32];
|
||||
let iv = [0x88; 16];
|
||||
let plaintext = [0x77u8; 32];
|
||||
@@ -524,6 +505,23 @@ mod tests {
|
||||
assert_eq!(ciphertext1, ciphertext2);
|
||||
}
|
||||
|
||||
// ============= Zeroize Tests =============
|
||||
|
||||
#[test]
|
||||
fn test_aes_cbc_zeroize_on_drop() {
|
||||
let key = [0xAA; 32];
|
||||
let iv = [0xBB; 16];
|
||||
|
||||
let cipher = AesCbc::new(key, iv);
|
||||
// Verify key/iv are set
|
||||
assert_eq!(cipher.key, [0xAA; 32]);
|
||||
assert_eq!(cipher.iv, [0xBB; 16]);
|
||||
|
||||
drop(cipher);
|
||||
// After drop, key/iv are zeroized (can't observe directly,
|
||||
// but the Drop impl runs without panic)
|
||||
}
|
||||
|
||||
// ============= Error Handling Tests =============
|
||||
|
||||
#[test]
|
||||
|
||||
@@ -1,3 +1,16 @@
|
||||
//! Cryptographic hash functions
|
||||
//!
|
||||
//! ## Protocol-required algorithms
|
||||
//!
|
||||
//! This module exposes MD5 and SHA-1 alongside SHA-256. These weaker
|
||||
//! hash functions are **required by the Telegram Middle Proxy protocol**
|
||||
//! (`derive_middleproxy_keys`) and cannot be replaced without breaking
|
||||
//! compatibility. They are NOT used for any security-sensitive purpose
|
||||
//! outside of that specific key derivation scheme mandated by Telegram.
|
||||
//!
|
||||
//! Static analysis tools (CodeQL, cargo-audit) may flag them — the
|
||||
//! usages are intentional and protocol-mandated.
|
||||
|
||||
use hmac::{Hmac, Mac};
|
||||
use sha2::Sha256;
|
||||
use md5::Md5;
|
||||
@@ -21,14 +34,16 @@ pub fn sha256_hmac(key: &[u8], data: &[u8]) -> [u8; 32] {
|
||||
mac.finalize().into_bytes().into()
|
||||
}
|
||||
|
||||
/// SHA-1
|
||||
/// SHA-1 — **protocol-required** by Telegram Middle Proxy key derivation.
|
||||
/// Not used for general-purpose hashing.
|
||||
pub fn sha1(data: &[u8]) -> [u8; 20] {
|
||||
let mut hasher = Sha1::new();
|
||||
hasher.update(data);
|
||||
hasher.finalize().into()
|
||||
}
|
||||
|
||||
/// MD5
|
||||
/// MD5 — **protocol-required** by Telegram Middle Proxy key derivation.
|
||||
/// Not used for general-purpose hashing.
|
||||
pub fn md5(data: &[u8]) -> [u8; 16] {
|
||||
let mut hasher = Md5::new();
|
||||
hasher.update(data);
|
||||
@@ -40,7 +55,61 @@ pub fn crc32(data: &[u8]) -> u32 {
|
||||
crc32fast::hash(data)
|
||||
}
|
||||
|
||||
/// Middle Proxy Keygen
|
||||
/// CRC32C (Castagnoli)
|
||||
pub fn crc32c(data: &[u8]) -> u32 {
|
||||
crc32c::crc32c(data)
|
||||
}
|
||||
|
||||
/// Build the exact prekey buffer used by Telegram Middle Proxy KDF.
|
||||
///
|
||||
/// Returned buffer layout (IPv4):
|
||||
/// nonce_srv | nonce_clt | clt_ts | srv_ip | clt_port | purpose | clt_ip | srv_port | secret | nonce_srv | [clt_v6 | srv_v6] | nonce_clt
|
||||
#[allow(clippy::too_many_arguments)]
|
||||
pub fn build_middleproxy_prekey(
|
||||
nonce_srv: &[u8; 16],
|
||||
nonce_clt: &[u8; 16],
|
||||
clt_ts: &[u8; 4],
|
||||
srv_ip: Option<&[u8]>,
|
||||
clt_port: &[u8; 2],
|
||||
purpose: &[u8],
|
||||
clt_ip: Option<&[u8]>,
|
||||
srv_port: &[u8; 2],
|
||||
secret: &[u8],
|
||||
clt_ipv6: Option<&[u8; 16]>,
|
||||
srv_ipv6: Option<&[u8; 16]>,
|
||||
) -> Vec<u8> {
|
||||
const EMPTY_IP: [u8; 4] = [0, 0, 0, 0];
|
||||
|
||||
let srv_ip = srv_ip.unwrap_or(&EMPTY_IP);
|
||||
let clt_ip = clt_ip.unwrap_or(&EMPTY_IP);
|
||||
|
||||
let mut s = Vec::with_capacity(256);
|
||||
s.extend_from_slice(nonce_srv);
|
||||
s.extend_from_slice(nonce_clt);
|
||||
s.extend_from_slice(clt_ts);
|
||||
s.extend_from_slice(srv_ip);
|
||||
s.extend_from_slice(clt_port);
|
||||
s.extend_from_slice(purpose);
|
||||
s.extend_from_slice(clt_ip);
|
||||
s.extend_from_slice(srv_port);
|
||||
s.extend_from_slice(secret);
|
||||
s.extend_from_slice(nonce_srv);
|
||||
|
||||
if let (Some(clt_v6), Some(srv_v6)) = (clt_ipv6, srv_ipv6) {
|
||||
s.extend_from_slice(clt_v6);
|
||||
s.extend_from_slice(srv_v6);
|
||||
}
|
||||
|
||||
s.extend_from_slice(nonce_clt);
|
||||
s
|
||||
}
|
||||
|
||||
/// Middle Proxy key derivation
|
||||
///
|
||||
/// Uses MD5 + SHA-1 as mandated by the Telegram Middle Proxy protocol.
|
||||
/// These algorithms are NOT replaceable here — changing them would break
|
||||
/// interoperability with Telegram's middle proxy infrastructure.
|
||||
#[allow(clippy::too_many_arguments)]
|
||||
pub fn derive_middleproxy_keys(
|
||||
nonce_srv: &[u8; 16],
|
||||
nonce_clt: &[u8; 16],
|
||||
@@ -54,30 +123,20 @@ pub fn derive_middleproxy_keys(
|
||||
clt_ipv6: Option<&[u8; 16]>,
|
||||
srv_ipv6: Option<&[u8; 16]>,
|
||||
) -> ([u8; 32], [u8; 16]) {
|
||||
const EMPTY_IP: [u8; 4] = [0, 0, 0, 0];
|
||||
|
||||
let srv_ip = srv_ip.unwrap_or(&EMPTY_IP);
|
||||
let clt_ip = clt_ip.unwrap_or(&EMPTY_IP);
|
||||
|
||||
let mut s = Vec::with_capacity(256);
|
||||
s.extend_from_slice(nonce_srv);
|
||||
s.extend_from_slice(nonce_clt);
|
||||
s.extend_from_slice(clt_ts);
|
||||
s.extend_from_slice(srv_ip);
|
||||
s.extend_from_slice(clt_port);
|
||||
s.extend_from_slice(purpose);
|
||||
s.extend_from_slice(clt_ip);
|
||||
s.extend_from_slice(srv_port);
|
||||
s.extend_from_slice(secret);
|
||||
s.extend_from_slice(nonce_srv);
|
||||
|
||||
if let (Some(clt_v6), Some(srv_v6)) = (clt_ipv6, srv_ipv6) {
|
||||
s.extend_from_slice(clt_v6);
|
||||
s.extend_from_slice(srv_v6);
|
||||
}
|
||||
|
||||
s.extend_from_slice(nonce_clt);
|
||||
|
||||
let s = build_middleproxy_prekey(
|
||||
nonce_srv,
|
||||
nonce_clt,
|
||||
clt_ts,
|
||||
srv_ip,
|
||||
clt_port,
|
||||
purpose,
|
||||
clt_ip,
|
||||
srv_port,
|
||||
secret,
|
||||
clt_ipv6,
|
||||
srv_ipv6,
|
||||
);
|
||||
|
||||
let md5_1 = md5(&s[1..]);
|
||||
let sha1_sum = sha1(&s);
|
||||
let md5_2 = md5(&s[2..]);
|
||||
@@ -87,4 +146,40 @@ pub fn derive_middleproxy_keys(
|
||||
key[12..].copy_from_slice(&sha1_sum);
|
||||
|
||||
(key, md5_2)
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
#[test]
|
||||
fn middleproxy_prekey_sha_is_stable() {
|
||||
let nonce_srv = [0x11u8; 16];
|
||||
let nonce_clt = [0x22u8; 16];
|
||||
let clt_ts = 0x44332211u32.to_le_bytes();
|
||||
let srv_ip = Some([149u8, 154, 175, 50].as_ref());
|
||||
let clt_ip = Some([10u8, 0, 0, 1].as_ref());
|
||||
let clt_port = 0x1f90u16.to_le_bytes(); // 8080
|
||||
let srv_port = 0x22b8u16.to_le_bytes(); // 8888
|
||||
let secret = vec![0x55u8; 128];
|
||||
|
||||
let prekey = build_middleproxy_prekey(
|
||||
&nonce_srv,
|
||||
&nonce_clt,
|
||||
&clt_ts,
|
||||
srv_ip,
|
||||
&clt_port,
|
||||
b"CLIENT",
|
||||
clt_ip,
|
||||
&srv_port,
|
||||
&secret,
|
||||
None,
|
||||
None,
|
||||
);
|
||||
let digest = sha256(&prekey);
|
||||
assert_eq!(
|
||||
hex::encode(digest),
|
||||
"934f5facdafd65a44d5c2df90d2f35ddc81faaaeb337949dfeef817c8a7c1e00"
|
||||
);
|
||||
}
|
||||
}
|
||||
|
||||
@@ -5,5 +5,7 @@ pub mod hash;
|
||||
pub mod random;
|
||||
|
||||
pub use aes::{AesCtr, AesCbc};
|
||||
pub use hash::{sha256, sha256_hmac, sha1, md5, crc32};
|
||||
pub use random::{SecureRandom, SECURE_RANDOM};
|
||||
pub use hash::{
|
||||
build_middleproxy_prekey, crc32, crc32c, derive_middleproxy_keys, sha256, sha256_hmac,
|
||||
};
|
||||
pub use random::SecureRandom;
|
||||
|
||||
@@ -1,55 +1,83 @@
|
||||
//! Pseudorandom
|
||||
|
||||
#![allow(deprecated)]
|
||||
#![allow(dead_code)]
|
||||
|
||||
use rand::{Rng, RngCore, SeedableRng};
|
||||
use rand::rngs::StdRng;
|
||||
use parking_lot::Mutex;
|
||||
use zeroize::Zeroize;
|
||||
use crate::crypto::AesCtr;
|
||||
use once_cell::sync::Lazy;
|
||||
|
||||
/// Global secure random instance
|
||||
pub static SECURE_RANDOM: Lazy<SecureRandom> = Lazy::new(SecureRandom::new);
|
||||
|
||||
/// Cryptographically secure PRNG with AES-CTR
|
||||
pub struct SecureRandom {
|
||||
inner: Mutex<SecureRandomInner>,
|
||||
}
|
||||
|
||||
unsafe impl Send for SecureRandom {}
|
||||
unsafe impl Sync for SecureRandom {}
|
||||
|
||||
struct SecureRandomInner {
|
||||
rng: StdRng,
|
||||
cipher: AesCtr,
|
||||
buffer: Vec<u8>,
|
||||
}
|
||||
|
||||
impl Drop for SecureRandomInner {
|
||||
fn drop(&mut self) {
|
||||
self.buffer.zeroize();
|
||||
}
|
||||
}
|
||||
|
||||
impl SecureRandom {
|
||||
pub fn new() -> Self {
|
||||
let mut rng = StdRng::from_entropy();
|
||||
let mut seed_source = rand::rng();
|
||||
let mut rng = StdRng::from_rng(&mut seed_source);
|
||||
|
||||
let mut key = [0u8; 32];
|
||||
rng.fill_bytes(&mut key);
|
||||
let iv: u128 = rng.gen();
|
||||
let iv: u128 = rng.random();
|
||||
|
||||
let cipher = AesCtr::new(&key, iv);
|
||||
|
||||
// Zeroize local key copy — cipher already consumed it
|
||||
key.zeroize();
|
||||
|
||||
Self {
|
||||
inner: Mutex::new(SecureRandomInner {
|
||||
rng,
|
||||
cipher: AesCtr::new(&key, iv),
|
||||
cipher,
|
||||
buffer: Vec::with_capacity(1024),
|
||||
}),
|
||||
}
|
||||
}
|
||||
|
||||
/// Generate random bytes
|
||||
pub fn bytes(&self, len: usize) -> Vec<u8> {
|
||||
/// Fill a caller-provided buffer with random bytes.
|
||||
pub fn fill(&self, out: &mut [u8]) {
|
||||
let mut inner = self.inner.lock();
|
||||
const CHUNK_SIZE: usize = 512;
|
||||
|
||||
while inner.buffer.len() < len {
|
||||
let mut chunk = vec![0u8; CHUNK_SIZE];
|
||||
inner.rng.fill_bytes(&mut chunk);
|
||||
inner.cipher.apply(&mut chunk);
|
||||
inner.buffer.extend_from_slice(&chunk);
|
||||
|
||||
let mut written = 0usize;
|
||||
while written < out.len() {
|
||||
if inner.buffer.is_empty() {
|
||||
let mut chunk = vec![0u8; CHUNK_SIZE];
|
||||
inner.rng.fill_bytes(&mut chunk);
|
||||
inner.cipher.apply(&mut chunk);
|
||||
inner.buffer.extend_from_slice(&chunk);
|
||||
}
|
||||
|
||||
let take = (out.len() - written).min(inner.buffer.len());
|
||||
out[written..written + take].copy_from_slice(&inner.buffer[..take]);
|
||||
inner.buffer.drain(..take);
|
||||
written += take;
|
||||
}
|
||||
|
||||
inner.buffer.drain(..len).collect()
|
||||
}
|
||||
|
||||
/// Generate random bytes
|
||||
pub fn bytes(&self, len: usize) -> Vec<u8> {
|
||||
let mut out = vec![0u8; len];
|
||||
self.fill(&mut out);
|
||||
out
|
||||
}
|
||||
|
||||
/// Generate random number in range [0, max)
|
||||
@@ -67,7 +95,7 @@ impl SecureRandom {
|
||||
return 0;
|
||||
}
|
||||
|
||||
let bytes_needed = (k + 7) / 8;
|
||||
let bytes_needed = k.div_ceil(8);
|
||||
let bytes = self.bytes(bytes_needed.min(8));
|
||||
|
||||
let mut result = 0u64;
|
||||
@@ -78,7 +106,6 @@ impl SecureRandom {
|
||||
result |= (b as u64) << (i * 8);
|
||||
}
|
||||
|
||||
// Mask extra bits
|
||||
if k < 64 {
|
||||
result &= (1u64 << k) - 1;
|
||||
}
|
||||
@@ -107,13 +134,13 @@ impl SecureRandom {
|
||||
/// Generate random u32
|
||||
pub fn u32(&self) -> u32 {
|
||||
let mut inner = self.inner.lock();
|
||||
inner.rng.gen()
|
||||
inner.rng.random()
|
||||
}
|
||||
|
||||
/// Generate random u64
|
||||
pub fn u64(&self) -> u64 {
|
||||
let mut inner = self.inner.lock();
|
||||
inner.rng.gen()
|
||||
inner.rng.random()
|
||||
}
|
||||
}
|
||||
|
||||
@@ -162,12 +189,10 @@ mod tests {
|
||||
fn test_bits() {
|
||||
let rng = SecureRandom::new();
|
||||
|
||||
// Single bit should be 0 or 1
|
||||
for _ in 0..100 {
|
||||
assert!(rng.bits(1) <= 1);
|
||||
}
|
||||
|
||||
// 8 bits should be 0-255
|
||||
for _ in 0..100 {
|
||||
assert!(rng.bits(8) <= 255);
|
||||
}
|
||||
@@ -185,10 +210,8 @@ mod tests {
|
||||
}
|
||||
}
|
||||
|
||||
// Should have seen all items
|
||||
assert_eq!(seen.len(), 5);
|
||||
|
||||
// Empty slice should return None
|
||||
let empty: Vec<i32> = vec![];
|
||||
assert!(rng.choose(&empty).is_none());
|
||||
}
|
||||
@@ -201,12 +224,10 @@ mod tests {
|
||||
let mut shuffled = original.clone();
|
||||
rng.shuffle(&mut shuffled);
|
||||
|
||||
// Should contain same elements
|
||||
let mut sorted = shuffled.clone();
|
||||
sorted.sort();
|
||||
assert_eq!(sorted, original);
|
||||
|
||||
// Should be different order (with very high probability)
|
||||
assert_ne!(shuffled, original);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
63
src/error.rs
63
src/error.rs
@@ -1,5 +1,7 @@
|
||||
//! Error Types
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::fmt;
|
||||
use std::net::SocketAddr;
|
||||
use thiserror::Error;
|
||||
@@ -89,7 +91,7 @@ impl From<StreamError> for std::io::Error {
|
||||
std::io::Error::new(std::io::ErrorKind::UnexpectedEof, err)
|
||||
}
|
||||
StreamError::Poisoned { .. } => {
|
||||
std::io::Error::new(std::io::ErrorKind::Other, err)
|
||||
std::io::Error::other(err)
|
||||
}
|
||||
StreamError::BufferOverflow { .. } => {
|
||||
std::io::Error::new(std::io::ErrorKind::OutOfMemory, err)
|
||||
@@ -98,7 +100,7 @@ impl From<StreamError> for std::io::Error {
|
||||
std::io::Error::new(std::io::ErrorKind::InvalidData, err)
|
||||
}
|
||||
StreamError::PartialRead { .. } | StreamError::PartialWrite { .. } => {
|
||||
std::io::Error::new(std::io::ErrorKind::Other, err)
|
||||
std::io::Error::other(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -118,16 +120,13 @@ pub trait Recoverable {
|
||||
impl Recoverable for StreamError {
|
||||
fn is_recoverable(&self) -> bool {
|
||||
match self {
|
||||
// Partial operations can be retried
|
||||
Self::PartialRead { .. } | Self::PartialWrite { .. } => true,
|
||||
// I/O errors depend on kind
|
||||
Self::Io(e) => matches!(
|
||||
e.kind(),
|
||||
std::io::ErrorKind::WouldBlock
|
||||
| std::io::ErrorKind::Interrupted
|
||||
| std::io::ErrorKind::TimedOut
|
||||
),
|
||||
// These are not recoverable
|
||||
Self::Poisoned { .. }
|
||||
| Self::BufferOverflow { .. }
|
||||
| Self::InvalidFrame { .. }
|
||||
@@ -136,16 +135,7 @@ impl Recoverable for StreamError {
|
||||
}
|
||||
|
||||
fn can_continue(&self) -> bool {
|
||||
match self {
|
||||
// Poisoned stream cannot be used
|
||||
Self::Poisoned { .. } => false,
|
||||
// EOF means stream is done
|
||||
Self::UnexpectedEof => false,
|
||||
// Buffer overflow is fatal
|
||||
Self::BufferOverflow { .. } => false,
|
||||
// Others might allow continuation
|
||||
_ => true,
|
||||
}
|
||||
!matches!(self, Self::Poisoned { .. } | Self::UnexpectedEof | Self::BufferOverflow { .. })
|
||||
}
|
||||
}
|
||||
|
||||
@@ -297,16 +287,16 @@ pub type StreamResult<T> = std::result::Result<T, StreamError>;
|
||||
|
||||
/// Result with optional bad client handling
|
||||
#[derive(Debug)]
|
||||
pub enum HandshakeResult<T> {
|
||||
pub enum HandshakeResult<T, R, W> {
|
||||
/// Handshake succeeded
|
||||
Success(T),
|
||||
/// Client failed validation, needs masking
|
||||
BadClient,
|
||||
/// Client failed validation, needs masking. Returns ownership of streams.
|
||||
BadClient { reader: R, writer: W },
|
||||
/// Error occurred
|
||||
Error(ProxyError),
|
||||
}
|
||||
|
||||
impl<T> HandshakeResult<T> {
|
||||
impl<T, R, W> HandshakeResult<T, R, W> {
|
||||
/// Check if successful
|
||||
pub fn is_success(&self) -> bool {
|
||||
matches!(self, HandshakeResult::Success(_))
|
||||
@@ -314,49 +304,32 @@ impl<T> HandshakeResult<T> {
|
||||
|
||||
/// Check if bad client
|
||||
pub fn is_bad_client(&self) -> bool {
|
||||
matches!(self, HandshakeResult::BadClient)
|
||||
}
|
||||
|
||||
/// Convert to Result, treating BadClient as error
|
||||
pub fn into_result(self) -> Result<T> {
|
||||
match self {
|
||||
HandshakeResult::Success(v) => Ok(v),
|
||||
HandshakeResult::BadClient => Err(ProxyError::InvalidHandshake("Bad client".into())),
|
||||
HandshakeResult::Error(e) => Err(e),
|
||||
}
|
||||
matches!(self, HandshakeResult::BadClient { .. })
|
||||
}
|
||||
|
||||
/// Map the success value
|
||||
pub fn map<U, F: FnOnce(T) -> U>(self, f: F) -> HandshakeResult<U> {
|
||||
pub fn map<U, F: FnOnce(T) -> U>(self, f: F) -> HandshakeResult<U, R, W> {
|
||||
match self {
|
||||
HandshakeResult::Success(v) => HandshakeResult::Success(f(v)),
|
||||
HandshakeResult::BadClient => HandshakeResult::BadClient,
|
||||
HandshakeResult::BadClient { reader, writer } => HandshakeResult::BadClient { reader, writer },
|
||||
HandshakeResult::Error(e) => HandshakeResult::Error(e),
|
||||
}
|
||||
}
|
||||
|
||||
/// Convert success to Option
|
||||
pub fn ok(self) -> Option<T> {
|
||||
match self {
|
||||
HandshakeResult::Success(v) => Some(v),
|
||||
_ => None,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl<T> From<ProxyError> for HandshakeResult<T> {
|
||||
impl<T, R, W> From<ProxyError> for HandshakeResult<T, R, W> {
|
||||
fn from(err: ProxyError) -> Self {
|
||||
HandshakeResult::Error(err)
|
||||
}
|
||||
}
|
||||
|
||||
impl<T> From<std::io::Error> for HandshakeResult<T> {
|
||||
impl<T, R, W> From<std::io::Error> for HandshakeResult<T, R, W> {
|
||||
fn from(err: std::io::Error) -> Self {
|
||||
HandshakeResult::Error(ProxyError::Io(err))
|
||||
}
|
||||
}
|
||||
|
||||
impl<T> From<StreamError> for HandshakeResult<T> {
|
||||
impl<T, R, W> From<StreamError> for HandshakeResult<T, R, W> {
|
||||
fn from(err: StreamError) -> Self {
|
||||
HandshakeResult::Error(ProxyError::Stream(err))
|
||||
}
|
||||
@@ -400,18 +373,18 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_handshake_result() {
|
||||
let success: HandshakeResult<i32> = HandshakeResult::Success(42);
|
||||
let success: HandshakeResult<i32, (), ()> = HandshakeResult::Success(42);
|
||||
assert!(success.is_success());
|
||||
assert!(!success.is_bad_client());
|
||||
|
||||
let bad: HandshakeResult<i32> = HandshakeResult::BadClient;
|
||||
let bad: HandshakeResult<i32, (), ()> = HandshakeResult::BadClient { reader: (), writer: () };
|
||||
assert!(!bad.is_success());
|
||||
assert!(bad.is_bad_client());
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_handshake_result_map() {
|
||||
let success: HandshakeResult<i32> = HandshakeResult::Success(42);
|
||||
let success: HandshakeResult<i32, (), ()> = HandshakeResult::Success(42);
|
||||
let mapped = success.map(|x| x * 2);
|
||||
|
||||
match mapped {
|
||||
|
||||
573
src/ip_tracker.rs
Normal file
573
src/ip_tracker.rs
Normal file
@@ -0,0 +1,573 @@
|
||||
// IP address tracking and per-user unique IP limiting.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::collections::HashMap;
|
||||
use std::net::IpAddr;
|
||||
use std::sync::Arc;
|
||||
use std::time::{Duration, Instant};
|
||||
|
||||
use tokio::sync::RwLock;
|
||||
|
||||
use crate::config::UserMaxUniqueIpsMode;
|
||||
|
||||
#[derive(Debug, Clone)]
|
||||
pub struct UserIpTracker {
|
||||
active_ips: Arc<RwLock<HashMap<String, HashMap<IpAddr, usize>>>>,
|
||||
recent_ips: Arc<RwLock<HashMap<String, HashMap<IpAddr, Instant>>>>,
|
||||
max_ips: Arc<RwLock<HashMap<String, usize>>>,
|
||||
limit_mode: Arc<RwLock<UserMaxUniqueIpsMode>>,
|
||||
limit_window: Arc<RwLock<Duration>>,
|
||||
}
|
||||
|
||||
impl UserIpTracker {
|
||||
pub fn new() -> Self {
|
||||
Self {
|
||||
active_ips: Arc::new(RwLock::new(HashMap::new())),
|
||||
recent_ips: Arc::new(RwLock::new(HashMap::new())),
|
||||
max_ips: Arc::new(RwLock::new(HashMap::new())),
|
||||
limit_mode: Arc::new(RwLock::new(UserMaxUniqueIpsMode::ActiveWindow)),
|
||||
limit_window: Arc::new(RwLock::new(Duration::from_secs(30))),
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn set_limit_policy(&self, mode: UserMaxUniqueIpsMode, window_secs: u64) {
|
||||
{
|
||||
let mut current_mode = self.limit_mode.write().await;
|
||||
*current_mode = mode;
|
||||
}
|
||||
let mut current_window = self.limit_window.write().await;
|
||||
*current_window = Duration::from_secs(window_secs.max(1));
|
||||
}
|
||||
|
||||
pub async fn set_user_limit(&self, username: &str, max_ips: usize) {
|
||||
let mut limits = self.max_ips.write().await;
|
||||
limits.insert(username.to_string(), max_ips);
|
||||
}
|
||||
|
||||
pub async fn remove_user_limit(&self, username: &str) {
|
||||
let mut limits = self.max_ips.write().await;
|
||||
limits.remove(username);
|
||||
}
|
||||
|
||||
pub async fn load_limits(&self, limits: &HashMap<String, usize>) {
|
||||
let mut max_ips = self.max_ips.write().await;
|
||||
max_ips.clone_from(limits);
|
||||
}
|
||||
|
||||
fn prune_recent(user_recent: &mut HashMap<IpAddr, Instant>, now: Instant, window: Duration) {
|
||||
if user_recent.is_empty() {
|
||||
return;
|
||||
}
|
||||
user_recent.retain(|_, seen_at| now.duration_since(*seen_at) <= window);
|
||||
}
|
||||
|
||||
pub async fn check_and_add(&self, username: &str, ip: IpAddr) -> Result<(), String> {
|
||||
let limit = {
|
||||
let max_ips = self.max_ips.read().await;
|
||||
max_ips.get(username).copied()
|
||||
};
|
||||
let mode = *self.limit_mode.read().await;
|
||||
let window = *self.limit_window.read().await;
|
||||
let now = Instant::now();
|
||||
|
||||
let mut active_ips = self.active_ips.write().await;
|
||||
let user_active = active_ips
|
||||
.entry(username.to_string())
|
||||
.or_insert_with(HashMap::new);
|
||||
|
||||
let mut recent_ips = self.recent_ips.write().await;
|
||||
let user_recent = recent_ips
|
||||
.entry(username.to_string())
|
||||
.or_insert_with(HashMap::new);
|
||||
Self::prune_recent(user_recent, now, window);
|
||||
|
||||
if let Some(count) = user_active.get_mut(&ip) {
|
||||
*count = count.saturating_add(1);
|
||||
user_recent.insert(ip, now);
|
||||
return Ok(());
|
||||
}
|
||||
|
||||
if let Some(limit) = limit {
|
||||
let active_limit_reached = user_active.len() >= limit;
|
||||
let recent_limit_reached = user_recent.len() >= limit;
|
||||
let deny = match mode {
|
||||
UserMaxUniqueIpsMode::ActiveWindow => active_limit_reached,
|
||||
UserMaxUniqueIpsMode::TimeWindow => recent_limit_reached,
|
||||
UserMaxUniqueIpsMode::Combined => active_limit_reached || recent_limit_reached,
|
||||
};
|
||||
|
||||
if deny {
|
||||
return Err(format!(
|
||||
"IP limit reached for user '{}': active={}/{} recent={}/{} mode={:?}",
|
||||
username,
|
||||
user_active.len(),
|
||||
limit,
|
||||
user_recent.len(),
|
||||
limit,
|
||||
mode
|
||||
));
|
||||
}
|
||||
}
|
||||
|
||||
user_active.insert(ip, 1);
|
||||
user_recent.insert(ip, now);
|
||||
Ok(())
|
||||
}
|
||||
|
||||
pub async fn remove_ip(&self, username: &str, ip: IpAddr) {
|
||||
let mut active_ips = self.active_ips.write().await;
|
||||
if let Some(user_ips) = active_ips.get_mut(username) {
|
||||
if let Some(count) = user_ips.get_mut(&ip) {
|
||||
if *count > 1 {
|
||||
*count -= 1;
|
||||
} else {
|
||||
user_ips.remove(&ip);
|
||||
}
|
||||
}
|
||||
if user_ips.is_empty() {
|
||||
active_ips.remove(username);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn get_recent_counts_for_users(&self, users: &[String]) -> HashMap<String, usize> {
|
||||
let window = *self.limit_window.read().await;
|
||||
let now = Instant::now();
|
||||
let recent_ips = self.recent_ips.read().await;
|
||||
|
||||
let mut counts = HashMap::with_capacity(users.len());
|
||||
for user in users {
|
||||
let count = if let Some(user_recent) = recent_ips.get(user) {
|
||||
user_recent
|
||||
.values()
|
||||
.filter(|seen_at| now.duration_since(**seen_at) <= window)
|
||||
.count()
|
||||
} else {
|
||||
0
|
||||
};
|
||||
counts.insert(user.clone(), count);
|
||||
}
|
||||
counts
|
||||
}
|
||||
|
||||
pub async fn get_active_ips_for_users(&self, users: &[String]) -> HashMap<String, Vec<IpAddr>> {
|
||||
let active_ips = self.active_ips.read().await;
|
||||
let mut out = HashMap::with_capacity(users.len());
|
||||
for user in users {
|
||||
let mut ips = active_ips
|
||||
.get(user)
|
||||
.map(|per_ip| per_ip.keys().copied().collect::<Vec<_>>())
|
||||
.unwrap_or_else(Vec::new);
|
||||
ips.sort();
|
||||
out.insert(user.clone(), ips);
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
pub async fn get_recent_ips_for_users(&self, users: &[String]) -> HashMap<String, Vec<IpAddr>> {
|
||||
let window = *self.limit_window.read().await;
|
||||
let now = Instant::now();
|
||||
let recent_ips = self.recent_ips.read().await;
|
||||
|
||||
let mut out = HashMap::with_capacity(users.len());
|
||||
for user in users {
|
||||
let mut ips = if let Some(user_recent) = recent_ips.get(user) {
|
||||
user_recent
|
||||
.iter()
|
||||
.filter(|(_, seen_at)| now.duration_since(**seen_at) <= window)
|
||||
.map(|(ip, _)| *ip)
|
||||
.collect::<Vec<_>>()
|
||||
} else {
|
||||
Vec::new()
|
||||
};
|
||||
ips.sort();
|
||||
out.insert(user.clone(), ips);
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
pub async fn get_active_ip_count(&self, username: &str) -> usize {
|
||||
let active_ips = self.active_ips.read().await;
|
||||
active_ips.get(username).map(|ips| ips.len()).unwrap_or(0)
|
||||
}
|
||||
|
||||
pub async fn get_active_ips(&self, username: &str) -> Vec<IpAddr> {
|
||||
let active_ips = self.active_ips.read().await;
|
||||
active_ips
|
||||
.get(username)
|
||||
.map(|ips| ips.keys().copied().collect())
|
||||
.unwrap_or_else(Vec::new)
|
||||
}
|
||||
|
||||
pub async fn get_stats(&self) -> Vec<(String, usize, usize)> {
|
||||
let active_ips = self.active_ips.read().await;
|
||||
let max_ips = self.max_ips.read().await;
|
||||
|
||||
let mut stats = Vec::new();
|
||||
for (username, user_ips) in active_ips.iter() {
|
||||
let limit = max_ips.get(username).copied().unwrap_or(0);
|
||||
stats.push((username.clone(), user_ips.len(), limit));
|
||||
}
|
||||
|
||||
stats.sort_by(|a, b| a.0.cmp(&b.0));
|
||||
stats
|
||||
}
|
||||
|
||||
pub async fn clear_user_ips(&self, username: &str) {
|
||||
let mut active_ips = self.active_ips.write().await;
|
||||
active_ips.remove(username);
|
||||
drop(active_ips);
|
||||
|
||||
let mut recent_ips = self.recent_ips.write().await;
|
||||
recent_ips.remove(username);
|
||||
}
|
||||
|
||||
pub async fn clear_all(&self) {
|
||||
let mut active_ips = self.active_ips.write().await;
|
||||
active_ips.clear();
|
||||
drop(active_ips);
|
||||
|
||||
let mut recent_ips = self.recent_ips.write().await;
|
||||
recent_ips.clear();
|
||||
}
|
||||
|
||||
pub async fn is_ip_active(&self, username: &str, ip: IpAddr) -> bool {
|
||||
let active_ips = self.active_ips.read().await;
|
||||
active_ips
|
||||
.get(username)
|
||||
.map(|ips| ips.contains_key(&ip))
|
||||
.unwrap_or(false)
|
||||
}
|
||||
|
||||
pub async fn get_user_limit(&self, username: &str) -> Option<usize> {
|
||||
let max_ips = self.max_ips.read().await;
|
||||
max_ips.get(username).copied()
|
||||
}
|
||||
|
||||
pub async fn format_stats(&self) -> String {
|
||||
let stats = self.get_stats().await;
|
||||
|
||||
if stats.is_empty() {
|
||||
return String::from("No active users");
|
||||
}
|
||||
|
||||
let mut output = String::from("User IP Statistics:\n");
|
||||
output.push_str("==================\n");
|
||||
|
||||
for (username, active_count, limit) in stats {
|
||||
output.push_str(&format!(
|
||||
"User: {:<20} Active IPs: {}/{}\n",
|
||||
username,
|
||||
active_count,
|
||||
if limit > 0 {
|
||||
limit.to_string()
|
||||
} else {
|
||||
"unlimited".to_string()
|
||||
}
|
||||
));
|
||||
|
||||
let ips = self.get_active_ips(&username).await;
|
||||
for ip in ips {
|
||||
output.push_str(&format!(" - {}\n", ip));
|
||||
}
|
||||
}
|
||||
|
||||
output
|
||||
}
|
||||
}
|
||||
|
||||
impl Default for UserIpTracker {
|
||||
fn default() -> Self {
|
||||
Self::new()
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
use std::net::{IpAddr, Ipv4Addr, Ipv6Addr};
|
||||
|
||||
fn test_ipv4(oct1: u8, oct2: u8, oct3: u8, oct4: u8) -> IpAddr {
|
||||
IpAddr::V4(Ipv4Addr::new(oct1, oct2, oct3, oct4))
|
||||
}
|
||||
|
||||
fn test_ipv6() -> IpAddr {
|
||||
IpAddr::V6(Ipv6Addr::new(0x2001, 0xdb8, 0, 0, 0, 0, 0, 1))
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_basic_ip_limit() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 2).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
let ip3 = test_ipv4(192, 168, 1, 3);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip3).await.is_err());
|
||||
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 2);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_active_window_rejects_new_ip_and_keeps_existing_session() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 1).await;
|
||||
tracker
|
||||
.set_limit_policy(UserMaxUniqueIpsMode::ActiveWindow, 30)
|
||||
.await;
|
||||
|
||||
let ip1 = test_ipv4(10, 10, 10, 1);
|
||||
let ip2 = test_ipv4(10, 10, 10, 2);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.is_ip_active("test_user", ip1).await);
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_err());
|
||||
|
||||
// Existing session remains active; only new unique IP is denied.
|
||||
assert!(tracker.is_ip_active("test_user", ip1).await);
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 1);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_reconnection_from_same_ip() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 2).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 1);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_same_ip_disconnect_keeps_active_while_other_session_alive() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 2).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 1);
|
||||
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 1);
|
||||
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 0);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_ip_removal() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 2).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
let ip3 = test_ipv4(192, 168, 1, 3);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip3).await.is_err());
|
||||
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip3).await.is_ok());
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 2);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_no_limit() {
|
||||
let tracker = UserIpTracker::new();
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
let ip3 = test_ipv4(192, 168, 1, 3);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip3).await.is_ok());
|
||||
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 3);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_multiple_users() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("user1", 2).await;
|
||||
tracker.set_user_limit("user2", 1).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
|
||||
assert!(tracker.check_and_add("user1", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("user1", ip2).await.is_ok());
|
||||
|
||||
assert!(tracker.check_and_add("user2", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("user2", ip2).await.is_err());
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_ipv6_support() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 2).await;
|
||||
|
||||
let ipv4 = test_ipv4(192, 168, 1, 1);
|
||||
let ipv6 = test_ipv6();
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ipv4).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ipv6).await.is_ok());
|
||||
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 2);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_get_active_ips() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 3).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
|
||||
tracker.check_and_add("test_user", ip1).await.unwrap();
|
||||
tracker.check_and_add("test_user", ip2).await.unwrap();
|
||||
|
||||
let active_ips = tracker.get_active_ips("test_user").await;
|
||||
assert_eq!(active_ips.len(), 2);
|
||||
assert!(active_ips.contains(&ip1));
|
||||
assert!(active_ips.contains(&ip2));
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_stats() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("user1", 3).await;
|
||||
tracker.set_user_limit("user2", 2).await;
|
||||
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
|
||||
tracker.check_and_add("user1", ip1).await.unwrap();
|
||||
tracker.check_and_add("user2", ip2).await.unwrap();
|
||||
|
||||
let stats = tracker.get_stats().await;
|
||||
assert_eq!(stats.len(), 2);
|
||||
|
||||
assert!(stats.iter().any(|(name, _, _)| name == "user1"));
|
||||
assert!(stats.iter().any(|(name, _, _)| name == "user2"));
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_clear_user_ips() {
|
||||
let tracker = UserIpTracker::new();
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
|
||||
tracker.check_and_add("test_user", ip1).await.unwrap();
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 1);
|
||||
|
||||
tracker.clear_user_ips("test_user").await;
|
||||
assert_eq!(tracker.get_active_ip_count("test_user").await, 0);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_is_ip_active() {
|
||||
let tracker = UserIpTracker::new();
|
||||
let ip1 = test_ipv4(192, 168, 1, 1);
|
||||
let ip2 = test_ipv4(192, 168, 1, 2);
|
||||
|
||||
tracker.check_and_add("test_user", ip1).await.unwrap();
|
||||
|
||||
assert!(tracker.is_ip_active("test_user", ip1).await);
|
||||
assert!(!tracker.is_ip_active("test_user", ip2).await);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_load_limits_from_config() {
|
||||
let tracker = UserIpTracker::new();
|
||||
|
||||
let mut config_limits = HashMap::new();
|
||||
config_limits.insert("user1".to_string(), 5);
|
||||
config_limits.insert("user2".to_string(), 3);
|
||||
|
||||
tracker.load_limits(&config_limits).await;
|
||||
|
||||
assert_eq!(tracker.get_user_limit("user1").await, Some(5));
|
||||
assert_eq!(tracker.get_user_limit("user2").await, Some(3));
|
||||
assert_eq!(tracker.get_user_limit("user3").await, None);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_load_limits_replaces_previous_map() {
|
||||
let tracker = UserIpTracker::new();
|
||||
|
||||
let mut first = HashMap::new();
|
||||
first.insert("user1".to_string(), 2);
|
||||
first.insert("user2".to_string(), 3);
|
||||
tracker.load_limits(&first).await;
|
||||
|
||||
let mut second = HashMap::new();
|
||||
second.insert("user2".to_string(), 5);
|
||||
tracker.load_limits(&second).await;
|
||||
|
||||
assert_eq!(tracker.get_user_limit("user1").await, None);
|
||||
assert_eq!(tracker.get_user_limit("user2").await, Some(5));
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_time_window_mode_blocks_recent_ip_churn() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 1).await;
|
||||
tracker
|
||||
.set_limit_policy(UserMaxUniqueIpsMode::TimeWindow, 30)
|
||||
.await;
|
||||
|
||||
let ip1 = test_ipv4(10, 0, 0, 1);
|
||||
let ip2 = test_ipv4(10, 0, 0, 2);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_err());
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_combined_mode_enforces_active_and_recent_limits() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 1).await;
|
||||
tracker
|
||||
.set_limit_policy(UserMaxUniqueIpsMode::Combined, 30)
|
||||
.await;
|
||||
|
||||
let ip1 = test_ipv4(10, 0, 1, 1);
|
||||
let ip2 = test_ipv4(10, 0, 1, 2);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_err());
|
||||
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_err());
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_time_window_expires() {
|
||||
let tracker = UserIpTracker::new();
|
||||
tracker.set_user_limit("test_user", 1).await;
|
||||
tracker
|
||||
.set_limit_policy(UserMaxUniqueIpsMode::TimeWindow, 1)
|
||||
.await;
|
||||
|
||||
let ip1 = test_ipv4(10, 1, 0, 1);
|
||||
let ip2 = test_ipv4(10, 1, 0, 2);
|
||||
|
||||
assert!(tracker.check_and_add("test_user", ip1).await.is_ok());
|
||||
tracker.remove_ip("test_user", ip1).await;
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_err());
|
||||
|
||||
tokio::time::sleep(Duration::from_millis(1100)).await;
|
||||
assert!(tracker.check_and_add("test_user", ip2).await.is_ok());
|
||||
}
|
||||
}
|
||||
1731
src/main.rs
1731
src/main.rs
File diff suppressed because it is too large
Load Diff
1551
src/metrics.rs
Normal file
1551
src/metrics.rs
Normal file
File diff suppressed because it is too large
Load Diff
197
src/network/dns_overrides.rs
Normal file
197
src/network/dns_overrides.rs
Normal file
@@ -0,0 +1,197 @@
|
||||
//! Runtime DNS overrides for `host:port` targets.
|
||||
|
||||
use std::collections::HashMap;
|
||||
use std::net::{IpAddr, Ipv6Addr, SocketAddr};
|
||||
use std::sync::{OnceLock, RwLock};
|
||||
|
||||
use crate::error::{ProxyError, Result};
|
||||
|
||||
type OverrideMap = HashMap<(String, u16), IpAddr>;
|
||||
|
||||
static DNS_OVERRIDES: OnceLock<RwLock<OverrideMap>> = OnceLock::new();
|
||||
|
||||
fn overrides_store() -> &'static RwLock<OverrideMap> {
|
||||
DNS_OVERRIDES.get_or_init(|| RwLock::new(HashMap::new()))
|
||||
}
|
||||
|
||||
fn parse_ip_spec(ip_spec: &str) -> Result<IpAddr> {
|
||||
if ip_spec.starts_with('[') && ip_spec.ends_with(']') {
|
||||
let inner = &ip_spec[1..ip_spec.len() - 1];
|
||||
let ipv6 = inner.parse::<Ipv6Addr>().map_err(|_| {
|
||||
ProxyError::Config(format!(
|
||||
"network.dns_overrides IPv6 override is invalid: '{ip_spec}'"
|
||||
))
|
||||
})?;
|
||||
return Ok(IpAddr::V6(ipv6));
|
||||
}
|
||||
|
||||
let ip = ip_spec.parse::<IpAddr>().map_err(|_| {
|
||||
ProxyError::Config(format!(
|
||||
"network.dns_overrides IP is invalid: '{ip_spec}'"
|
||||
))
|
||||
})?;
|
||||
if matches!(ip, IpAddr::V6(_)) {
|
||||
return Err(ProxyError::Config(format!(
|
||||
"network.dns_overrides IPv6 must be bracketed: '{ip_spec}'"
|
||||
)));
|
||||
}
|
||||
Ok(ip)
|
||||
}
|
||||
|
||||
fn parse_entry(entry: &str) -> Result<((String, u16), IpAddr)> {
|
||||
let trimmed = entry.trim();
|
||||
if trimmed.is_empty() {
|
||||
return Err(ProxyError::Config(
|
||||
"network.dns_overrides entry cannot be empty".to_string(),
|
||||
));
|
||||
}
|
||||
|
||||
let first_sep = trimmed.find(':').ok_or_else(|| {
|
||||
ProxyError::Config(format!(
|
||||
"network.dns_overrides entry must use host:port:ip format: '{trimmed}'"
|
||||
))
|
||||
})?;
|
||||
let second_sep = trimmed[first_sep + 1..]
|
||||
.find(':')
|
||||
.map(|idx| first_sep + 1 + idx)
|
||||
.ok_or_else(|| {
|
||||
ProxyError::Config(format!(
|
||||
"network.dns_overrides entry must use host:port:ip format: '{trimmed}'"
|
||||
))
|
||||
})?;
|
||||
|
||||
let host = trimmed[..first_sep].trim();
|
||||
let port_str = trimmed[first_sep + 1..second_sep].trim();
|
||||
let ip_str = trimmed[second_sep + 1..].trim();
|
||||
|
||||
if host.is_empty() {
|
||||
return Err(ProxyError::Config(format!(
|
||||
"network.dns_overrides host cannot be empty: '{trimmed}'"
|
||||
)));
|
||||
}
|
||||
if host.contains(':') {
|
||||
return Err(ProxyError::Config(format!(
|
||||
"network.dns_overrides host must be a domain name without ':' in this format: '{trimmed}'"
|
||||
)));
|
||||
}
|
||||
|
||||
let port = port_str.parse::<u16>().map_err(|_| {
|
||||
ProxyError::Config(format!(
|
||||
"network.dns_overrides port is invalid: '{trimmed}'"
|
||||
))
|
||||
})?;
|
||||
let ip = parse_ip_spec(ip_str)?;
|
||||
|
||||
Ok(((host.to_ascii_lowercase(), port), ip))
|
||||
}
|
||||
|
||||
fn parse_entries(entries: &[String]) -> Result<OverrideMap> {
|
||||
let mut parsed = HashMap::new();
|
||||
for entry in entries {
|
||||
let (key, ip) = parse_entry(entry)?;
|
||||
parsed.insert(key, ip);
|
||||
}
|
||||
Ok(parsed)
|
||||
}
|
||||
|
||||
/// Validate `network.dns_overrides` entries without updating runtime state.
|
||||
pub fn validate_entries(entries: &[String]) -> Result<()> {
|
||||
let _ = parse_entries(entries)?;
|
||||
Ok(())
|
||||
}
|
||||
|
||||
/// Replace runtime DNS overrides with a new validated snapshot.
|
||||
pub fn install_entries(entries: &[String]) -> Result<()> {
|
||||
let parsed = parse_entries(entries)?;
|
||||
let mut guard = overrides_store()
|
||||
.write()
|
||||
.map_err(|_| ProxyError::Config("network.dns_overrides runtime lock is poisoned".to_string()))?;
|
||||
*guard = parsed;
|
||||
Ok(())
|
||||
}
|
||||
|
||||
/// Resolve a hostname override for `(host, port)` if present.
|
||||
pub fn resolve(host: &str, port: u16) -> Option<IpAddr> {
|
||||
let key = (host.to_ascii_lowercase(), port);
|
||||
overrides_store()
|
||||
.read()
|
||||
.ok()
|
||||
.and_then(|guard| guard.get(&key).copied())
|
||||
}
|
||||
|
||||
/// Resolve a hostname override and construct a socket address when present.
|
||||
pub fn resolve_socket_addr(host: &str, port: u16) -> Option<SocketAddr> {
|
||||
resolve(host, port).map(|ip| SocketAddr::new(ip, port))
|
||||
}
|
||||
|
||||
/// Parse a runtime endpoint in `host:port` format.
|
||||
///
|
||||
/// Supports:
|
||||
/// - `example.com:443`
|
||||
/// - `[2001:db8::1]:443`
|
||||
pub fn split_host_port(endpoint: &str) -> Option<(String, u16)> {
|
||||
if endpoint.starts_with('[') {
|
||||
let bracket_end = endpoint.find(']')?;
|
||||
if endpoint.as_bytes().get(bracket_end + 1) != Some(&b':') {
|
||||
return None;
|
||||
}
|
||||
let host = endpoint[1..bracket_end].trim();
|
||||
let port = endpoint[bracket_end + 2..].trim().parse::<u16>().ok()?;
|
||||
if host.is_empty() {
|
||||
return None;
|
||||
}
|
||||
return Some((host.to_ascii_lowercase(), port));
|
||||
}
|
||||
|
||||
let split_idx = endpoint.rfind(':')?;
|
||||
let host = endpoint[..split_idx].trim();
|
||||
let port = endpoint[split_idx + 1..].trim().parse::<u16>().ok()?;
|
||||
if host.is_empty() || host.contains(':') {
|
||||
return None;
|
||||
}
|
||||
|
||||
Some((host.to_ascii_lowercase(), port))
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
#[test]
|
||||
fn validate_accepts_ipv4_and_bracketed_ipv6() {
|
||||
let entries = vec![
|
||||
"example.com:443:127.0.0.1".to_string(),
|
||||
"example.net:8443:[2001:db8::10]".to_string(),
|
||||
];
|
||||
assert!(validate_entries(&entries).is_ok());
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn validate_rejects_unbracketed_ipv6() {
|
||||
let entries = vec!["example.net:443:2001:db8::10".to_string()];
|
||||
let err = validate_entries(&entries).unwrap_err().to_string();
|
||||
assert!(err.contains("must be bracketed"));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn install_and_resolve_are_case_insensitive_for_host() {
|
||||
let entries = vec!["MyPetrovich.ru:8443:127.0.0.1".to_string()];
|
||||
install_entries(&entries).unwrap();
|
||||
|
||||
let resolved = resolve("mypetrovich.ru", 8443);
|
||||
assert_eq!(resolved, Some("127.0.0.1".parse().unwrap()));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn split_host_port_parses_supported_shapes() {
|
||||
assert_eq!(
|
||||
split_host_port("example.com:443"),
|
||||
Some(("example.com".to_string(), 443))
|
||||
);
|
||||
assert_eq!(
|
||||
split_host_port("[2001:db8::1]:443"),
|
||||
Some(("2001:db8::1".to_string(), 443))
|
||||
);
|
||||
assert_eq!(split_host_port("2001:db8::1:443"), None);
|
||||
}
|
||||
}
|
||||
5
src/network/mod.rs
Normal file
5
src/network/mod.rs
Normal file
@@ -0,0 +1,5 @@
|
||||
pub mod dns_overrides;
|
||||
pub mod probe;
|
||||
pub mod stun;
|
||||
|
||||
pub use stun::IpFamily;
|
||||
370
src/network/probe.rs
Normal file
370
src/network/probe.rs
Normal file
@@ -0,0 +1,370 @@
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::collections::HashMap;
|
||||
use std::net::{IpAddr, Ipv4Addr, Ipv6Addr, SocketAddr, UdpSocket};
|
||||
use std::time::Duration;
|
||||
|
||||
use tokio::task::JoinSet;
|
||||
use tokio::time::timeout;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::NetworkConfig;
|
||||
use crate::error::Result;
|
||||
use crate::network::stun::{stun_probe_dual, DualStunResult, IpFamily, StunProbeResult};
|
||||
|
||||
#[derive(Debug, Clone, Default)]
|
||||
pub struct NetworkProbe {
|
||||
pub detected_ipv4: Option<Ipv4Addr>,
|
||||
pub detected_ipv6: Option<Ipv6Addr>,
|
||||
pub reflected_ipv4: Option<SocketAddr>,
|
||||
pub reflected_ipv6: Option<SocketAddr>,
|
||||
pub ipv4_is_bogon: bool,
|
||||
pub ipv6_is_bogon: bool,
|
||||
pub ipv4_nat_detected: bool,
|
||||
pub ipv6_nat_detected: bool,
|
||||
pub ipv4_usable: bool,
|
||||
pub ipv6_usable: bool,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Default)]
|
||||
pub struct NetworkDecision {
|
||||
pub ipv4_dc: bool,
|
||||
pub ipv6_dc: bool,
|
||||
pub ipv4_me: bool,
|
||||
pub ipv6_me: bool,
|
||||
pub effective_prefer: u8,
|
||||
pub effective_multipath: bool,
|
||||
}
|
||||
|
||||
impl NetworkDecision {
|
||||
pub fn prefer_ipv6(&self) -> bool {
|
||||
self.effective_prefer == 6
|
||||
}
|
||||
|
||||
pub fn me_families(&self) -> Vec<IpFamily> {
|
||||
let mut res = Vec::new();
|
||||
if self.ipv4_me {
|
||||
res.push(IpFamily::V4);
|
||||
}
|
||||
if self.ipv6_me {
|
||||
res.push(IpFamily::V6);
|
||||
}
|
||||
res
|
||||
}
|
||||
}
|
||||
|
||||
const STUN_BATCH_TIMEOUT: Duration = Duration::from_secs(5);
|
||||
|
||||
pub async fn run_probe(
|
||||
config: &NetworkConfig,
|
||||
nat_probe: bool,
|
||||
stun_nat_probe_concurrency: usize,
|
||||
) -> Result<NetworkProbe> {
|
||||
let mut probe = NetworkProbe::default();
|
||||
|
||||
probe.detected_ipv4 = detect_local_ip_v4();
|
||||
probe.detected_ipv6 = detect_local_ip_v6();
|
||||
|
||||
probe.ipv4_is_bogon = probe.detected_ipv4.map(is_bogon_v4).unwrap_or(false);
|
||||
probe.ipv6_is_bogon = probe.detected_ipv6.map(is_bogon_v6).unwrap_or(false);
|
||||
|
||||
let stun_res = if nat_probe && config.stun_use {
|
||||
let servers = collect_stun_servers(config);
|
||||
if servers.is_empty() {
|
||||
warn!("STUN probe is enabled but network.stun_servers is empty");
|
||||
DualStunResult::default()
|
||||
} else {
|
||||
probe_stun_servers_parallel(
|
||||
&servers,
|
||||
stun_nat_probe_concurrency.max(1),
|
||||
)
|
||||
.await
|
||||
}
|
||||
} else if nat_probe {
|
||||
info!("STUN probe is disabled by network.stun_use=false");
|
||||
DualStunResult::default()
|
||||
} else {
|
||||
DualStunResult::default()
|
||||
};
|
||||
probe.reflected_ipv4 = stun_res.v4.map(|r| r.reflected_addr);
|
||||
probe.reflected_ipv6 = stun_res.v6.map(|r| r.reflected_addr);
|
||||
|
||||
// If STUN is blocked but IPv4 is private, try HTTP public-IP fallback.
|
||||
if nat_probe
|
||||
&& probe.reflected_ipv4.is_none()
|
||||
&& probe.detected_ipv4.map(is_bogon_v4).unwrap_or(false)
|
||||
{
|
||||
if let Some(public_ip) = detect_public_ipv4_http(&config.http_ip_detect_urls).await {
|
||||
probe.reflected_ipv4 = Some(SocketAddr::new(IpAddr::V4(public_ip), 0));
|
||||
info!(public_ip = %public_ip, "STUN unavailable, using HTTP public IPv4 fallback");
|
||||
}
|
||||
}
|
||||
|
||||
probe.ipv4_nat_detected = match (probe.detected_ipv4, probe.reflected_ipv4) {
|
||||
(Some(det), Some(reflected)) => det != reflected.ip(),
|
||||
_ => false,
|
||||
};
|
||||
probe.ipv6_nat_detected = match (probe.detected_ipv6, probe.reflected_ipv6) {
|
||||
(Some(det), Some(reflected)) => det != reflected.ip(),
|
||||
_ => false,
|
||||
};
|
||||
|
||||
probe.ipv4_usable = config.ipv4
|
||||
&& probe.detected_ipv4.is_some()
|
||||
&& (!probe.ipv4_is_bogon || probe.reflected_ipv4.map(|r| !is_bogon(r.ip())).unwrap_or(false));
|
||||
|
||||
let ipv6_enabled = config.ipv6.unwrap_or(probe.detected_ipv6.is_some());
|
||||
probe.ipv6_usable = ipv6_enabled
|
||||
&& probe.detected_ipv6.is_some()
|
||||
&& (!probe.ipv6_is_bogon || probe.reflected_ipv6.map(|r| !is_bogon(r.ip())).unwrap_or(false));
|
||||
|
||||
Ok(probe)
|
||||
}
|
||||
|
||||
async fn detect_public_ipv4_http(urls: &[String]) -> Option<Ipv4Addr> {
|
||||
let client = reqwest::Client::builder()
|
||||
.timeout(Duration::from_secs(3))
|
||||
.build()
|
||||
.ok()?;
|
||||
|
||||
for url in urls {
|
||||
let response = match client.get(url).send().await {
|
||||
Ok(response) => response,
|
||||
Err(_) => continue,
|
||||
};
|
||||
|
||||
let body = match response.text().await {
|
||||
Ok(body) => body,
|
||||
Err(_) => continue,
|
||||
};
|
||||
|
||||
let Ok(ip) = body.trim().parse::<Ipv4Addr>() else {
|
||||
continue;
|
||||
};
|
||||
if !is_bogon_v4(ip) {
|
||||
return Some(ip);
|
||||
}
|
||||
}
|
||||
|
||||
None
|
||||
}
|
||||
|
||||
fn collect_stun_servers(config: &NetworkConfig) -> Vec<String> {
|
||||
let mut out = Vec::new();
|
||||
for s in &config.stun_servers {
|
||||
if !s.is_empty() && !out.contains(s) {
|
||||
out.push(s.clone());
|
||||
}
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
async fn probe_stun_servers_parallel(
|
||||
servers: &[String],
|
||||
concurrency: usize,
|
||||
) -> DualStunResult {
|
||||
let mut join_set = JoinSet::new();
|
||||
let mut next_idx = 0usize;
|
||||
let mut best_v4_by_ip: HashMap<IpAddr, (usize, StunProbeResult)> = HashMap::new();
|
||||
let mut best_v6_by_ip: HashMap<IpAddr, (usize, StunProbeResult)> = HashMap::new();
|
||||
|
||||
while next_idx < servers.len() || !join_set.is_empty() {
|
||||
while next_idx < servers.len() && join_set.len() < concurrency {
|
||||
let stun_addr = servers[next_idx].clone();
|
||||
next_idx += 1;
|
||||
join_set.spawn(async move {
|
||||
let res = timeout(STUN_BATCH_TIMEOUT, stun_probe_dual(&stun_addr)).await;
|
||||
(stun_addr, res)
|
||||
});
|
||||
}
|
||||
|
||||
let Some(task) = join_set.join_next().await else {
|
||||
break;
|
||||
};
|
||||
|
||||
match task {
|
||||
Ok((stun_addr, Ok(Ok(result)))) => {
|
||||
if let Some(v4) = result.v4 {
|
||||
let entry = best_v4_by_ip.entry(v4.reflected_addr.ip()).or_insert((0, v4));
|
||||
entry.0 += 1;
|
||||
}
|
||||
if let Some(v6) = result.v6 {
|
||||
let entry = best_v6_by_ip.entry(v6.reflected_addr.ip()).or_insert((0, v6));
|
||||
entry.0 += 1;
|
||||
}
|
||||
if result.v4.is_some() || result.v6.is_some() {
|
||||
debug!(stun = %stun_addr, "STUN server responded within probe timeout");
|
||||
}
|
||||
}
|
||||
Ok((stun_addr, Ok(Err(e)))) => {
|
||||
debug!(error = %e, stun = %stun_addr, "STUN probe failed");
|
||||
}
|
||||
Ok((stun_addr, Err(_))) => {
|
||||
debug!(stun = %stun_addr, "STUN probe timeout");
|
||||
}
|
||||
Err(e) => {
|
||||
debug!(error = %e, "STUN probe task join failed");
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let mut out = DualStunResult::default();
|
||||
if let Some((_, best)) = best_v4_by_ip
|
||||
.into_values()
|
||||
.max_by_key(|(count, _)| *count)
|
||||
{
|
||||
info!("STUN-Quorum reached, IP: {}", best.reflected_addr.ip());
|
||||
out.v4 = Some(best);
|
||||
}
|
||||
if let Some((_, best)) = best_v6_by_ip
|
||||
.into_values()
|
||||
.max_by_key(|(count, _)| *count)
|
||||
{
|
||||
info!("STUN-Quorum reached, IP: {}", best.reflected_addr.ip());
|
||||
out.v6 = Some(best);
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
pub fn decide_network_capabilities(config: &NetworkConfig, probe: &NetworkProbe) -> NetworkDecision {
|
||||
let ipv4_dc = config.ipv4 && probe.detected_ipv4.is_some();
|
||||
let ipv6_dc = config.ipv6.unwrap_or(probe.detected_ipv6.is_some()) && probe.detected_ipv6.is_some();
|
||||
|
||||
let ipv4_me = config.ipv4
|
||||
&& probe.detected_ipv4.is_some()
|
||||
&& (!probe.ipv4_is_bogon || probe.reflected_ipv4.is_some());
|
||||
|
||||
let ipv6_enabled = config.ipv6.unwrap_or(probe.detected_ipv6.is_some());
|
||||
let ipv6_me = ipv6_enabled
|
||||
&& probe.detected_ipv6.is_some()
|
||||
&& (!probe.ipv6_is_bogon || probe.reflected_ipv6.is_some());
|
||||
|
||||
let effective_prefer = match config.prefer {
|
||||
6 if ipv6_me || ipv6_dc => 6,
|
||||
4 if ipv4_me || ipv4_dc => 4,
|
||||
6 => {
|
||||
warn!("prefer=6 requested but IPv6 unavailable; falling back to IPv4");
|
||||
4
|
||||
}
|
||||
_ => 4,
|
||||
};
|
||||
|
||||
let me_families = ipv4_me as u8 + ipv6_me as u8;
|
||||
let effective_multipath = config.multipath && me_families >= 2;
|
||||
|
||||
NetworkDecision {
|
||||
ipv4_dc,
|
||||
ipv6_dc,
|
||||
ipv4_me,
|
||||
ipv6_me,
|
||||
effective_prefer,
|
||||
effective_multipath,
|
||||
}
|
||||
}
|
||||
|
||||
fn detect_local_ip_v4() -> Option<Ipv4Addr> {
|
||||
let socket = UdpSocket::bind("0.0.0.0:0").ok()?;
|
||||
socket.connect("8.8.8.8:80").ok()?;
|
||||
match socket.local_addr().ok()?.ip() {
|
||||
IpAddr::V4(v4) => Some(v4),
|
||||
_ => None,
|
||||
}
|
||||
}
|
||||
|
||||
fn detect_local_ip_v6() -> Option<Ipv6Addr> {
|
||||
let socket = UdpSocket::bind("[::]:0").ok()?;
|
||||
socket.connect("[2001:4860:4860::8888]:80").ok()?;
|
||||
match socket.local_addr().ok()?.ip() {
|
||||
IpAddr::V6(v6) => Some(v6),
|
||||
_ => None,
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_bogon(ip: IpAddr) -> bool {
|
||||
match ip {
|
||||
IpAddr::V4(v4) => is_bogon_v4(v4),
|
||||
IpAddr::V6(v6) => is_bogon_v6(v6),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn is_bogon_v4(ip: Ipv4Addr) -> bool {
|
||||
let octets = ip.octets();
|
||||
if ip.is_private() || ip.is_loopback() || ip.is_link_local() {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 0 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 100 && (octets[1] & 0xC0) == 64 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 192 && octets[1] == 0 && octets[2] == 0 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 192 && octets[1] == 0 && octets[2] == 2 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 198 && (octets[1] & 0xFE) == 18 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 198 && octets[1] == 51 && octets[2] == 100 {
|
||||
return true;
|
||||
}
|
||||
if octets[0] == 203 && octets[1] == 0 && octets[2] == 113 {
|
||||
return true;
|
||||
}
|
||||
if ip.is_multicast() {
|
||||
return true;
|
||||
}
|
||||
if octets[0] >= 240 {
|
||||
return true;
|
||||
}
|
||||
if ip.is_broadcast() {
|
||||
return true;
|
||||
}
|
||||
false
|
||||
}
|
||||
|
||||
pub fn is_bogon_v6(ip: Ipv6Addr) -> bool {
|
||||
if ip.is_unspecified() || ip.is_loopback() || ip.is_unique_local() {
|
||||
return true;
|
||||
}
|
||||
let segs = ip.segments();
|
||||
if (segs[0] & 0xFFC0) == 0xFE80 {
|
||||
return true;
|
||||
}
|
||||
if segs[0..5] == [0, 0, 0, 0, 0] && segs[5] == 0xFFFF {
|
||||
return true;
|
||||
}
|
||||
if segs[0] == 0x0100 && segs[1..4] == [0, 0, 0] {
|
||||
return true;
|
||||
}
|
||||
if segs[0] == 0x2001 && segs[1] == 0x0db8 {
|
||||
return true;
|
||||
}
|
||||
if segs[0] == 0x2002 {
|
||||
return true;
|
||||
}
|
||||
if ip.is_multicast() {
|
||||
return true;
|
||||
}
|
||||
false
|
||||
}
|
||||
|
||||
pub fn log_probe_result(probe: &NetworkProbe, decision: &NetworkDecision) {
|
||||
info!(
|
||||
ipv4 = probe.detected_ipv4.as_ref().map(|v| v.to_string()).unwrap_or_else(|| "-".into()),
|
||||
ipv6 = probe.detected_ipv6.as_ref().map(|v| v.to_string()).unwrap_or_else(|| "-".into()),
|
||||
reflected_v4 = probe.reflected_ipv4.as_ref().map(|v| v.ip().to_string()).unwrap_or_else(|| "-".into()),
|
||||
reflected_v6 = probe.reflected_ipv6.as_ref().map(|v| v.ip().to_string()).unwrap_or_else(|| "-".into()),
|
||||
ipv4_bogon = probe.ipv4_is_bogon,
|
||||
ipv6_bogon = probe.ipv6_is_bogon,
|
||||
ipv4_me = decision.ipv4_me,
|
||||
ipv6_me = decision.ipv6_me,
|
||||
ipv4_dc = decision.ipv4_dc,
|
||||
ipv6_dc = decision.ipv6_dc,
|
||||
prefer = decision.effective_prefer,
|
||||
multipath = decision.effective_multipath,
|
||||
"Network capabilities resolved"
|
||||
);
|
||||
}
|
||||
234
src/network/stun.rs
Normal file
234
src/network/stun.rs
Normal file
@@ -0,0 +1,234 @@
|
||||
#![allow(unreachable_code)]
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::net::{IpAddr, Ipv4Addr, Ipv6Addr, SocketAddr};
|
||||
|
||||
use tokio::net::{lookup_host, UdpSocket};
|
||||
use tokio::time::{timeout, Duration, sleep};
|
||||
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::network::dns_overrides::{resolve, split_host_port};
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
|
||||
pub enum IpFamily {
|
||||
V4,
|
||||
V6,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Copy)]
|
||||
pub struct StunProbeResult {
|
||||
pub local_addr: SocketAddr,
|
||||
pub reflected_addr: SocketAddr,
|
||||
pub family: IpFamily,
|
||||
}
|
||||
|
||||
#[derive(Debug, Default, Clone)]
|
||||
pub struct DualStunResult {
|
||||
pub v4: Option<StunProbeResult>,
|
||||
pub v6: Option<StunProbeResult>,
|
||||
}
|
||||
|
||||
pub async fn stun_probe_dual(stun_addr: &str) -> Result<DualStunResult> {
|
||||
let (v4, v6) = tokio::join!(
|
||||
stun_probe_family(stun_addr, IpFamily::V4),
|
||||
stun_probe_family(stun_addr, IpFamily::V6),
|
||||
);
|
||||
|
||||
Ok(DualStunResult {
|
||||
v4: v4?,
|
||||
v6: v6?,
|
||||
})
|
||||
}
|
||||
|
||||
pub async fn stun_probe_family(stun_addr: &str, family: IpFamily) -> Result<Option<StunProbeResult>> {
|
||||
stun_probe_family_with_bind(stun_addr, family, None).await
|
||||
}
|
||||
|
||||
pub async fn stun_probe_family_with_bind(
|
||||
stun_addr: &str,
|
||||
family: IpFamily,
|
||||
bind_ip: Option<IpAddr>,
|
||||
) -> Result<Option<StunProbeResult>> {
|
||||
use rand::RngCore;
|
||||
|
||||
let bind_addr = match (family, bind_ip) {
|
||||
(IpFamily::V4, Some(IpAddr::V4(ip))) => SocketAddr::new(IpAddr::V4(ip), 0),
|
||||
(IpFamily::V6, Some(IpAddr::V6(ip))) => SocketAddr::new(IpAddr::V6(ip), 0),
|
||||
(IpFamily::V4, Some(IpAddr::V6(_))) | (IpFamily::V6, Some(IpAddr::V4(_))) => {
|
||||
return Ok(None);
|
||||
}
|
||||
(IpFamily::V4, None) => SocketAddr::new(IpAddr::V4(Ipv4Addr::UNSPECIFIED), 0),
|
||||
(IpFamily::V6, None) => SocketAddr::new(IpAddr::V6(Ipv6Addr::UNSPECIFIED), 0),
|
||||
};
|
||||
|
||||
let socket = match UdpSocket::bind(bind_addr).await {
|
||||
Ok(socket) => socket,
|
||||
Err(_) if bind_ip.is_some() => return Ok(None),
|
||||
Err(e) => return Err(ProxyError::Proxy(format!("STUN bind failed: {e}"))),
|
||||
};
|
||||
|
||||
let target_addr = resolve_stun_addr(stun_addr, family).await?;
|
||||
if let Some(addr) = target_addr {
|
||||
match socket.connect(addr).await {
|
||||
Ok(()) => {}
|
||||
Err(e) if family == IpFamily::V6 && matches!(
|
||||
e.kind(),
|
||||
std::io::ErrorKind::NetworkUnreachable
|
||||
| std::io::ErrorKind::HostUnreachable
|
||||
| std::io::ErrorKind::Unsupported
|
||||
| std::io::ErrorKind::NetworkDown
|
||||
) => return Ok(None),
|
||||
Err(e) => return Err(ProxyError::Proxy(format!("STUN connect failed: {e}"))),
|
||||
}
|
||||
} else {
|
||||
return Ok(None);
|
||||
}
|
||||
|
||||
let mut req = [0u8; 20];
|
||||
req[0..2].copy_from_slice(&0x0001u16.to_be_bytes()); // Binding Request
|
||||
req[2..4].copy_from_slice(&0u16.to_be_bytes()); // length
|
||||
req[4..8].copy_from_slice(&0x2112A442u32.to_be_bytes()); // magic cookie
|
||||
rand::rng().fill_bytes(&mut req[8..20]); // transaction ID
|
||||
|
||||
let mut buf = [0u8; 256];
|
||||
let mut attempt = 0;
|
||||
let mut backoff = Duration::from_secs(1);
|
||||
loop {
|
||||
socket
|
||||
.send(&req)
|
||||
.await
|
||||
.map_err(|e| ProxyError::Proxy(format!("STUN send failed: {e}")))?;
|
||||
|
||||
let recv_res = timeout(Duration::from_secs(3), socket.recv(&mut buf)).await;
|
||||
let n = match recv_res {
|
||||
Ok(Ok(n)) => n,
|
||||
Ok(Err(e)) => return Err(ProxyError::Proxy(format!("STUN recv failed: {e}"))),
|
||||
Err(_) => {
|
||||
attempt += 1;
|
||||
if attempt >= 3 {
|
||||
return Ok(None);
|
||||
}
|
||||
sleep(backoff).await;
|
||||
backoff *= 2;
|
||||
continue;
|
||||
}
|
||||
};
|
||||
|
||||
if n < 20 {
|
||||
return Ok(None);
|
||||
}
|
||||
|
||||
let magic = 0x2112A442u32.to_be_bytes();
|
||||
let txid = &req[8..20];
|
||||
let mut idx = 20;
|
||||
while idx + 4 <= n {
|
||||
let atype = u16::from_be_bytes(buf[idx..idx + 2].try_into().unwrap());
|
||||
let alen = u16::from_be_bytes(buf[idx + 2..idx + 4].try_into().unwrap()) as usize;
|
||||
idx += 4;
|
||||
if idx + alen > n {
|
||||
break;
|
||||
}
|
||||
|
||||
match atype {
|
||||
0x0020 /* XOR-MAPPED-ADDRESS */ | 0x0001 /* MAPPED-ADDRESS */ => {
|
||||
if alen < 8 {
|
||||
break;
|
||||
}
|
||||
let family_byte = buf[idx + 1];
|
||||
let port_bytes = [buf[idx + 2], buf[idx + 3]];
|
||||
let len_check = match family_byte {
|
||||
0x01 => 4,
|
||||
0x02 => 16,
|
||||
_ => 0,
|
||||
};
|
||||
if len_check == 0 || alen < 4 + len_check {
|
||||
break;
|
||||
}
|
||||
|
||||
let raw_ip = &buf[idx + 4..idx + 4 + len_check];
|
||||
let mut port = u16::from_be_bytes(port_bytes);
|
||||
|
||||
let reflected_ip = if atype == 0x0020 {
|
||||
port ^= ((magic[0] as u16) << 8) | magic[1] as u16;
|
||||
match family_byte {
|
||||
0x01 => {
|
||||
let ip = [
|
||||
raw_ip[0] ^ magic[0],
|
||||
raw_ip[1] ^ magic[1],
|
||||
raw_ip[2] ^ magic[2],
|
||||
raw_ip[3] ^ magic[3],
|
||||
];
|
||||
IpAddr::V4(Ipv4Addr::new(ip[0], ip[1], ip[2], ip[3]))
|
||||
}
|
||||
0x02 => {
|
||||
let mut ip = [0u8; 16];
|
||||
let xor_key = [magic.as_slice(), txid].concat();
|
||||
for (i, b) in raw_ip.iter().enumerate().take(16) {
|
||||
ip[i] = *b ^ xor_key[i];
|
||||
}
|
||||
IpAddr::V6(Ipv6Addr::from(ip))
|
||||
}
|
||||
_ => {
|
||||
idx += (alen + 3) & !3;
|
||||
continue;
|
||||
}
|
||||
}
|
||||
} else {
|
||||
match family_byte {
|
||||
0x01 => IpAddr::V4(Ipv4Addr::new(raw_ip[0], raw_ip[1], raw_ip[2], raw_ip[3])),
|
||||
0x02 => IpAddr::V6(Ipv6Addr::from(<[u8; 16]>::try_from(raw_ip).unwrap())),
|
||||
_ => {
|
||||
idx += (alen + 3) & !3;
|
||||
continue;
|
||||
}
|
||||
}
|
||||
};
|
||||
|
||||
let reflected_addr = SocketAddr::new(reflected_ip, port);
|
||||
let local_addr = socket
|
||||
.local_addr()
|
||||
.map_err(|e| ProxyError::Proxy(format!("STUN local_addr failed: {e}")))?;
|
||||
|
||||
return Ok(Some(StunProbeResult {
|
||||
local_addr,
|
||||
reflected_addr,
|
||||
family,
|
||||
}));
|
||||
}
|
||||
_ => {}
|
||||
}
|
||||
|
||||
idx += (alen + 3) & !3;
|
||||
}
|
||||
|
||||
}
|
||||
|
||||
Ok(None)
|
||||
}
|
||||
|
||||
async fn resolve_stun_addr(stun_addr: &str, family: IpFamily) -> Result<Option<SocketAddr>> {
|
||||
if let Ok(addr) = stun_addr.parse::<SocketAddr>() {
|
||||
return Ok(match (addr.is_ipv4(), family) {
|
||||
(true, IpFamily::V4) | (false, IpFamily::V6) => Some(addr),
|
||||
_ => None,
|
||||
});
|
||||
}
|
||||
|
||||
if let Some((host, port)) = split_host_port(stun_addr)
|
||||
&& let Some(ip) = resolve(&host, port)
|
||||
{
|
||||
let addr = SocketAddr::new(ip, port);
|
||||
return Ok(match (addr.is_ipv4(), family) {
|
||||
(true, IpFamily::V4) | (false, IpFamily::V6) => Some(addr),
|
||||
_ => None,
|
||||
});
|
||||
}
|
||||
|
||||
let mut addrs = lookup_host(stun_addr)
|
||||
.await
|
||||
.map_err(|e| ProxyError::Proxy(format!("STUN resolve failed: {e}")))?;
|
||||
|
||||
let target = addrs
|
||||
.find(|a| matches!((a.is_ipv4(), family), (true, IpFamily::V4) | (false, IpFamily::V6)));
|
||||
Ok(target)
|
||||
}
|
||||
@@ -1,13 +1,17 @@
|
||||
//! Protocol constants and datacenter addresses
|
||||
|
||||
use std::net::{IpAddr, Ipv4Addr, Ipv6Addr};
|
||||
use once_cell::sync::Lazy;
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::net::{IpAddr, Ipv4Addr};
|
||||
|
||||
use crate::crypto::SecureRandom;
|
||||
use std::sync::LazyLock;
|
||||
|
||||
// ============= Telegram Datacenters =============
|
||||
|
||||
pub const TG_DATACENTER_PORT: u16 = 443;
|
||||
|
||||
pub static TG_DATACENTERS_V4: Lazy<Vec<IpAddr>> = Lazy::new(|| {
|
||||
pub static TG_DATACENTERS_V4: LazyLock<Vec<IpAddr>> = LazyLock::new(|| {
|
||||
vec![
|
||||
IpAddr::V4(Ipv4Addr::new(149, 154, 175, 50)),
|
||||
IpAddr::V4(Ipv4Addr::new(149, 154, 167, 51)),
|
||||
@@ -17,7 +21,7 @@ pub static TG_DATACENTERS_V4: Lazy<Vec<IpAddr>> = Lazy::new(|| {
|
||||
]
|
||||
});
|
||||
|
||||
pub static TG_DATACENTERS_V6: Lazy<Vec<IpAddr>> = Lazy::new(|| {
|
||||
pub static TG_DATACENTERS_V6: LazyLock<Vec<IpAddr>> = LazyLock::new(|| {
|
||||
vec![
|
||||
IpAddr::V6("2001:b28:f23d:f001::a".parse().unwrap()),
|
||||
IpAddr::V6("2001:67c:04e8:f002::a".parse().unwrap()),
|
||||
@@ -29,8 +33,8 @@ pub static TG_DATACENTERS_V6: Lazy<Vec<IpAddr>> = Lazy::new(|| {
|
||||
|
||||
// ============= Middle Proxies (for advertising) =============
|
||||
|
||||
pub static TG_MIDDLE_PROXIES_V4: Lazy<std::collections::HashMap<i32, Vec<(IpAddr, u16)>>> =
|
||||
Lazy::new(|| {
|
||||
pub static TG_MIDDLE_PROXIES_V4: LazyLock<std::collections::HashMap<i32, Vec<(IpAddr, u16)>>> =
|
||||
LazyLock::new(|| {
|
||||
let mut m = std::collections::HashMap::new();
|
||||
m.insert(1, vec![(IpAddr::V4(Ipv4Addr::new(149, 154, 175, 50)), 8888)]);
|
||||
m.insert(-1, vec![(IpAddr::V4(Ipv4Addr::new(149, 154, 175, 50)), 8888)]);
|
||||
@@ -45,8 +49,8 @@ pub static TG_MIDDLE_PROXIES_V4: Lazy<std::collections::HashMap<i32, Vec<(IpAddr
|
||||
m
|
||||
});
|
||||
|
||||
pub static TG_MIDDLE_PROXIES_V6: Lazy<std::collections::HashMap<i32, Vec<(IpAddr, u16)>>> =
|
||||
Lazy::new(|| {
|
||||
pub static TG_MIDDLE_PROXIES_V6: LazyLock<std::collections::HashMap<i32, Vec<(IpAddr, u16)>>> =
|
||||
LazyLock::new(|| {
|
||||
let mut m = std::collections::HashMap::new();
|
||||
m.insert(1, vec![(IpAddr::V6("2001:b28:f23d:f001::d".parse().unwrap()), 8888)]);
|
||||
m.insert(-1, vec![(IpAddr::V6("2001:b28:f23d:f001::d".parse().unwrap()), 8888)]);
|
||||
@@ -151,7 +155,32 @@ pub const TLS_RECORD_ALERT: u8 = 0x15;
|
||||
/// Maximum TLS record size
|
||||
pub const MAX_TLS_RECORD_SIZE: usize = 16384;
|
||||
/// Maximum TLS chunk size (with overhead)
|
||||
pub const MAX_TLS_CHUNK_SIZE: usize = 16384 + 24;
|
||||
/// RFC 8446 §5.2 allows up to 16384 + 256 bytes of ciphertext
|
||||
pub const MAX_TLS_CHUNK_SIZE: usize = 16384 + 256;
|
||||
|
||||
/// Secure Intermediate payload is expected to be 4-byte aligned.
|
||||
pub fn is_valid_secure_payload_len(data_len: usize) -> bool {
|
||||
data_len.is_multiple_of(4)
|
||||
}
|
||||
|
||||
/// Compute Secure Intermediate payload length from wire length.
|
||||
/// Secure mode strips up to 3 random tail bytes by truncating to 4-byte boundary.
|
||||
pub fn secure_payload_len_from_wire_len(wire_len: usize) -> Option<usize> {
|
||||
if wire_len < 4 {
|
||||
return None;
|
||||
}
|
||||
Some(wire_len - (wire_len % 4))
|
||||
}
|
||||
|
||||
/// Generate padding length for Secure Intermediate protocol.
|
||||
/// Data must be 4-byte aligned; padding is 1..=3 so total is never divisible by 4.
|
||||
pub fn secure_padding_len(data_len: usize, rng: &SecureRandom) -> usize {
|
||||
debug_assert!(
|
||||
is_valid_secure_payload_len(data_len),
|
||||
"Secure payload must be 4-byte aligned, got {data_len}"
|
||||
);
|
||||
rng.range(3) + 1
|
||||
}
|
||||
|
||||
// ============= Timeouts =============
|
||||
|
||||
@@ -167,7 +196,8 @@ pub const DEFAULT_ACK_TIMEOUT_SECS: u64 = 300;
|
||||
// ============= Buffer Sizes =============
|
||||
|
||||
/// Default buffer size
|
||||
pub const DEFAULT_BUFFER_SIZE: usize = 65536;
|
||||
pub const DEFAULT_BUFFER_SIZE: usize = 16384;
|
||||
|
||||
/// Small buffer size for bad client handling
|
||||
pub const SMALL_BUFFER_SIZE: usize = 8192;
|
||||
|
||||
@@ -201,6 +231,16 @@ pub static RESERVED_NONCE_CONTINUES: &[[u8; 4]] = &[
|
||||
// ============= RPC Constants (for Middle Proxy) =============
|
||||
|
||||
/// RPC Proxy Request
|
||||
/// RPC Flags (from Erlang mtp_rpc.erl)
|
||||
pub const RPC_FLAG_NOT_ENCRYPTED: u32 = 0x2;
|
||||
pub const RPC_FLAG_HAS_AD_TAG: u32 = 0x8;
|
||||
pub const RPC_FLAG_MAGIC: u32 = 0x1000;
|
||||
pub const RPC_FLAG_EXTMODE2: u32 = 0x20000;
|
||||
pub const RPC_FLAG_PAD: u32 = 0x8000000;
|
||||
pub const RPC_FLAG_INTERMEDIATE: u32 = 0x20000000;
|
||||
pub const RPC_FLAG_ABRIDGED: u32 = 0x40000000;
|
||||
pub const RPC_FLAG_QUICKACK: u32 = 0x80000000;
|
||||
|
||||
pub const RPC_PROXY_REQ: [u8; 4] = [0xee, 0xf1, 0xce, 0x36];
|
||||
/// RPC Proxy Answer
|
||||
pub const RPC_PROXY_ANS: [u8; 4] = [0x0d, 0xda, 0x03, 0x44];
|
||||
@@ -227,7 +267,60 @@ pub mod rpc_flags {
|
||||
pub const FLAG_QUICKACK: u32 = 0x80000000;
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
|
||||
// ============= Middle-End Proxy Servers =============
|
||||
pub const ME_PROXY_PORT: u16 = 8888;
|
||||
|
||||
pub static TG_MIDDLE_PROXIES_FLAT_V4: LazyLock<Vec<(IpAddr, u16)>> = LazyLock::new(|| {
|
||||
vec![
|
||||
(IpAddr::V4(Ipv4Addr::new(149, 154, 175, 50)), 8888),
|
||||
(IpAddr::V4(Ipv4Addr::new(149, 154, 161, 144)), 8888),
|
||||
(IpAddr::V4(Ipv4Addr::new(149, 154, 175, 100)), 8888),
|
||||
(IpAddr::V4(Ipv4Addr::new(91, 108, 4, 136)), 8888),
|
||||
(IpAddr::V4(Ipv4Addr::new(91, 108, 56, 183)), 8888),
|
||||
]
|
||||
});
|
||||
|
||||
// ============= RPC Constants (u32 native endian) =============
|
||||
// From mtproto-common.h + net-tcp-rpc-common.h + mtproto-proxy.c
|
||||
|
||||
pub const RPC_NONCE_U32: u32 = 0x7acb87aa;
|
||||
pub const RPC_HANDSHAKE_U32: u32 = 0x7682eef5;
|
||||
pub const RPC_HANDSHAKE_ERROR_U32: u32 = 0x6a27beda;
|
||||
pub const TL_PROXY_TAG_U32: u32 = 0xdb1e26ae; // mtproto-proxy.c:121
|
||||
|
||||
// mtproto-common.h
|
||||
pub const RPC_PROXY_REQ_U32: u32 = 0x36cef1ee;
|
||||
pub const RPC_PROXY_ANS_U32: u32 = 0x4403da0d;
|
||||
pub const RPC_CLOSE_CONN_U32: u32 = 0x1fcf425d;
|
||||
pub const RPC_CLOSE_EXT_U32: u32 = 0x5eb634a2;
|
||||
pub const RPC_SIMPLE_ACK_U32: u32 = 0x3bac409b;
|
||||
pub const RPC_PING_U32: u32 = 0x5730a2df;
|
||||
pub const RPC_PONG_U32: u32 = 0x8430eaa7;
|
||||
|
||||
pub const RPC_CRYPTO_NONE_U32: u32 = 0;
|
||||
pub const RPC_CRYPTO_AES_U32: u32 = 1;
|
||||
|
||||
pub mod proxy_flags {
|
||||
pub const FLAG_HAS_AD_TAG: u32 = 1;
|
||||
pub const FLAG_NOT_ENCRYPTED: u32 = 0x2;
|
||||
pub const FLAG_HAS_AD_TAG2: u32 = 0x8;
|
||||
pub const FLAG_MAGIC: u32 = 0x1000;
|
||||
pub const FLAG_EXTMODE2: u32 = 0x20000;
|
||||
pub const FLAG_PAD: u32 = 0x8000000;
|
||||
pub const FLAG_INTERMEDIATE: u32 = 0x20000000;
|
||||
pub const FLAG_ABRIDGED: u32 = 0x40000000;
|
||||
pub const FLAG_QUICKACK: u32 = 0x80000000;
|
||||
}
|
||||
|
||||
pub mod rpc_crypto_flags {
|
||||
pub const USE_CRC32C: u32 = 0x800;
|
||||
}
|
||||
|
||||
pub const ME_CONNECT_TIMEOUT_SECS: u64 = 5;
|
||||
pub const ME_HANDSHAKE_TIMEOUT_SECS: u64 = 10;
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
@@ -258,4 +351,43 @@ mod tests {
|
||||
assert_eq!(TG_DATACENTERS_V4.len(), 5);
|
||||
assert_eq!(TG_DATACENTERS_V6.len(), 5);
|
||||
}
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn secure_padding_never_produces_aligned_total() {
|
||||
let rng = SecureRandom::new();
|
||||
for data_len in (0..1000).step_by(4) {
|
||||
for _ in 0..100 {
|
||||
let padding = secure_padding_len(data_len, &rng);
|
||||
assert!(
|
||||
padding <= 3,
|
||||
"padding out of range: data_len={data_len}, padding={padding}"
|
||||
);
|
||||
assert_ne!(
|
||||
(data_len + padding) % 4,
|
||||
0,
|
||||
"invariant violated: data_len={data_len}, padding={padding}, total={}",
|
||||
data_len + padding
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn secure_wire_len_roundtrip_for_aligned_payload() {
|
||||
for payload_len in (4..4096).step_by(4) {
|
||||
for padding in 0..=3usize {
|
||||
let wire_len = payload_len + padding;
|
||||
let recovered = secure_payload_len_from_wire_len(wire_len);
|
||||
assert_eq!(recovered, Some(payload_len));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn secure_wire_len_rejects_too_short_frames() {
|
||||
assert_eq!(secure_payload_len_from_wire_len(0), None);
|
||||
assert_eq!(secure_payload_len_from_wire_len(1), None);
|
||||
assert_eq!(secure_payload_len_from_wire_len(2), None);
|
||||
assert_eq!(secure_payload_len_from_wire_len(3), None);
|
||||
}
|
||||
}
|
||||
|
||||
@@ -1,5 +1,7 @@
|
||||
//! MTProto frame types and metadata
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::collections::HashMap;
|
||||
|
||||
/// Extra metadata associated with a frame
|
||||
@@ -83,7 +85,7 @@ impl FrameMode {
|
||||
pub fn validate_message_length(len: usize) -> bool {
|
||||
use super::constants::{MIN_MSG_LEN, MAX_MSG_LEN, PADDING_FILLER};
|
||||
|
||||
len >= MIN_MSG_LEN && len <= MAX_MSG_LEN && len % PADDING_FILLER.len() == 0
|
||||
(MIN_MSG_LEN..=MAX_MSG_LEN).contains(&len) && len.is_multiple_of(PADDING_FILLER.len())
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
|
||||
@@ -5,7 +5,11 @@ pub mod frame;
|
||||
pub mod obfuscation;
|
||||
pub mod tls;
|
||||
|
||||
#[allow(unused_imports)]
|
||||
pub use constants::*;
|
||||
#[allow(unused_imports)]
|
||||
pub use frame::*;
|
||||
#[allow(unused_imports)]
|
||||
pub use obfuscation::*;
|
||||
#[allow(unused_imports)]
|
||||
pub use tls::*;
|
||||
@@ -1,10 +1,14 @@
|
||||
//! MTProto Obfuscation
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use zeroize::Zeroize;
|
||||
use crate::crypto::{sha256, AesCtr};
|
||||
use crate::error::Result;
|
||||
use super::constants::*;
|
||||
|
||||
/// Obfuscation parameters from handshake
|
||||
///
|
||||
/// Key material is zeroized on drop.
|
||||
#[derive(Debug, Clone)]
|
||||
pub struct ObfuscationParams {
|
||||
/// Key for decrypting client -> proxy traffic
|
||||
@@ -21,25 +25,31 @@ pub struct ObfuscationParams {
|
||||
pub dc_idx: i16,
|
||||
}
|
||||
|
||||
impl Drop for ObfuscationParams {
|
||||
fn drop(&mut self) {
|
||||
self.decrypt_key.zeroize();
|
||||
self.decrypt_iv.zeroize();
|
||||
self.encrypt_key.zeroize();
|
||||
self.encrypt_iv.zeroize();
|
||||
}
|
||||
}
|
||||
|
||||
impl ObfuscationParams {
|
||||
/// Parse obfuscation parameters from handshake bytes
|
||||
/// Returns None if handshake doesn't match any user secret
|
||||
pub fn from_handshake(
|
||||
handshake: &[u8; HANDSHAKE_LEN],
|
||||
secrets: &[(String, Vec<u8>)], // (username, secret_bytes)
|
||||
secrets: &[(String, Vec<u8>)],
|
||||
) -> Option<(Self, String)> {
|
||||
// Extract prekey and IV for decryption
|
||||
let dec_prekey_iv = &handshake[SKIP_LEN..SKIP_LEN + PREKEY_LEN + IV_LEN];
|
||||
let dec_prekey = &dec_prekey_iv[..PREKEY_LEN];
|
||||
let dec_iv_bytes = &dec_prekey_iv[PREKEY_LEN..];
|
||||
|
||||
// Reversed for encryption direction
|
||||
let enc_prekey_iv: Vec<u8> = dec_prekey_iv.iter().rev().copied().collect();
|
||||
let enc_prekey = &enc_prekey_iv[..PREKEY_LEN];
|
||||
let enc_iv_bytes = &enc_prekey_iv[PREKEY_LEN..];
|
||||
|
||||
for (username, secret) in secrets {
|
||||
// Derive decryption key
|
||||
let mut dec_key_input = Vec::with_capacity(PREKEY_LEN + secret.len());
|
||||
dec_key_input.extend_from_slice(dec_prekey);
|
||||
dec_key_input.extend_from_slice(secret);
|
||||
@@ -47,26 +57,22 @@ impl ObfuscationParams {
|
||||
|
||||
let decrypt_iv = u128::from_be_bytes(dec_iv_bytes.try_into().unwrap());
|
||||
|
||||
// Create decryptor and decrypt handshake
|
||||
let mut decryptor = AesCtr::new(&decrypt_key, decrypt_iv);
|
||||
let decrypted = decryptor.decrypt(handshake);
|
||||
|
||||
// Check protocol tag
|
||||
let tag_bytes: [u8; 4] = decrypted[PROTO_TAG_POS..PROTO_TAG_POS + 4]
|
||||
.try_into()
|
||||
.unwrap();
|
||||
|
||||
let proto_tag = match ProtoTag::from_bytes(tag_bytes) {
|
||||
Some(tag) => tag,
|
||||
None => continue, // Try next secret
|
||||
None => continue,
|
||||
};
|
||||
|
||||
// Extract DC index
|
||||
let dc_idx = i16::from_le_bytes(
|
||||
decrypted[DC_IDX_POS..DC_IDX_POS + 2].try_into().unwrap()
|
||||
);
|
||||
|
||||
// Derive encryption key
|
||||
let mut enc_key_input = Vec::with_capacity(PREKEY_LEN + secret.len());
|
||||
enc_key_input.extend_from_slice(enc_prekey);
|
||||
enc_key_input.extend_from_slice(secret);
|
||||
@@ -123,18 +129,15 @@ pub fn generate_nonce<R: FnMut(usize) -> Vec<u8>>(mut random_bytes: R) -> [u8; H
|
||||
|
||||
/// Check if nonce is valid (not matching reserved patterns)
|
||||
pub fn is_valid_nonce(nonce: &[u8; HANDSHAKE_LEN]) -> bool {
|
||||
// Check first byte
|
||||
if RESERVED_NONCE_FIRST_BYTES.contains(&nonce[0]) {
|
||||
return false;
|
||||
}
|
||||
|
||||
// Check first 4 bytes
|
||||
let first_four: [u8; 4] = nonce[..4].try_into().unwrap();
|
||||
if RESERVED_NONCE_BEGINNINGS.contains(&first_four) {
|
||||
return false;
|
||||
}
|
||||
|
||||
// Check bytes 4-7
|
||||
let continue_four: [u8; 4] = nonce[4..8].try_into().unwrap();
|
||||
if RESERVED_NONCE_CONTINUES.contains(&continue_four) {
|
||||
return false;
|
||||
@@ -147,12 +150,10 @@ pub fn is_valid_nonce(nonce: &[u8; HANDSHAKE_LEN]) -> bool {
|
||||
pub fn prepare_tg_nonce(
|
||||
nonce: &mut [u8; HANDSHAKE_LEN],
|
||||
proto_tag: ProtoTag,
|
||||
enc_key_iv: Option<&[u8]>, // For fast mode
|
||||
enc_key_iv: Option<&[u8]>,
|
||||
) {
|
||||
// Set protocol tag
|
||||
nonce[PROTO_TAG_POS..PROTO_TAG_POS + 4].copy_from_slice(&proto_tag.to_bytes());
|
||||
|
||||
// For fast mode, copy the reversed enc_key_iv
|
||||
if let Some(key_iv) = enc_key_iv {
|
||||
let reversed: Vec<u8> = key_iv.iter().rev().copied().collect();
|
||||
nonce[SKIP_LEN..SKIP_LEN + KEY_LEN + IV_LEN].copy_from_slice(&reversed);
|
||||
@@ -160,15 +161,19 @@ pub fn prepare_tg_nonce(
|
||||
}
|
||||
|
||||
/// Encrypt the outgoing nonce for Telegram
|
||||
/// Legacy helper — **do not use**.
|
||||
/// WARNING: logic diverges from Python/C reference (SHA256 of 48 bytes, IV from head).
|
||||
/// Kept only to avoid breaking external callers; prefer `encrypt_tg_nonce_with_ciphers`.
|
||||
#[deprecated(
|
||||
note = "Incorrect MTProto obfuscation KDF; use proxy::handshake::encrypt_tg_nonce_with_ciphers"
|
||||
)]
|
||||
pub fn encrypt_nonce(nonce: &[u8; HANDSHAKE_LEN]) -> Vec<u8> {
|
||||
// Derive encryption key from the nonce itself
|
||||
let key_iv = &nonce[SKIP_LEN..SKIP_LEN + KEY_LEN + IV_LEN];
|
||||
let enc_key = sha256(key_iv);
|
||||
let enc_iv = u128::from_be_bytes(key_iv[..IV_LEN].try_into().unwrap());
|
||||
|
||||
let mut encryptor = AesCtr::new(&enc_key, enc_iv);
|
||||
|
||||
// Only encrypt from PROTO_TAG_POS onwards
|
||||
let mut result = nonce.to_vec();
|
||||
let encrypted_part = encryptor.encrypt(&nonce[PROTO_TAG_POS..]);
|
||||
result[PROTO_TAG_POS..].copy_from_slice(&encrypted_part);
|
||||
@@ -182,22 +187,18 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_is_valid_nonce() {
|
||||
// Valid nonce
|
||||
let mut valid = [0x42u8; HANDSHAKE_LEN];
|
||||
valid[4..8].copy_from_slice(&[1, 2, 3, 4]);
|
||||
assert!(is_valid_nonce(&valid));
|
||||
|
||||
// Invalid: starts with 0xef
|
||||
let mut invalid = [0x00u8; HANDSHAKE_LEN];
|
||||
invalid[0] = 0xef;
|
||||
assert!(!is_valid_nonce(&invalid));
|
||||
|
||||
// Invalid: starts with HEAD
|
||||
let mut invalid = [0x00u8; HANDSHAKE_LEN];
|
||||
invalid[..4].copy_from_slice(b"HEAD");
|
||||
assert!(!is_valid_nonce(&invalid));
|
||||
|
||||
// Invalid: bytes 4-7 are zeros
|
||||
let mut invalid = [0x42u8; HANDSHAKE_LEN];
|
||||
invalid[4..8].copy_from_slice(&[0, 0, 0, 0]);
|
||||
assert!(!is_valid_nonce(&invalid));
|
||||
@@ -214,4 +215,4 @@ mod tests {
|
||||
assert!(is_valid_nonce(&nonce));
|
||||
assert_eq!(nonce.len(), HANDSHAKE_LEN);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@@ -4,10 +4,15 @@
|
||||
//! for domain fronting. The handshake looks like valid TLS 1.3 but
|
||||
//! actually carries MTProto authentication data.
|
||||
|
||||
use crate::crypto::{sha256_hmac, random::SECURE_RANDOM};
|
||||
use crate::error::{ProxyError, Result};
|
||||
#![allow(dead_code)]
|
||||
|
||||
use crate::crypto::{sha256_hmac, SecureRandom};
|
||||
#[cfg(test)]
|
||||
use crate::error::ProxyError;
|
||||
use super::constants::*;
|
||||
use std::time::{SystemTime, UNIX_EPOCH};
|
||||
use num_bigint::BigUint;
|
||||
use num_traits::One;
|
||||
|
||||
// ============= Public Constants =============
|
||||
|
||||
@@ -30,6 +35,7 @@ pub const TIME_SKEW_MAX: i64 = 10 * 60; // 10 minutes after
|
||||
mod extension_type {
|
||||
pub const KEY_SHARE: u16 = 0x0033;
|
||||
pub const SUPPORTED_VERSIONS: u16 = 0x002b;
|
||||
pub const ALPN: u16 = 0x0010;
|
||||
}
|
||||
|
||||
/// TLS Cipher Suites
|
||||
@@ -60,6 +66,7 @@ pub struct TlsValidation {
|
||||
// ============= TLS Extension Builder =============
|
||||
|
||||
/// Builder for TLS extensions with correct length calculation
|
||||
#[derive(Clone)]
|
||||
struct TlsExtensionBuilder {
|
||||
extensions: Vec<u8>,
|
||||
}
|
||||
@@ -106,6 +113,27 @@ impl TlsExtensionBuilder {
|
||||
|
||||
self
|
||||
}
|
||||
|
||||
/// Add ALPN extension with a single selected protocol.
|
||||
fn add_alpn(&mut self, proto: &[u8]) -> &mut Self {
|
||||
// Extension type: ALPN (0x0010)
|
||||
self.extensions.extend_from_slice(&extension_type::ALPN.to_be_bytes());
|
||||
|
||||
// ALPN extension format:
|
||||
// extension_data length (2 bytes)
|
||||
// protocols length (2 bytes)
|
||||
// protocol name length (1 byte)
|
||||
// protocol name bytes
|
||||
let proto_len = proto.len() as u8;
|
||||
let list_len: u16 = 1 + proto_len as u16;
|
||||
let ext_len: u16 = 2 + list_len;
|
||||
|
||||
self.extensions.extend_from_slice(&ext_len.to_be_bytes());
|
||||
self.extensions.extend_from_slice(&list_len.to_be_bytes());
|
||||
self.extensions.push(proto_len);
|
||||
self.extensions.extend_from_slice(proto);
|
||||
self
|
||||
}
|
||||
|
||||
/// Build final extensions with length prefix
|
||||
fn build(self) -> Vec<u8> {
|
||||
@@ -142,6 +170,8 @@ struct ServerHelloBuilder {
|
||||
compression: u8,
|
||||
/// Extensions
|
||||
extensions: TlsExtensionBuilder,
|
||||
/// Selected ALPN protocol (if any)
|
||||
alpn: Option<Vec<u8>>,
|
||||
}
|
||||
|
||||
impl ServerHelloBuilder {
|
||||
@@ -152,6 +182,7 @@ impl ServerHelloBuilder {
|
||||
cipher_suite: cipher_suite::TLS_AES_128_GCM_SHA256,
|
||||
compression: 0x00,
|
||||
extensions: TlsExtensionBuilder::new(),
|
||||
alpn: None,
|
||||
}
|
||||
}
|
||||
|
||||
@@ -165,10 +196,19 @@ impl ServerHelloBuilder {
|
||||
self.extensions.add_supported_versions(0x0304);
|
||||
self
|
||||
}
|
||||
|
||||
fn with_alpn(mut self, proto: Option<Vec<u8>>) -> Self {
|
||||
self.alpn = proto;
|
||||
self
|
||||
}
|
||||
|
||||
/// Build ServerHello message (without record header)
|
||||
fn build_message(&self) -> Vec<u8> {
|
||||
let extensions = self.extensions.extensions.clone();
|
||||
let mut ext_builder = self.extensions.clone();
|
||||
if let Some(ref alpn) = self.alpn {
|
||||
ext_builder.add_alpn(alpn);
|
||||
}
|
||||
let extensions = ext_builder.extensions.clone();
|
||||
let extensions_len = extensions.len() as u16;
|
||||
|
||||
// Calculate total length
|
||||
@@ -295,7 +335,7 @@ pub fn validate_tls_handshake(
|
||||
// This is a quirk in some clients that use uptime instead of real time
|
||||
let is_boot_time = timestamp < 60 * 60 * 24 * 1000; // < ~2.7 years in seconds
|
||||
|
||||
if !is_boot_time && (time_diff < TIME_SKEW_MIN || time_diff > TIME_SKEW_MAX) {
|
||||
if !is_boot_time && !(TIME_SKEW_MIN..=TIME_SKEW_MAX).contains(&time_diff) {
|
||||
continue;
|
||||
}
|
||||
}
|
||||
@@ -311,13 +351,27 @@ pub fn validate_tls_handshake(
|
||||
None
|
||||
}
|
||||
|
||||
fn curve25519_prime() -> BigUint {
|
||||
(BigUint::one() << 255) - BigUint::from(19u32)
|
||||
}
|
||||
|
||||
/// Generate a fake X25519 public key for TLS
|
||||
///
|
||||
/// This generates random bytes that look like a valid X25519 public key.
|
||||
/// Since we're not doing real TLS, the actual cryptographic properties don't matter.
|
||||
pub fn gen_fake_x25519_key() -> [u8; 32] {
|
||||
let bytes = SECURE_RANDOM.bytes(32);
|
||||
bytes.try_into().unwrap()
|
||||
/// Produces a quadratic residue mod p = 2^255 - 19 by computing n² mod p,
|
||||
/// which matches Python/C behavior and avoids DPI fingerprinting.
|
||||
pub fn gen_fake_x25519_key(rng: &SecureRandom) -> [u8; 32] {
|
||||
let mut n_bytes = [0u8; 32];
|
||||
n_bytes.copy_from_slice(&rng.bytes(32));
|
||||
|
||||
let n = BigUint::from_bytes_le(&n_bytes);
|
||||
let p = curve25519_prime();
|
||||
let pk = (&n * &n) % &p;
|
||||
|
||||
let mut out = pk.to_bytes_le();
|
||||
out.resize(32, 0);
|
||||
let mut result = [0u8; 32];
|
||||
result.copy_from_slice(&out[..32]);
|
||||
result
|
||||
}
|
||||
|
||||
/// Build TLS ServerHello response
|
||||
@@ -333,13 +387,20 @@ pub fn build_server_hello(
|
||||
client_digest: &[u8; TLS_DIGEST_LEN],
|
||||
session_id: &[u8],
|
||||
fake_cert_len: usize,
|
||||
rng: &SecureRandom,
|
||||
alpn: Option<Vec<u8>>,
|
||||
new_session_tickets: u8,
|
||||
) -> Vec<u8> {
|
||||
let x25519_key = gen_fake_x25519_key();
|
||||
const MIN_APP_DATA: usize = 64;
|
||||
const MAX_APP_DATA: usize = 16640; // RFC 8446 §5.2 upper bound
|
||||
let fake_cert_len = fake_cert_len.clamp(MIN_APP_DATA, MAX_APP_DATA);
|
||||
let x25519_key = gen_fake_x25519_key(rng);
|
||||
|
||||
// Build ServerHello
|
||||
let server_hello = ServerHelloBuilder::new(session_id.to_vec())
|
||||
.with_x25519_key(&x25519_key)
|
||||
.with_tls13_version()
|
||||
.with_alpn(alpn)
|
||||
.build_record();
|
||||
|
||||
// Build Change Cipher Spec record
|
||||
@@ -351,20 +412,40 @@ pub fn build_server_hello(
|
||||
];
|
||||
|
||||
// Build fake certificate (Application Data record)
|
||||
let fake_cert = SECURE_RANDOM.bytes(fake_cert_len);
|
||||
let fake_cert = rng.bytes(fake_cert_len);
|
||||
let mut app_data_record = Vec::with_capacity(5 + fake_cert_len);
|
||||
app_data_record.push(TLS_RECORD_APPLICATION);
|
||||
app_data_record.extend_from_slice(&TLS_VERSION);
|
||||
app_data_record.extend_from_slice(&(fake_cert_len as u16).to_be_bytes());
|
||||
// Fill ApplicationData with fully random bytes of desired length to avoid
|
||||
// deterministic DPI fingerprints (fixed inner content type markers).
|
||||
app_data_record.extend_from_slice(&fake_cert);
|
||||
|
||||
// Build optional NewSessionTicket records (TLS 1.3 handshake messages are encrypted;
|
||||
// here we mimic with opaque ApplicationData records of plausible size).
|
||||
let mut tickets = Vec::new();
|
||||
if new_session_tickets > 0 {
|
||||
for _ in 0..new_session_tickets {
|
||||
let ticket_len: usize = rng.range(48) + 48; // 48-95 bytes
|
||||
let mut record = Vec::with_capacity(5 + ticket_len);
|
||||
record.push(TLS_RECORD_APPLICATION);
|
||||
record.extend_from_slice(&TLS_VERSION);
|
||||
record.extend_from_slice(&(ticket_len as u16).to_be_bytes());
|
||||
record.extend_from_slice(&rng.bytes(ticket_len));
|
||||
tickets.push(record);
|
||||
}
|
||||
}
|
||||
|
||||
// Combine all records
|
||||
let mut response = Vec::with_capacity(
|
||||
server_hello.len() + change_cipher_spec.len() + app_data_record.len()
|
||||
server_hello.len() + change_cipher_spec.len() + app_data_record.len() + tickets.iter().map(|r| r.len()).sum::<usize>()
|
||||
);
|
||||
response.extend_from_slice(&server_hello);
|
||||
response.extend_from_slice(&change_cipher_spec);
|
||||
response.extend_from_slice(&app_data_record);
|
||||
for t in &tickets {
|
||||
response.extend_from_slice(t);
|
||||
}
|
||||
|
||||
// Compute HMAC for the response
|
||||
let mut hmac_input = Vec::with_capacity(TLS_DIGEST_LEN + response.len());
|
||||
@@ -380,6 +461,131 @@ pub fn build_server_hello(
|
||||
response
|
||||
}
|
||||
|
||||
/// Extract SNI (server_name) from a TLS ClientHello.
|
||||
pub fn extract_sni_from_client_hello(handshake: &[u8]) -> Option<String> {
|
||||
if handshake.len() < 43 || handshake[0] != TLS_RECORD_HANDSHAKE {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut pos = 5; // after record header
|
||||
if handshake.get(pos).copied()? != 0x01 {
|
||||
return None; // not ClientHello
|
||||
}
|
||||
|
||||
// Handshake length bytes
|
||||
pos += 4; // type + len (3)
|
||||
|
||||
// version (2) + random (32)
|
||||
pos += 2 + 32;
|
||||
if pos + 1 > handshake.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let session_id_len = *handshake.get(pos)? as usize;
|
||||
pos += 1 + session_id_len;
|
||||
if pos + 2 > handshake.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let cipher_suites_len = u16::from_be_bytes([handshake[pos], handshake[pos + 1]]) as usize;
|
||||
pos += 2 + cipher_suites_len;
|
||||
if pos + 1 > handshake.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let comp_len = *handshake.get(pos)? as usize;
|
||||
pos += 1 + comp_len;
|
||||
if pos + 2 > handshake.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let ext_len = u16::from_be_bytes([handshake[pos], handshake[pos + 1]]) as usize;
|
||||
pos += 2;
|
||||
let ext_end = pos + ext_len;
|
||||
if ext_end > handshake.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
while pos + 4 <= ext_end {
|
||||
let etype = u16::from_be_bytes([handshake[pos], handshake[pos + 1]]);
|
||||
let elen = u16::from_be_bytes([handshake[pos + 2], handshake[pos + 3]]) as usize;
|
||||
pos += 4;
|
||||
if pos + elen > ext_end {
|
||||
break;
|
||||
}
|
||||
if etype == 0x0000 && elen >= 5 {
|
||||
// server_name extension
|
||||
let list_len = u16::from_be_bytes([handshake[pos], handshake[pos + 1]]) as usize;
|
||||
let mut sn_pos = pos + 2;
|
||||
let sn_end = std::cmp::min(sn_pos + list_len, pos + elen);
|
||||
while sn_pos + 3 <= sn_end {
|
||||
let name_type = handshake[sn_pos];
|
||||
let name_len = u16::from_be_bytes([handshake[sn_pos + 1], handshake[sn_pos + 2]]) as usize;
|
||||
sn_pos += 3;
|
||||
if sn_pos + name_len > sn_end {
|
||||
break;
|
||||
}
|
||||
if name_type == 0 && name_len > 0
|
||||
&& let Ok(host) = std::str::from_utf8(&handshake[sn_pos..sn_pos + name_len])
|
||||
{
|
||||
return Some(host.to_string());
|
||||
}
|
||||
sn_pos += name_len;
|
||||
}
|
||||
}
|
||||
pos += elen;
|
||||
}
|
||||
|
||||
None
|
||||
}
|
||||
|
||||
/// Extract ALPN protocol list from ClientHello, return in offered order.
|
||||
pub fn extract_alpn_from_client_hello(handshake: &[u8]) -> Vec<Vec<u8>> {
|
||||
let mut pos = 5; // after record header
|
||||
if handshake.get(pos) != Some(&0x01) {
|
||||
return Vec::new();
|
||||
}
|
||||
pos += 4; // type + len
|
||||
pos += 2 + 32; // version + random
|
||||
if pos >= handshake.len() { return Vec::new(); }
|
||||
let session_id_len = *handshake.get(pos).unwrap_or(&0) as usize;
|
||||
pos += 1 + session_id_len;
|
||||
if pos + 2 > handshake.len() { return Vec::new(); }
|
||||
let cipher_len = u16::from_be_bytes([handshake[pos], handshake[pos+1]]) as usize;
|
||||
pos += 2 + cipher_len;
|
||||
if pos >= handshake.len() { return Vec::new(); }
|
||||
let comp_len = *handshake.get(pos).unwrap_or(&0) as usize;
|
||||
pos += 1 + comp_len;
|
||||
if pos + 2 > handshake.len() { return Vec::new(); }
|
||||
let ext_len = u16::from_be_bytes([handshake[pos], handshake[pos+1]]) as usize;
|
||||
pos += 2;
|
||||
let ext_end = pos + ext_len;
|
||||
if ext_end > handshake.len() { return Vec::new(); }
|
||||
let mut out = Vec::new();
|
||||
while pos + 4 <= ext_end {
|
||||
let etype = u16::from_be_bytes([handshake[pos], handshake[pos+1]]);
|
||||
let elen = u16::from_be_bytes([handshake[pos+2], handshake[pos+3]]) as usize;
|
||||
pos += 4;
|
||||
if pos + elen > ext_end { break; }
|
||||
if etype == extension_type::ALPN && elen >= 3 {
|
||||
let list_len = u16::from_be_bytes([handshake[pos], handshake[pos+1]]) as usize;
|
||||
let mut lp = pos + 2;
|
||||
let list_end = (pos + 2).saturating_add(list_len).min(pos + elen);
|
||||
while lp < list_end {
|
||||
let plen = handshake[lp] as usize;
|
||||
lp += 1;
|
||||
if lp + plen > list_end { break; }
|
||||
out.push(handshake[lp..lp+plen].to_vec());
|
||||
lp += plen;
|
||||
}
|
||||
break;
|
||||
}
|
||||
pos += elen;
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
|
||||
/// Check if bytes look like a TLS ClientHello
|
||||
pub fn is_tls_handshake(first_bytes: &[u8]) -> bool {
|
||||
if first_bytes.len() < 3 {
|
||||
@@ -410,7 +616,7 @@ pub fn parse_tls_record_header(header: &[u8; 5]) -> Option<(u8, u16)> {
|
||||
///
|
||||
/// This is useful for testing that our ServerHello is well-formed.
|
||||
#[cfg(test)]
|
||||
fn validate_server_hello_structure(data: &[u8]) -> Result<()> {
|
||||
fn validate_server_hello_structure(data: &[u8]) -> Result<(), ProxyError> {
|
||||
if data.len() < 5 {
|
||||
return Err(ProxyError::InvalidTlsRecord {
|
||||
record_type: 0,
|
||||
@@ -489,13 +695,25 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_gen_fake_x25519_key() {
|
||||
let key1 = gen_fake_x25519_key();
|
||||
let key2 = gen_fake_x25519_key();
|
||||
let rng = SecureRandom::new();
|
||||
let key1 = gen_fake_x25519_key(&rng);
|
||||
let key2 = gen_fake_x25519_key(&rng);
|
||||
|
||||
assert_eq!(key1.len(), 32);
|
||||
assert_eq!(key2.len(), 32);
|
||||
assert_ne!(key1, key2); // Should be random
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_fake_x25519_key_is_quadratic_residue() {
|
||||
let rng = SecureRandom::new();
|
||||
let key = gen_fake_x25519_key(&rng);
|
||||
let p = curve25519_prime();
|
||||
let k_num = BigUint::from_bytes_le(&key);
|
||||
let exponent = (&p - BigUint::one()) >> 1;
|
||||
let legendre = k_num.modpow(&exponent, &p);
|
||||
assert_eq!(legendre, BigUint::one());
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_tls_extension_builder() {
|
||||
@@ -545,7 +763,8 @@ mod tests {
|
||||
let client_digest = [0x42u8; 32];
|
||||
let session_id = vec![0xAA; 32];
|
||||
|
||||
let response = build_server_hello(secret, &client_digest, &session_id, 2048);
|
||||
let rng = SecureRandom::new();
|
||||
let response = build_server_hello(secret, &client_digest, &session_id, 2048, &rng, None, 0);
|
||||
|
||||
// Should have at least 3 records
|
||||
assert!(response.len() > 100);
|
||||
@@ -577,8 +796,9 @@ mod tests {
|
||||
let client_digest = [0x42u8; 32];
|
||||
let session_id = vec![0xAA; 32];
|
||||
|
||||
let response1 = build_server_hello(secret, &client_digest, &session_id, 1024);
|
||||
let response2 = build_server_hello(secret, &client_digest, &session_id, 1024);
|
||||
let rng = SecureRandom::new();
|
||||
let response1 = build_server_hello(secret, &client_digest, &session_id, 1024, &rng, None, 0);
|
||||
let response2 = build_server_hello(secret, &client_digest, &session_id, 1024, &rng, None, 0);
|
||||
|
||||
// Digest position should have non-zero data
|
||||
let digest1 = &response1[TLS_DIGEST_POS..TLS_DIGEST_POS + TLS_DIGEST_LEN];
|
||||
@@ -637,4 +857,101 @@ mod tests {
|
||||
// Should return None (no match) but not panic
|
||||
assert!(result.is_none());
|
||||
}
|
||||
}
|
||||
|
||||
fn build_client_hello_with_exts(exts: Vec<(u16, Vec<u8>)>, host: &str) -> Vec<u8> {
|
||||
let mut body = Vec::new();
|
||||
body.extend_from_slice(&TLS_VERSION); // legacy version
|
||||
body.extend_from_slice(&[0u8; 32]); // random
|
||||
body.push(0); // session id len
|
||||
body.extend_from_slice(&2u16.to_be_bytes()); // cipher suites len
|
||||
body.extend_from_slice(&[0x13, 0x01]); // TLS_AES_128_GCM_SHA256
|
||||
body.push(1); // compression len
|
||||
body.push(0); // null compression
|
||||
|
||||
// Build SNI extension
|
||||
let host_bytes = host.as_bytes();
|
||||
let mut sni_ext = Vec::new();
|
||||
sni_ext.extend_from_slice(&(host_bytes.len() as u16 + 3).to_be_bytes());
|
||||
sni_ext.push(0);
|
||||
sni_ext.extend_from_slice(&(host_bytes.len() as u16).to_be_bytes());
|
||||
sni_ext.extend_from_slice(host_bytes);
|
||||
|
||||
let mut ext_blob = Vec::new();
|
||||
for (typ, data) in exts {
|
||||
ext_blob.extend_from_slice(&typ.to_be_bytes());
|
||||
ext_blob.extend_from_slice(&(data.len() as u16).to_be_bytes());
|
||||
ext_blob.extend_from_slice(&data);
|
||||
}
|
||||
// SNI last
|
||||
ext_blob.extend_from_slice(&0x0000u16.to_be_bytes());
|
||||
ext_blob.extend_from_slice(&(sni_ext.len() as u16).to_be_bytes());
|
||||
ext_blob.extend_from_slice(&sni_ext);
|
||||
|
||||
body.extend_from_slice(&(ext_blob.len() as u16).to_be_bytes());
|
||||
body.extend_from_slice(&ext_blob);
|
||||
|
||||
let mut handshake = Vec::new();
|
||||
handshake.push(0x01); // ClientHello
|
||||
let len_bytes = (body.len() as u32).to_be_bytes();
|
||||
handshake.extend_from_slice(&len_bytes[1..4]);
|
||||
handshake.extend_from_slice(&body);
|
||||
|
||||
let mut record = Vec::new();
|
||||
record.push(TLS_RECORD_HANDSHAKE);
|
||||
record.extend_from_slice(&[0x03, 0x01]);
|
||||
record.extend_from_slice(&(handshake.len() as u16).to_be_bytes());
|
||||
record.extend_from_slice(&handshake);
|
||||
record
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_extract_sni_with_grease_extension() {
|
||||
// GREASE type 0x0a0a with zero length before SNI
|
||||
let ch = build_client_hello_with_exts(vec![(0x0a0a, Vec::new())], "example.com");
|
||||
let sni = extract_sni_from_client_hello(&ch);
|
||||
assert_eq!(sni.as_deref(), Some("example.com"));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_extract_sni_tolerates_empty_unknown_extension() {
|
||||
let ch = build_client_hello_with_exts(vec![(0x1234, Vec::new())], "test.local");
|
||||
let sni = extract_sni_from_client_hello(&ch);
|
||||
assert_eq!(sni.as_deref(), Some("test.local"));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_extract_alpn_single() {
|
||||
let mut alpn_data = Vec::new();
|
||||
// list length = 3 (1 length byte + "h2")
|
||||
alpn_data.extend_from_slice(&3u16.to_be_bytes());
|
||||
alpn_data.push(2);
|
||||
alpn_data.extend_from_slice(b"h2");
|
||||
let ch = build_client_hello_with_exts(vec![(0x0010, alpn_data)], "alpn.test");
|
||||
let alpn = extract_alpn_from_client_hello(&ch);
|
||||
let alpn_str: Vec<String> = alpn
|
||||
.iter()
|
||||
.map(|p| std::str::from_utf8(p).unwrap().to_string())
|
||||
.collect();
|
||||
assert_eq!(alpn_str, vec!["h2"]);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_extract_alpn_multiple() {
|
||||
let mut alpn_data = Vec::new();
|
||||
// list length = 11 (sum of per-proto lengths including length bytes)
|
||||
alpn_data.extend_from_slice(&11u16.to_be_bytes());
|
||||
alpn_data.push(2);
|
||||
alpn_data.extend_from_slice(b"h2");
|
||||
alpn_data.push(4);
|
||||
alpn_data.extend_from_slice(b"spdy");
|
||||
alpn_data.push(2);
|
||||
alpn_data.extend_from_slice(b"h3");
|
||||
let ch = build_client_hello_with_exts(vec![(0x0010, alpn_data)], "alpn.test");
|
||||
let alpn = extract_alpn_from_client_hello(&ch);
|
||||
let alpn_str: Vec<String> = alpn
|
||||
.iter()
|
||||
.map(|p| std::str::from_utf8(p).unwrap().to_string())
|
||||
.collect();
|
||||
assert_eq!(alpn_str, vec!["h2", "spdy", "h3"]);
|
||||
}
|
||||
}
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
192
src/proxy/direct_relay.rs
Normal file
192
src/proxy/direct_relay.rs
Normal file
@@ -0,0 +1,192 @@
|
||||
use std::fs::OpenOptions;
|
||||
use std::io::Write;
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncWriteExt};
|
||||
use tokio::net::TcpStream;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::error::Result;
|
||||
use crate::protocol::constants::*;
|
||||
use crate::proxy::handshake::{HandshakeSuccess, encrypt_tg_nonce_with_ciphers, generate_tg_nonce};
|
||||
use crate::proxy::relay::relay_bidirectional;
|
||||
use crate::stats::Stats;
|
||||
use crate::stream::{BufferPool, CryptoReader, CryptoWriter};
|
||||
use crate::transport::UpstreamManager;
|
||||
|
||||
pub(crate) async fn handle_via_direct<R, W>(
|
||||
client_reader: CryptoReader<R>,
|
||||
client_writer: CryptoWriter<W>,
|
||||
success: HandshakeSuccess,
|
||||
upstream_manager: Arc<UpstreamManager>,
|
||||
stats: Arc<Stats>,
|
||||
config: Arc<ProxyConfig>,
|
||||
buffer_pool: Arc<BufferPool>,
|
||||
rng: Arc<SecureRandom>,
|
||||
) -> Result<()>
|
||||
where
|
||||
R: AsyncRead + Unpin + Send + 'static,
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let user = &success.user;
|
||||
let dc_addr = get_dc_addr_static(success.dc_idx, &config)?;
|
||||
|
||||
info!(
|
||||
user = %user,
|
||||
peer = %success.peer,
|
||||
dc = success.dc_idx,
|
||||
dc_addr = %dc_addr,
|
||||
proto = ?success.proto_tag,
|
||||
mode = "direct",
|
||||
"Connecting to Telegram DC"
|
||||
);
|
||||
|
||||
let tg_stream = upstream_manager
|
||||
.connect(dc_addr, Some(success.dc_idx), user.strip_prefix("scope_").filter(|s| !s.is_empty()))
|
||||
.await?;
|
||||
|
||||
debug!(peer = %success.peer, dc_addr = %dc_addr, "Connected, performing TG handshake");
|
||||
|
||||
let (tg_reader, tg_writer) =
|
||||
do_tg_handshake_static(tg_stream, &success, &config, rng.as_ref()).await?;
|
||||
|
||||
debug!(peer = %success.peer, "TG handshake complete, starting relay");
|
||||
|
||||
stats.increment_user_connects(user);
|
||||
stats.increment_user_curr_connects(user);
|
||||
|
||||
let relay_result = relay_bidirectional(
|
||||
client_reader,
|
||||
client_writer,
|
||||
tg_reader,
|
||||
tg_writer,
|
||||
user,
|
||||
Arc::clone(&stats),
|
||||
buffer_pool,
|
||||
)
|
||||
.await;
|
||||
|
||||
stats.decrement_user_curr_connects(user);
|
||||
|
||||
match &relay_result {
|
||||
Ok(()) => debug!(user = %user, "Direct relay completed"),
|
||||
Err(e) => debug!(user = %user, error = %e, "Direct relay ended with error"),
|
||||
}
|
||||
|
||||
relay_result
|
||||
}
|
||||
|
||||
fn get_dc_addr_static(dc_idx: i16, config: &ProxyConfig) -> Result<SocketAddr> {
|
||||
let prefer_v6 = config.network.prefer == 6 && config.network.ipv6.unwrap_or(true);
|
||||
let datacenters = if prefer_v6 {
|
||||
&*TG_DATACENTERS_V6
|
||||
} else {
|
||||
&*TG_DATACENTERS_V4
|
||||
};
|
||||
|
||||
let num_dcs = datacenters.len();
|
||||
|
||||
let dc_key = dc_idx.to_string();
|
||||
if let Some(addrs) = config.dc_overrides.get(&dc_key) {
|
||||
let mut parsed = Vec::new();
|
||||
for addr_str in addrs {
|
||||
match addr_str.parse::<SocketAddr>() {
|
||||
Ok(addr) => parsed.push(addr),
|
||||
Err(_) => warn!(dc_idx = dc_idx, addr_str = %addr_str, "Invalid DC override address in config, ignoring"),
|
||||
}
|
||||
}
|
||||
|
||||
if let Some(addr) = parsed
|
||||
.iter()
|
||||
.find(|a| a.is_ipv6() == prefer_v6)
|
||||
.or_else(|| parsed.first())
|
||||
.copied()
|
||||
{
|
||||
debug!(dc_idx = dc_idx, addr = %addr, count = parsed.len(), "Using DC override from config");
|
||||
return Ok(addr);
|
||||
}
|
||||
}
|
||||
|
||||
let abs_dc = dc_idx.unsigned_abs() as usize;
|
||||
if abs_dc >= 1 && abs_dc <= num_dcs {
|
||||
return Ok(SocketAddr::new(datacenters[abs_dc - 1], TG_DATACENTER_PORT));
|
||||
}
|
||||
|
||||
// Unknown DC requested by client without override: log and fall back.
|
||||
if !config.dc_overrides.contains_key(&dc_key) {
|
||||
warn!(dc_idx = dc_idx, "Requested non-standard DC with no override; falling back to default cluster");
|
||||
if config.general.unknown_dc_file_log_enabled
|
||||
&& let Some(path) = &config.general.unknown_dc_log_path
|
||||
&& let Ok(handle) = tokio::runtime::Handle::try_current()
|
||||
{
|
||||
let path = path.clone();
|
||||
handle.spawn_blocking(move || {
|
||||
if let Ok(mut file) = OpenOptions::new().create(true).append(true).open(path) {
|
||||
let _ = writeln!(file, "dc_idx={dc_idx}");
|
||||
}
|
||||
});
|
||||
}
|
||||
}
|
||||
|
||||
let default_dc = config.default_dc.unwrap_or(2) as usize;
|
||||
let fallback_idx = if default_dc >= 1 && default_dc <= num_dcs {
|
||||
default_dc - 1
|
||||
} else {
|
||||
1
|
||||
};
|
||||
|
||||
info!(
|
||||
original_dc = dc_idx,
|
||||
fallback_dc = (fallback_idx + 1) as u16,
|
||||
fallback_addr = %datacenters[fallback_idx],
|
||||
"Special DC ---> default_cluster"
|
||||
);
|
||||
|
||||
Ok(SocketAddr::new(
|
||||
datacenters[fallback_idx],
|
||||
TG_DATACENTER_PORT,
|
||||
))
|
||||
}
|
||||
|
||||
async fn do_tg_handshake_static(
|
||||
mut stream: TcpStream,
|
||||
success: &HandshakeSuccess,
|
||||
config: &ProxyConfig,
|
||||
rng: &SecureRandom,
|
||||
) -> Result<(
|
||||
CryptoReader<tokio::net::tcp::OwnedReadHalf>,
|
||||
CryptoWriter<tokio::net::tcp::OwnedWriteHalf>,
|
||||
)> {
|
||||
let (nonce, _tg_enc_key, _tg_enc_iv, _tg_dec_key, _tg_dec_iv) = generate_tg_nonce(
|
||||
success.proto_tag,
|
||||
success.dc_idx,
|
||||
&success.dec_key,
|
||||
success.dec_iv,
|
||||
&success.enc_key,
|
||||
success.enc_iv,
|
||||
rng,
|
||||
config.general.fast_mode,
|
||||
);
|
||||
|
||||
let (encrypted_nonce, tg_encryptor, tg_decryptor) = encrypt_tg_nonce_with_ciphers(&nonce);
|
||||
|
||||
debug!(
|
||||
peer = %success.peer,
|
||||
nonce_head = %hex::encode(&nonce[..16]),
|
||||
"Sending nonce to Telegram"
|
||||
);
|
||||
|
||||
stream.write_all(&encrypted_nonce).await?;
|
||||
stream.flush().await?;
|
||||
|
||||
let (read_half, write_half) = stream.into_split();
|
||||
|
||||
let max_pending = config.general.crypto_pending_buffer;
|
||||
Ok((
|
||||
CryptoReader::new(read_half, tg_decryptor),
|
||||
CryptoWriter::new(write_half, tg_encryptor, max_pending),
|
||||
))
|
||||
}
|
||||
@@ -1,19 +1,28 @@
|
||||
//! MTProto Handshake Magics
|
||||
//! MTProto Handshake
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
use std::time::Duration;
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncWriteExt};
|
||||
use tracing::{debug, warn, trace, info};
|
||||
use zeroize::Zeroize;
|
||||
|
||||
use crate::crypto::{sha256, AesCtr};
|
||||
use crate::crypto::random::SECURE_RANDOM;
|
||||
use crate::crypto::{sha256, AesCtr, SecureRandom};
|
||||
use rand::Rng;
|
||||
use crate::protocol::constants::*;
|
||||
use crate::protocol::tls;
|
||||
use crate::stream::{FakeTlsReader, FakeTlsWriter, CryptoReader, CryptoWriter};
|
||||
use crate::error::{ProxyError, HandshakeResult};
|
||||
use crate::stats::ReplayChecker;
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::tls_front::{TlsFrontCache, emulator};
|
||||
|
||||
/// Result of successful handshake
|
||||
///
|
||||
/// Key material (`dec_key`, `dec_iv`, `enc_key`, `enc_iv`) is
|
||||
/// zeroized on drop.
|
||||
#[derive(Debug, Clone)]
|
||||
pub struct HandshakeSuccess {
|
||||
/// Authenticated user name
|
||||
@@ -34,6 +43,15 @@ pub struct HandshakeSuccess {
|
||||
pub is_tls: bool,
|
||||
}
|
||||
|
||||
impl Drop for HandshakeSuccess {
|
||||
fn drop(&mut self) {
|
||||
self.dec_key.zeroize();
|
||||
self.dec_iv.zeroize();
|
||||
self.enc_key.zeroize();
|
||||
self.enc_iv.zeroize();
|
||||
}
|
||||
}
|
||||
|
||||
/// Handle fake TLS handshake
|
||||
pub async fn handle_tls_handshake<R, W>(
|
||||
handshake: &[u8],
|
||||
@@ -42,84 +60,153 @@ pub async fn handle_tls_handshake<R, W>(
|
||||
peer: SocketAddr,
|
||||
config: &ProxyConfig,
|
||||
replay_checker: &ReplayChecker,
|
||||
) -> HandshakeResult<(FakeTlsReader<R>, FakeTlsWriter<W>, String)>
|
||||
rng: &SecureRandom,
|
||||
tls_cache: Option<Arc<TlsFrontCache>>,
|
||||
) -> HandshakeResult<(FakeTlsReader<R>, FakeTlsWriter<W>, String), R, W>
|
||||
where
|
||||
R: AsyncRead + Unpin,
|
||||
W: AsyncWrite + Unpin,
|
||||
{
|
||||
debug!(peer = %peer, handshake_len = handshake.len(), "Processing TLS handshake");
|
||||
|
||||
// Check minimum length
|
||||
|
||||
if handshake.len() < tls::TLS_DIGEST_POS + tls::TLS_DIGEST_LEN + 1 {
|
||||
debug!(peer = %peer, "TLS handshake too short");
|
||||
return HandshakeResult::BadClient;
|
||||
return HandshakeResult::BadClient { reader, writer };
|
||||
}
|
||||
|
||||
// Extract digest for replay check
|
||||
|
||||
let digest = &handshake[tls::TLS_DIGEST_POS..tls::TLS_DIGEST_POS + tls::TLS_DIGEST_LEN];
|
||||
let digest_half = &digest[..tls::TLS_DIGEST_HALF_LEN];
|
||||
|
||||
// Check for replay
|
||||
if replay_checker.check_tls_digest(digest_half) {
|
||||
warn!(peer = %peer, "TLS replay attack detected");
|
||||
return HandshakeResult::BadClient;
|
||||
|
||||
if replay_checker.check_and_add_tls_digest(digest_half) {
|
||||
warn!(peer = %peer, "TLS replay attack detected (duplicate digest)");
|
||||
return HandshakeResult::BadClient { reader, writer };
|
||||
}
|
||||
|
||||
// Build secrets list
|
||||
let secrets: Vec<(String, Vec<u8>)> = config.users.iter()
|
||||
|
||||
let secrets: Vec<(String, Vec<u8>)> = config.access.users.iter()
|
||||
.filter_map(|(name, hex)| {
|
||||
hex::decode(hex).ok().map(|bytes| (name.clone(), bytes))
|
||||
})
|
||||
.collect();
|
||||
|
||||
debug!(peer = %peer, num_users = secrets.len(), "Validating TLS handshake against users");
|
||||
|
||||
// Validate handshake
|
||||
|
||||
let validation = match tls::validate_tls_handshake(
|
||||
handshake,
|
||||
&secrets,
|
||||
config.ignore_time_skew,
|
||||
config.access.ignore_time_skew,
|
||||
) {
|
||||
Some(v) => v,
|
||||
None => {
|
||||
debug!(peer = %peer, "TLS handshake validation failed - no matching user");
|
||||
return HandshakeResult::BadClient;
|
||||
debug!(
|
||||
peer = %peer,
|
||||
ignore_time_skew = config.access.ignore_time_skew,
|
||||
"TLS handshake validation failed - no matching user or time skew"
|
||||
);
|
||||
return HandshakeResult::BadClient { reader, writer };
|
||||
}
|
||||
};
|
||||
|
||||
// Get secret for response
|
||||
|
||||
let secret = match secrets.iter().find(|(name, _)| *name == validation.user) {
|
||||
Some((_, s)) => s,
|
||||
None => return HandshakeResult::BadClient,
|
||||
None => return HandshakeResult::BadClient { reader, writer },
|
||||
};
|
||||
|
||||
// Build and send response
|
||||
let response = tls::build_server_hello(
|
||||
secret,
|
||||
&validation.digest,
|
||||
&validation.session_id,
|
||||
config.fake_cert_len,
|
||||
);
|
||||
|
||||
|
||||
let cached = if config.censorship.tls_emulation {
|
||||
if let Some(cache) = tls_cache.as_ref() {
|
||||
let selected_domain = if let Some(sni) = tls::extract_sni_from_client_hello(handshake) {
|
||||
if cache.contains_domain(&sni).await {
|
||||
sni
|
||||
} else {
|
||||
config.censorship.tls_domain.clone()
|
||||
}
|
||||
} else {
|
||||
config.censorship.tls_domain.clone()
|
||||
};
|
||||
let cached_entry = cache.get(&selected_domain).await;
|
||||
let use_full_cert_payload = cache
|
||||
.take_full_cert_budget_for_ip(
|
||||
peer.ip(),
|
||||
Duration::from_secs(config.censorship.tls_full_cert_ttl_secs),
|
||||
)
|
||||
.await;
|
||||
Some((cached_entry, use_full_cert_payload))
|
||||
} else {
|
||||
None
|
||||
}
|
||||
} else {
|
||||
None
|
||||
};
|
||||
|
||||
let alpn_list = if config.censorship.alpn_enforce {
|
||||
tls::extract_alpn_from_client_hello(handshake)
|
||||
} else {
|
||||
Vec::new()
|
||||
};
|
||||
let selected_alpn = if config.censorship.alpn_enforce {
|
||||
if alpn_list.iter().any(|p| p == b"h2") {
|
||||
Some(b"h2".to_vec())
|
||||
} else if alpn_list.iter().any(|p| p == b"http/1.1") {
|
||||
Some(b"http/1.1".to_vec())
|
||||
} else {
|
||||
None
|
||||
}
|
||||
} else {
|
||||
None
|
||||
};
|
||||
|
||||
let response = if let Some((cached_entry, use_full_cert_payload)) = cached {
|
||||
emulator::build_emulated_server_hello(
|
||||
secret,
|
||||
&validation.digest,
|
||||
&validation.session_id,
|
||||
&cached_entry,
|
||||
use_full_cert_payload,
|
||||
rng,
|
||||
selected_alpn.clone(),
|
||||
config.censorship.tls_new_session_tickets,
|
||||
)
|
||||
} else {
|
||||
tls::build_server_hello(
|
||||
secret,
|
||||
&validation.digest,
|
||||
&validation.session_id,
|
||||
config.censorship.fake_cert_len,
|
||||
rng,
|
||||
selected_alpn.clone(),
|
||||
config.censorship.tls_new_session_tickets,
|
||||
)
|
||||
};
|
||||
|
||||
// Optional anti-fingerprint delay before sending ServerHello.
|
||||
if config.censorship.server_hello_delay_max_ms > 0 {
|
||||
let min = config.censorship.server_hello_delay_min_ms;
|
||||
let max = config.censorship.server_hello_delay_max_ms.max(min);
|
||||
let delay_ms = if max == min {
|
||||
max
|
||||
} else {
|
||||
rand::rng().random_range(min..=max)
|
||||
};
|
||||
if delay_ms > 0 {
|
||||
tokio::time::sleep(std::time::Duration::from_millis(delay_ms)).await;
|
||||
}
|
||||
}
|
||||
|
||||
debug!(peer = %peer, response_len = response.len(), "Sending TLS ServerHello");
|
||||
|
||||
|
||||
if let Err(e) = writer.write_all(&response).await {
|
||||
warn!(peer = %peer, error = %e, "Failed to write TLS ServerHello");
|
||||
return HandshakeResult::Error(ProxyError::Io(e));
|
||||
}
|
||||
|
||||
|
||||
if let Err(e) = writer.flush().await {
|
||||
warn!(peer = %peer, error = %e, "Failed to flush TLS ServerHello");
|
||||
return HandshakeResult::Error(ProxyError::Io(e));
|
||||
}
|
||||
|
||||
// Record for replay protection
|
||||
replay_checker.add_tls_digest(digest_half);
|
||||
|
||||
|
||||
info!(
|
||||
peer = %peer,
|
||||
user = %validation.user,
|
||||
"TLS handshake successful"
|
||||
);
|
||||
|
||||
|
||||
HandshakeResult::Success((
|
||||
FakeTlsReader::new(reader),
|
||||
FakeTlsWriter::new(writer),
|
||||
@@ -136,111 +223,82 @@ pub async fn handle_mtproto_handshake<R, W>(
|
||||
config: &ProxyConfig,
|
||||
replay_checker: &ReplayChecker,
|
||||
is_tls: bool,
|
||||
) -> HandshakeResult<(CryptoReader<R>, CryptoWriter<W>, HandshakeSuccess)>
|
||||
) -> HandshakeResult<(CryptoReader<R>, CryptoWriter<W>, HandshakeSuccess), R, W>
|
||||
where
|
||||
R: AsyncRead + Unpin + Send,
|
||||
W: AsyncWrite + Unpin + Send,
|
||||
{
|
||||
trace!(peer = %peer, handshake = ?hex::encode(handshake), "MTProto handshake bytes");
|
||||
|
||||
// Extract prekey and IV
|
||||
|
||||
let dec_prekey_iv = &handshake[SKIP_LEN..SKIP_LEN + PREKEY_LEN + IV_LEN];
|
||||
|
||||
debug!(
|
||||
peer = %peer,
|
||||
dec_prekey_iv = %hex::encode(dec_prekey_iv),
|
||||
"Extracted prekey+IV from handshake"
|
||||
);
|
||||
|
||||
// Check for replay
|
||||
if replay_checker.check_handshake(dec_prekey_iv) {
|
||||
|
||||
if replay_checker.check_and_add_handshake(dec_prekey_iv) {
|
||||
warn!(peer = %peer, "MTProto replay attack detected");
|
||||
return HandshakeResult::BadClient;
|
||||
return HandshakeResult::BadClient { reader, writer };
|
||||
}
|
||||
|
||||
// Reversed for encryption direction
|
||||
|
||||
let enc_prekey_iv: Vec<u8> = dec_prekey_iv.iter().rev().copied().collect();
|
||||
|
||||
// Try each user's secret
|
||||
for (user, secret_hex) in &config.users {
|
||||
|
||||
for (user, secret_hex) in &config.access.users {
|
||||
let secret = match hex::decode(secret_hex) {
|
||||
Ok(s) => s,
|
||||
Err(_) => continue,
|
||||
};
|
||||
|
||||
// Derive decryption key
|
||||
|
||||
let dec_prekey = &dec_prekey_iv[..PREKEY_LEN];
|
||||
let dec_iv_bytes = &dec_prekey_iv[PREKEY_LEN..];
|
||||
|
||||
|
||||
let mut dec_key_input = Vec::with_capacity(PREKEY_LEN + secret.len());
|
||||
dec_key_input.extend_from_slice(dec_prekey);
|
||||
dec_key_input.extend_from_slice(&secret);
|
||||
let dec_key = sha256(&dec_key_input);
|
||||
|
||||
|
||||
let dec_iv = u128::from_be_bytes(dec_iv_bytes.try_into().unwrap());
|
||||
|
||||
// Decrypt handshake to check protocol tag
|
||||
|
||||
let mut decryptor = AesCtr::new(&dec_key, dec_iv);
|
||||
let decrypted = decryptor.decrypt(handshake);
|
||||
|
||||
trace!(
|
||||
peer = %peer,
|
||||
user = %user,
|
||||
decrypted_tail = %hex::encode(&decrypted[PROTO_TAG_POS..]),
|
||||
"Decrypted handshake tail"
|
||||
);
|
||||
|
||||
// Check protocol tag
|
||||
|
||||
let tag_bytes: [u8; 4] = decrypted[PROTO_TAG_POS..PROTO_TAG_POS + 4]
|
||||
.try_into()
|
||||
.unwrap();
|
||||
|
||||
|
||||
let proto_tag = match ProtoTag::from_bytes(tag_bytes) {
|
||||
Some(tag) => tag,
|
||||
None => {
|
||||
trace!(peer = %peer, user = %user, tag = %hex::encode(tag_bytes), "Invalid proto tag");
|
||||
continue;
|
||||
}
|
||||
None => continue,
|
||||
};
|
||||
|
||||
debug!(peer = %peer, user = %user, proto = ?proto_tag, "Found valid proto tag");
|
||||
|
||||
// Check if mode is enabled
|
||||
|
||||
let mode_ok = match proto_tag {
|
||||
ProtoTag::Secure => {
|
||||
if is_tls { config.modes.tls } else { config.modes.secure }
|
||||
if is_tls {
|
||||
config.general.modes.tls || config.general.modes.secure
|
||||
} else {
|
||||
config.general.modes.secure || config.general.modes.tls
|
||||
}
|
||||
}
|
||||
ProtoTag::Intermediate | ProtoTag::Abridged => config.modes.classic,
|
||||
ProtoTag::Intermediate | ProtoTag::Abridged => config.general.modes.classic,
|
||||
};
|
||||
|
||||
|
||||
if !mode_ok {
|
||||
debug!(peer = %peer, user = %user, proto = ?proto_tag, "Mode not enabled");
|
||||
continue;
|
||||
}
|
||||
|
||||
// Extract DC index
|
||||
|
||||
let dc_idx = i16::from_le_bytes(
|
||||
decrypted[DC_IDX_POS..DC_IDX_POS + 2].try_into().unwrap()
|
||||
);
|
||||
|
||||
// Derive encryption key
|
||||
|
||||
let enc_prekey = &enc_prekey_iv[..PREKEY_LEN];
|
||||
let enc_iv_bytes = &enc_prekey_iv[PREKEY_LEN..];
|
||||
|
||||
|
||||
let mut enc_key_input = Vec::with_capacity(PREKEY_LEN + secret.len());
|
||||
enc_key_input.extend_from_slice(enc_prekey);
|
||||
enc_key_input.extend_from_slice(&secret);
|
||||
let enc_key = sha256(&enc_key_input);
|
||||
|
||||
|
||||
let enc_iv = u128::from_be_bytes(enc_iv_bytes.try_into().unwrap());
|
||||
|
||||
// Record for replay protection
|
||||
replay_checker.add_handshake(dec_prekey_iv);
|
||||
|
||||
// Create new cipher instances
|
||||
let decryptor = AesCtr::new(&dec_key, dec_iv);
|
||||
|
||||
let encryptor = AesCtr::new(&enc_key, enc_iv);
|
||||
|
||||
|
||||
let success = HandshakeSuccess {
|
||||
user: user.clone(),
|
||||
dc_idx,
|
||||
@@ -252,7 +310,7 @@ where
|
||||
peer,
|
||||
is_tls,
|
||||
};
|
||||
|
||||
|
||||
info!(
|
||||
peer = %peer,
|
||||
user = %user,
|
||||
@@ -261,151 +319,170 @@ where
|
||||
tls = is_tls,
|
||||
"MTProto handshake successful"
|
||||
);
|
||||
|
||||
|
||||
let max_pending = config.general.crypto_pending_buffer;
|
||||
return HandshakeResult::Success((
|
||||
CryptoReader::new(reader, decryptor),
|
||||
CryptoWriter::new(writer, encryptor),
|
||||
CryptoWriter::new(writer, encryptor, max_pending),
|
||||
success,
|
||||
));
|
||||
}
|
||||
|
||||
|
||||
debug!(peer = %peer, "MTProto handshake: no matching user found");
|
||||
HandshakeResult::BadClient
|
||||
HandshakeResult::BadClient { reader, writer }
|
||||
}
|
||||
|
||||
/// Generate nonce for Telegram connection
|
||||
///
|
||||
/// In FAST MODE: we use the same keys for TG as for client, but reversed.
|
||||
/// This means: client's enc_key becomes TG's dec_key and vice versa.
|
||||
pub fn generate_tg_nonce(
|
||||
proto_tag: ProtoTag,
|
||||
client_dec_key: &[u8; 32],
|
||||
client_dec_iv: u128,
|
||||
dc_idx: i16,
|
||||
_client_dec_key: &[u8; 32],
|
||||
_client_dec_iv: u128,
|
||||
client_enc_key: &[u8; 32],
|
||||
client_enc_iv: u128,
|
||||
rng: &SecureRandom,
|
||||
fast_mode: bool,
|
||||
) -> ([u8; HANDSHAKE_LEN], [u8; 32], u128, [u8; 32], u128) {
|
||||
loop {
|
||||
let bytes = SECURE_RANDOM.bytes(HANDSHAKE_LEN);
|
||||
let bytes = rng.bytes(HANDSHAKE_LEN);
|
||||
let mut nonce: [u8; HANDSHAKE_LEN] = bytes.try_into().unwrap();
|
||||
|
||||
// Check reserved patterns
|
||||
if RESERVED_NONCE_FIRST_BYTES.contains(&nonce[0]) {
|
||||
continue;
|
||||
}
|
||||
|
||||
|
||||
if RESERVED_NONCE_FIRST_BYTES.contains(&nonce[0]) { continue; }
|
||||
|
||||
let first_four: [u8; 4] = nonce[..4].try_into().unwrap();
|
||||
if RESERVED_NONCE_BEGINNINGS.contains(&first_four) {
|
||||
continue;
|
||||
}
|
||||
|
||||
if RESERVED_NONCE_BEGINNINGS.contains(&first_four) { continue; }
|
||||
|
||||
let continue_four: [u8; 4] = nonce[4..8].try_into().unwrap();
|
||||
if RESERVED_NONCE_CONTINUES.contains(&continue_four) {
|
||||
continue;
|
||||
}
|
||||
|
||||
// Set protocol tag
|
||||
if RESERVED_NONCE_CONTINUES.contains(&continue_four) { continue; }
|
||||
|
||||
nonce[PROTO_TAG_POS..PROTO_TAG_POS + 4].copy_from_slice(&proto_tag.to_bytes());
|
||||
|
||||
// Fast mode: copy client's dec_key+iv (this becomes TG's enc direction)
|
||||
// In fast mode, we make TG use the same keys as client but swapped:
|
||||
// - What we decrypt FROM TG = what we encrypt TO client (so no re-encryption needed)
|
||||
// - What we encrypt TO TG = what we decrypt FROM client
|
||||
// CRITICAL: write dc_idx so upstream DC knows where to route
|
||||
nonce[DC_IDX_POS..DC_IDX_POS + 2].copy_from_slice(&dc_idx.to_le_bytes());
|
||||
|
||||
if fast_mode {
|
||||
// Put client's dec_key + dec_iv into nonce[8:56]
|
||||
// This will be used by TG for encryption TO us
|
||||
nonce[SKIP_LEN..SKIP_LEN + KEY_LEN].copy_from_slice(client_dec_key);
|
||||
nonce[SKIP_LEN + KEY_LEN..SKIP_LEN + KEY_LEN + IV_LEN]
|
||||
.copy_from_slice(&client_dec_iv.to_be_bytes());
|
||||
let mut key_iv = Vec::with_capacity(KEY_LEN + IV_LEN);
|
||||
key_iv.extend_from_slice(client_enc_key);
|
||||
key_iv.extend_from_slice(&client_enc_iv.to_be_bytes());
|
||||
key_iv.reverse(); // Python/C behavior: reversed enc_key+enc_iv in nonce
|
||||
nonce[SKIP_LEN..SKIP_LEN + KEY_LEN + IV_LEN].copy_from_slice(&key_iv);
|
||||
}
|
||||
|
||||
// Now compute what keys WE will use for TG connection
|
||||
// enc_key_iv = nonce[8:56] (for encrypting TO TG)
|
||||
// dec_key_iv = nonce[8:56] reversed (for decrypting FROM TG)
|
||||
|
||||
let enc_key_iv = &nonce[SKIP_LEN..SKIP_LEN + KEY_LEN + IV_LEN];
|
||||
let dec_key_iv: Vec<u8> = enc_key_iv.iter().rev().copied().collect();
|
||||
|
||||
|
||||
let tg_enc_key: [u8; 32] = enc_key_iv[..KEY_LEN].try_into().unwrap();
|
||||
let tg_enc_iv = u128::from_be_bytes(enc_key_iv[KEY_LEN..].try_into().unwrap());
|
||||
|
||||
|
||||
let tg_dec_key: [u8; 32] = dec_key_iv[..KEY_LEN].try_into().unwrap();
|
||||
let tg_dec_iv = u128::from_be_bytes(dec_key_iv[KEY_LEN..].try_into().unwrap());
|
||||
|
||||
debug!(
|
||||
fast_mode = fast_mode,
|
||||
tg_enc_key = %hex::encode(&tg_enc_key[..8]),
|
||||
tg_dec_key = %hex::encode(&tg_dec_key[..8]),
|
||||
"Generated TG nonce"
|
||||
);
|
||||
|
||||
|
||||
return (nonce, tg_enc_key, tg_enc_iv, tg_dec_key, tg_dec_iv);
|
||||
}
|
||||
}
|
||||
|
||||
/// Encrypt nonce for sending to Telegram
|
||||
///
|
||||
/// Only the part from PROTO_TAG_POS onwards is encrypted.
|
||||
/// The encryption key is derived from enc_key_iv in the nonce itself.
|
||||
pub fn encrypt_tg_nonce(nonce: &[u8; HANDSHAKE_LEN]) -> Vec<u8> {
|
||||
// enc_key_iv is at nonce[8:56]
|
||||
/// Encrypt nonce for sending to Telegram and return cipher objects with correct counter state
|
||||
pub fn encrypt_tg_nonce_with_ciphers(nonce: &[u8; HANDSHAKE_LEN]) -> (Vec<u8>, AesCtr, AesCtr) {
|
||||
let enc_key_iv = &nonce[SKIP_LEN..SKIP_LEN + KEY_LEN + IV_LEN];
|
||||
|
||||
// Key for encrypting is just the first 32 bytes of enc_key_iv
|
||||
let key: [u8; 32] = enc_key_iv[..KEY_LEN].try_into().unwrap();
|
||||
let iv = u128::from_be_bytes(enc_key_iv[KEY_LEN..].try_into().unwrap());
|
||||
|
||||
let mut encryptor = AesCtr::new(&key, iv);
|
||||
|
||||
// Encrypt the entire nonce first, then take only the encrypted tail
|
||||
let encrypted_full = encryptor.encrypt(nonce);
|
||||
|
||||
// Result: unencrypted head + encrypted tail
|
||||
let dec_key_iv: Vec<u8> = enc_key_iv.iter().rev().copied().collect();
|
||||
|
||||
let enc_key: [u8; 32] = enc_key_iv[..KEY_LEN].try_into().unwrap();
|
||||
let enc_iv = u128::from_be_bytes(enc_key_iv[KEY_LEN..].try_into().unwrap());
|
||||
|
||||
let dec_key: [u8; 32] = dec_key_iv[..KEY_LEN].try_into().unwrap();
|
||||
let dec_iv = u128::from_be_bytes(dec_key_iv[KEY_LEN..].try_into().unwrap());
|
||||
|
||||
let mut encryptor = AesCtr::new(&enc_key, enc_iv);
|
||||
let encrypted_full = encryptor.encrypt(nonce); // counter: 0 → 4
|
||||
|
||||
let mut result = nonce[..PROTO_TAG_POS].to_vec();
|
||||
result.extend_from_slice(&encrypted_full[PROTO_TAG_POS..]);
|
||||
|
||||
trace!(
|
||||
original = %hex::encode(&nonce[PROTO_TAG_POS..]),
|
||||
encrypted = %hex::encode(&result[PROTO_TAG_POS..]),
|
||||
"Encrypted nonce tail"
|
||||
);
|
||||
|
||||
result
|
||||
|
||||
let decryptor = AesCtr::new(&dec_key, dec_iv);
|
||||
|
||||
(result, encryptor, decryptor)
|
||||
}
|
||||
|
||||
/// Encrypt nonce for sending to Telegram (legacy function for compatibility)
|
||||
pub fn encrypt_tg_nonce(nonce: &[u8; HANDSHAKE_LEN]) -> Vec<u8> {
|
||||
let (encrypted, _, _) = encrypt_tg_nonce_with_ciphers(nonce);
|
||||
encrypted
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
|
||||
#[test]
|
||||
fn test_generate_tg_nonce() {
|
||||
let client_dec_key = [0x42u8; 32];
|
||||
let client_dec_iv = 12345u128;
|
||||
|
||||
let (nonce, tg_enc_key, tg_enc_iv, tg_dec_key, tg_dec_iv) =
|
||||
generate_tg_nonce(ProtoTag::Secure, &client_dec_key, client_dec_iv, false);
|
||||
|
||||
// Check length
|
||||
let client_enc_key = [0x24u8; 32];
|
||||
let client_enc_iv = 54321u128;
|
||||
|
||||
let rng = SecureRandom::new();
|
||||
let (nonce, _tg_enc_key, _tg_enc_iv, _tg_dec_key, _tg_dec_iv) =
|
||||
generate_tg_nonce(
|
||||
ProtoTag::Secure,
|
||||
2,
|
||||
&client_dec_key,
|
||||
client_dec_iv,
|
||||
&client_enc_key,
|
||||
client_enc_iv,
|
||||
&rng,
|
||||
false,
|
||||
);
|
||||
|
||||
assert_eq!(nonce.len(), HANDSHAKE_LEN);
|
||||
|
||||
// Check proto tag is set
|
||||
|
||||
let tag_bytes: [u8; 4] = nonce[PROTO_TAG_POS..PROTO_TAG_POS + 4].try_into().unwrap();
|
||||
assert_eq!(ProtoTag::from_bytes(tag_bytes), Some(ProtoTag::Secure));
|
||||
}
|
||||
|
||||
|
||||
#[test]
|
||||
fn test_encrypt_tg_nonce() {
|
||||
let client_dec_key = [0x42u8; 32];
|
||||
let client_dec_iv = 12345u128;
|
||||
|
||||
let client_enc_key = [0x24u8; 32];
|
||||
let client_enc_iv = 54321u128;
|
||||
|
||||
let rng = SecureRandom::new();
|
||||
let (nonce, _, _, _, _) =
|
||||
generate_tg_nonce(ProtoTag::Secure, &client_dec_key, client_dec_iv, false);
|
||||
|
||||
generate_tg_nonce(
|
||||
ProtoTag::Secure,
|
||||
2,
|
||||
&client_dec_key,
|
||||
client_dec_iv,
|
||||
&client_enc_key,
|
||||
client_enc_iv,
|
||||
&rng,
|
||||
false,
|
||||
);
|
||||
|
||||
let encrypted = encrypt_tg_nonce(&nonce);
|
||||
|
||||
|
||||
assert_eq!(encrypted.len(), HANDSHAKE_LEN);
|
||||
|
||||
// First PROTO_TAG_POS bytes should be unchanged
|
||||
assert_eq!(&encrypted[..PROTO_TAG_POS], &nonce[..PROTO_TAG_POS]);
|
||||
|
||||
// Rest should be different (encrypted)
|
||||
assert_ne!(&encrypted[PROTO_TAG_POS..], &nonce[PROTO_TAG_POS..]);
|
||||
}
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_handshake_success_zeroize_on_drop() {
|
||||
let success = HandshakeSuccess {
|
||||
user: "test".to_string(),
|
||||
dc_idx: 2,
|
||||
proto_tag: ProtoTag::Secure,
|
||||
dec_key: [0xAA; 32],
|
||||
dec_iv: 0xBBBBBBBB,
|
||||
enc_key: [0xCC; 32],
|
||||
enc_iv: 0xDDDDDDDD,
|
||||
peer: "127.0.0.1:1234".parse().unwrap(),
|
||||
is_tls: true,
|
||||
};
|
||||
|
||||
assert_eq!(success.dec_key, [0xAA; 32]);
|
||||
assert_eq!(success.enc_key, [0xCC; 32]);
|
||||
|
||||
drop(success);
|
||||
// Drop impl zeroizes key material without panic
|
||||
}
|
||||
}
|
||||
|
||||
@@ -1,72 +1,214 @@
|
||||
//! Masking - forward unrecognized traffic to mask host
|
||||
|
||||
use std::str;
|
||||
use std::net::SocketAddr;
|
||||
use std::time::Duration;
|
||||
use tokio::net::TcpStream;
|
||||
use tokio::io::{AsyncReadExt, AsyncWriteExt};
|
||||
#[cfg(unix)]
|
||||
use tokio::net::UnixStream;
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncReadExt, AsyncWriteExt};
|
||||
use tokio::time::timeout;
|
||||
use tracing::debug;
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::transport::set_linger_zero;
|
||||
use crate::network::dns_overrides::resolve_socket_addr;
|
||||
use crate::stats::beobachten::BeobachtenStore;
|
||||
use crate::transport::proxy_protocol::{ProxyProtocolV1Builder, ProxyProtocolV2Builder};
|
||||
|
||||
const MASK_TIMEOUT: Duration = Duration::from_secs(5);
|
||||
/// Maximum duration for the entire masking relay.
|
||||
/// Limits resource consumption from slow-loris attacks and port scanners.
|
||||
const MASK_RELAY_TIMEOUT: Duration = Duration::from_secs(60);
|
||||
const MASK_BUFFER_SIZE: usize = 8192;
|
||||
|
||||
/// Detect client type based on initial data
|
||||
fn detect_client_type(data: &[u8]) -> &'static str {
|
||||
// Check for HTTP request
|
||||
if data.len() > 4
|
||||
&& (data.starts_with(b"GET ") || data.starts_with(b"POST") ||
|
||||
data.starts_with(b"HEAD") || data.starts_with(b"PUT ") ||
|
||||
data.starts_with(b"DELETE") || data.starts_with(b"OPTIONS"))
|
||||
{
|
||||
return "HTTP";
|
||||
}
|
||||
|
||||
// Check for TLS ClientHello (0x16 = handshake, 0x03 0x01-0x03 = TLS version)
|
||||
if data.len() > 3 && data[0] == 0x16 && data[1] == 0x03 {
|
||||
return "TLS-scanner";
|
||||
}
|
||||
|
||||
// Check for SSH
|
||||
if data.starts_with(b"SSH-") {
|
||||
return "SSH";
|
||||
}
|
||||
|
||||
// Port scanner (very short data)
|
||||
if data.len() < 10 {
|
||||
return "port-scanner";
|
||||
}
|
||||
|
||||
"unknown"
|
||||
}
|
||||
|
||||
/// Handle a bad client by forwarding to mask host
|
||||
pub async fn handle_bad_client(
|
||||
client: TcpStream,
|
||||
pub async fn handle_bad_client<R, W>(
|
||||
reader: R,
|
||||
writer: W,
|
||||
initial_data: &[u8],
|
||||
peer: SocketAddr,
|
||||
local_addr: SocketAddr,
|
||||
config: &ProxyConfig,
|
||||
) {
|
||||
if !config.mask {
|
||||
beobachten: &BeobachtenStore,
|
||||
)
|
||||
where
|
||||
R: AsyncRead + Unpin + Send + 'static,
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let client_type = detect_client_type(initial_data);
|
||||
if config.general.beobachten {
|
||||
let ttl = Duration::from_secs(config.general.beobachten_minutes.saturating_mul(60));
|
||||
beobachten.record(client_type, peer.ip(), ttl);
|
||||
}
|
||||
|
||||
if !config.censorship.mask {
|
||||
// Masking disabled, just consume data
|
||||
consume_client_data(client).await;
|
||||
consume_client_data(reader).await;
|
||||
return;
|
||||
}
|
||||
|
||||
let mask_host = config.mask_host.as_deref()
|
||||
.unwrap_or(&config.tls_domain);
|
||||
let mask_port = config.mask_port;
|
||||
|
||||
|
||||
// Connect via Unix socket or TCP
|
||||
#[cfg(unix)]
|
||||
if let Some(ref sock_path) = config.censorship.mask_unix_sock {
|
||||
debug!(
|
||||
client_type = client_type,
|
||||
sock = %sock_path,
|
||||
data_len = initial_data.len(),
|
||||
"Forwarding bad client to mask unix socket"
|
||||
);
|
||||
|
||||
let connect_result = timeout(MASK_TIMEOUT, UnixStream::connect(sock_path)).await;
|
||||
match connect_result {
|
||||
Ok(Ok(stream)) => {
|
||||
let (mask_read, mut mask_write) = stream.into_split();
|
||||
let proxy_header: Option<Vec<u8>> = match config.censorship.mask_proxy_protocol {
|
||||
0 => None,
|
||||
version => {
|
||||
let header = match version {
|
||||
2 => ProxyProtocolV2Builder::new().with_addrs(peer, local_addr).build(),
|
||||
_ => match (peer, local_addr) {
|
||||
(SocketAddr::V4(src), SocketAddr::V4(dst)) =>
|
||||
ProxyProtocolV1Builder::new().tcp4(src.into(), dst.into()).build(),
|
||||
(SocketAddr::V6(src), SocketAddr::V6(dst)) =>
|
||||
ProxyProtocolV1Builder::new().tcp6(src.into(), dst.into()).build(),
|
||||
_ =>
|
||||
ProxyProtocolV1Builder::new().build(),
|
||||
},
|
||||
};
|
||||
Some(header)
|
||||
}
|
||||
};
|
||||
if let Some(header) = proxy_header {
|
||||
if mask_write.write_all(&header).await.is_err() {
|
||||
return;
|
||||
}
|
||||
}
|
||||
if timeout(MASK_RELAY_TIMEOUT, relay_to_mask(reader, writer, mask_read, mask_write, initial_data)).await.is_err() {
|
||||
debug!("Mask relay timed out (unix socket)");
|
||||
}
|
||||
}
|
||||
Ok(Err(e)) => {
|
||||
debug!(error = %e, "Failed to connect to mask unix socket");
|
||||
consume_client_data(reader).await;
|
||||
}
|
||||
Err(_) => {
|
||||
debug!("Timeout connecting to mask unix socket");
|
||||
consume_client_data(reader).await;
|
||||
}
|
||||
}
|
||||
return;
|
||||
}
|
||||
|
||||
let mask_host = config.censorship.mask_host.as_deref()
|
||||
.unwrap_or(&config.censorship.tls_domain);
|
||||
let mask_port = config.censorship.mask_port;
|
||||
|
||||
debug!(
|
||||
client_type = client_type,
|
||||
host = %mask_host,
|
||||
port = mask_port,
|
||||
data_len = initial_data.len(),
|
||||
"Forwarding bad client to mask host"
|
||||
);
|
||||
|
||||
// Connect to mask host
|
||||
let mask_addr = format!("{}:{}", mask_host, mask_port);
|
||||
let connect_result = timeout(
|
||||
MASK_TIMEOUT,
|
||||
TcpStream::connect(&mask_addr)
|
||||
).await;
|
||||
|
||||
let mut mask_stream = match connect_result {
|
||||
Ok(Ok(s)) => s,
|
||||
|
||||
// Apply runtime DNS override for mask target when configured.
|
||||
let mask_addr = resolve_socket_addr(mask_host, mask_port)
|
||||
.map(|addr| addr.to_string())
|
||||
.unwrap_or_else(|| format!("{}:{}", mask_host, mask_port));
|
||||
let connect_result = timeout(MASK_TIMEOUT, TcpStream::connect(&mask_addr)).await;
|
||||
match connect_result {
|
||||
Ok(Ok(stream)) => {
|
||||
let proxy_header: Option<Vec<u8>> = match config.censorship.mask_proxy_protocol {
|
||||
0 => None,
|
||||
version => {
|
||||
let header = match version {
|
||||
2 => ProxyProtocolV2Builder::new().with_addrs(peer, local_addr).build(),
|
||||
_ => match (peer, local_addr) {
|
||||
(SocketAddr::V4(src), SocketAddr::V4(dst)) =>
|
||||
ProxyProtocolV1Builder::new().tcp4(src.into(), dst.into()).build(),
|
||||
(SocketAddr::V6(src), SocketAddr::V6(dst)) =>
|
||||
ProxyProtocolV1Builder::new().tcp6(src.into(), dst.into()).build(),
|
||||
_ =>
|
||||
ProxyProtocolV1Builder::new().build(),
|
||||
},
|
||||
};
|
||||
Some(header)
|
||||
}
|
||||
};
|
||||
|
||||
let (mask_read, mut mask_write) = stream.into_split();
|
||||
if let Some(header) = proxy_header {
|
||||
if mask_write.write_all(&header).await.is_err() {
|
||||
return;
|
||||
}
|
||||
}
|
||||
if timeout(MASK_RELAY_TIMEOUT, relay_to_mask(reader, writer, mask_read, mask_write, initial_data)).await.is_err() {
|
||||
debug!("Mask relay timed out");
|
||||
}
|
||||
}
|
||||
Ok(Err(e)) => {
|
||||
debug!(error = %e, "Failed to connect to mask host");
|
||||
consume_client_data(client).await;
|
||||
return;
|
||||
consume_client_data(reader).await;
|
||||
}
|
||||
Err(_) => {
|
||||
debug!("Timeout connecting to mask host");
|
||||
consume_client_data(client).await;
|
||||
return;
|
||||
consume_client_data(reader).await;
|
||||
}
|
||||
};
|
||||
|
||||
}
|
||||
}
|
||||
|
||||
/// Relay traffic between client and mask backend
|
||||
async fn relay_to_mask<R, W, MR, MW>(
|
||||
mut reader: R,
|
||||
mut writer: W,
|
||||
mut mask_read: MR,
|
||||
mut mask_write: MW,
|
||||
initial_data: &[u8],
|
||||
)
|
||||
where
|
||||
R: AsyncRead + Unpin + Send + 'static,
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
MR: AsyncRead + Unpin + Send + 'static,
|
||||
MW: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
// Send initial data to mask host
|
||||
if mask_stream.write_all(initial_data).await.is_err() {
|
||||
if mask_write.write_all(initial_data).await.is_err() {
|
||||
return;
|
||||
}
|
||||
|
||||
|
||||
// Relay traffic
|
||||
let (mut client_read, mut client_write) = client.into_split();
|
||||
let (mut mask_read, mut mask_write) = mask_stream.into_split();
|
||||
|
||||
let c2m = tokio::spawn(async move {
|
||||
let mut buf = vec![0u8; MASK_BUFFER_SIZE];
|
||||
loop {
|
||||
match client_read.read(&mut buf).await {
|
||||
match reader.read(&mut buf).await {
|
||||
Ok(0) | Err(_) => {
|
||||
let _ = mask_write.shutdown().await;
|
||||
break;
|
||||
@@ -79,24 +221,24 @@ pub async fn handle_bad_client(
|
||||
}
|
||||
}
|
||||
});
|
||||
|
||||
|
||||
let m2c = tokio::spawn(async move {
|
||||
let mut buf = vec![0u8; MASK_BUFFER_SIZE];
|
||||
loop {
|
||||
match mask_read.read(&mut buf).await {
|
||||
Ok(0) | Err(_) => {
|
||||
let _ = client_write.shutdown().await;
|
||||
let _ = writer.shutdown().await;
|
||||
break;
|
||||
}
|
||||
Ok(n) => {
|
||||
if client_write.write_all(&buf[..n]).await.is_err() {
|
||||
if writer.write_all(&buf[..n]).await.is_err() {
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
});
|
||||
|
||||
|
||||
// Wait for either to complete
|
||||
tokio::select! {
|
||||
_ = c2m => {}
|
||||
@@ -105,11 +247,11 @@ pub async fn handle_bad_client(
|
||||
}
|
||||
|
||||
/// Just consume all data from client without responding
|
||||
async fn consume_client_data(mut client: TcpStream) {
|
||||
async fn consume_client_data<R: AsyncRead + Unpin>(mut reader: R) {
|
||||
let mut buf = vec![0u8; MASK_BUFFER_SIZE];
|
||||
while let Ok(n) = client.read(&mut buf).await {
|
||||
while let Ok(n) = reader.read(&mut buf).await {
|
||||
if n == 0 {
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
776
src/proxy/middle_relay.rs
Normal file
776
src/proxy/middle_relay.rs
Normal file
@@ -0,0 +1,776 @@
|
||||
use std::collections::HashMap;
|
||||
use std::collections::hash_map::DefaultHasher;
|
||||
use std::hash::{Hash, Hasher};
|
||||
use std::net::{IpAddr, SocketAddr};
|
||||
use std::sync::atomic::{AtomicU64, Ordering};
|
||||
use std::sync::{Arc, Mutex, OnceLock};
|
||||
use std::time::{Duration, Instant};
|
||||
|
||||
use tokio::io::{AsyncRead, AsyncReadExt, AsyncWrite, AsyncWriteExt};
|
||||
use tokio::sync::{mpsc, oneshot};
|
||||
use tracing::{debug, info, trace, warn};
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::protocol::constants::{*, secure_padding_len};
|
||||
use crate::proxy::handshake::HandshakeSuccess;
|
||||
use crate::stats::Stats;
|
||||
use crate::stream::{BufferPool, CryptoReader, CryptoWriter};
|
||||
use crate::transport::middle_proxy::{MePool, MeResponse, proto_flags_for_tag};
|
||||
|
||||
enum C2MeCommand {
|
||||
Data { payload: Vec<u8>, flags: u32 },
|
||||
Close,
|
||||
}
|
||||
|
||||
const DESYNC_DEDUP_WINDOW: Duration = Duration::from_secs(60);
|
||||
const DESYNC_ERROR_CLASS: &str = "frame_too_large_crypto_desync";
|
||||
const C2ME_CHANNEL_CAPACITY: usize = 1024;
|
||||
const C2ME_SOFT_PRESSURE_MIN_FREE_SLOTS: usize = 64;
|
||||
const C2ME_SENDER_FAIRNESS_BUDGET: usize = 32;
|
||||
static DESYNC_DEDUP: OnceLock<Mutex<HashMap<u64, Instant>>> = OnceLock::new();
|
||||
|
||||
struct RelayForensicsState {
|
||||
trace_id: u64,
|
||||
conn_id: u64,
|
||||
user: String,
|
||||
peer: SocketAddr,
|
||||
peer_hash: u64,
|
||||
started_at: Instant,
|
||||
bytes_c2me: u64,
|
||||
bytes_me2c: Arc<AtomicU64>,
|
||||
desync_all_full: bool,
|
||||
}
|
||||
|
||||
fn hash_value<T: Hash>(value: &T) -> u64 {
|
||||
let mut hasher = DefaultHasher::new();
|
||||
value.hash(&mut hasher);
|
||||
hasher.finish()
|
||||
}
|
||||
|
||||
fn hash_ip(ip: IpAddr) -> u64 {
|
||||
hash_value(&ip)
|
||||
}
|
||||
|
||||
fn should_emit_full_desync(key: u64, all_full: bool, now: Instant) -> bool {
|
||||
if all_full {
|
||||
return true;
|
||||
}
|
||||
|
||||
let dedup = DESYNC_DEDUP.get_or_init(|| Mutex::new(HashMap::new()));
|
||||
let mut guard = dedup.lock().expect("desync dedup mutex poisoned");
|
||||
guard.retain(|_, seen_at| now.duration_since(*seen_at) < DESYNC_DEDUP_WINDOW);
|
||||
|
||||
match guard.get_mut(&key) {
|
||||
Some(seen_at) => {
|
||||
if now.duration_since(*seen_at) >= DESYNC_DEDUP_WINDOW {
|
||||
*seen_at = now;
|
||||
true
|
||||
} else {
|
||||
false
|
||||
}
|
||||
}
|
||||
None => {
|
||||
guard.insert(key, now);
|
||||
true
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
fn report_desync_frame_too_large(
|
||||
state: &RelayForensicsState,
|
||||
proto_tag: ProtoTag,
|
||||
frame_counter: u64,
|
||||
max_frame: usize,
|
||||
len: usize,
|
||||
raw_len_bytes: Option<[u8; 4]>,
|
||||
stats: &Stats,
|
||||
) -> ProxyError {
|
||||
let len_buf = raw_len_bytes.unwrap_or((len as u32).to_le_bytes());
|
||||
let looks_like_tls = raw_len_bytes
|
||||
.map(|b| b[0] == 0x16 && b[1] == 0x03)
|
||||
.unwrap_or(false);
|
||||
let looks_like_http = raw_len_bytes
|
||||
.map(|b| matches!(b[0], b'G' | b'P' | b'H' | b'C' | b'D'))
|
||||
.unwrap_or(false);
|
||||
let now = Instant::now();
|
||||
let dedup_key = hash_value(&(
|
||||
state.user.as_str(),
|
||||
state.peer_hash,
|
||||
proto_tag,
|
||||
DESYNC_ERROR_CLASS,
|
||||
));
|
||||
let emit_full = should_emit_full_desync(dedup_key, state.desync_all_full, now);
|
||||
let duration_ms = state.started_at.elapsed().as_millis() as u64;
|
||||
let bytes_me2c = state.bytes_me2c.load(Ordering::Relaxed);
|
||||
|
||||
stats.increment_desync_total();
|
||||
stats.observe_desync_frames_ok(frame_counter);
|
||||
if emit_full {
|
||||
stats.increment_desync_full_logged();
|
||||
warn!(
|
||||
trace_id = format_args!("0x{:016x}", state.trace_id),
|
||||
conn_id = state.conn_id,
|
||||
user = %state.user,
|
||||
peer_hash = format_args!("0x{:016x}", state.peer_hash),
|
||||
proto = ?proto_tag,
|
||||
mode = "middle_proxy",
|
||||
is_tls = true,
|
||||
duration_ms,
|
||||
bytes_c2me = state.bytes_c2me,
|
||||
bytes_me2c,
|
||||
raw_len = len,
|
||||
raw_len_hex = format_args!("0x{:08x}", len),
|
||||
raw_bytes = format_args!(
|
||||
"{:02x} {:02x} {:02x} {:02x}",
|
||||
len_buf[0], len_buf[1], len_buf[2], len_buf[3]
|
||||
),
|
||||
max_frame,
|
||||
tls_like = looks_like_tls,
|
||||
http_like = looks_like_http,
|
||||
frames_ok = frame_counter,
|
||||
dedup_window_secs = DESYNC_DEDUP_WINDOW.as_secs(),
|
||||
desync_all_full = state.desync_all_full,
|
||||
full_reason = if state.desync_all_full { "desync_all_full" } else { "first_in_dedup_window" },
|
||||
error_class = DESYNC_ERROR_CLASS,
|
||||
"Frame too large — crypto desync forensics"
|
||||
);
|
||||
debug!(
|
||||
trace_id = format_args!("0x{:016x}", state.trace_id),
|
||||
conn_id = state.conn_id,
|
||||
user = %state.user,
|
||||
peer = %state.peer,
|
||||
"Frame too large forensic peer detail"
|
||||
);
|
||||
} else {
|
||||
stats.increment_desync_suppressed();
|
||||
debug!(
|
||||
trace_id = format_args!("0x{:016x}", state.trace_id),
|
||||
conn_id = state.conn_id,
|
||||
user = %state.user,
|
||||
peer_hash = format_args!("0x{:016x}", state.peer_hash),
|
||||
proto = ?proto_tag,
|
||||
duration_ms,
|
||||
bytes_c2me = state.bytes_c2me,
|
||||
bytes_me2c,
|
||||
raw_len = len,
|
||||
frames_ok = frame_counter,
|
||||
dedup_window_secs = DESYNC_DEDUP_WINDOW.as_secs(),
|
||||
error_class = DESYNC_ERROR_CLASS,
|
||||
"Frame too large — crypto desync forensic suppressed"
|
||||
);
|
||||
}
|
||||
|
||||
ProxyError::Proxy(format!(
|
||||
"Frame too large: {len} (max {max_frame}), frames_ok={frame_counter}, conn_id={}, trace_id=0x{:016x}",
|
||||
state.conn_id,
|
||||
state.trace_id
|
||||
))
|
||||
}
|
||||
|
||||
fn should_yield_c2me_sender(sent_since_yield: usize, has_backlog: bool) -> bool {
|
||||
has_backlog && sent_since_yield >= C2ME_SENDER_FAIRNESS_BUDGET
|
||||
}
|
||||
|
||||
async fn enqueue_c2me_command(
|
||||
tx: &mpsc::Sender<C2MeCommand>,
|
||||
cmd: C2MeCommand,
|
||||
) -> std::result::Result<(), mpsc::error::SendError<C2MeCommand>> {
|
||||
match tx.try_send(cmd) {
|
||||
Ok(()) => Ok(()),
|
||||
Err(mpsc::error::TrySendError::Closed(cmd)) => Err(mpsc::error::SendError(cmd)),
|
||||
Err(mpsc::error::TrySendError::Full(cmd)) => {
|
||||
// Cooperative yield reduces burst catch-up when the per-conn queue is near saturation.
|
||||
if tx.capacity() <= C2ME_SOFT_PRESSURE_MIN_FREE_SLOTS {
|
||||
tokio::task::yield_now().await;
|
||||
}
|
||||
tx.send(cmd).await
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) async fn handle_via_middle_proxy<R, W>(
|
||||
mut crypto_reader: CryptoReader<R>,
|
||||
crypto_writer: CryptoWriter<W>,
|
||||
success: HandshakeSuccess,
|
||||
me_pool: Arc<MePool>,
|
||||
stats: Arc<Stats>,
|
||||
config: Arc<ProxyConfig>,
|
||||
_buffer_pool: Arc<BufferPool>,
|
||||
local_addr: SocketAddr,
|
||||
rng: Arc<SecureRandom>,
|
||||
) -> Result<()>
|
||||
where
|
||||
R: AsyncRead + Unpin + Send + 'static,
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let user = success.user.clone();
|
||||
let peer = success.peer;
|
||||
let proto_tag = success.proto_tag;
|
||||
let pool_generation = me_pool.current_generation();
|
||||
|
||||
info!(
|
||||
user = %user,
|
||||
peer = %peer,
|
||||
dc = success.dc_idx,
|
||||
proto = ?proto_tag,
|
||||
mode = "middle_proxy",
|
||||
pool_generation,
|
||||
"Routing via Middle-End"
|
||||
);
|
||||
|
||||
let (conn_id, me_rx) = me_pool.registry().register().await;
|
||||
let trace_id = conn_id;
|
||||
let bytes_me2c = Arc::new(AtomicU64::new(0));
|
||||
let mut forensics = RelayForensicsState {
|
||||
trace_id,
|
||||
conn_id,
|
||||
user: user.clone(),
|
||||
peer,
|
||||
peer_hash: hash_ip(peer.ip()),
|
||||
started_at: Instant::now(),
|
||||
bytes_c2me: 0,
|
||||
bytes_me2c: bytes_me2c.clone(),
|
||||
desync_all_full: config.general.desync_all_full,
|
||||
};
|
||||
|
||||
stats.increment_user_connects(&user);
|
||||
stats.increment_user_curr_connects(&user);
|
||||
|
||||
// Per-user ad_tag from access.user_ad_tags; fallback to general.ad_tag (hot-reloadable)
|
||||
let user_tag: Option<Vec<u8>> = config
|
||||
.access
|
||||
.user_ad_tags
|
||||
.get(&user)
|
||||
.and_then(|s| hex::decode(s).ok())
|
||||
.filter(|v| v.len() == 16);
|
||||
let global_tag: Option<Vec<u8>> = config
|
||||
.general
|
||||
.ad_tag
|
||||
.as_ref()
|
||||
.and_then(|s| hex::decode(s).ok())
|
||||
.filter(|v| v.len() == 16);
|
||||
let effective_tag = user_tag.or(global_tag);
|
||||
|
||||
let proto_flags = proto_flags_for_tag(proto_tag, effective_tag.is_some());
|
||||
debug!(
|
||||
trace_id = format_args!("0x{:016x}", trace_id),
|
||||
user = %user,
|
||||
conn_id,
|
||||
peer_hash = format_args!("0x{:016x}", forensics.peer_hash),
|
||||
desync_all_full = forensics.desync_all_full,
|
||||
proto_flags = format_args!("0x{:08x}", proto_flags),
|
||||
pool_generation,
|
||||
"ME relay started"
|
||||
);
|
||||
|
||||
let translated_local_addr = me_pool.translate_our_addr(local_addr);
|
||||
|
||||
let frame_limit = config.general.max_client_frame;
|
||||
|
||||
let (c2me_tx, mut c2me_rx) = mpsc::channel::<C2MeCommand>(C2ME_CHANNEL_CAPACITY);
|
||||
let me_pool_c2me = me_pool.clone();
|
||||
let effective_tag = effective_tag;
|
||||
let c2me_sender = tokio::spawn(async move {
|
||||
let mut sent_since_yield = 0usize;
|
||||
while let Some(cmd) = c2me_rx.recv().await {
|
||||
match cmd {
|
||||
C2MeCommand::Data { payload, flags } => {
|
||||
me_pool_c2me.send_proxy_req(
|
||||
conn_id,
|
||||
success.dc_idx,
|
||||
peer,
|
||||
translated_local_addr,
|
||||
&payload,
|
||||
flags,
|
||||
effective_tag.as_deref(),
|
||||
).await?;
|
||||
sent_since_yield = sent_since_yield.saturating_add(1);
|
||||
if should_yield_c2me_sender(sent_since_yield, !c2me_rx.is_empty()) {
|
||||
sent_since_yield = 0;
|
||||
tokio::task::yield_now().await;
|
||||
}
|
||||
}
|
||||
C2MeCommand::Close => {
|
||||
let _ = me_pool_c2me.send_close(conn_id).await;
|
||||
return Ok(());
|
||||
}
|
||||
}
|
||||
}
|
||||
Ok(())
|
||||
});
|
||||
|
||||
let (stop_tx, mut stop_rx) = oneshot::channel::<()>();
|
||||
let mut me_rx_task = me_rx;
|
||||
let stats_clone = stats.clone();
|
||||
let rng_clone = rng.clone();
|
||||
let user_clone = user.clone();
|
||||
let bytes_me2c_clone = bytes_me2c.clone();
|
||||
let me_writer = tokio::spawn(async move {
|
||||
let mut writer = crypto_writer;
|
||||
let mut frame_buf = Vec::with_capacity(16 * 1024);
|
||||
loop {
|
||||
tokio::select! {
|
||||
msg = me_rx_task.recv() => {
|
||||
match msg {
|
||||
Some(MeResponse::Data { flags, data }) => {
|
||||
trace!(conn_id, bytes = data.len(), flags, "ME->C data");
|
||||
bytes_me2c_clone.fetch_add(data.len() as u64, Ordering::Relaxed);
|
||||
stats_clone.add_user_octets_to(&user_clone, data.len() as u64);
|
||||
write_client_payload(
|
||||
&mut writer,
|
||||
proto_tag,
|
||||
flags,
|
||||
&data,
|
||||
rng_clone.as_ref(),
|
||||
&mut frame_buf,
|
||||
)
|
||||
.await?;
|
||||
|
||||
// Drain all immediately queued ME responses and flush once.
|
||||
while let Ok(next) = me_rx_task.try_recv() {
|
||||
match next {
|
||||
MeResponse::Data { flags, data } => {
|
||||
trace!(conn_id, bytes = data.len(), flags, "ME->C data (batched)");
|
||||
bytes_me2c_clone.fetch_add(data.len() as u64, Ordering::Relaxed);
|
||||
stats_clone.add_user_octets_to(&user_clone, data.len() as u64);
|
||||
write_client_payload(
|
||||
&mut writer,
|
||||
proto_tag,
|
||||
flags,
|
||||
&data,
|
||||
rng_clone.as_ref(),
|
||||
&mut frame_buf,
|
||||
).await?;
|
||||
}
|
||||
MeResponse::Ack(confirm) => {
|
||||
trace!(conn_id, confirm, "ME->C quickack (batched)");
|
||||
write_client_ack(&mut writer, proto_tag, confirm).await?;
|
||||
}
|
||||
MeResponse::Close => {
|
||||
debug!(conn_id, "ME sent close (batched)");
|
||||
let _ = writer.flush().await;
|
||||
return Ok(());
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
writer.flush().await.map_err(ProxyError::Io)?;
|
||||
}
|
||||
Some(MeResponse::Ack(confirm)) => {
|
||||
trace!(conn_id, confirm, "ME->C quickack");
|
||||
write_client_ack(&mut writer, proto_tag, confirm).await?;
|
||||
}
|
||||
Some(MeResponse::Close) => {
|
||||
debug!(conn_id, "ME sent close");
|
||||
let _ = writer.flush().await;
|
||||
return Ok(());
|
||||
}
|
||||
None => {
|
||||
debug!(conn_id, "ME channel closed");
|
||||
return Err(ProxyError::Proxy("ME connection lost".into()));
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = &mut stop_rx => {
|
||||
debug!(conn_id, "ME writer stop signal");
|
||||
return Ok(());
|
||||
}
|
||||
}
|
||||
}
|
||||
});
|
||||
|
||||
let mut main_result: Result<()> = Ok(());
|
||||
let mut client_closed = false;
|
||||
let mut frame_counter: u64 = 0;
|
||||
loop {
|
||||
match read_client_payload(
|
||||
&mut crypto_reader,
|
||||
proto_tag,
|
||||
frame_limit,
|
||||
&forensics,
|
||||
&mut frame_counter,
|
||||
&stats,
|
||||
).await {
|
||||
Ok(Some((payload, quickack))) => {
|
||||
trace!(conn_id, bytes = payload.len(), "C->ME frame");
|
||||
forensics.bytes_c2me = forensics
|
||||
.bytes_c2me
|
||||
.saturating_add(payload.len() as u64);
|
||||
stats.add_user_octets_from(&user, payload.len() as u64);
|
||||
let mut flags = proto_flags;
|
||||
if quickack {
|
||||
flags |= RPC_FLAG_QUICKACK;
|
||||
}
|
||||
if payload.len() >= 8 && payload[..8].iter().all(|b| *b == 0) {
|
||||
flags |= RPC_FLAG_NOT_ENCRYPTED;
|
||||
}
|
||||
// Keep client read loop lightweight: route heavy ME send path via a dedicated task.
|
||||
if enqueue_c2me_command(&c2me_tx, C2MeCommand::Data { payload, flags })
|
||||
.await
|
||||
.is_err()
|
||||
{
|
||||
main_result = Err(ProxyError::Proxy("ME sender channel closed".into()));
|
||||
break;
|
||||
}
|
||||
}
|
||||
Ok(None) => {
|
||||
debug!(conn_id, "Client EOF");
|
||||
client_closed = true;
|
||||
let _ = enqueue_c2me_command(&c2me_tx, C2MeCommand::Close).await;
|
||||
break;
|
||||
}
|
||||
Err(e) => {
|
||||
main_result = Err(e);
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
drop(c2me_tx);
|
||||
let c2me_result = c2me_sender
|
||||
.await
|
||||
.unwrap_or_else(|e| Err(ProxyError::Proxy(format!("ME sender join error: {e}"))));
|
||||
|
||||
let _ = stop_tx.send(());
|
||||
let mut writer_result = me_writer
|
||||
.await
|
||||
.unwrap_or_else(|e| Err(ProxyError::Proxy(format!("ME writer join error: {e}"))));
|
||||
|
||||
// When client closes, but ME channel stopped as unregistered - it isnt error
|
||||
if client_closed
|
||||
&& matches!(
|
||||
writer_result,
|
||||
Err(ProxyError::Proxy(ref msg)) if msg == "ME connection lost"
|
||||
)
|
||||
{
|
||||
writer_result = Ok(());
|
||||
}
|
||||
|
||||
let result = match (main_result, c2me_result, writer_result) {
|
||||
(Ok(()), Ok(()), Ok(())) => Ok(()),
|
||||
(Err(e), _, _) => Err(e),
|
||||
(_, Err(e), _) => Err(e),
|
||||
(_, _, Err(e)) => Err(e),
|
||||
};
|
||||
|
||||
debug!(
|
||||
user = %user,
|
||||
conn_id,
|
||||
trace_id = format_args!("0x{:016x}", trace_id),
|
||||
duration_ms = forensics.started_at.elapsed().as_millis() as u64,
|
||||
bytes_c2me = forensics.bytes_c2me,
|
||||
bytes_me2c = forensics.bytes_me2c.load(Ordering::Relaxed),
|
||||
frames_ok = frame_counter,
|
||||
"ME relay cleanup"
|
||||
);
|
||||
me_pool.registry().unregister(conn_id).await;
|
||||
stats.decrement_user_curr_connects(&user);
|
||||
result
|
||||
}
|
||||
|
||||
async fn read_client_payload<R>(
|
||||
client_reader: &mut CryptoReader<R>,
|
||||
proto_tag: ProtoTag,
|
||||
max_frame: usize,
|
||||
forensics: &RelayForensicsState,
|
||||
frame_counter: &mut u64,
|
||||
stats: &Stats,
|
||||
) -> Result<Option<(Vec<u8>, bool)>>
|
||||
where
|
||||
R: AsyncRead + Unpin + Send + 'static,
|
||||
{
|
||||
loop {
|
||||
let (len, quickack, raw_len_bytes) = match proto_tag {
|
||||
ProtoTag::Abridged => {
|
||||
let mut first = [0u8; 1];
|
||||
match client_reader.read_exact(&mut first).await {
|
||||
Ok(_) => {}
|
||||
Err(e) if e.kind() == std::io::ErrorKind::UnexpectedEof => return Ok(None),
|
||||
Err(e) => return Err(ProxyError::Io(e)),
|
||||
}
|
||||
|
||||
let quickack = (first[0] & 0x80) != 0;
|
||||
let len_words = if (first[0] & 0x7f) == 0x7f {
|
||||
let mut ext = [0u8; 3];
|
||||
client_reader
|
||||
.read_exact(&mut ext)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
u32::from_le_bytes([ext[0], ext[1], ext[2], 0]) as usize
|
||||
} else {
|
||||
(first[0] & 0x7f) as usize
|
||||
};
|
||||
|
||||
let len = len_words
|
||||
.checked_mul(4)
|
||||
.ok_or_else(|| ProxyError::Proxy("Abridged frame length overflow".into()))?;
|
||||
(len, quickack, None)
|
||||
}
|
||||
ProtoTag::Intermediate | ProtoTag::Secure => {
|
||||
let mut len_buf = [0u8; 4];
|
||||
match client_reader.read_exact(&mut len_buf).await {
|
||||
Ok(_) => {}
|
||||
Err(e) if e.kind() == std::io::ErrorKind::UnexpectedEof => return Ok(None),
|
||||
Err(e) => return Err(ProxyError::Io(e)),
|
||||
}
|
||||
let quickack = (len_buf[3] & 0x80) != 0;
|
||||
(
|
||||
(u32::from_le_bytes(len_buf) & 0x7fff_ffff) as usize,
|
||||
quickack,
|
||||
Some(len_buf),
|
||||
)
|
||||
}
|
||||
};
|
||||
|
||||
if len == 0 {
|
||||
continue;
|
||||
}
|
||||
if len < 4 && proto_tag != ProtoTag::Abridged {
|
||||
warn!(
|
||||
trace_id = format_args!("0x{:016x}", forensics.trace_id),
|
||||
conn_id = forensics.conn_id,
|
||||
user = %forensics.user,
|
||||
len,
|
||||
proto = ?proto_tag,
|
||||
"Frame too small — corrupt or probe"
|
||||
);
|
||||
return Err(ProxyError::Proxy(format!("Frame too small: {len}")));
|
||||
}
|
||||
|
||||
if len > max_frame {
|
||||
return Err(report_desync_frame_too_large(
|
||||
forensics,
|
||||
proto_tag,
|
||||
*frame_counter,
|
||||
max_frame,
|
||||
len,
|
||||
raw_len_bytes,
|
||||
stats,
|
||||
));
|
||||
}
|
||||
|
||||
let secure_payload_len = if proto_tag == ProtoTag::Secure {
|
||||
match secure_payload_len_from_wire_len(len) {
|
||||
Some(payload_len) => payload_len,
|
||||
None => {
|
||||
stats.increment_secure_padding_invalid();
|
||||
return Err(ProxyError::Proxy(format!(
|
||||
"Invalid secure frame length: {len}"
|
||||
)));
|
||||
}
|
||||
}
|
||||
} else {
|
||||
len
|
||||
};
|
||||
|
||||
let mut payload = vec![0u8; len];
|
||||
client_reader
|
||||
.read_exact(&mut payload)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
|
||||
// Secure Intermediate: strip validated trailing padding bytes.
|
||||
if proto_tag == ProtoTag::Secure {
|
||||
payload.truncate(secure_payload_len);
|
||||
}
|
||||
*frame_counter += 1;
|
||||
return Ok(Some((payload, quickack)));
|
||||
}
|
||||
}
|
||||
|
||||
async fn write_client_payload<W>(
|
||||
client_writer: &mut CryptoWriter<W>,
|
||||
proto_tag: ProtoTag,
|
||||
flags: u32,
|
||||
data: &[u8],
|
||||
rng: &SecureRandom,
|
||||
frame_buf: &mut Vec<u8>,
|
||||
) -> Result<()>
|
||||
where
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let quickack = (flags & RPC_FLAG_QUICKACK) != 0;
|
||||
|
||||
match proto_tag {
|
||||
ProtoTag::Abridged => {
|
||||
if !data.len().is_multiple_of(4) {
|
||||
return Err(ProxyError::Proxy(format!(
|
||||
"Abridged payload must be 4-byte aligned, got {}",
|
||||
data.len()
|
||||
)));
|
||||
}
|
||||
|
||||
let len_words = data.len() / 4;
|
||||
if len_words < 0x7f {
|
||||
let mut first = len_words as u8;
|
||||
if quickack {
|
||||
first |= 0x80;
|
||||
}
|
||||
frame_buf.clear();
|
||||
frame_buf.reserve(1 + data.len());
|
||||
frame_buf.push(first);
|
||||
frame_buf.extend_from_slice(data);
|
||||
client_writer
|
||||
.write_all(frame_buf)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
} else if len_words < (1 << 24) {
|
||||
let mut first = 0x7fu8;
|
||||
if quickack {
|
||||
first |= 0x80;
|
||||
}
|
||||
let lw = (len_words as u32).to_le_bytes();
|
||||
frame_buf.clear();
|
||||
frame_buf.reserve(4 + data.len());
|
||||
frame_buf.extend_from_slice(&[first, lw[0], lw[1], lw[2]]);
|
||||
frame_buf.extend_from_slice(data);
|
||||
client_writer
|
||||
.write_all(frame_buf)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
} else {
|
||||
return Err(ProxyError::Proxy(format!(
|
||||
"Abridged frame too large: {}",
|
||||
data.len()
|
||||
)));
|
||||
}
|
||||
}
|
||||
ProtoTag::Intermediate | ProtoTag::Secure => {
|
||||
let padding_len = if proto_tag == ProtoTag::Secure {
|
||||
if !is_valid_secure_payload_len(data.len()) {
|
||||
return Err(ProxyError::Proxy(format!(
|
||||
"Secure payload must be 4-byte aligned, got {}",
|
||||
data.len()
|
||||
)));
|
||||
}
|
||||
secure_padding_len(data.len(), rng)
|
||||
} else {
|
||||
0
|
||||
};
|
||||
let mut len_val = (data.len() + padding_len) as u32;
|
||||
if quickack {
|
||||
len_val |= 0x8000_0000;
|
||||
}
|
||||
let total = 4 + data.len() + padding_len;
|
||||
frame_buf.clear();
|
||||
frame_buf.reserve(total);
|
||||
frame_buf.extend_from_slice(&len_val.to_le_bytes());
|
||||
frame_buf.extend_from_slice(data);
|
||||
if padding_len > 0 {
|
||||
let start = frame_buf.len();
|
||||
frame_buf.resize(start + padding_len, 0);
|
||||
rng.fill(&mut frame_buf[start..]);
|
||||
}
|
||||
client_writer
|
||||
.write_all(frame_buf)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
}
|
||||
}
|
||||
|
||||
Ok(())
|
||||
}
|
||||
|
||||
async fn write_client_ack<W>(
|
||||
client_writer: &mut CryptoWriter<W>,
|
||||
proto_tag: ProtoTag,
|
||||
confirm: u32,
|
||||
) -> Result<()>
|
||||
where
|
||||
W: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let bytes = if proto_tag == ProtoTag::Abridged {
|
||||
confirm.to_be_bytes()
|
||||
} else {
|
||||
confirm.to_le_bytes()
|
||||
};
|
||||
client_writer
|
||||
.write_all(&bytes)
|
||||
.await
|
||||
.map_err(ProxyError::Io)?;
|
||||
// ACK should remain low-latency.
|
||||
client_writer.flush().await.map_err(ProxyError::Io)
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
use tokio::time::{Duration as TokioDuration, timeout};
|
||||
|
||||
#[test]
|
||||
fn should_yield_sender_only_on_budget_with_backlog() {
|
||||
assert!(!should_yield_c2me_sender(0, true));
|
||||
assert!(!should_yield_c2me_sender(C2ME_SENDER_FAIRNESS_BUDGET - 1, true));
|
||||
assert!(!should_yield_c2me_sender(C2ME_SENDER_FAIRNESS_BUDGET, false));
|
||||
assert!(should_yield_c2me_sender(C2ME_SENDER_FAIRNESS_BUDGET, true));
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn enqueue_c2me_command_uses_try_send_fast_path() {
|
||||
let (tx, mut rx) = mpsc::channel::<C2MeCommand>(2);
|
||||
enqueue_c2me_command(
|
||||
&tx,
|
||||
C2MeCommand::Data {
|
||||
payload: vec![1, 2, 3],
|
||||
flags: 0,
|
||||
},
|
||||
)
|
||||
.await
|
||||
.unwrap();
|
||||
|
||||
let recv = timeout(TokioDuration::from_millis(50), rx.recv())
|
||||
.await
|
||||
.unwrap()
|
||||
.unwrap();
|
||||
match recv {
|
||||
C2MeCommand::Data { payload, flags } => {
|
||||
assert_eq!(payload, vec![1, 2, 3]);
|
||||
assert_eq!(flags, 0);
|
||||
}
|
||||
C2MeCommand::Close => panic!("unexpected close command"),
|
||||
}
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn enqueue_c2me_command_falls_back_to_send_when_queue_is_full() {
|
||||
let (tx, mut rx) = mpsc::channel::<C2MeCommand>(1);
|
||||
tx.send(C2MeCommand::Data {
|
||||
payload: vec![9],
|
||||
flags: 9,
|
||||
})
|
||||
.await
|
||||
.unwrap();
|
||||
|
||||
let tx2 = tx.clone();
|
||||
let producer = tokio::spawn(async move {
|
||||
enqueue_c2me_command(
|
||||
&tx2,
|
||||
C2MeCommand::Data {
|
||||
payload: vec![7, 7],
|
||||
flags: 7,
|
||||
},
|
||||
)
|
||||
.await
|
||||
.unwrap();
|
||||
});
|
||||
|
||||
let _ = timeout(TokioDuration::from_millis(100), rx.recv())
|
||||
.await
|
||||
.unwrap();
|
||||
producer.await.unwrap();
|
||||
|
||||
let recv = timeout(TokioDuration::from_millis(100), rx.recv())
|
||||
.await
|
||||
.unwrap()
|
||||
.unwrap();
|
||||
match recv {
|
||||
C2MeCommand::Data { payload, flags } => {
|
||||
assert_eq!(payload, vec![7, 7]);
|
||||
assert_eq!(flags, 7);
|
||||
}
|
||||
C2MeCommand::Close => panic!("unexpected close command"),
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -1,11 +1,16 @@
|
||||
//! Proxy Defs
|
||||
|
||||
pub mod handshake;
|
||||
pub mod client;
|
||||
pub mod relay;
|
||||
pub mod direct_relay;
|
||||
pub mod handshake;
|
||||
pub mod masking;
|
||||
pub mod middle_relay;
|
||||
pub mod relay;
|
||||
|
||||
pub use handshake::*;
|
||||
pub use client::ClientHandler;
|
||||
#[allow(unused_imports)]
|
||||
pub use handshake::*;
|
||||
#[allow(unused_imports)]
|
||||
pub use masking::*;
|
||||
#[allow(unused_imports)]
|
||||
pub use relay::*;
|
||||
pub use masking::*;
|
||||
@@ -1,22 +1,320 @@
|
||||
//! Bidirectional Relay
|
||||
//! Bidirectional Relay — poll-based, no head-of-line blocking
|
||||
//!
|
||||
//! ## What changed and why
|
||||
//!
|
||||
//! Previous implementation used a single-task `select! { biased; ... }` loop
|
||||
//! where each branch called `write_all()`. This caused head-of-line blocking:
|
||||
//! while `write_all()` waited for a slow writer (e.g. client on 3G downloading
|
||||
//! media), the entire loop was blocked — the other direction couldn't make progress.
|
||||
//!
|
||||
//! Symptoms observed in production:
|
||||
//! - Media loading at ~8 KB/s despite fast server connection
|
||||
//! - Stop-and-go pattern with 50–500ms gaps between chunks
|
||||
//! - `biased` select starving S→C direction
|
||||
//! - Some users unable to load media at all
|
||||
//!
|
||||
//! ## New architecture
|
||||
//!
|
||||
//! Uses `tokio::io::copy_bidirectional` which polls both directions concurrently
|
||||
//! in a single task via non-blocking `poll_read` / `poll_write` calls:
|
||||
//!
|
||||
//! Old (select! + write_all — BLOCKING):
|
||||
//!
|
||||
//! loop {
|
||||
//! select! {
|
||||
//! biased;
|
||||
//! data = client.read() => { server.write_all(data).await; } ← BLOCKS here
|
||||
//! data = server.read() => { client.write_all(data).await; } ← can't run
|
||||
//! }
|
||||
//! }
|
||||
//!
|
||||
//! New (copy_bidirectional — CONCURRENT):
|
||||
//!
|
||||
//! poll(cx) {
|
||||
//! // Both directions polled in the same poll cycle
|
||||
//! C→S: poll_read(client) → poll_write(server) // non-blocking
|
||||
//! S→C: poll_read(server) → poll_write(client) // non-blocking
|
||||
//! // If one writer is Pending, the other direction still progresses
|
||||
//! }
|
||||
//!
|
||||
//! Benefits:
|
||||
//! - No head-of-line blocking: slow client download doesn't block uploads
|
||||
//! - No biased starvation: fair polling of both directions
|
||||
//! - Proper flush: `copy_bidirectional` calls `poll_flush` when reader stalls,
|
||||
//! so CryptoWriter's pending ciphertext is always drained (fixes "stuck at 95%")
|
||||
//! - No deadlock risk: old write_all could deadlock when both TCP buffers filled;
|
||||
//! poll-based approach lets TCP flow control work correctly
|
||||
//!
|
||||
//! Stats tracking:
|
||||
//! - `StatsIo` wraps client side, intercepts `poll_read` / `poll_write`
|
||||
//! - `poll_read` on client = C→S (client sending) → `octets_from`, `msgs_from`
|
||||
//! - `poll_write` on client = S→C (to client) → `octets_to`, `msgs_to`
|
||||
//! - `SharedCounters` (atomics) let the watchdog read stats without locking
|
||||
|
||||
use std::io;
|
||||
use std::pin::Pin;
|
||||
use std::sync::Arc;
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncReadExt, AsyncWriteExt};
|
||||
use std::sync::atomic::{AtomicU64, Ordering};
|
||||
use std::task::{Context, Poll};
|
||||
use std::time::Duration;
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncWriteExt, ReadBuf, copy_bidirectional};
|
||||
use tokio::time::Instant;
|
||||
use tracing::{debug, trace, warn};
|
||||
use crate::error::Result;
|
||||
use crate::stats::Stats;
|
||||
use std::sync::atomic::{AtomicU64, Ordering};
|
||||
use crate::stream::BufferPool;
|
||||
|
||||
const BUFFER_SIZE: usize = 65536;
|
||||
// ============= Constants =============
|
||||
|
||||
/// Relay data bidirectionally between client and server
|
||||
/// Activity timeout for iOS compatibility.
|
||||
///
|
||||
/// iOS keeps Telegram connections alive in background for up to 30 minutes.
|
||||
/// Closing earlier causes unnecessary reconnects and handshake overhead.
|
||||
const ACTIVITY_TIMEOUT: Duration = Duration::from_secs(1800);
|
||||
|
||||
/// Watchdog check interval — also used for periodic rate logging.
|
||||
///
|
||||
/// 10 seconds gives responsive timeout detection (±10s accuracy)
|
||||
/// without measurable overhead from atomic reads.
|
||||
const WATCHDOG_INTERVAL: Duration = Duration::from_secs(10);
|
||||
|
||||
// ============= CombinedStream =============
|
||||
|
||||
/// Combines separate read and write halves into a single bidirectional stream.
|
||||
///
|
||||
/// `copy_bidirectional` requires `AsyncRead + AsyncWrite` on each side,
|
||||
/// but the handshake layer produces split reader/writer pairs
|
||||
/// (e.g. `CryptoReader<FakeTlsReader<OwnedReadHalf>>` + `CryptoWriter<...>`).
|
||||
///
|
||||
/// This wrapper reunifies them with zero overhead — each trait method
|
||||
/// delegates directly to the corresponding half. No buffering, no copies.
|
||||
///
|
||||
/// Safety: `poll_read` only touches `reader`, `poll_write` only touches `writer`,
|
||||
/// so there's no aliasing even though both are called on the same `&mut self`.
|
||||
struct CombinedStream<R, W> {
|
||||
reader: R,
|
||||
writer: W,
|
||||
}
|
||||
|
||||
impl<R, W> CombinedStream<R, W> {
|
||||
fn new(reader: R, writer: W) -> Self {
|
||||
Self { reader, writer }
|
||||
}
|
||||
}
|
||||
|
||||
impl<R: AsyncRead + Unpin, W: Unpin> AsyncRead for CombinedStream<R, W> {
|
||||
#[inline]
|
||||
fn poll_read(
|
||||
self: Pin<&mut Self>,
|
||||
cx: &mut Context<'_>,
|
||||
buf: &mut ReadBuf<'_>,
|
||||
) -> Poll<io::Result<()>> {
|
||||
Pin::new(&mut self.get_mut().reader).poll_read(cx, buf)
|
||||
}
|
||||
}
|
||||
|
||||
impl<R: Unpin, W: AsyncWrite + Unpin> AsyncWrite for CombinedStream<R, W> {
|
||||
#[inline]
|
||||
fn poll_write(
|
||||
self: Pin<&mut Self>,
|
||||
cx: &mut Context<'_>,
|
||||
buf: &[u8],
|
||||
) -> Poll<io::Result<usize>> {
|
||||
Pin::new(&mut self.get_mut().writer).poll_write(cx, buf)
|
||||
}
|
||||
|
||||
#[inline]
|
||||
fn poll_flush(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<io::Result<()>> {
|
||||
Pin::new(&mut self.get_mut().writer).poll_flush(cx)
|
||||
}
|
||||
|
||||
#[inline]
|
||||
fn poll_shutdown(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<io::Result<()>> {
|
||||
Pin::new(&mut self.get_mut().writer).poll_shutdown(cx)
|
||||
}
|
||||
}
|
||||
|
||||
// ============= SharedCounters =============
|
||||
|
||||
/// Atomic counters shared between the relay (via StatsIo) and the watchdog task.
|
||||
///
|
||||
/// Using `Relaxed` ordering is sufficient because:
|
||||
/// - Counters are monotonically increasing (no ABA problem)
|
||||
/// - Slight staleness in watchdog reads is harmless (±10s check interval anyway)
|
||||
/// - No ordering dependencies between different counters
|
||||
struct SharedCounters {
|
||||
/// Bytes read from client (C→S direction)
|
||||
c2s_bytes: AtomicU64,
|
||||
/// Bytes written to client (S→C direction)
|
||||
s2c_bytes: AtomicU64,
|
||||
/// Number of poll_read completions (≈ C→S chunks)
|
||||
c2s_ops: AtomicU64,
|
||||
/// Number of poll_write completions (≈ S→C chunks)
|
||||
s2c_ops: AtomicU64,
|
||||
/// Milliseconds since relay epoch of last I/O activity
|
||||
last_activity_ms: AtomicU64,
|
||||
}
|
||||
|
||||
impl SharedCounters {
|
||||
fn new() -> Self {
|
||||
Self {
|
||||
c2s_bytes: AtomicU64::new(0),
|
||||
s2c_bytes: AtomicU64::new(0),
|
||||
c2s_ops: AtomicU64::new(0),
|
||||
s2c_ops: AtomicU64::new(0),
|
||||
last_activity_ms: AtomicU64::new(0),
|
||||
}
|
||||
}
|
||||
|
||||
/// Record activity at this instant.
|
||||
#[inline]
|
||||
fn touch(&self, now: Instant, epoch: Instant) {
|
||||
let ms = now.duration_since(epoch).as_millis() as u64;
|
||||
self.last_activity_ms.store(ms, Ordering::Relaxed);
|
||||
}
|
||||
|
||||
/// How long since last recorded activity.
|
||||
fn idle_duration(&self, now: Instant, epoch: Instant) -> Duration {
|
||||
let last_ms = self.last_activity_ms.load(Ordering::Relaxed);
|
||||
let now_ms = now.duration_since(epoch).as_millis() as u64;
|
||||
Duration::from_millis(now_ms.saturating_sub(last_ms))
|
||||
}
|
||||
}
|
||||
|
||||
// ============= StatsIo =============
|
||||
|
||||
/// Transparent I/O wrapper that tracks per-user statistics and activity.
|
||||
///
|
||||
/// Wraps the **client** side of the relay. Direction mapping:
|
||||
///
|
||||
/// | poll method | direction | stats updated |
|
||||
/// |-------------|-----------|--------------------------------------|
|
||||
/// | `poll_read` | C→S | `octets_from`, `msgs_from`, counters |
|
||||
/// | `poll_write` | S→C | `octets_to`, `msgs_to`, counters |
|
||||
///
|
||||
/// Both update the shared activity timestamp for the watchdog.
|
||||
///
|
||||
/// Note on message counts: the original code counted one `read()`/`write_all()`
|
||||
/// as one "message". Here we count `poll_read`/`poll_write` completions instead.
|
||||
/// Byte counts are identical; op counts may differ slightly due to different
|
||||
/// internal buffering in `copy_bidirectional`. This is fine for monitoring.
|
||||
struct StatsIo<S> {
|
||||
inner: S,
|
||||
counters: Arc<SharedCounters>,
|
||||
stats: Arc<Stats>,
|
||||
user: String,
|
||||
epoch: Instant,
|
||||
}
|
||||
|
||||
impl<S> StatsIo<S> {
|
||||
fn new(
|
||||
inner: S,
|
||||
counters: Arc<SharedCounters>,
|
||||
stats: Arc<Stats>,
|
||||
user: String,
|
||||
epoch: Instant,
|
||||
) -> Self {
|
||||
// Mark initial activity so the watchdog doesn't fire before data flows
|
||||
counters.touch(Instant::now(), epoch);
|
||||
Self { inner, counters, stats, user, epoch }
|
||||
}
|
||||
}
|
||||
|
||||
impl<S: AsyncRead + Unpin> AsyncRead for StatsIo<S> {
|
||||
fn poll_read(
|
||||
self: Pin<&mut Self>,
|
||||
cx: &mut Context<'_>,
|
||||
buf: &mut ReadBuf<'_>,
|
||||
) -> Poll<io::Result<()>> {
|
||||
let this = self.get_mut();
|
||||
let before = buf.filled().len();
|
||||
|
||||
match Pin::new(&mut this.inner).poll_read(cx, buf) {
|
||||
Poll::Ready(Ok(())) => {
|
||||
let n = buf.filled().len() - before;
|
||||
if n > 0 {
|
||||
// C→S: client sent data
|
||||
this.counters.c2s_bytes.fetch_add(n as u64, Ordering::Relaxed);
|
||||
this.counters.c2s_ops.fetch_add(1, Ordering::Relaxed);
|
||||
this.counters.touch(Instant::now(), this.epoch);
|
||||
|
||||
this.stats.add_user_octets_from(&this.user, n as u64);
|
||||
this.stats.increment_user_msgs_from(&this.user);
|
||||
|
||||
trace!(user = %this.user, bytes = n, "C->S");
|
||||
}
|
||||
Poll::Ready(Ok(()))
|
||||
}
|
||||
other => other,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl<S: AsyncWrite + Unpin> AsyncWrite for StatsIo<S> {
|
||||
fn poll_write(
|
||||
self: Pin<&mut Self>,
|
||||
cx: &mut Context<'_>,
|
||||
buf: &[u8],
|
||||
) -> Poll<io::Result<usize>> {
|
||||
let this = self.get_mut();
|
||||
|
||||
match Pin::new(&mut this.inner).poll_write(cx, buf) {
|
||||
Poll::Ready(Ok(n)) => {
|
||||
if n > 0 {
|
||||
// S→C: data written to client
|
||||
this.counters.s2c_bytes.fetch_add(n as u64, Ordering::Relaxed);
|
||||
this.counters.s2c_ops.fetch_add(1, Ordering::Relaxed);
|
||||
this.counters.touch(Instant::now(), this.epoch);
|
||||
|
||||
this.stats.add_user_octets_to(&this.user, n as u64);
|
||||
this.stats.increment_user_msgs_to(&this.user);
|
||||
|
||||
trace!(user = %this.user, bytes = n, "S->C");
|
||||
}
|
||||
Poll::Ready(Ok(n))
|
||||
}
|
||||
other => other,
|
||||
}
|
||||
}
|
||||
|
||||
#[inline]
|
||||
fn poll_flush(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<io::Result<()>> {
|
||||
Pin::new(&mut self.get_mut().inner).poll_flush(cx)
|
||||
}
|
||||
|
||||
#[inline]
|
||||
fn poll_shutdown(self: Pin<&mut Self>, cx: &mut Context<'_>) -> Poll<io::Result<()>> {
|
||||
Pin::new(&mut self.get_mut().inner).poll_shutdown(cx)
|
||||
}
|
||||
}
|
||||
|
||||
// ============= Relay =============
|
||||
|
||||
/// Relay data bidirectionally between client and server.
|
||||
///
|
||||
/// Uses `tokio::io::copy_bidirectional` for concurrent, non-blocking data transfer.
|
||||
///
|
||||
/// ## API compatibility
|
||||
///
|
||||
/// Signature is identical to the previous implementation. The `_buffer_pool`
|
||||
/// parameter is retained for call-site compatibility — `copy_bidirectional`
|
||||
/// manages its own internal buffers (8 KB per direction).
|
||||
///
|
||||
/// ## Guarantees preserved
|
||||
///
|
||||
/// - Activity timeout: 30 minutes of inactivity → clean shutdown
|
||||
/// - Per-user stats: bytes and ops counted per direction
|
||||
/// - Periodic rate logging: every 10 seconds when active
|
||||
/// - Clean shutdown: both write sides are shut down on exit
|
||||
/// - Error propagation: I/O errors are returned as `ProxyError::Io`
|
||||
pub async fn relay_bidirectional<CR, CW, SR, SW>(
|
||||
mut client_reader: CR,
|
||||
mut client_writer: CW,
|
||||
mut server_reader: SR,
|
||||
mut server_writer: SW,
|
||||
client_reader: CR,
|
||||
client_writer: CW,
|
||||
server_reader: SR,
|
||||
server_writer: SW,
|
||||
user: &str,
|
||||
stats: Arc<Stats>,
|
||||
_buffer_pool: Arc<BufferPool>,
|
||||
) -> Result<()>
|
||||
where
|
||||
CR: AsyncRead + Unpin + Send + 'static,
|
||||
@@ -24,139 +322,145 @@ where
|
||||
SR: AsyncRead + Unpin + Send + 'static,
|
||||
SW: AsyncWrite + Unpin + Send + 'static,
|
||||
{
|
||||
let user_c2s = user.to_string();
|
||||
let user_s2c = user.to_string();
|
||||
|
||||
// Используем Arc::clone вместо stats.clone()
|
||||
let stats_c2s = Arc::clone(&stats);
|
||||
let stats_s2c = Arc::clone(&stats);
|
||||
|
||||
let c2s_bytes = Arc::new(AtomicU64::new(0));
|
||||
let s2c_bytes = Arc::new(AtomicU64::new(0));
|
||||
let c2s_bytes_clone = Arc::clone(&c2s_bytes);
|
||||
let s2c_bytes_clone = Arc::clone(&s2c_bytes);
|
||||
|
||||
// Client -> Server task
|
||||
let c2s = tokio::spawn(async move {
|
||||
let mut buf = vec![0u8; BUFFER_SIZE];
|
||||
let mut total_bytes = 0u64;
|
||||
let mut msg_count = 0u64;
|
||||
|
||||
let epoch = Instant::now();
|
||||
let counters = Arc::new(SharedCounters::new());
|
||||
let user_owned = user.to_string();
|
||||
|
||||
// ── Combine split halves into bidirectional streams ──────────────
|
||||
let client_combined = CombinedStream::new(client_reader, client_writer);
|
||||
let mut server = CombinedStream::new(server_reader, server_writer);
|
||||
|
||||
// Wrap client with stats/activity tracking
|
||||
let mut client = StatsIo::new(
|
||||
client_combined,
|
||||
Arc::clone(&counters),
|
||||
Arc::clone(&stats),
|
||||
user_owned.clone(),
|
||||
epoch,
|
||||
);
|
||||
|
||||
// ── Watchdog: activity timeout + periodic rate logging ──────────
|
||||
let wd_counters = Arc::clone(&counters);
|
||||
let wd_user = user_owned.clone();
|
||||
|
||||
let watchdog = async {
|
||||
let mut prev_c2s: u64 = 0;
|
||||
let mut prev_s2c: u64 = 0;
|
||||
|
||||
loop {
|
||||
match client_reader.read(&mut buf).await {
|
||||
Ok(0) => {
|
||||
debug!(
|
||||
user = %user_c2s,
|
||||
total_bytes = total_bytes,
|
||||
msgs = msg_count,
|
||||
"Client closed connection (C->S)"
|
||||
);
|
||||
let _ = server_writer.shutdown().await;
|
||||
break;
|
||||
}
|
||||
Ok(n) => {
|
||||
total_bytes += n as u64;
|
||||
msg_count += 1;
|
||||
c2s_bytes_clone.store(total_bytes, Ordering::Relaxed);
|
||||
|
||||
stats_c2s.add_user_octets_from(&user_c2s, n as u64);
|
||||
stats_c2s.increment_user_msgs_from(&user_c2s);
|
||||
|
||||
trace!(
|
||||
user = %user_c2s,
|
||||
bytes = n,
|
||||
total = total_bytes,
|
||||
data_preview = %hex::encode(&buf[..n.min(32)]),
|
||||
"C->S data"
|
||||
);
|
||||
|
||||
if let Err(e) = server_writer.write_all(&buf[..n]).await {
|
||||
debug!(user = %user_c2s, error = %e, "Failed to write to server");
|
||||
break;
|
||||
}
|
||||
if let Err(e) = server_writer.flush().await {
|
||||
debug!(user = %user_c2s, error = %e, "Failed to flush to server");
|
||||
break;
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
debug!(user = %user_c2s, error = %e, total_bytes = total_bytes, "Client read error");
|
||||
break;
|
||||
}
|
||||
tokio::time::sleep(WATCHDOG_INTERVAL).await;
|
||||
|
||||
let now = Instant::now();
|
||||
let idle = wd_counters.idle_duration(now, epoch);
|
||||
|
||||
// ── Activity timeout ────────────────────────────────────
|
||||
if idle >= ACTIVITY_TIMEOUT {
|
||||
let c2s = wd_counters.c2s_bytes.load(Ordering::Relaxed);
|
||||
let s2c = wd_counters.s2c_bytes.load(Ordering::Relaxed);
|
||||
warn!(
|
||||
user = %wd_user,
|
||||
c2s_bytes = c2s,
|
||||
s2c_bytes = s2c,
|
||||
idle_secs = idle.as_secs(),
|
||||
"Activity timeout"
|
||||
);
|
||||
return; // Causes select! to cancel copy_bidirectional
|
||||
}
|
||||
|
||||
// ── Periodic rate logging ───────────────────────────────
|
||||
let c2s = wd_counters.c2s_bytes.load(Ordering::Relaxed);
|
||||
let s2c = wd_counters.s2c_bytes.load(Ordering::Relaxed);
|
||||
let c2s_delta = c2s - prev_c2s;
|
||||
let s2c_delta = s2c - prev_s2c;
|
||||
|
||||
if c2s_delta > 0 || s2c_delta > 0 {
|
||||
let secs = WATCHDOG_INTERVAL.as_secs_f64();
|
||||
debug!(
|
||||
user = %wd_user,
|
||||
c2s_kbps = (c2s_delta as f64 / secs / 1024.0) as u64,
|
||||
s2c_kbps = (s2c_delta as f64 / secs / 1024.0) as u64,
|
||||
c2s_total = c2s,
|
||||
s2c_total = s2c,
|
||||
"Relay active"
|
||||
);
|
||||
}
|
||||
|
||||
prev_c2s = c2s;
|
||||
prev_s2c = s2c;
|
||||
}
|
||||
});
|
||||
|
||||
// Server -> Client task
|
||||
let s2c = tokio::spawn(async move {
|
||||
let mut buf = vec![0u8; BUFFER_SIZE];
|
||||
let mut total_bytes = 0u64;
|
||||
let mut msg_count = 0u64;
|
||||
|
||||
loop {
|
||||
match server_reader.read(&mut buf).await {
|
||||
Ok(0) => {
|
||||
debug!(
|
||||
user = %user_s2c,
|
||||
total_bytes = total_bytes,
|
||||
msgs = msg_count,
|
||||
"Server closed connection (S->C)"
|
||||
);
|
||||
let _ = client_writer.shutdown().await;
|
||||
break;
|
||||
}
|
||||
Ok(n) => {
|
||||
total_bytes += n as u64;
|
||||
msg_count += 1;
|
||||
s2c_bytes_clone.store(total_bytes, Ordering::Relaxed);
|
||||
|
||||
stats_s2c.add_user_octets_to(&user_s2c, n as u64);
|
||||
stats_s2c.increment_user_msgs_to(&user_s2c);
|
||||
|
||||
trace!(
|
||||
user = %user_s2c,
|
||||
bytes = n,
|
||||
total = total_bytes,
|
||||
data_preview = %hex::encode(&buf[..n.min(32)]),
|
||||
"S->C data"
|
||||
);
|
||||
|
||||
if let Err(e) = client_writer.write_all(&buf[..n]).await {
|
||||
debug!(user = %user_s2c, error = %e, "Failed to write to client");
|
||||
break;
|
||||
}
|
||||
if let Err(e) = client_writer.flush().await {
|
||||
debug!(user = %user_s2c, error = %e, "Failed to flush to client");
|
||||
break;
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
debug!(user = %user_s2c, error = %e, total_bytes = total_bytes, "Server read error");
|
||||
break;
|
||||
}
|
||||
}
|
||||
};
|
||||
|
||||
// ── Run bidirectional copy + watchdog concurrently ───────────────
|
||||
//
|
||||
// copy_bidirectional polls both directions in the same poll() call:
|
||||
// C→S: poll_read(client/StatsIo) → poll_write(server)
|
||||
// S→C: poll_read(server) → poll_write(client/StatsIo)
|
||||
//
|
||||
// When one direction's writer returns Pending, the other direction
|
||||
// continues — no head-of-line blocking.
|
||||
//
|
||||
// When the watchdog fires, select! drops the copy future,
|
||||
// releasing the &mut borrows on client and server.
|
||||
let copy_result = tokio::select! {
|
||||
result = copy_bidirectional(&mut client, &mut server) => Some(result),
|
||||
_ = watchdog => None, // Activity timeout — cancel relay
|
||||
};
|
||||
|
||||
// ── Clean shutdown ──────────────────────────────────────────────
|
||||
// After select!, the losing future is dropped, borrows released.
|
||||
// Shut down both write sides for clean TCP FIN.
|
||||
let _ = client.shutdown().await;
|
||||
let _ = server.shutdown().await;
|
||||
|
||||
// ── Final logging ───────────────────────────────────────────────
|
||||
let c2s_ops = counters.c2s_ops.load(Ordering::Relaxed);
|
||||
let s2c_ops = counters.s2c_ops.load(Ordering::Relaxed);
|
||||
let duration = epoch.elapsed();
|
||||
|
||||
match copy_result {
|
||||
Some(Ok((c2s, s2c))) => {
|
||||
// Normal completion — one side closed the connection
|
||||
debug!(
|
||||
user = %user_owned,
|
||||
c2s_bytes = c2s,
|
||||
s2c_bytes = s2c,
|
||||
c2s_msgs = c2s_ops,
|
||||
s2c_msgs = s2c_ops,
|
||||
duration_secs = duration.as_secs(),
|
||||
"Relay finished"
|
||||
);
|
||||
Ok(())
|
||||
}
|
||||
});
|
||||
|
||||
// Wait for either direction to complete
|
||||
tokio::select! {
|
||||
result = c2s => {
|
||||
if let Err(e) = result {
|
||||
warn!(error = %e, "C->S task panicked");
|
||||
}
|
||||
Some(Err(e)) => {
|
||||
// I/O error in one of the directions
|
||||
let c2s = counters.c2s_bytes.load(Ordering::Relaxed);
|
||||
let s2c = counters.s2c_bytes.load(Ordering::Relaxed);
|
||||
debug!(
|
||||
user = %user_owned,
|
||||
c2s_bytes = c2s,
|
||||
s2c_bytes = s2c,
|
||||
c2s_msgs = c2s_ops,
|
||||
s2c_msgs = s2c_ops,
|
||||
duration_secs = duration.as_secs(),
|
||||
error = %e,
|
||||
"Relay error"
|
||||
);
|
||||
Err(e.into())
|
||||
}
|
||||
result = s2c => {
|
||||
if let Err(e) = result {
|
||||
warn!(error = %e, "S->C task panicked");
|
||||
}
|
||||
None => {
|
||||
// Activity timeout (watchdog fired)
|
||||
let c2s = counters.c2s_bytes.load(Ordering::Relaxed);
|
||||
let s2c = counters.s2c_bytes.load(Ordering::Relaxed);
|
||||
debug!(
|
||||
user = %user_owned,
|
||||
c2s_bytes = c2s,
|
||||
s2c_bytes = s2c,
|
||||
c2s_msgs = c2s_ops,
|
||||
s2c_msgs = s2c_ops,
|
||||
duration_secs = duration.as_secs(),
|
||||
"Relay finished (activity timeout)"
|
||||
);
|
||||
Ok(())
|
||||
}
|
||||
}
|
||||
|
||||
debug!(
|
||||
c2s_bytes = c2s_bytes.load(Ordering::Relaxed),
|
||||
s2c_bytes = s2c_bytes.load(Ordering::Relaxed),
|
||||
"Relay finished"
|
||||
);
|
||||
|
||||
Ok(())
|
||||
}
|
||||
117
src/stats/beobachten.rs
Normal file
117
src/stats/beobachten.rs
Normal file
@@ -0,0 +1,117 @@
|
||||
//! Per-IP forensic buckets for scanner and handshake failure observation.
|
||||
|
||||
use std::collections::{BTreeMap, HashMap};
|
||||
use std::net::IpAddr;
|
||||
use std::time::{Duration, Instant};
|
||||
|
||||
use parking_lot::Mutex;
|
||||
|
||||
const CLEANUP_INTERVAL: Duration = Duration::from_secs(30);
|
||||
|
||||
#[derive(Default)]
|
||||
struct BeobachtenInner {
|
||||
entries: HashMap<(String, IpAddr), BeobachtenEntry>,
|
||||
last_cleanup: Option<Instant>,
|
||||
}
|
||||
|
||||
#[derive(Clone, Copy)]
|
||||
struct BeobachtenEntry {
|
||||
tries: u64,
|
||||
last_seen: Instant,
|
||||
}
|
||||
|
||||
/// In-memory, TTL-scoped per-IP counters keyed by source class.
|
||||
pub struct BeobachtenStore {
|
||||
inner: Mutex<BeobachtenInner>,
|
||||
}
|
||||
|
||||
impl Default for BeobachtenStore {
|
||||
fn default() -> Self {
|
||||
Self::new()
|
||||
}
|
||||
}
|
||||
|
||||
impl BeobachtenStore {
|
||||
pub fn new() -> Self {
|
||||
Self {
|
||||
inner: Mutex::new(BeobachtenInner::default()),
|
||||
}
|
||||
}
|
||||
|
||||
pub fn record(&self, class: &str, ip: IpAddr, ttl: Duration) {
|
||||
if class.is_empty() || ttl.is_zero() {
|
||||
return;
|
||||
}
|
||||
|
||||
let now = Instant::now();
|
||||
let mut guard = self.inner.lock();
|
||||
Self::cleanup_if_needed(&mut guard, now, ttl);
|
||||
|
||||
let key = (class.to_string(), ip);
|
||||
let entry = guard.entries.entry(key).or_insert(BeobachtenEntry {
|
||||
tries: 0,
|
||||
last_seen: now,
|
||||
});
|
||||
entry.tries = entry.tries.saturating_add(1);
|
||||
entry.last_seen = now;
|
||||
}
|
||||
|
||||
pub fn snapshot_text(&self, ttl: Duration) -> String {
|
||||
if ttl.is_zero() {
|
||||
return "beobachten disabled\n".to_string();
|
||||
}
|
||||
|
||||
let now = Instant::now();
|
||||
let mut guard = self.inner.lock();
|
||||
Self::cleanup(&mut guard, now, ttl);
|
||||
guard.last_cleanup = Some(now);
|
||||
|
||||
let mut grouped = BTreeMap::<String, Vec<(IpAddr, u64)>>::new();
|
||||
for ((class, ip), entry) in &guard.entries {
|
||||
grouped
|
||||
.entry(class.clone())
|
||||
.or_default()
|
||||
.push((*ip, entry.tries));
|
||||
}
|
||||
|
||||
if grouped.is_empty() {
|
||||
return "empty\n".to_string();
|
||||
}
|
||||
|
||||
let mut out = String::with_capacity(grouped.len() * 64);
|
||||
for (class, entries) in &mut grouped {
|
||||
out.push('[');
|
||||
out.push_str(class);
|
||||
out.push_str("]\n");
|
||||
|
||||
entries.sort_by(|(ip_a, tries_a), (ip_b, tries_b)| {
|
||||
tries_b
|
||||
.cmp(tries_a)
|
||||
.then_with(|| ip_a.to_string().cmp(&ip_b.to_string()))
|
||||
});
|
||||
|
||||
for (ip, tries) in entries {
|
||||
out.push_str(&format!("{ip}-{tries}\n"));
|
||||
}
|
||||
}
|
||||
|
||||
out
|
||||
}
|
||||
|
||||
fn cleanup_if_needed(inner: &mut BeobachtenInner, now: Instant, ttl: Duration) {
|
||||
let should_cleanup = match inner.last_cleanup {
|
||||
Some(last) => now.saturating_duration_since(last) >= CLEANUP_INTERVAL,
|
||||
None => true,
|
||||
};
|
||||
if should_cleanup {
|
||||
Self::cleanup(inner, now, ttl);
|
||||
inner.last_cleanup = Some(now);
|
||||
}
|
||||
}
|
||||
|
||||
fn cleanup(inner: &mut BeobachtenInner, now: Instant, ttl: Duration) {
|
||||
inner.entries.retain(|_, entry| {
|
||||
now.saturating_duration_since(entry.last_seen) <= ttl
|
||||
});
|
||||
}
|
||||
}
|
||||
1319
src/stats/mod.rs
1319
src/stats/mod.rs
File diff suppressed because it is too large
Load Diff
29
src/stats/telemetry.rs
Normal file
29
src/stats/telemetry.rs
Normal file
@@ -0,0 +1,29 @@
|
||||
use crate::config::{MeTelemetryLevel, TelemetryConfig};
|
||||
|
||||
/// Runtime telemetry policy used by hot-path counters.
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
|
||||
pub struct TelemetryPolicy {
|
||||
pub core_enabled: bool,
|
||||
pub user_enabled: bool,
|
||||
pub me_level: MeTelemetryLevel,
|
||||
}
|
||||
|
||||
impl Default for TelemetryPolicy {
|
||||
fn default() -> Self {
|
||||
Self {
|
||||
core_enabled: true,
|
||||
user_enabled: true,
|
||||
me_level: MeTelemetryLevel::Normal,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl TelemetryPolicy {
|
||||
pub fn from_config(cfg: &TelemetryConfig) -> Self {
|
||||
Self {
|
||||
core_enabled: cfg.core_enabled,
|
||||
user_enabled: cfg.user_enabled,
|
||||
me_level: cfg.me_level,
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -3,6 +3,8 @@
|
||||
//! This module provides a thread-safe pool of BytesMut buffers
|
||||
//! that can be reused across connections to reduce allocation pressure.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::BytesMut;
|
||||
use crossbeam_queue::ArrayQueue;
|
||||
use std::ops::{Deref, DerefMut};
|
||||
@@ -11,8 +13,9 @@ use std::sync::Arc;
|
||||
|
||||
// ============= Configuration =============
|
||||
|
||||
/// Default buffer size (64KB - good for MTProto)
|
||||
pub const DEFAULT_BUFFER_SIZE: usize = 64 * 1024;
|
||||
/// Default buffer size
|
||||
/// CHANGED: Reduced from 64KB to 16KB to match TLS record size and prevent bufferbloat.
|
||||
pub const DEFAULT_BUFFER_SIZE: usize = 16 * 1024;
|
||||
|
||||
/// Default maximum number of pooled buffers
|
||||
pub const DEFAULT_MAX_BUFFERS: usize = 1024;
|
||||
@@ -380,9 +383,14 @@ mod tests {
|
||||
// Add a buffer to pool
|
||||
pool.preallocate(1);
|
||||
|
||||
// Now try_get should succeed
|
||||
assert!(pool.try_get().is_some());
|
||||
// Now try_get should succeed once while the buffer is held
|
||||
let buf = pool.try_get();
|
||||
assert!(buf.is_some());
|
||||
// While buffer is held, pool is empty
|
||||
assert!(pool.try_get().is_none());
|
||||
// Drop buffer -> returns to pool, should be obtainable again
|
||||
drop(buf);
|
||||
assert!(pool.try_get().is_some());
|
||||
}
|
||||
|
||||
#[test]
|
||||
@@ -447,4 +455,4 @@ mod tests {
|
||||
// All buffers should be returned
|
||||
assert!(stats.pooled > 0);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -3,10 +3,14 @@
|
||||
//! This module defines the common types and traits used by all
|
||||
//! frame encoding/decoding implementations.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::{Bytes, BytesMut};
|
||||
use std::io::Result;
|
||||
use std::sync::Arc;
|
||||
|
||||
use crate::protocol::constants::ProtoTag;
|
||||
use crate::crypto::SecureRandom;
|
||||
|
||||
// ============= Frame Types =============
|
||||
|
||||
@@ -147,11 +151,11 @@ pub trait FrameCodec: Send + Sync {
|
||||
// ============= Codec Factory =============
|
||||
|
||||
/// Create a frame codec for the given protocol tag
|
||||
pub fn create_codec(proto_tag: ProtoTag) -> Box<dyn FrameCodec> {
|
||||
pub fn create_codec(proto_tag: ProtoTag, rng: Arc<SecureRandom>) -> Box<dyn FrameCodec> {
|
||||
match proto_tag {
|
||||
ProtoTag::Abridged => Box::new(crate::stream::frame_codec::AbridgedCodec::new()),
|
||||
ProtoTag::Intermediate => Box::new(crate::stream::frame_codec::IntermediateCodec::new()),
|
||||
ProtoTag::Secure => Box::new(crate::stream::frame_codec::SecureCodec::new()),
|
||||
ProtoTag::Secure => Box::new(crate::stream::frame_codec::SecureCodec::new(rng)),
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@@ -3,11 +3,17 @@
|
||||
//! This module provides Encoder/Decoder implementations compatible
|
||||
//! with tokio-util's Framed wrapper for easy async frame I/O.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::{Bytes, BytesMut, BufMut};
|
||||
use std::io::{self, Error, ErrorKind};
|
||||
use std::sync::Arc;
|
||||
use tokio_util::codec::{Decoder, Encoder};
|
||||
|
||||
use crate::protocol::constants::ProtoTag;
|
||||
use crate::protocol::constants::{
|
||||
ProtoTag, is_valid_secure_payload_len, secure_padding_len, secure_payload_len_from_wire_len,
|
||||
};
|
||||
use crate::crypto::SecureRandom;
|
||||
use super::frame::{Frame, FrameMeta, FrameCodec as FrameCodecTrait};
|
||||
|
||||
// ============= Unified Codec =============
|
||||
@@ -21,14 +27,17 @@ pub struct FrameCodec {
|
||||
proto_tag: ProtoTag,
|
||||
/// Maximum allowed frame size
|
||||
max_frame_size: usize,
|
||||
/// RNG for secure padding
|
||||
rng: Arc<SecureRandom>,
|
||||
}
|
||||
|
||||
impl FrameCodec {
|
||||
/// Create a new codec for the given protocol
|
||||
pub fn new(proto_tag: ProtoTag) -> Self {
|
||||
pub fn new(proto_tag: ProtoTag, rng: Arc<SecureRandom>) -> Self {
|
||||
Self {
|
||||
proto_tag,
|
||||
max_frame_size: 16 * 1024 * 1024, // 16MB default
|
||||
rng,
|
||||
}
|
||||
}
|
||||
|
||||
@@ -64,7 +73,7 @@ impl Encoder<Frame> for FrameCodec {
|
||||
match self.proto_tag {
|
||||
ProtoTag::Abridged => encode_abridged(&frame, dst),
|
||||
ProtoTag::Intermediate => encode_intermediate(&frame, dst),
|
||||
ProtoTag::Secure => encode_secure(&frame, dst),
|
||||
ProtoTag::Secure => encode_secure(&frame, dst, &self.rng),
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -130,7 +139,7 @@ fn encode_abridged(frame: &Frame, dst: &mut BytesMut) -> io::Result<()> {
|
||||
let data = &frame.data;
|
||||
|
||||
// Validate alignment
|
||||
if data.len() % 4 != 0 {
|
||||
if !data.len().is_multiple_of(4) {
|
||||
return Err(Error::new(
|
||||
ErrorKind::InvalidInput,
|
||||
format!("abridged frame must be 4-byte aligned, got {} bytes", data.len())
|
||||
@@ -269,13 +278,13 @@ fn decode_secure(src: &mut BytesMut, max_size: usize) -> io::Result<Option<Frame
|
||||
return Ok(None);
|
||||
}
|
||||
|
||||
// Calculate padding (indicated by length not divisible by 4)
|
||||
let padding_len = len % 4;
|
||||
let data_len = if padding_len != 0 {
|
||||
len - padding_len
|
||||
} else {
|
||||
len
|
||||
};
|
||||
let data_len = secure_payload_len_from_wire_len(len).ok_or_else(|| {
|
||||
Error::new(
|
||||
ErrorKind::InvalidData,
|
||||
format!("invalid secure frame length: {len}"),
|
||||
)
|
||||
})?;
|
||||
let padding_len = len - data_len;
|
||||
|
||||
meta.padding_len = padding_len as u8;
|
||||
|
||||
@@ -288,9 +297,7 @@ fn decode_secure(src: &mut BytesMut, max_size: usize) -> io::Result<Option<Frame
|
||||
Ok(Some(Frame::with_meta(data, meta)))
|
||||
}
|
||||
|
||||
fn encode_secure(frame: &Frame, dst: &mut BytesMut) -> io::Result<()> {
|
||||
use crate::crypto::random::SECURE_RANDOM;
|
||||
|
||||
fn encode_secure(frame: &Frame, dst: &mut BytesMut, rng: &SecureRandom) -> io::Result<()> {
|
||||
let data = &frame.data;
|
||||
|
||||
// Simple ACK: just send data
|
||||
@@ -300,14 +307,15 @@ fn encode_secure(frame: &Frame, dst: &mut BytesMut) -> io::Result<()> {
|
||||
return Ok(());
|
||||
}
|
||||
|
||||
// Generate padding to make length not divisible by 4
|
||||
let padding_len = if data.len() % 4 == 0 {
|
||||
// Add 1-3 bytes to make it non-aligned
|
||||
(SECURE_RANDOM.range(3) + 1) as usize
|
||||
} else {
|
||||
// Already non-aligned, can add 0-3
|
||||
SECURE_RANDOM.range(4) as usize
|
||||
};
|
||||
if !is_valid_secure_payload_len(data.len()) {
|
||||
return Err(Error::new(
|
||||
ErrorKind::InvalidData,
|
||||
format!("secure payload must be 4-byte aligned, got {}", data.len()),
|
||||
));
|
||||
}
|
||||
|
||||
// Generate padding that keeps total length non-divisible by 4.
|
||||
let padding_len = secure_padding_len(data.len(), rng);
|
||||
|
||||
let total_len = data.len() + padding_len;
|
||||
dst.reserve(4 + total_len);
|
||||
@@ -321,7 +329,7 @@ fn encode_secure(frame: &Frame, dst: &mut BytesMut) -> io::Result<()> {
|
||||
dst.extend_from_slice(data);
|
||||
|
||||
if padding_len > 0 {
|
||||
let padding = SECURE_RANDOM.bytes(padding_len);
|
||||
let padding = rng.bytes(padding_len);
|
||||
dst.extend_from_slice(&padding);
|
||||
}
|
||||
|
||||
@@ -445,19 +453,21 @@ impl FrameCodecTrait for IntermediateCodec {
|
||||
/// Secure Intermediate protocol codec
|
||||
pub struct SecureCodec {
|
||||
max_frame_size: usize,
|
||||
rng: Arc<SecureRandom>,
|
||||
}
|
||||
|
||||
impl SecureCodec {
|
||||
pub fn new() -> Self {
|
||||
pub fn new(rng: Arc<SecureRandom>) -> Self {
|
||||
Self {
|
||||
max_frame_size: 16 * 1024 * 1024,
|
||||
rng,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
impl Default for SecureCodec {
|
||||
fn default() -> Self {
|
||||
Self::new()
|
||||
Self::new(Arc::new(SecureRandom::new()))
|
||||
}
|
||||
}
|
||||
|
||||
@@ -474,7 +484,7 @@ impl Encoder<Frame> for SecureCodec {
|
||||
type Error = io::Error;
|
||||
|
||||
fn encode(&mut self, frame: Frame, dst: &mut BytesMut) -> Result<(), Self::Error> {
|
||||
encode_secure(&frame, dst)
|
||||
encode_secure(&frame, dst, &self.rng)
|
||||
}
|
||||
}
|
||||
|
||||
@@ -485,7 +495,7 @@ impl FrameCodecTrait for SecureCodec {
|
||||
|
||||
fn encode(&self, frame: &Frame, dst: &mut BytesMut) -> io::Result<usize> {
|
||||
let before = dst.len();
|
||||
encode_secure(frame, dst)?;
|
||||
encode_secure(frame, dst, &self.rng)?;
|
||||
Ok(dst.len() - before)
|
||||
}
|
||||
|
||||
@@ -506,6 +516,8 @@ mod tests {
|
||||
use tokio_util::codec::{FramedRead, FramedWrite};
|
||||
use tokio::io::duplex;
|
||||
use futures::{SinkExt, StreamExt};
|
||||
use crate::crypto::SecureRandom;
|
||||
use std::sync::Arc;
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_framed_abridged() {
|
||||
@@ -541,8 +553,8 @@ mod tests {
|
||||
async fn test_framed_secure() {
|
||||
let (client, server) = duplex(4096);
|
||||
|
||||
let mut writer = FramedWrite::new(client, SecureCodec::new());
|
||||
let mut reader = FramedRead::new(server, SecureCodec::new());
|
||||
let mut writer = FramedWrite::new(client, SecureCodec::new(Arc::new(SecureRandom::new())));
|
||||
let mut reader = FramedRead::new(server, SecureCodec::new(Arc::new(SecureRandom::new())));
|
||||
|
||||
let original = Bytes::from_static(&[1, 2, 3, 4, 5, 6, 7, 8]);
|
||||
let frame = Frame::new(original.clone());
|
||||
@@ -557,8 +569,8 @@ mod tests {
|
||||
for proto_tag in [ProtoTag::Abridged, ProtoTag::Intermediate, ProtoTag::Secure] {
|
||||
let (client, server) = duplex(4096);
|
||||
|
||||
let mut writer = FramedWrite::new(client, FrameCodec::new(proto_tag));
|
||||
let mut reader = FramedRead::new(server, FrameCodec::new(proto_tag));
|
||||
let mut writer = FramedWrite::new(client, FrameCodec::new(proto_tag, Arc::new(SecureRandom::new())));
|
||||
let mut reader = FramedRead::new(server, FrameCodec::new(proto_tag, Arc::new(SecureRandom::new())));
|
||||
|
||||
// Use 4-byte aligned data for abridged compatibility
|
||||
let original = Bytes::from_static(&[1, 2, 3, 4, 5, 6, 7, 8]);
|
||||
@@ -607,7 +619,7 @@ mod tests {
|
||||
|
||||
#[test]
|
||||
fn test_frame_too_large() {
|
||||
let mut codec = FrameCodec::new(ProtoTag::Intermediate)
|
||||
let mut codec = FrameCodec::new(ProtoTag::Intermediate, Arc::new(SecureRandom::new()))
|
||||
.with_max_frame_size(100);
|
||||
|
||||
// Create a "frame" that claims to be very large
|
||||
@@ -618,4 +630,4 @@ mod tests {
|
||||
let result = codec.decode(&mut buf);
|
||||
assert!(result.is_err());
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@@ -1,11 +1,13 @@
|
||||
//! MTProto frame stream wrappers
|
||||
|
||||
use bytes::{Bytes, BytesMut};
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::Bytes;
|
||||
use std::io::{Error, ErrorKind, Result};
|
||||
use tokio::io::{AsyncRead, AsyncWrite, AsyncReadExt, AsyncWriteExt};
|
||||
use crate::protocol::constants::*;
|
||||
use crate::crypto::crc32;
|
||||
use crate::crypto::random::SECURE_RANDOM;
|
||||
use crate::crypto::{crc32, SecureRandom};
|
||||
use std::sync::Arc;
|
||||
use super::traits::{FrameMeta, LayeredStream};
|
||||
|
||||
// ============= Abridged (Compact) Frame =============
|
||||
@@ -76,7 +78,7 @@ impl<W> AbridgedFrameWriter<W> {
|
||||
impl<W: AsyncWrite + Unpin> AbridgedFrameWriter<W> {
|
||||
/// Write a frame
|
||||
pub async fn write_frame(&mut self, data: &[u8], meta: &FrameMeta) -> Result<()> {
|
||||
if data.len() % 4 != 0 {
|
||||
if !data.len().is_multiple_of(4) {
|
||||
return Err(Error::new(
|
||||
ErrorKind::InvalidInput,
|
||||
format!("Abridged frame must be aligned to 4 bytes, got {}", data.len()),
|
||||
@@ -232,11 +234,13 @@ impl<R: AsyncRead + Unpin> SecureIntermediateFrameReader<R> {
|
||||
let mut data = vec![0u8; len];
|
||||
self.upstream.read_exact(&mut data).await?;
|
||||
|
||||
// Strip padding (not aligned to 4)
|
||||
if len % 4 != 0 {
|
||||
let actual_len = len - (len % 4);
|
||||
data.truncate(actual_len);
|
||||
}
|
||||
let payload_len = secure_payload_len_from_wire_len(len).ok_or_else(|| {
|
||||
Error::new(
|
||||
ErrorKind::InvalidData,
|
||||
format!("Invalid secure frame length: {len}"),
|
||||
)
|
||||
})?;
|
||||
data.truncate(payload_len);
|
||||
|
||||
Ok((Bytes::from(data), meta))
|
||||
}
|
||||
@@ -251,11 +255,12 @@ impl<R> LayeredStream<R> for SecureIntermediateFrameReader<R> {
|
||||
/// Writer for secure intermediate MTProto framing
|
||||
pub struct SecureIntermediateFrameWriter<W> {
|
||||
upstream: W,
|
||||
rng: Arc<SecureRandom>,
|
||||
}
|
||||
|
||||
impl<W> SecureIntermediateFrameWriter<W> {
|
||||
pub fn new(upstream: W) -> Self {
|
||||
Self { upstream }
|
||||
pub fn new(upstream: W, rng: Arc<SecureRandom>) -> Self {
|
||||
Self { upstream, rng }
|
||||
}
|
||||
}
|
||||
|
||||
@@ -266,9 +271,16 @@ impl<W: AsyncWrite + Unpin> SecureIntermediateFrameWriter<W> {
|
||||
return Ok(());
|
||||
}
|
||||
|
||||
// Add random padding (0-3 bytes)
|
||||
let padding_len = SECURE_RANDOM.range(4);
|
||||
let padding = SECURE_RANDOM.bytes(padding_len);
|
||||
if !is_valid_secure_payload_len(data.len()) {
|
||||
return Err(Error::new(
|
||||
ErrorKind::InvalidData,
|
||||
format!("Secure payload must be 4-byte aligned, got {}", data.len()),
|
||||
));
|
||||
}
|
||||
|
||||
// Add padding so total length is never divisible by 4 (MTProto Secure)
|
||||
let padding_len = secure_padding_len(data.len(), &self.rng);
|
||||
let padding = self.rng.bytes(padding_len);
|
||||
|
||||
let total_len = data.len() + padding_len;
|
||||
let len_bytes = (total_len as u32).to_le_bytes();
|
||||
@@ -319,7 +331,7 @@ impl<R: AsyncRead + Unpin> MtprotoFrameReader<R> {
|
||||
}
|
||||
|
||||
// Validate length
|
||||
if len < MIN_MSG_LEN || len > MAX_MSG_LEN || len % PADDING_FILLER.len() != 0 {
|
||||
if !(MIN_MSG_LEN..=MAX_MSG_LEN).contains(&len) || !len.is_multiple_of(PADDING_FILLER.len()) {
|
||||
return Err(Error::new(
|
||||
ErrorKind::InvalidData,
|
||||
format!("Invalid message length: {}", len),
|
||||
@@ -454,11 +466,11 @@ pub enum FrameWriterKind<W> {
|
||||
}
|
||||
|
||||
impl<W: AsyncWrite + Unpin> FrameWriterKind<W> {
|
||||
pub fn new(upstream: W, proto_tag: ProtoTag) -> Self {
|
||||
pub fn new(upstream: W, proto_tag: ProtoTag, rng: Arc<SecureRandom>) -> Self {
|
||||
match proto_tag {
|
||||
ProtoTag::Abridged => FrameWriterKind::Abridged(AbridgedFrameWriter::new(upstream)),
|
||||
ProtoTag::Intermediate => FrameWriterKind::Intermediate(IntermediateFrameWriter::new(upstream)),
|
||||
ProtoTag::Secure => FrameWriterKind::SecureIntermediate(SecureIntermediateFrameWriter::new(upstream)),
|
||||
ProtoTag::Secure => FrameWriterKind::SecureIntermediate(SecureIntermediateFrameWriter::new(upstream, rng)),
|
||||
}
|
||||
}
|
||||
|
||||
@@ -483,6 +495,8 @@ impl<W: AsyncWrite + Unpin> FrameWriterKind<W> {
|
||||
mod tests {
|
||||
use super::*;
|
||||
use tokio::io::duplex;
|
||||
use std::sync::Arc;
|
||||
use crate::crypto::SecureRandom;
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_abridged_roundtrip() {
|
||||
@@ -539,7 +553,7 @@ mod tests {
|
||||
async fn test_secure_intermediate_padding() {
|
||||
let (client, server) = duplex(1024);
|
||||
|
||||
let mut writer = SecureIntermediateFrameWriter::new(client);
|
||||
let mut writer = SecureIntermediateFrameWriter::new(client, Arc::new(SecureRandom::new()));
|
||||
let mut reader = SecureIntermediateFrameReader::new(server);
|
||||
|
||||
let data = vec![1u8, 2, 3, 4, 5, 6, 7, 8];
|
||||
@@ -547,9 +561,7 @@ mod tests {
|
||||
writer.flush().await.unwrap();
|
||||
|
||||
let (received, _meta) = reader.read_frame().await.unwrap();
|
||||
// Received should have padding stripped to align to 4
|
||||
let expected_len = (data.len() / 4) * 4;
|
||||
assert_eq!(received.len(), expected_len);
|
||||
assert_eq!(received.len(), data.len());
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
@@ -572,7 +584,7 @@ mod tests {
|
||||
async fn test_frame_reader_kind() {
|
||||
let (client, server) = duplex(1024);
|
||||
|
||||
let mut writer = FrameWriterKind::new(client, ProtoTag::Intermediate);
|
||||
let mut writer = FrameWriterKind::new(client, ProtoTag::Intermediate, Arc::new(SecureRandom::new()));
|
||||
let mut reader = FrameReaderKind::new(server, ProtoTag::Intermediate);
|
||||
|
||||
let data = vec![1u8, 2, 3, 4];
|
||||
@@ -582,4 +594,4 @@ mod tests {
|
||||
let (received, _) = reader.read_frame().await.unwrap();
|
||||
assert_eq!(&received[..], &data[..]);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@@ -12,32 +12,38 @@ pub mod frame_codec;
|
||||
pub mod frame_stream;
|
||||
|
||||
// Re-export state machine types
|
||||
#[allow(unused_imports)]
|
||||
pub use state::{
|
||||
StreamState, Transition, PollResult,
|
||||
ReadBuffer, WriteBuffer, HeaderBuffer, YieldBuffer,
|
||||
};
|
||||
|
||||
// Re-export buffer pool
|
||||
#[allow(unused_imports)]
|
||||
pub use buffer_pool::{BufferPool, PooledBuffer, PoolStats};
|
||||
|
||||
// Re-export stream implementations
|
||||
#[allow(unused_imports)]
|
||||
pub use crypto_stream::{CryptoReader, CryptoWriter, PassthroughStream};
|
||||
pub use tls_stream::{FakeTlsReader, FakeTlsWriter};
|
||||
|
||||
// Re-export frame types
|
||||
#[allow(unused_imports)]
|
||||
pub use frame::{Frame, FrameMeta, FrameCodec as FrameCodecTrait, create_codec};
|
||||
|
||||
// Re-export tokio-util compatible codecs
|
||||
// Re-export tokio-util compatible codecs
|
||||
#[allow(unused_imports)]
|
||||
pub use frame_codec::{
|
||||
FrameCodec,
|
||||
AbridgedCodec, IntermediateCodec, SecureCodec,
|
||||
};
|
||||
|
||||
// Legacy re-exports for compatibility
|
||||
#[allow(unused_imports)]
|
||||
pub use frame_stream::{
|
||||
AbridgedFrameReader, AbridgedFrameWriter,
|
||||
IntermediateFrameReader, IntermediateFrameWriter,
|
||||
SecureIntermediateFrameReader, SecureIntermediateFrameWriter,
|
||||
MtprotoFrameReader, MtprotoFrameWriter,
|
||||
FrameReaderKind, FrameWriterKind,
|
||||
};
|
||||
};
|
||||
|
||||
@@ -3,6 +3,8 @@
|
||||
//! This module provides core types and traits for implementing
|
||||
//! stateful async streams with proper partial read/write handling.
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::{Bytes, BytesMut};
|
||||
use std::io;
|
||||
|
||||
|
||||
File diff suppressed because it is too large
Load Diff
@@ -1,5 +1,7 @@
|
||||
//! Stream traits and common types
|
||||
|
||||
#![allow(dead_code)]
|
||||
|
||||
use bytes::Bytes;
|
||||
use std::io::Result;
|
||||
use std::pin::Pin;
|
||||
|
||||
255
src/tls_front/cache.rs
Normal file
255
src/tls_front/cache.rs
Normal file
@@ -0,0 +1,255 @@
|
||||
use std::collections::HashMap;
|
||||
use std::net::IpAddr;
|
||||
use std::path::{Path, PathBuf};
|
||||
use std::sync::Arc;
|
||||
use std::time::{Duration, Instant, SystemTime};
|
||||
|
||||
use tokio::sync::RwLock;
|
||||
use tokio::time::sleep;
|
||||
use tracing::{debug, warn, info};
|
||||
|
||||
use crate::tls_front::types::{CachedTlsData, ParsedServerHello, TlsFetchResult};
|
||||
|
||||
/// Lightweight in-memory + optional on-disk cache for TLS fronting data.
|
||||
#[derive(Debug)]
|
||||
pub struct TlsFrontCache {
|
||||
memory: RwLock<HashMap<String, Arc<CachedTlsData>>>,
|
||||
default: Arc<CachedTlsData>,
|
||||
full_cert_sent: RwLock<HashMap<IpAddr, Instant>>,
|
||||
disk_path: PathBuf,
|
||||
}
|
||||
|
||||
#[allow(dead_code)]
|
||||
impl TlsFrontCache {
|
||||
pub fn new(domains: &[String], default_len: usize, disk_path: impl AsRef<Path>) -> Self {
|
||||
let default_template = ParsedServerHello {
|
||||
version: [0x03, 0x03],
|
||||
random: [0u8; 32],
|
||||
session_id: Vec::new(),
|
||||
cipher_suite: [0x13, 0x01],
|
||||
compression: 0,
|
||||
extensions: Vec::new(),
|
||||
};
|
||||
|
||||
let default = Arc::new(CachedTlsData {
|
||||
server_hello_template: default_template,
|
||||
cert_info: None,
|
||||
cert_payload: None,
|
||||
app_data_records_sizes: vec![default_len],
|
||||
total_app_data_len: default_len,
|
||||
fetched_at: SystemTime::now(),
|
||||
domain: "default".to_string(),
|
||||
});
|
||||
|
||||
let mut map = HashMap::new();
|
||||
for d in domains {
|
||||
map.insert(d.clone(), default.clone());
|
||||
}
|
||||
|
||||
Self {
|
||||
memory: RwLock::new(map),
|
||||
default,
|
||||
full_cert_sent: RwLock::new(HashMap::new()),
|
||||
disk_path: disk_path.as_ref().to_path_buf(),
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn get(&self, sni: &str) -> Arc<CachedTlsData> {
|
||||
let guard = self.memory.read().await;
|
||||
guard.get(sni).cloned().unwrap_or_else(|| self.default.clone())
|
||||
}
|
||||
|
||||
pub async fn contains_domain(&self, domain: &str) -> bool {
|
||||
self.memory.read().await.contains_key(domain)
|
||||
}
|
||||
|
||||
/// Returns true when full cert payload should be sent for client_ip
|
||||
/// according to TTL policy.
|
||||
pub async fn take_full_cert_budget_for_ip(
|
||||
&self,
|
||||
client_ip: IpAddr,
|
||||
ttl: Duration,
|
||||
) -> bool {
|
||||
if ttl.is_zero() {
|
||||
self.full_cert_sent
|
||||
.write()
|
||||
.await
|
||||
.insert(client_ip, Instant::now());
|
||||
return true;
|
||||
}
|
||||
|
||||
let now = Instant::now();
|
||||
let mut guard = self.full_cert_sent.write().await;
|
||||
guard.retain(|_, seen_at| now.duration_since(*seen_at) < ttl);
|
||||
|
||||
match guard.get_mut(&client_ip) {
|
||||
Some(seen_at) => {
|
||||
if now.duration_since(*seen_at) >= ttl {
|
||||
*seen_at = now;
|
||||
true
|
||||
} else {
|
||||
false
|
||||
}
|
||||
}
|
||||
None => {
|
||||
guard.insert(client_ip, now);
|
||||
true
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn set(&self, domain: &str, data: CachedTlsData) {
|
||||
let mut guard = self.memory.write().await;
|
||||
guard.insert(domain.to_string(), Arc::new(data));
|
||||
}
|
||||
|
||||
pub async fn load_from_disk(&self) {
|
||||
let path = self.disk_path.clone();
|
||||
if tokio::fs::create_dir_all(&path).await.is_err() {
|
||||
return;
|
||||
}
|
||||
let mut loaded = 0usize;
|
||||
if let Ok(mut dir) = tokio::fs::read_dir(&path).await {
|
||||
while let Ok(Some(entry)) = dir.next_entry().await {
|
||||
if let Ok(name) = entry.file_name().into_string() {
|
||||
if !name.ends_with(".json") {
|
||||
continue;
|
||||
}
|
||||
if let Ok(data) = tokio::fs::read(entry.path()).await
|
||||
&& let Ok(mut cached) = serde_json::from_slice::<CachedTlsData>(&data)
|
||||
{
|
||||
if cached.domain.is_empty()
|
||||
|| cached.domain.len() > 255
|
||||
|| !cached.domain.chars().all(|c| c.is_ascii_alphanumeric() || c == '.' || c == '-')
|
||||
{
|
||||
warn!(file = %name, "Skipping TLS cache entry with invalid domain");
|
||||
continue;
|
||||
}
|
||||
// fetched_at is skipped during deserialization; approximate with file mtime if available.
|
||||
if let Ok(meta) = entry.metadata().await
|
||||
&& let Ok(modified) = meta.modified()
|
||||
{
|
||||
cached.fetched_at = modified;
|
||||
}
|
||||
// Drop entries older than 72h
|
||||
if let Ok(age) = cached.fetched_at.elapsed()
|
||||
&& age > Duration::from_secs(72 * 3600)
|
||||
{
|
||||
warn!(domain = %cached.domain, "Skipping stale TLS cache entry (>72h)");
|
||||
continue;
|
||||
}
|
||||
let domain = cached.domain.clone();
|
||||
self.set(&domain, cached).await;
|
||||
loaded += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
if loaded > 0 {
|
||||
info!(count = loaded, "Loaded TLS cache entries from disk");
|
||||
}
|
||||
}
|
||||
|
||||
async fn persist(&self, domain: &str, data: &CachedTlsData) {
|
||||
if tokio::fs::create_dir_all(&self.disk_path).await.is_err() {
|
||||
return;
|
||||
}
|
||||
let fname = format!("{}.json", domain.replace(['/', '\\'], "_"));
|
||||
let path = self.disk_path.join(fname);
|
||||
if let Ok(json) = serde_json::to_vec_pretty(data) {
|
||||
// best-effort write
|
||||
let _ = tokio::fs::write(path, json).await;
|
||||
}
|
||||
}
|
||||
|
||||
/// Spawn background updater that periodically refreshes cached domains using provided fetcher.
|
||||
pub fn spawn_updater<F>(
|
||||
self: Arc<Self>,
|
||||
domains: Vec<String>,
|
||||
interval: Duration,
|
||||
fetcher: F,
|
||||
) where
|
||||
F: Fn(String) -> tokio::task::JoinHandle<()> + Send + Sync + 'static,
|
||||
{
|
||||
tokio::spawn(async move {
|
||||
loop {
|
||||
for domain in &domains {
|
||||
let _ = fetcher(domain.clone()).await;
|
||||
}
|
||||
sleep(interval).await;
|
||||
}
|
||||
});
|
||||
}
|
||||
|
||||
/// Replace cached entry from a fetch result.
|
||||
pub async fn update_from_fetch(&self, domain: &str, fetched: TlsFetchResult) {
|
||||
let data = CachedTlsData {
|
||||
server_hello_template: fetched.server_hello_parsed,
|
||||
cert_info: fetched.cert_info,
|
||||
cert_payload: fetched.cert_payload,
|
||||
app_data_records_sizes: fetched.app_data_records_sizes.clone(),
|
||||
total_app_data_len: fetched.total_app_data_len,
|
||||
fetched_at: SystemTime::now(),
|
||||
domain: domain.to_string(),
|
||||
};
|
||||
|
||||
self.set(domain, data.clone()).await;
|
||||
self.persist(domain, &data).await;
|
||||
debug!(domain = %domain, len = fetched.total_app_data_len, "TLS cache updated");
|
||||
}
|
||||
|
||||
pub fn default_entry(&self) -> Arc<CachedTlsData> {
|
||||
self.default.clone()
|
||||
}
|
||||
|
||||
pub fn disk_path(&self) -> &Path {
|
||||
&self.disk_path
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_take_full_cert_budget_for_ip_uses_ttl() {
|
||||
let cache = TlsFrontCache::new(
|
||||
&["example.com".to_string()],
|
||||
1024,
|
||||
"tlsfront-test-cache",
|
||||
);
|
||||
let ip: IpAddr = "127.0.0.1".parse().expect("ip");
|
||||
let ttl = Duration::from_millis(80);
|
||||
|
||||
assert!(cache
|
||||
.take_full_cert_budget_for_ip(ip, ttl)
|
||||
.await);
|
||||
assert!(!cache
|
||||
.take_full_cert_budget_for_ip(ip, ttl)
|
||||
.await);
|
||||
|
||||
tokio::time::sleep(Duration::from_millis(90)).await;
|
||||
|
||||
assert!(cache
|
||||
.take_full_cert_budget_for_ip(ip, ttl)
|
||||
.await);
|
||||
}
|
||||
|
||||
#[tokio::test]
|
||||
async fn test_take_full_cert_budget_for_ip_zero_ttl_always_allows_full_payload() {
|
||||
let cache = TlsFrontCache::new(
|
||||
&["example.com".to_string()],
|
||||
1024,
|
||||
"tlsfront-test-cache",
|
||||
);
|
||||
let ip: IpAddr = "127.0.0.1".parse().expect("ip");
|
||||
let ttl = Duration::ZERO;
|
||||
|
||||
assert!(cache
|
||||
.take_full_cert_budget_for_ip(ip, ttl)
|
||||
.await);
|
||||
assert!(cache
|
||||
.take_full_cert_budget_for_ip(ip, ttl)
|
||||
.await);
|
||||
}
|
||||
}
|
||||
388
src/tls_front/emulator.rs
Normal file
388
src/tls_front/emulator.rs
Normal file
@@ -0,0 +1,388 @@
|
||||
use crate::crypto::{sha256_hmac, SecureRandom};
|
||||
use crate::protocol::constants::{
|
||||
TLS_RECORD_APPLICATION, TLS_RECORD_CHANGE_CIPHER, TLS_RECORD_HANDSHAKE, TLS_VERSION,
|
||||
};
|
||||
use crate::protocol::tls::{TLS_DIGEST_LEN, TLS_DIGEST_POS, gen_fake_x25519_key};
|
||||
use crate::tls_front::types::{CachedTlsData, ParsedCertificateInfo};
|
||||
|
||||
const MIN_APP_DATA: usize = 64;
|
||||
const MAX_APP_DATA: usize = 16640; // RFC 8446 §5.2 allows up to 2^14 + 256
|
||||
|
||||
fn jitter_and_clamp_sizes(sizes: &[usize], rng: &SecureRandom) -> Vec<usize> {
|
||||
sizes
|
||||
.iter()
|
||||
.map(|&size| {
|
||||
let base = size.clamp(MIN_APP_DATA, MAX_APP_DATA);
|
||||
let jitter_range = ((base as f64) * 0.03).round() as i64;
|
||||
if jitter_range == 0 {
|
||||
return base;
|
||||
}
|
||||
let mut rand_bytes = [0u8; 2];
|
||||
rand_bytes.copy_from_slice(&rng.bytes(2));
|
||||
let span = 2 * jitter_range + 1;
|
||||
let delta = (u16::from_le_bytes(rand_bytes) as i64 % span) - jitter_range;
|
||||
let adjusted = (base as i64 + delta).clamp(MIN_APP_DATA as i64, MAX_APP_DATA as i64);
|
||||
adjusted as usize
|
||||
})
|
||||
.collect()
|
||||
}
|
||||
|
||||
fn app_data_body_capacity(sizes: &[usize]) -> usize {
|
||||
sizes.iter().map(|&size| size.saturating_sub(17)).sum()
|
||||
}
|
||||
|
||||
fn ensure_payload_capacity(mut sizes: Vec<usize>, payload_len: usize) -> Vec<usize> {
|
||||
if payload_len == 0 {
|
||||
return sizes;
|
||||
}
|
||||
|
||||
let mut body_total = app_data_body_capacity(&sizes);
|
||||
if body_total >= payload_len {
|
||||
return sizes;
|
||||
}
|
||||
|
||||
if let Some(last) = sizes.last_mut() {
|
||||
let free = MAX_APP_DATA.saturating_sub(*last);
|
||||
let grow = free.min(payload_len - body_total);
|
||||
*last += grow;
|
||||
body_total += grow;
|
||||
}
|
||||
|
||||
while body_total < payload_len {
|
||||
let remaining = payload_len - body_total;
|
||||
let chunk = (remaining + 17).clamp(MIN_APP_DATA, MAX_APP_DATA);
|
||||
sizes.push(chunk);
|
||||
body_total += chunk.saturating_sub(17);
|
||||
}
|
||||
|
||||
sizes
|
||||
}
|
||||
|
||||
fn build_compact_cert_info_payload(cert_info: &ParsedCertificateInfo) -> Option<Vec<u8>> {
|
||||
let mut fields = Vec::new();
|
||||
|
||||
if let Some(subject) = cert_info.subject_cn.as_deref() {
|
||||
fields.push(format!("CN={subject}"));
|
||||
}
|
||||
if let Some(issuer) = cert_info.issuer_cn.as_deref() {
|
||||
fields.push(format!("ISSUER={issuer}"));
|
||||
}
|
||||
if let Some(not_before) = cert_info.not_before_unix {
|
||||
fields.push(format!("NB={not_before}"));
|
||||
}
|
||||
if let Some(not_after) = cert_info.not_after_unix {
|
||||
fields.push(format!("NA={not_after}"));
|
||||
}
|
||||
if !cert_info.san_names.is_empty() {
|
||||
let san = cert_info
|
||||
.san_names
|
||||
.iter()
|
||||
.take(8)
|
||||
.map(String::as_str)
|
||||
.collect::<Vec<_>>()
|
||||
.join(",");
|
||||
fields.push(format!("SAN={san}"));
|
||||
}
|
||||
|
||||
if fields.is_empty() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut payload = fields.join(";").into_bytes();
|
||||
if payload.len() > 512 {
|
||||
payload.truncate(512);
|
||||
}
|
||||
Some(payload)
|
||||
}
|
||||
|
||||
/// Build a ServerHello + CCS + ApplicationData sequence using cached TLS metadata.
|
||||
pub fn build_emulated_server_hello(
|
||||
secret: &[u8],
|
||||
client_digest: &[u8; TLS_DIGEST_LEN],
|
||||
session_id: &[u8],
|
||||
cached: &CachedTlsData,
|
||||
use_full_cert_payload: bool,
|
||||
rng: &SecureRandom,
|
||||
alpn: Option<Vec<u8>>,
|
||||
new_session_tickets: u8,
|
||||
) -> Vec<u8> {
|
||||
// --- ServerHello ---
|
||||
let mut extensions = Vec::new();
|
||||
// KeyShare (x25519)
|
||||
let key = gen_fake_x25519_key(rng);
|
||||
extensions.extend_from_slice(&0x0033u16.to_be_bytes()); // key_share
|
||||
extensions.extend_from_slice(&(2 + 2 + 32u16).to_be_bytes()); // len
|
||||
extensions.extend_from_slice(&0x001du16.to_be_bytes()); // X25519
|
||||
extensions.extend_from_slice(&(32u16).to_be_bytes());
|
||||
extensions.extend_from_slice(&key);
|
||||
// supported_versions (TLS1.3)
|
||||
extensions.extend_from_slice(&0x002bu16.to_be_bytes());
|
||||
extensions.extend_from_slice(&(2u16).to_be_bytes());
|
||||
extensions.extend_from_slice(&0x0304u16.to_be_bytes());
|
||||
if let Some(alpn_proto) = &alpn {
|
||||
extensions.extend_from_slice(&0x0010u16.to_be_bytes());
|
||||
let list_len: u16 = 1 + alpn_proto.len() as u16;
|
||||
let ext_len: u16 = 2 + list_len;
|
||||
extensions.extend_from_slice(&ext_len.to_be_bytes());
|
||||
extensions.extend_from_slice(&list_len.to_be_bytes());
|
||||
extensions.push(alpn_proto.len() as u8);
|
||||
extensions.extend_from_slice(alpn_proto);
|
||||
}
|
||||
|
||||
let extensions_len = extensions.len() as u16;
|
||||
|
||||
let body_len = 2 + // version
|
||||
32 + // random
|
||||
1 + session_id.len() + // session id
|
||||
2 + // cipher
|
||||
1 + // compression
|
||||
2 + extensions.len(); // extensions
|
||||
|
||||
let mut message = Vec::with_capacity(4 + body_len);
|
||||
message.push(0x02); // ServerHello
|
||||
let len_bytes = (body_len as u32).to_be_bytes();
|
||||
message.extend_from_slice(&len_bytes[1..4]);
|
||||
message.extend_from_slice(&cached.server_hello_template.version); // 0x0303
|
||||
message.extend_from_slice(&[0u8; 32]); // random placeholder
|
||||
message.push(session_id.len() as u8);
|
||||
message.extend_from_slice(session_id);
|
||||
let cipher = if cached.server_hello_template.cipher_suite == [0, 0] {
|
||||
[0x13, 0x01]
|
||||
} else {
|
||||
cached.server_hello_template.cipher_suite
|
||||
};
|
||||
message.extend_from_slice(&cipher);
|
||||
message.push(cached.server_hello_template.compression);
|
||||
message.extend_from_slice(&extensions_len.to_be_bytes());
|
||||
message.extend_from_slice(&extensions);
|
||||
|
||||
let mut server_hello = Vec::with_capacity(5 + message.len());
|
||||
server_hello.push(TLS_RECORD_HANDSHAKE);
|
||||
server_hello.extend_from_slice(&TLS_VERSION);
|
||||
server_hello.extend_from_slice(&(message.len() as u16).to_be_bytes());
|
||||
server_hello.extend_from_slice(&message);
|
||||
|
||||
// --- ChangeCipherSpec ---
|
||||
let change_cipher_spec = [
|
||||
TLS_RECORD_CHANGE_CIPHER,
|
||||
TLS_VERSION[0],
|
||||
TLS_VERSION[1],
|
||||
0x00,
|
||||
0x01,
|
||||
0x01,
|
||||
];
|
||||
|
||||
// --- ApplicationData (fake encrypted records) ---
|
||||
// Use the same number and sizes of ApplicationData records as the cached server.
|
||||
let mut sizes = cached.app_data_records_sizes.clone();
|
||||
if sizes.is_empty() {
|
||||
sizes.push(cached.total_app_data_len.max(1024));
|
||||
}
|
||||
let mut sizes = jitter_and_clamp_sizes(&sizes, rng);
|
||||
let compact_payload = cached
|
||||
.cert_info
|
||||
.as_ref()
|
||||
.and_then(build_compact_cert_info_payload);
|
||||
let selected_payload: Option<&[u8]> = if use_full_cert_payload {
|
||||
cached
|
||||
.cert_payload
|
||||
.as_ref()
|
||||
.map(|payload| payload.certificate_message.as_slice())
|
||||
.filter(|payload| !payload.is_empty())
|
||||
.or(compact_payload.as_deref())
|
||||
} else {
|
||||
compact_payload.as_deref()
|
||||
};
|
||||
|
||||
if let Some(payload) = selected_payload {
|
||||
sizes = ensure_payload_capacity(sizes, payload.len());
|
||||
}
|
||||
|
||||
let mut app_data = Vec::new();
|
||||
let mut payload_offset = 0usize;
|
||||
for size in sizes {
|
||||
let mut rec = Vec::with_capacity(5 + size);
|
||||
rec.push(TLS_RECORD_APPLICATION);
|
||||
rec.extend_from_slice(&TLS_VERSION);
|
||||
rec.extend_from_slice(&(size as u16).to_be_bytes());
|
||||
|
||||
if let Some(payload) = selected_payload {
|
||||
if size > 17 {
|
||||
let body_len = size - 17;
|
||||
let remaining = payload.len().saturating_sub(payload_offset);
|
||||
let copy_len = remaining.min(body_len);
|
||||
if copy_len > 0 {
|
||||
rec.extend_from_slice(&payload[payload_offset..payload_offset + copy_len]);
|
||||
payload_offset += copy_len;
|
||||
}
|
||||
if body_len > copy_len {
|
||||
rec.extend_from_slice(&rng.bytes(body_len - copy_len));
|
||||
}
|
||||
rec.push(0x16); // inner content type marker (handshake)
|
||||
rec.extend_from_slice(&rng.bytes(16)); // AEAD-like tag
|
||||
} else {
|
||||
rec.extend_from_slice(&rng.bytes(size));
|
||||
}
|
||||
} else if size > 17 {
|
||||
let body_len = size - 17;
|
||||
rec.extend_from_slice(&rng.bytes(body_len));
|
||||
rec.push(0x16); // inner content type marker (handshake)
|
||||
rec.extend_from_slice(&rng.bytes(16)); // AEAD-like tag
|
||||
} else {
|
||||
rec.extend_from_slice(&rng.bytes(size));
|
||||
}
|
||||
app_data.extend_from_slice(&rec);
|
||||
}
|
||||
|
||||
// --- Combine ---
|
||||
// Optional NewSessionTicket mimic records (opaque ApplicationData for fingerprint).
|
||||
let mut tickets = Vec::new();
|
||||
if new_session_tickets > 0 {
|
||||
for _ in 0..new_session_tickets {
|
||||
let ticket_len: usize = rng.range(48) + 48;
|
||||
let mut rec = Vec::with_capacity(5 + ticket_len);
|
||||
rec.push(TLS_RECORD_APPLICATION);
|
||||
rec.extend_from_slice(&TLS_VERSION);
|
||||
rec.extend_from_slice(&(ticket_len as u16).to_be_bytes());
|
||||
rec.extend_from_slice(&rng.bytes(ticket_len));
|
||||
tickets.extend_from_slice(&rec);
|
||||
}
|
||||
}
|
||||
|
||||
let mut response = Vec::with_capacity(server_hello.len() + change_cipher_spec.len() + app_data.len() + tickets.len());
|
||||
response.extend_from_slice(&server_hello);
|
||||
response.extend_from_slice(&change_cipher_spec);
|
||||
response.extend_from_slice(&app_data);
|
||||
response.extend_from_slice(&tickets);
|
||||
|
||||
// --- HMAC ---
|
||||
let mut hmac_input = Vec::with_capacity(TLS_DIGEST_LEN + response.len());
|
||||
hmac_input.extend_from_slice(client_digest);
|
||||
hmac_input.extend_from_slice(&response);
|
||||
let digest = sha256_hmac(secret, &hmac_input);
|
||||
response[TLS_DIGEST_POS..TLS_DIGEST_POS + TLS_DIGEST_LEN].copy_from_slice(&digest);
|
||||
|
||||
response
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use std::time::SystemTime;
|
||||
|
||||
use crate::tls_front::types::{CachedTlsData, ParsedServerHello, TlsCertPayload};
|
||||
|
||||
use super::build_emulated_server_hello;
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::protocol::constants::{
|
||||
TLS_RECORD_APPLICATION, TLS_RECORD_CHANGE_CIPHER, TLS_RECORD_HANDSHAKE,
|
||||
};
|
||||
|
||||
fn first_app_data_payload(response: &[u8]) -> &[u8] {
|
||||
let hello_len = u16::from_be_bytes([response[3], response[4]]) as usize;
|
||||
let ccs_start = 5 + hello_len;
|
||||
let ccs_len = u16::from_be_bytes([response[ccs_start + 3], response[ccs_start + 4]]) as usize;
|
||||
let app_start = ccs_start + 5 + ccs_len;
|
||||
let app_len = u16::from_be_bytes([response[app_start + 3], response[app_start + 4]]) as usize;
|
||||
&response[app_start + 5..app_start + 5 + app_len]
|
||||
}
|
||||
|
||||
fn make_cached(cert_payload: Option<TlsCertPayload>) -> CachedTlsData {
|
||||
CachedTlsData {
|
||||
server_hello_template: ParsedServerHello {
|
||||
version: [0x03, 0x03],
|
||||
random: [0u8; 32],
|
||||
session_id: Vec::new(),
|
||||
cipher_suite: [0x13, 0x01],
|
||||
compression: 0,
|
||||
extensions: Vec::new(),
|
||||
},
|
||||
cert_info: None,
|
||||
cert_payload,
|
||||
app_data_records_sizes: vec![64],
|
||||
total_app_data_len: 64,
|
||||
fetched_at: SystemTime::now(),
|
||||
domain: "example.com".to_string(),
|
||||
}
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_build_emulated_server_hello_uses_cached_cert_payload() {
|
||||
let cert_msg = vec![0x0b, 0x00, 0x00, 0x05, 0x00, 0xaa, 0xbb, 0xcc, 0xdd];
|
||||
let cached = make_cached(Some(TlsCertPayload {
|
||||
cert_chain_der: vec![vec![0x30, 0x01, 0x00]],
|
||||
certificate_message: cert_msg.clone(),
|
||||
}));
|
||||
let rng = SecureRandom::new();
|
||||
let response = build_emulated_server_hello(
|
||||
b"secret",
|
||||
&[0x11; 32],
|
||||
&[0x22; 16],
|
||||
&cached,
|
||||
true,
|
||||
&rng,
|
||||
None,
|
||||
0,
|
||||
);
|
||||
|
||||
assert_eq!(response[0], TLS_RECORD_HANDSHAKE);
|
||||
let hello_len = u16::from_be_bytes([response[3], response[4]]) as usize;
|
||||
let ccs_start = 5 + hello_len;
|
||||
assert_eq!(response[ccs_start], TLS_RECORD_CHANGE_CIPHER);
|
||||
let app_start = ccs_start + 6;
|
||||
assert_eq!(response[app_start], TLS_RECORD_APPLICATION);
|
||||
|
||||
let payload = first_app_data_payload(&response);
|
||||
assert!(payload.starts_with(&cert_msg));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_build_emulated_server_hello_random_fallback_when_no_cert_payload() {
|
||||
let cached = make_cached(None);
|
||||
let rng = SecureRandom::new();
|
||||
let response = build_emulated_server_hello(
|
||||
b"secret",
|
||||
&[0x22; 32],
|
||||
&[0x33; 16],
|
||||
&cached,
|
||||
true,
|
||||
&rng,
|
||||
None,
|
||||
0,
|
||||
);
|
||||
|
||||
let payload = first_app_data_payload(&response);
|
||||
assert!(payload.len() >= 64);
|
||||
assert_eq!(payload[payload.len() - 17], 0x16);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_build_emulated_server_hello_uses_compact_payload_after_first() {
|
||||
let cert_msg = vec![0x0b, 0x00, 0x00, 0x05, 0x00, 0xaa, 0xbb, 0xcc, 0xdd];
|
||||
let mut cached = make_cached(Some(TlsCertPayload {
|
||||
cert_chain_der: vec![vec![0x30, 0x01, 0x00]],
|
||||
certificate_message: cert_msg,
|
||||
}));
|
||||
cached.cert_info = Some(crate::tls_front::types::ParsedCertificateInfo {
|
||||
not_after_unix: Some(1_900_000_000),
|
||||
not_before_unix: Some(1_700_000_000),
|
||||
issuer_cn: Some("Issuer".to_string()),
|
||||
subject_cn: Some("example.com".to_string()),
|
||||
san_names: vec!["example.com".to_string(), "www.example.com".to_string()],
|
||||
});
|
||||
|
||||
let rng = SecureRandom::new();
|
||||
let response = build_emulated_server_hello(
|
||||
b"secret",
|
||||
&[0x44; 32],
|
||||
&[0x55; 16],
|
||||
&cached,
|
||||
false,
|
||||
&rng,
|
||||
None,
|
||||
0,
|
||||
);
|
||||
|
||||
let payload = first_app_data_payload(&response);
|
||||
assert!(payload.starts_with(b"CN=example.com"));
|
||||
}
|
||||
}
|
||||
756
src/tls_front/fetcher.rs
Normal file
756
src/tls_front/fetcher.rs
Normal file
@@ -0,0 +1,756 @@
|
||||
use std::sync::Arc;
|
||||
use std::time::Duration;
|
||||
|
||||
use anyhow::{Result, anyhow};
|
||||
use tokio::io::{AsyncRead, AsyncReadExt, AsyncWrite, AsyncWriteExt};
|
||||
use tokio::net::TcpStream;
|
||||
#[cfg(unix)]
|
||||
use tokio::net::UnixStream;
|
||||
use tokio::time::timeout;
|
||||
use tokio_rustls::client::TlsStream;
|
||||
use tokio_rustls::TlsConnector;
|
||||
use tracing::{debug, warn};
|
||||
|
||||
use rustls::client::danger::{HandshakeSignatureValid, ServerCertVerified, ServerCertVerifier};
|
||||
use rustls::client::ClientConfig;
|
||||
use rustls::pki_types::{CertificateDer, ServerName, UnixTime};
|
||||
use rustls::{DigitallySignedStruct, Error as RustlsError};
|
||||
|
||||
use x509_parser::prelude::FromDer;
|
||||
use x509_parser::certificate::X509Certificate;
|
||||
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::network::dns_overrides::resolve_socket_addr;
|
||||
use crate::protocol::constants::{TLS_RECORD_APPLICATION, TLS_RECORD_HANDSHAKE};
|
||||
use crate::transport::proxy_protocol::{ProxyProtocolV1Builder, ProxyProtocolV2Builder};
|
||||
use crate::tls_front::types::{
|
||||
ParsedCertificateInfo,
|
||||
ParsedServerHello,
|
||||
TlsCertPayload,
|
||||
TlsExtension,
|
||||
TlsFetchResult,
|
||||
};
|
||||
|
||||
/// No-op verifier: accept any certificate (we only need lengths and metadata).
|
||||
#[derive(Debug)]
|
||||
struct NoVerify;
|
||||
|
||||
impl ServerCertVerifier for NoVerify {
|
||||
fn verify_server_cert(
|
||||
&self,
|
||||
_end_entity: &CertificateDer<'_>,
|
||||
_intermediates: &[CertificateDer<'_>],
|
||||
_server_name: &ServerName<'_>,
|
||||
_ocsp: &[u8],
|
||||
_now: UnixTime,
|
||||
) -> Result<ServerCertVerified, RustlsError> {
|
||||
Ok(ServerCertVerified::assertion())
|
||||
}
|
||||
|
||||
fn verify_tls12_signature(
|
||||
&self,
|
||||
_message: &[u8],
|
||||
_cert: &CertificateDer<'_>,
|
||||
_dss: &DigitallySignedStruct,
|
||||
) -> Result<HandshakeSignatureValid, RustlsError> {
|
||||
Ok(HandshakeSignatureValid::assertion())
|
||||
}
|
||||
|
||||
fn verify_tls13_signature(
|
||||
&self,
|
||||
_message: &[u8],
|
||||
_cert: &CertificateDer<'_>,
|
||||
_dss: &DigitallySignedStruct,
|
||||
) -> Result<HandshakeSignatureValid, RustlsError> {
|
||||
Ok(HandshakeSignatureValid::assertion())
|
||||
}
|
||||
|
||||
fn supported_verify_schemes(&self) -> Vec<rustls::SignatureScheme> {
|
||||
use rustls::SignatureScheme::*;
|
||||
vec![
|
||||
RSA_PKCS1_SHA256,
|
||||
RSA_PSS_SHA256,
|
||||
ECDSA_NISTP256_SHA256,
|
||||
ECDSA_NISTP384_SHA384,
|
||||
]
|
||||
}
|
||||
}
|
||||
|
||||
fn build_client_config() -> Arc<ClientConfig> {
|
||||
let root = rustls::RootCertStore::empty();
|
||||
|
||||
let provider = rustls::crypto::ring::default_provider();
|
||||
let mut config = ClientConfig::builder_with_provider(Arc::new(provider))
|
||||
.with_protocol_versions(&[&rustls::version::TLS13, &rustls::version::TLS12])
|
||||
.expect("protocol versions")
|
||||
.with_root_certificates(root)
|
||||
.with_no_client_auth();
|
||||
|
||||
config
|
||||
.dangerous()
|
||||
.set_certificate_verifier(Arc::new(NoVerify));
|
||||
|
||||
Arc::new(config)
|
||||
}
|
||||
|
||||
fn build_client_hello(sni: &str, rng: &SecureRandom) -> Vec<u8> {
|
||||
// === ClientHello body ===
|
||||
let mut body = Vec::new();
|
||||
|
||||
// Legacy version (TLS 1.0) as in real ClientHello headers
|
||||
body.extend_from_slice(&[0x03, 0x03]);
|
||||
|
||||
// Random
|
||||
body.extend_from_slice(&rng.bytes(32));
|
||||
|
||||
// Session ID: empty
|
||||
body.push(0);
|
||||
|
||||
// Cipher suites (common minimal set, TLS1.3 + a few 1.2 fallbacks)
|
||||
let cipher_suites: [u8; 10] = [
|
||||
0x13, 0x01, // TLS_AES_128_GCM_SHA256
|
||||
0x13, 0x02, // TLS_AES_256_GCM_SHA384
|
||||
0x13, 0x03, // TLS_CHACHA20_POLY1305_SHA256
|
||||
0x00, 0x2f, // TLS_RSA_WITH_AES_128_CBC_SHA (legacy)
|
||||
0x00, 0xff, // RENEGOTIATION_INFO_SCSV
|
||||
];
|
||||
body.extend_from_slice(&(cipher_suites.len() as u16).to_be_bytes());
|
||||
body.extend_from_slice(&cipher_suites);
|
||||
|
||||
// Compression methods: null only
|
||||
body.push(1);
|
||||
body.push(0);
|
||||
|
||||
// === Extensions ===
|
||||
let mut exts = Vec::new();
|
||||
|
||||
// server_name (SNI)
|
||||
let sni_bytes = sni.as_bytes();
|
||||
let mut sni_ext = Vec::with_capacity(5 + sni_bytes.len());
|
||||
sni_ext.extend_from_slice(&(sni_bytes.len() as u16 + 3).to_be_bytes());
|
||||
sni_ext.push(0); // host_name
|
||||
sni_ext.extend_from_slice(&(sni_bytes.len() as u16).to_be_bytes());
|
||||
sni_ext.extend_from_slice(sni_bytes);
|
||||
exts.extend_from_slice(&0x0000u16.to_be_bytes());
|
||||
exts.extend_from_slice(&(sni_ext.len() as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&sni_ext);
|
||||
|
||||
// supported_groups
|
||||
let groups: [u16; 2] = [0x001d, 0x0017]; // x25519, secp256r1
|
||||
exts.extend_from_slice(&0x000au16.to_be_bytes());
|
||||
exts.extend_from_slice(&((2 + groups.len() * 2) as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&(groups.len() as u16 * 2).to_be_bytes());
|
||||
for g in groups { exts.extend_from_slice(&g.to_be_bytes()); }
|
||||
|
||||
// signature_algorithms
|
||||
let sig_algs: [u16; 4] = [0x0804, 0x0805, 0x0403, 0x0503]; // rsa_pss_rsae_sha256/384, ecdsa_secp256r1_sha256, rsa_pkcs1_sha256
|
||||
exts.extend_from_slice(&0x000du16.to_be_bytes());
|
||||
exts.extend_from_slice(&((2 + sig_algs.len() * 2) as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&(sig_algs.len() as u16 * 2).to_be_bytes());
|
||||
for a in sig_algs { exts.extend_from_slice(&a.to_be_bytes()); }
|
||||
|
||||
// supported_versions (TLS1.3 + TLS1.2)
|
||||
let versions: [u16; 2] = [0x0304, 0x0303];
|
||||
exts.extend_from_slice(&0x002bu16.to_be_bytes());
|
||||
exts.extend_from_slice(&((1 + versions.len() * 2) as u16).to_be_bytes());
|
||||
exts.push((versions.len() * 2) as u8);
|
||||
for v in versions { exts.extend_from_slice(&v.to_be_bytes()); }
|
||||
|
||||
// key_share (x25519)
|
||||
let key = gen_key_share(rng);
|
||||
let mut keyshare = Vec::with_capacity(4 + key.len());
|
||||
keyshare.extend_from_slice(&0x001du16.to_be_bytes()); // group
|
||||
keyshare.extend_from_slice(&(key.len() as u16).to_be_bytes());
|
||||
keyshare.extend_from_slice(&key);
|
||||
exts.extend_from_slice(&0x0033u16.to_be_bytes());
|
||||
exts.extend_from_slice(&((2 + keyshare.len()) as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&(keyshare.len() as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&keyshare);
|
||||
|
||||
// ALPN (http/1.1)
|
||||
let alpn_proto = b"http/1.1";
|
||||
exts.extend_from_slice(&0x0010u16.to_be_bytes());
|
||||
exts.extend_from_slice(&((2 + 1 + alpn_proto.len()) as u16).to_be_bytes());
|
||||
exts.extend_from_slice(&((1 + alpn_proto.len()) as u16).to_be_bytes());
|
||||
exts.push(alpn_proto.len() as u8);
|
||||
exts.extend_from_slice(alpn_proto);
|
||||
|
||||
// padding to reduce recognizability and keep length ~500 bytes
|
||||
const TARGET_EXT_LEN: usize = 180;
|
||||
if exts.len() < TARGET_EXT_LEN {
|
||||
let remaining = TARGET_EXT_LEN - exts.len();
|
||||
if remaining > 4 {
|
||||
let pad_len = remaining - 4; // minus type+len
|
||||
exts.extend_from_slice(&0x0015u16.to_be_bytes()); // padding extension
|
||||
exts.extend_from_slice(&(pad_len as u16).to_be_bytes());
|
||||
exts.resize(exts.len() + pad_len, 0);
|
||||
}
|
||||
}
|
||||
|
||||
// Extensions length prefix
|
||||
body.extend_from_slice(&(exts.len() as u16).to_be_bytes());
|
||||
body.extend_from_slice(&exts);
|
||||
|
||||
// === Handshake wrapper ===
|
||||
let mut handshake = Vec::new();
|
||||
handshake.push(0x01); // ClientHello
|
||||
let len_bytes = (body.len() as u32).to_be_bytes();
|
||||
handshake.extend_from_slice(&len_bytes[1..4]);
|
||||
handshake.extend_from_slice(&body);
|
||||
|
||||
// === Record ===
|
||||
let mut record = Vec::new();
|
||||
record.push(TLS_RECORD_HANDSHAKE);
|
||||
record.extend_from_slice(&[0x03, 0x01]); // legacy record version
|
||||
record.extend_from_slice(&(handshake.len() as u16).to_be_bytes());
|
||||
record.extend_from_slice(&handshake);
|
||||
|
||||
record
|
||||
}
|
||||
|
||||
fn gen_key_share(rng: &SecureRandom) -> [u8; 32] {
|
||||
let mut key = [0u8; 32];
|
||||
key.copy_from_slice(&rng.bytes(32));
|
||||
key
|
||||
}
|
||||
|
||||
async fn read_tls_record<S>(stream: &mut S) -> Result<(u8, Vec<u8>)>
|
||||
where
|
||||
S: AsyncRead + Unpin,
|
||||
{
|
||||
let mut header = [0u8; 5];
|
||||
stream.read_exact(&mut header).await?;
|
||||
let len = u16::from_be_bytes([header[3], header[4]]) as usize;
|
||||
let mut body = vec![0u8; len];
|
||||
stream.read_exact(&mut body).await?;
|
||||
Ok((header[0], body))
|
||||
}
|
||||
|
||||
fn parse_server_hello(body: &[u8]) -> Option<ParsedServerHello> {
|
||||
if body.len() < 4 || body[0] != 0x02 {
|
||||
return None;
|
||||
}
|
||||
|
||||
let msg_len = u32::from_be_bytes([0, body[1], body[2], body[3]]) as usize;
|
||||
if msg_len + 4 > body.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut pos = 4;
|
||||
let version = [*body.get(pos)?, *body.get(pos + 1)?];
|
||||
pos += 2;
|
||||
|
||||
let mut random = [0u8; 32];
|
||||
random.copy_from_slice(body.get(pos..pos + 32)?);
|
||||
pos += 32;
|
||||
|
||||
let session_len = *body.get(pos)? as usize;
|
||||
pos += 1;
|
||||
let session_id = body.get(pos..pos + session_len)?.to_vec();
|
||||
pos += session_len;
|
||||
|
||||
let cipher_suite = [*body.get(pos)?, *body.get(pos + 1)?];
|
||||
pos += 2;
|
||||
|
||||
let compression = *body.get(pos)?;
|
||||
pos += 1;
|
||||
|
||||
let ext_len = u16::from_be_bytes([*body.get(pos)?, *body.get(pos + 1)?]) as usize;
|
||||
pos += 2;
|
||||
let ext_end = pos.checked_add(ext_len)?;
|
||||
if ext_end > body.len() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut extensions = Vec::new();
|
||||
while pos + 4 <= ext_end {
|
||||
let etype = u16::from_be_bytes([body[pos], body[pos + 1]]);
|
||||
let elen = u16::from_be_bytes([body[pos + 2], body[pos + 3]]) as usize;
|
||||
pos += 4;
|
||||
let data = body.get(pos..pos + elen)?.to_vec();
|
||||
pos += elen;
|
||||
extensions.push(TlsExtension { ext_type: etype, data });
|
||||
}
|
||||
|
||||
Some(ParsedServerHello {
|
||||
version,
|
||||
random,
|
||||
session_id,
|
||||
cipher_suite,
|
||||
compression,
|
||||
extensions,
|
||||
})
|
||||
}
|
||||
|
||||
fn parse_cert_info(certs: &[CertificateDer<'static>]) -> Option<ParsedCertificateInfo> {
|
||||
let first = certs.first()?;
|
||||
let (_rem, cert) = X509Certificate::from_der(first.as_ref()).ok()?;
|
||||
|
||||
let not_before = Some(cert.validity().not_before.to_datetime().unix_timestamp());
|
||||
let not_after = Some(cert.validity().not_after.to_datetime().unix_timestamp());
|
||||
|
||||
let issuer_cn = cert
|
||||
.issuer()
|
||||
.iter_common_name()
|
||||
.next()
|
||||
.and_then(|cn| cn.as_str().ok())
|
||||
.map(|s| s.to_string());
|
||||
|
||||
let subject_cn = cert
|
||||
.subject()
|
||||
.iter_common_name()
|
||||
.next()
|
||||
.and_then(|cn| cn.as_str().ok())
|
||||
.map(|s| s.to_string());
|
||||
|
||||
let san_names = cert
|
||||
.subject_alternative_name()
|
||||
.ok()
|
||||
.flatten()
|
||||
.map(|san| {
|
||||
san.value
|
||||
.general_names
|
||||
.iter()
|
||||
.filter_map(|gn| match gn {
|
||||
x509_parser::extensions::GeneralName::DNSName(n) => Some(n.to_string()),
|
||||
_ => None,
|
||||
})
|
||||
.collect::<Vec<_>>()
|
||||
})
|
||||
.unwrap_or_default();
|
||||
|
||||
Some(ParsedCertificateInfo {
|
||||
not_after_unix: not_after,
|
||||
not_before_unix: not_before,
|
||||
issuer_cn,
|
||||
subject_cn,
|
||||
san_names,
|
||||
})
|
||||
}
|
||||
|
||||
fn u24_bytes(value: usize) -> Option<[u8; 3]> {
|
||||
if value > 0x00ff_ffff {
|
||||
return None;
|
||||
}
|
||||
Some([
|
||||
((value >> 16) & 0xff) as u8,
|
||||
((value >> 8) & 0xff) as u8,
|
||||
(value & 0xff) as u8,
|
||||
])
|
||||
}
|
||||
|
||||
async fn connect_with_dns_override(
|
||||
host: &str,
|
||||
port: u16,
|
||||
connect_timeout: Duration,
|
||||
) -> Result<TcpStream> {
|
||||
if let Some(addr) = resolve_socket_addr(host, port) {
|
||||
return Ok(timeout(connect_timeout, TcpStream::connect(addr)).await??);
|
||||
}
|
||||
Ok(timeout(connect_timeout, TcpStream::connect((host, port))).await??)
|
||||
}
|
||||
|
||||
async fn connect_tcp_with_upstream(
|
||||
host: &str,
|
||||
port: u16,
|
||||
connect_timeout: Duration,
|
||||
upstream: Option<std::sync::Arc<crate::transport::UpstreamManager>>,
|
||||
) -> Result<TcpStream> {
|
||||
if let Some(manager) = upstream {
|
||||
if let Some(addr) = resolve_socket_addr(host, port) {
|
||||
match manager.connect(addr, None, None).await {
|
||||
Ok(stream) => return Ok(stream),
|
||||
Err(e) => {
|
||||
warn!(
|
||||
host = %host,
|
||||
port = port,
|
||||
error = %e,
|
||||
"Upstream connect failed, using direct connect"
|
||||
);
|
||||
}
|
||||
}
|
||||
} else if let Ok(mut addrs) = tokio::net::lookup_host((host, port)).await {
|
||||
if let Some(addr) = addrs.find(|a| a.is_ipv4()) {
|
||||
match manager.connect(addr, None, None).await {
|
||||
Ok(stream) => return Ok(stream),
|
||||
Err(e) => {
|
||||
warn!(
|
||||
host = %host,
|
||||
port = port,
|
||||
error = %e,
|
||||
"Upstream connect failed, using direct connect"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
connect_with_dns_override(host, port, connect_timeout).await
|
||||
}
|
||||
|
||||
fn encode_tls13_certificate_message(cert_chain_der: &[Vec<u8>]) -> Option<Vec<u8>> {
|
||||
if cert_chain_der.is_empty() {
|
||||
return None;
|
||||
}
|
||||
|
||||
let mut certificate_list = Vec::new();
|
||||
for cert in cert_chain_der {
|
||||
if cert.is_empty() {
|
||||
return None;
|
||||
}
|
||||
certificate_list.extend_from_slice(&u24_bytes(cert.len())?);
|
||||
certificate_list.extend_from_slice(cert);
|
||||
certificate_list.extend_from_slice(&0u16.to_be_bytes()); // cert_entry extensions
|
||||
}
|
||||
|
||||
// Certificate = context_len(1) + certificate_list_len(3) + entries
|
||||
let body_len = 1usize
|
||||
.checked_add(3)?
|
||||
.checked_add(certificate_list.len())?;
|
||||
|
||||
let mut message = Vec::with_capacity(4 + body_len);
|
||||
message.push(0x0b); // HandshakeType::certificate
|
||||
message.extend_from_slice(&u24_bytes(body_len)?);
|
||||
message.push(0x00); // certificate_request_context length
|
||||
message.extend_from_slice(&u24_bytes(certificate_list.len())?);
|
||||
message.extend_from_slice(&certificate_list);
|
||||
Some(message)
|
||||
}
|
||||
|
||||
async fn fetch_via_raw_tls_stream<S>(
|
||||
mut stream: S,
|
||||
sni: &str,
|
||||
connect_timeout: Duration,
|
||||
proxy_protocol: u8,
|
||||
) -> Result<TlsFetchResult>
|
||||
where
|
||||
S: AsyncRead + AsyncWrite + Unpin,
|
||||
{
|
||||
let rng = SecureRandom::new();
|
||||
let client_hello = build_client_hello(sni, &rng);
|
||||
timeout(connect_timeout, async {
|
||||
if proxy_protocol > 0 {
|
||||
let header = match proxy_protocol {
|
||||
2 => ProxyProtocolV2Builder::new().build(),
|
||||
_ => ProxyProtocolV1Builder::new().build(),
|
||||
};
|
||||
stream.write_all(&header).await?;
|
||||
}
|
||||
stream.write_all(&client_hello).await?;
|
||||
stream.flush().await?;
|
||||
Ok::<(), std::io::Error>(())
|
||||
})
|
||||
.await??;
|
||||
|
||||
let mut records = Vec::new();
|
||||
// Read up to 4 records: ServerHello, CCS, and up to two ApplicationData.
|
||||
for _ in 0..4 {
|
||||
match timeout(connect_timeout, read_tls_record(&mut stream)).await {
|
||||
Ok(Ok(rec)) => records.push(rec),
|
||||
Ok(Err(e)) => return Err(e),
|
||||
Err(_) => break,
|
||||
}
|
||||
if records.len() >= 3 && records.iter().any(|(t, _)| *t == TLS_RECORD_APPLICATION) {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
let mut app_sizes = Vec::new();
|
||||
let mut server_hello = None;
|
||||
for (t, body) in &records {
|
||||
if *t == TLS_RECORD_HANDSHAKE && server_hello.is_none() {
|
||||
server_hello = parse_server_hello(body);
|
||||
} else if *t == TLS_RECORD_APPLICATION {
|
||||
app_sizes.push(body.len());
|
||||
}
|
||||
}
|
||||
|
||||
let parsed = server_hello.ok_or_else(|| anyhow!("ServerHello not received"))?;
|
||||
let total_app_data_len = app_sizes.iter().sum::<usize>().max(1024);
|
||||
|
||||
Ok(TlsFetchResult {
|
||||
server_hello_parsed: parsed,
|
||||
app_data_records_sizes: if app_sizes.is_empty() {
|
||||
vec![total_app_data_len]
|
||||
} else {
|
||||
app_sizes
|
||||
},
|
||||
total_app_data_len,
|
||||
cert_info: None,
|
||||
cert_payload: None,
|
||||
})
|
||||
}
|
||||
|
||||
async fn fetch_via_raw_tls(
|
||||
host: &str,
|
||||
port: u16,
|
||||
sni: &str,
|
||||
connect_timeout: Duration,
|
||||
upstream: Option<std::sync::Arc<crate::transport::UpstreamManager>>,
|
||||
proxy_protocol: u8,
|
||||
unix_sock: Option<&str>,
|
||||
) -> Result<TlsFetchResult> {
|
||||
#[cfg(unix)]
|
||||
if let Some(sock_path) = unix_sock {
|
||||
match timeout(connect_timeout, UnixStream::connect(sock_path)).await {
|
||||
Ok(Ok(stream)) => {
|
||||
debug!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
"Raw TLS fetch using mask unix socket"
|
||||
);
|
||||
return fetch_via_raw_tls_stream(stream, sni, connect_timeout, proxy_protocol).await;
|
||||
}
|
||||
Ok(Err(e)) => {
|
||||
warn!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
error = %e,
|
||||
"Raw TLS unix socket connect failed, falling back to TCP"
|
||||
);
|
||||
}
|
||||
Err(_) => {
|
||||
warn!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
"Raw TLS unix socket connect timed out, falling back to TCP"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(not(unix))]
|
||||
let _ = unix_sock;
|
||||
|
||||
let stream = connect_tcp_with_upstream(host, port, connect_timeout, upstream).await?;
|
||||
fetch_via_raw_tls_stream(stream, sni, connect_timeout, proxy_protocol).await
|
||||
}
|
||||
|
||||
async fn fetch_via_rustls_stream<S>(
|
||||
mut stream: S,
|
||||
host: &str,
|
||||
sni: &str,
|
||||
proxy_protocol: u8,
|
||||
) -> Result<TlsFetchResult>
|
||||
where
|
||||
S: AsyncRead + AsyncWrite + Unpin,
|
||||
{
|
||||
// rustls handshake path for certificate and basic negotiated metadata.
|
||||
if proxy_protocol > 0 {
|
||||
let header = match proxy_protocol {
|
||||
2 => ProxyProtocolV2Builder::new().build(),
|
||||
_ => ProxyProtocolV1Builder::new().build(),
|
||||
};
|
||||
stream.write_all(&header).await?;
|
||||
stream.flush().await?;
|
||||
}
|
||||
|
||||
let config = build_client_config();
|
||||
let connector = TlsConnector::from(config);
|
||||
|
||||
let server_name = ServerName::try_from(sni.to_owned())
|
||||
.or_else(|_| ServerName::try_from(host.to_owned()))
|
||||
.map_err(|_| RustlsError::General("invalid SNI".into()))?;
|
||||
|
||||
let tls_stream: TlsStream<S> = connector.connect(server_name, stream).await?;
|
||||
|
||||
// Extract negotiated parameters and certificates
|
||||
let (_io, session) = tls_stream.get_ref();
|
||||
let cipher_suite = session
|
||||
.negotiated_cipher_suite()
|
||||
.map(|s| u16::from(s.suite()).to_be_bytes())
|
||||
.unwrap_or([0x13, 0x01]);
|
||||
|
||||
let certs: Vec<CertificateDer<'static>> = session
|
||||
.peer_certificates()
|
||||
.map(|slice| slice.to_vec())
|
||||
.unwrap_or_default();
|
||||
let cert_chain_der: Vec<Vec<u8>> = certs.iter().map(|c| c.as_ref().to_vec()).collect();
|
||||
let cert_payload = encode_tls13_certificate_message(&cert_chain_der).map(|certificate_message| {
|
||||
TlsCertPayload {
|
||||
cert_chain_der: cert_chain_der.clone(),
|
||||
certificate_message,
|
||||
}
|
||||
});
|
||||
|
||||
let total_cert_len = cert_payload
|
||||
.as_ref()
|
||||
.map(|payload| payload.certificate_message.len())
|
||||
.unwrap_or_else(|| cert_chain_der.iter().map(Vec::len).sum::<usize>())
|
||||
.max(1024);
|
||||
let cert_info = parse_cert_info(&certs);
|
||||
|
||||
// Heuristic: split across two records if large to mimic real servers a bit.
|
||||
let app_data_records_sizes = if total_cert_len > 3000 {
|
||||
vec![total_cert_len / 2, total_cert_len - total_cert_len / 2]
|
||||
} else {
|
||||
vec![total_cert_len]
|
||||
};
|
||||
|
||||
let parsed = ParsedServerHello {
|
||||
version: [0x03, 0x03],
|
||||
random: [0u8; 32],
|
||||
session_id: Vec::new(),
|
||||
cipher_suite,
|
||||
compression: 0,
|
||||
extensions: Vec::new(),
|
||||
};
|
||||
|
||||
debug!(
|
||||
sni = %sni,
|
||||
len = total_cert_len,
|
||||
cipher = format!("0x{:04x}", u16::from_be_bytes(cipher_suite)),
|
||||
has_cert_payload = cert_payload.is_some(),
|
||||
"Fetched TLS metadata via rustls"
|
||||
);
|
||||
|
||||
Ok(TlsFetchResult {
|
||||
server_hello_parsed: parsed,
|
||||
app_data_records_sizes: app_data_records_sizes.clone(),
|
||||
total_app_data_len: app_data_records_sizes.iter().sum(),
|
||||
cert_info,
|
||||
cert_payload,
|
||||
})
|
||||
}
|
||||
|
||||
async fn fetch_via_rustls(
|
||||
host: &str,
|
||||
port: u16,
|
||||
sni: &str,
|
||||
connect_timeout: Duration,
|
||||
upstream: Option<std::sync::Arc<crate::transport::UpstreamManager>>,
|
||||
proxy_protocol: u8,
|
||||
unix_sock: Option<&str>,
|
||||
) -> Result<TlsFetchResult> {
|
||||
#[cfg(unix)]
|
||||
if let Some(sock_path) = unix_sock {
|
||||
match timeout(connect_timeout, UnixStream::connect(sock_path)).await {
|
||||
Ok(Ok(stream)) => {
|
||||
debug!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
"Rustls fetch using mask unix socket"
|
||||
);
|
||||
return fetch_via_rustls_stream(stream, host, sni, proxy_protocol).await;
|
||||
}
|
||||
Ok(Err(e)) => {
|
||||
warn!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
error = %e,
|
||||
"Rustls unix socket connect failed, falling back to TCP"
|
||||
);
|
||||
}
|
||||
Err(_) => {
|
||||
warn!(
|
||||
sni = %sni,
|
||||
sock = %sock_path,
|
||||
"Rustls unix socket connect timed out, falling back to TCP"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(not(unix))]
|
||||
let _ = unix_sock;
|
||||
|
||||
let stream = connect_tcp_with_upstream(host, port, connect_timeout, upstream).await?;
|
||||
fetch_via_rustls_stream(stream, host, sni, proxy_protocol).await
|
||||
}
|
||||
|
||||
/// Fetch real TLS metadata for the given SNI.
|
||||
///
|
||||
/// Strategy:
|
||||
/// 1) Probe raw TLS for realistic ServerHello and ApplicationData record sizes.
|
||||
/// 2) Fetch certificate chain via rustls to build cert payload.
|
||||
/// 3) Merge both when possible; otherwise auto-fallback to whichever succeeded.
|
||||
pub async fn fetch_real_tls(
|
||||
host: &str,
|
||||
port: u16,
|
||||
sni: &str,
|
||||
connect_timeout: Duration,
|
||||
upstream: Option<std::sync::Arc<crate::transport::UpstreamManager>>,
|
||||
proxy_protocol: u8,
|
||||
unix_sock: Option<&str>,
|
||||
) -> Result<TlsFetchResult> {
|
||||
let raw_result = match fetch_via_raw_tls(
|
||||
host,
|
||||
port,
|
||||
sni,
|
||||
connect_timeout,
|
||||
upstream.clone(),
|
||||
proxy_protocol,
|
||||
unix_sock,
|
||||
)
|
||||
.await
|
||||
{
|
||||
Ok(res) => Some(res),
|
||||
Err(e) => {
|
||||
warn!(sni = %sni, error = %e, "Raw TLS fetch failed");
|
||||
None
|
||||
}
|
||||
};
|
||||
|
||||
match fetch_via_rustls(
|
||||
host,
|
||||
port,
|
||||
sni,
|
||||
connect_timeout,
|
||||
upstream,
|
||||
proxy_protocol,
|
||||
unix_sock,
|
||||
)
|
||||
.await
|
||||
{
|
||||
Ok(rustls_result) => {
|
||||
if let Some(mut raw) = raw_result {
|
||||
raw.cert_info = rustls_result.cert_info;
|
||||
raw.cert_payload = rustls_result.cert_payload;
|
||||
debug!(sni = %sni, "Fetched TLS metadata via raw probe + rustls cert chain");
|
||||
Ok(raw)
|
||||
} else {
|
||||
Ok(rustls_result)
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
if let Some(raw) = raw_result {
|
||||
warn!(sni = %sni, error = %e, "Rustls cert fetch failed, using raw TLS metadata only");
|
||||
Ok(raw)
|
||||
} else {
|
||||
Err(e)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::encode_tls13_certificate_message;
|
||||
|
||||
fn read_u24(bytes: &[u8]) -> usize {
|
||||
((bytes[0] as usize) << 16) | ((bytes[1] as usize) << 8) | (bytes[2] as usize)
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_encode_tls13_certificate_message_single_cert() {
|
||||
let cert = vec![0x30, 0x03, 0x02, 0x01, 0x01];
|
||||
let message = encode_tls13_certificate_message(&[cert.clone()]).expect("message");
|
||||
|
||||
assert_eq!(message[0], 0x0b);
|
||||
assert_eq!(read_u24(&message[1..4]), message.len() - 4);
|
||||
assert_eq!(message[4], 0x00);
|
||||
|
||||
let cert_list_len = read_u24(&message[5..8]);
|
||||
assert_eq!(cert_list_len, cert.len() + 5);
|
||||
|
||||
let cert_len = read_u24(&message[8..11]);
|
||||
assert_eq!(cert_len, cert.len());
|
||||
assert_eq!(&message[11..11 + cert.len()], cert.as_slice());
|
||||
assert_eq!(&message[11 + cert.len()..13 + cert.len()], &[0x00, 0x00]);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn test_encode_tls13_certificate_message_empty_chain() {
|
||||
assert!(encode_tls13_certificate_message(&[]).is_none());
|
||||
}
|
||||
}
|
||||
8
src/tls_front/mod.rs
Normal file
8
src/tls_front/mod.rs
Normal file
@@ -0,0 +1,8 @@
|
||||
pub mod types;
|
||||
pub mod cache;
|
||||
pub mod fetcher;
|
||||
pub mod emulator;
|
||||
|
||||
pub use cache::TlsFrontCache;
|
||||
#[allow(unused_imports)]
|
||||
pub use types::{CachedTlsData, TlsFetchResult};
|
||||
68
src/tls_front/types.rs
Normal file
68
src/tls_front/types.rs
Normal file
@@ -0,0 +1,68 @@
|
||||
use std::time::SystemTime;
|
||||
use serde::{Serialize, Deserialize};
|
||||
|
||||
/// Parsed representation of an unencrypted TLS ServerHello.
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct ParsedServerHello {
|
||||
pub version: [u8; 2],
|
||||
pub random: [u8; 32],
|
||||
pub session_id: Vec<u8>,
|
||||
pub cipher_suite: [u8; 2],
|
||||
pub compression: u8,
|
||||
pub extensions: Vec<TlsExtension>,
|
||||
}
|
||||
|
||||
/// Generic TLS extension container.
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct TlsExtension {
|
||||
pub ext_type: u16,
|
||||
pub data: Vec<u8>,
|
||||
}
|
||||
|
||||
/// Basic certificate metadata (optional, informative).
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct ParsedCertificateInfo {
|
||||
pub not_after_unix: Option<i64>,
|
||||
pub not_before_unix: Option<i64>,
|
||||
pub issuer_cn: Option<String>,
|
||||
pub subject_cn: Option<String>,
|
||||
pub san_names: Vec<String>,
|
||||
}
|
||||
|
||||
/// TLS certificate payload captured from profiled upstream.
|
||||
///
|
||||
/// `certificate_message` stores an encoded TLS 1.3 Certificate handshake
|
||||
/// message body that can be replayed as opaque ApplicationData bytes in FakeTLS.
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct TlsCertPayload {
|
||||
pub cert_chain_der: Vec<Vec<u8>>,
|
||||
pub certificate_message: Vec<u8>,
|
||||
}
|
||||
|
||||
/// Cached data per SNI used by the emulator.
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct CachedTlsData {
|
||||
pub server_hello_template: ParsedServerHello,
|
||||
pub cert_info: Option<ParsedCertificateInfo>,
|
||||
#[serde(default)]
|
||||
pub cert_payload: Option<TlsCertPayload>,
|
||||
pub app_data_records_sizes: Vec<usize>,
|
||||
pub total_app_data_len: usize,
|
||||
#[serde(default = "now_system_time", skip_serializing, skip_deserializing)]
|
||||
pub fetched_at: SystemTime,
|
||||
pub domain: String,
|
||||
}
|
||||
|
||||
fn now_system_time() -> SystemTime {
|
||||
SystemTime::now()
|
||||
}
|
||||
|
||||
/// Result of attempting to fetch real TLS artifacts.
|
||||
#[derive(Debug, Clone, Serialize, Deserialize)]
|
||||
pub struct TlsFetchResult {
|
||||
pub server_hello_parsed: ParsedServerHello,
|
||||
pub app_data_records_sizes: Vec<usize>,
|
||||
pub total_app_data_len: usize,
|
||||
pub cert_info: Option<ParsedCertificateInfo>,
|
||||
pub cert_payload: Option<TlsCertPayload>,
|
||||
}
|
||||
249
src/transport/middle_proxy/codec.rs
Normal file
249
src/transport/middle_proxy/codec.rs
Normal file
@@ -0,0 +1,249 @@
|
||||
use tokio::io::{AsyncReadExt, AsyncWriteExt};
|
||||
|
||||
use crate::crypto::{AesCbc, crc32, crc32c};
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::protocol::constants::*;
|
||||
|
||||
/// Commands sent to dedicated writer tasks to avoid mutex contention on TCP writes.
|
||||
pub(crate) enum WriterCommand {
|
||||
Data(Vec<u8>),
|
||||
DataAndFlush(Vec<u8>),
|
||||
Close,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
|
||||
pub(crate) enum RpcChecksumMode {
|
||||
Crc32,
|
||||
Crc32c,
|
||||
}
|
||||
|
||||
impl RpcChecksumMode {
|
||||
pub(crate) fn from_handshake_flags(flags: u32) -> Self {
|
||||
if (flags & rpc_crypto_flags::USE_CRC32C) != 0 {
|
||||
Self::Crc32c
|
||||
} else {
|
||||
Self::Crc32
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) fn advertised_flags(self) -> u32 {
|
||||
match self {
|
||||
Self::Crc32 => 0,
|
||||
Self::Crc32c => rpc_crypto_flags::USE_CRC32C,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) fn rpc_crc(mode: RpcChecksumMode, data: &[u8]) -> u32 {
|
||||
match mode {
|
||||
RpcChecksumMode::Crc32 => crc32(data),
|
||||
RpcChecksumMode::Crc32c => crc32c(data),
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) fn build_rpc_frame(seq_no: i32, payload: &[u8], crc_mode: RpcChecksumMode) -> Vec<u8> {
|
||||
let total_len = (4 + 4 + payload.len() + 4) as u32;
|
||||
let mut frame = Vec::with_capacity(total_len as usize);
|
||||
frame.extend_from_slice(&total_len.to_le_bytes());
|
||||
frame.extend_from_slice(&seq_no.to_le_bytes());
|
||||
frame.extend_from_slice(payload);
|
||||
let c = rpc_crc(crc_mode, &frame);
|
||||
frame.extend_from_slice(&c.to_le_bytes());
|
||||
frame
|
||||
}
|
||||
|
||||
pub(crate) async fn read_rpc_frame_plaintext(
|
||||
rd: &mut (impl AsyncReadExt + Unpin),
|
||||
) -> Result<(i32, Vec<u8>)> {
|
||||
let mut len_buf = [0u8; 4];
|
||||
rd.read_exact(&mut len_buf).await.map_err(ProxyError::Io)?;
|
||||
let total_len = u32::from_le_bytes(len_buf) as usize;
|
||||
|
||||
if !(12..=(1 << 24)).contains(&total_len) {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Bad RPC frame length: {total_len}"
|
||||
)));
|
||||
}
|
||||
|
||||
let mut rest = vec![0u8; total_len - 4];
|
||||
rd.read_exact(&mut rest).await.map_err(ProxyError::Io)?;
|
||||
|
||||
let mut full = Vec::with_capacity(total_len);
|
||||
full.extend_from_slice(&len_buf);
|
||||
full.extend_from_slice(&rest);
|
||||
|
||||
let crc_offset = total_len - 4;
|
||||
let expected_crc = u32::from_le_bytes(full[crc_offset..crc_offset + 4].try_into().unwrap());
|
||||
let actual_crc = rpc_crc(RpcChecksumMode::Crc32, &full[..crc_offset]);
|
||||
if expected_crc != actual_crc {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"CRC mismatch: 0x{expected_crc:08x} vs 0x{actual_crc:08x}"
|
||||
)));
|
||||
}
|
||||
|
||||
let seq_no = i32::from_le_bytes(full[4..8].try_into().unwrap());
|
||||
let payload = full[8..crc_offset].to_vec();
|
||||
Ok((seq_no, payload))
|
||||
}
|
||||
|
||||
pub(crate) fn build_nonce_payload(key_selector: u32, crypto_ts: u32, nonce: &[u8; 16]) -> [u8; 32] {
|
||||
let mut p = [0u8; 32];
|
||||
p[0..4].copy_from_slice(&RPC_NONCE_U32.to_le_bytes());
|
||||
p[4..8].copy_from_slice(&key_selector.to_le_bytes());
|
||||
p[8..12].copy_from_slice(&RPC_CRYPTO_AES_U32.to_le_bytes());
|
||||
p[12..16].copy_from_slice(&crypto_ts.to_le_bytes());
|
||||
p[16..32].copy_from_slice(nonce);
|
||||
p
|
||||
}
|
||||
|
||||
pub(crate) fn parse_nonce_payload(d: &[u8]) -> Result<(u32, u32, u32, [u8; 16])> {
|
||||
if d.len() < 32 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Nonce payload too short: {} bytes",
|
||||
d.len()
|
||||
)));
|
||||
}
|
||||
|
||||
let t = u32::from_le_bytes(d[0..4].try_into().unwrap());
|
||||
if t != RPC_NONCE_U32 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Expected RPC_NONCE 0x{RPC_NONCE_U32:08x}, got 0x{t:08x}"
|
||||
)));
|
||||
}
|
||||
|
||||
let key_select = u32::from_le_bytes(d[4..8].try_into().unwrap());
|
||||
let schema = u32::from_le_bytes(d[8..12].try_into().unwrap());
|
||||
let ts = u32::from_le_bytes(d[12..16].try_into().unwrap());
|
||||
let mut nonce = [0u8; 16];
|
||||
nonce.copy_from_slice(&d[16..32]);
|
||||
Ok((key_select, schema, ts, nonce))
|
||||
}
|
||||
|
||||
pub(crate) fn build_handshake_payload(
|
||||
our_ip: [u8; 4],
|
||||
our_port: u16,
|
||||
peer_ip: [u8; 4],
|
||||
peer_port: u16,
|
||||
flags: u32,
|
||||
) -> [u8; 32] {
|
||||
let mut p = [0u8; 32];
|
||||
p[0..4].copy_from_slice(&RPC_HANDSHAKE_U32.to_le_bytes());
|
||||
p[4..8].copy_from_slice(&flags.to_le_bytes());
|
||||
|
||||
// process_id sender_pid
|
||||
p[8..12].copy_from_slice(&our_ip);
|
||||
p[12..14].copy_from_slice(&our_port.to_le_bytes());
|
||||
p[14..16].copy_from_slice(&process_pid16().to_le_bytes());
|
||||
p[16..20].copy_from_slice(&process_utime().to_le_bytes());
|
||||
|
||||
// process_id peer_pid
|
||||
p[20..24].copy_from_slice(&peer_ip);
|
||||
p[24..26].copy_from_slice(&peer_port.to_le_bytes());
|
||||
p[26..28].copy_from_slice(&0u16.to_le_bytes());
|
||||
p[28..32].copy_from_slice(&0u32.to_le_bytes());
|
||||
p
|
||||
}
|
||||
|
||||
pub(crate) fn parse_handshake_flags(payload: &[u8]) -> Result<u32> {
|
||||
if payload.len() != 32 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Bad handshake payload len: {}",
|
||||
payload.len()
|
||||
)));
|
||||
}
|
||||
let hs_type = u32::from_le_bytes(payload[0..4].try_into().unwrap());
|
||||
if hs_type != RPC_HANDSHAKE_U32 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Expected HANDSHAKE 0x{RPC_HANDSHAKE_U32:08x}, got 0x{hs_type:08x}"
|
||||
)));
|
||||
}
|
||||
Ok(u32::from_le_bytes(payload[4..8].try_into().unwrap()))
|
||||
}
|
||||
|
||||
fn process_pid16() -> u16 {
|
||||
(std::process::id() & 0xffff) as u16
|
||||
}
|
||||
|
||||
fn process_utime() -> u32 {
|
||||
std::time::SystemTime::now()
|
||||
.duration_since(std::time::UNIX_EPOCH)
|
||||
.unwrap_or_default()
|
||||
.as_secs() as u32
|
||||
}
|
||||
|
||||
pub(crate) fn cbc_encrypt_padded(
|
||||
key: &[u8; 32],
|
||||
iv: &[u8; 16],
|
||||
plaintext: &[u8],
|
||||
) -> Result<(Vec<u8>, [u8; 16])> {
|
||||
let pad = (16 - (plaintext.len() % 16)) % 16;
|
||||
let mut buf = plaintext.to_vec();
|
||||
let pad_pattern: [u8; 4] = [0x04, 0x00, 0x00, 0x00];
|
||||
for i in 0..pad {
|
||||
buf.push(pad_pattern[i % 4]);
|
||||
}
|
||||
|
||||
let cipher = AesCbc::new(*key, *iv);
|
||||
cipher
|
||||
.encrypt_in_place(&mut buf)
|
||||
.map_err(|e| ProxyError::Crypto(format!("CBC encrypt: {e}")))?;
|
||||
|
||||
let mut new_iv = [0u8; 16];
|
||||
if buf.len() >= 16 {
|
||||
new_iv.copy_from_slice(&buf[buf.len() - 16..]);
|
||||
}
|
||||
Ok((buf, new_iv))
|
||||
}
|
||||
|
||||
pub(crate) fn cbc_decrypt_inplace(
|
||||
key: &[u8; 32],
|
||||
iv: &[u8; 16],
|
||||
data: &mut [u8],
|
||||
) -> Result<[u8; 16]> {
|
||||
let mut new_iv = [0u8; 16];
|
||||
if data.len() >= 16 {
|
||||
new_iv.copy_from_slice(&data[data.len() - 16..]);
|
||||
}
|
||||
|
||||
AesCbc::new(*key, *iv)
|
||||
.decrypt_in_place(data)
|
||||
.map_err(|e| ProxyError::Crypto(format!("CBC decrypt: {e}")))?;
|
||||
Ok(new_iv)
|
||||
}
|
||||
|
||||
pub(crate) struct RpcWriter {
|
||||
pub(crate) writer: tokio::io::WriteHalf<tokio::net::TcpStream>,
|
||||
pub(crate) key: [u8; 32],
|
||||
pub(crate) iv: [u8; 16],
|
||||
pub(crate) seq_no: i32,
|
||||
pub(crate) crc_mode: RpcChecksumMode,
|
||||
}
|
||||
|
||||
impl RpcWriter {
|
||||
pub(crate) async fn send(&mut self, payload: &[u8]) -> Result<()> {
|
||||
let frame = build_rpc_frame(self.seq_no, payload, self.crc_mode);
|
||||
self.seq_no = self.seq_no.wrapping_add(1);
|
||||
|
||||
let pad = (16 - (frame.len() % 16)) % 16;
|
||||
let mut buf = frame;
|
||||
let pad_pattern: [u8; 4] = [0x04, 0x00, 0x00, 0x00];
|
||||
for i in 0..pad {
|
||||
buf.push(pad_pattern[i % 4]);
|
||||
}
|
||||
|
||||
let cipher = AesCbc::new(self.key, self.iv);
|
||||
cipher
|
||||
.encrypt_in_place(&mut buf)
|
||||
.map_err(|e| ProxyError::Crypto(format!("{e}")))?;
|
||||
|
||||
if buf.len() >= 16 {
|
||||
self.iv.copy_from_slice(&buf[buf.len() - 16..]);
|
||||
}
|
||||
self.writer.write_all(&buf).await.map_err(ProxyError::Io)
|
||||
}
|
||||
|
||||
pub(crate) async fn send_and_flush(&mut self, payload: &[u8]) -> Result<()> {
|
||||
self.send(payload).await?;
|
||||
self.writer.flush().await.map_err(ProxyError::Io)
|
||||
}
|
||||
}
|
||||
592
src/transport/middle_proxy/config_updater.rs
Normal file
592
src/transport/middle_proxy/config_updater.rs
Normal file
@@ -0,0 +1,592 @@
|
||||
use std::collections::HashMap;
|
||||
use std::hash::{DefaultHasher, Hash, Hasher};
|
||||
use std::net::IpAddr;
|
||||
use std::path::Path;
|
||||
use std::sync::Arc;
|
||||
use std::time::Duration;
|
||||
|
||||
use httpdate;
|
||||
use tokio::sync::{mpsc, watch};
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::ProxyConfig;
|
||||
use crate::error::Result;
|
||||
|
||||
use super::MePool;
|
||||
use super::rotation::{MeReinitTrigger, enqueue_reinit_trigger};
|
||||
use super::secret::download_proxy_secret_with_max_len;
|
||||
use std::time::SystemTime;
|
||||
|
||||
async fn retry_fetch(url: &str) -> Option<ProxyConfigData> {
|
||||
let delays = [1u64, 5, 15];
|
||||
for (i, d) in delays.iter().enumerate() {
|
||||
match fetch_proxy_config(url).await {
|
||||
Ok(cfg) => return Some(cfg),
|
||||
Err(e) => {
|
||||
if i == delays.len() - 1 {
|
||||
warn!(error = %e, url, "fetch_proxy_config failed");
|
||||
} else {
|
||||
debug!(error = %e, url, "fetch_proxy_config retrying");
|
||||
tokio::time::sleep(Duration::from_secs(*d)).await;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
None
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Default)]
|
||||
pub struct ProxyConfigData {
|
||||
pub map: HashMap<i32, Vec<(IpAddr, u16)>>,
|
||||
pub default_dc: Option<i32>,
|
||||
pub http_status: u16,
|
||||
pub proxy_for_lines: u32,
|
||||
}
|
||||
|
||||
pub fn parse_proxy_config_text(text: &str, http_status: u16) -> ProxyConfigData {
|
||||
let mut map: HashMap<i32, Vec<(IpAddr, u16)>> = HashMap::new();
|
||||
let mut proxy_for_lines: u32 = 0;
|
||||
for line in text.lines() {
|
||||
if let Some((dc, ip, port)) = parse_proxy_line(line) {
|
||||
map.entry(dc).or_default().push((ip, port));
|
||||
proxy_for_lines = proxy_for_lines.saturating_add(1);
|
||||
}
|
||||
}
|
||||
|
||||
let default_dc = text.lines().find_map(|l| {
|
||||
let t = l.trim();
|
||||
if let Some(rest) = t.strip_prefix("default") {
|
||||
return rest.trim().trim_end_matches(';').parse::<i32>().ok();
|
||||
}
|
||||
None
|
||||
});
|
||||
|
||||
ProxyConfigData {
|
||||
map,
|
||||
default_dc,
|
||||
http_status,
|
||||
proxy_for_lines,
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn load_proxy_config_cache(path: &str) -> Result<ProxyConfigData> {
|
||||
let text = tokio::fs::read_to_string(path).await.map_err(|e| {
|
||||
crate::error::ProxyError::Proxy(format!("read proxy-config cache '{path}' failed: {e}"))
|
||||
})?;
|
||||
Ok(parse_proxy_config_text(&text, 200))
|
||||
}
|
||||
|
||||
pub async fn save_proxy_config_cache(path: &str, raw_text: &str) -> Result<()> {
|
||||
if let Some(parent) = Path::new(path).parent()
|
||||
&& !parent.as_os_str().is_empty()
|
||||
{
|
||||
tokio::fs::create_dir_all(parent).await.map_err(|e| {
|
||||
crate::error::ProxyError::Proxy(format!(
|
||||
"create proxy-config cache dir '{}' failed: {e}",
|
||||
parent.display()
|
||||
))
|
||||
})?;
|
||||
}
|
||||
|
||||
tokio::fs::write(path, raw_text).await.map_err(|e| {
|
||||
crate::error::ProxyError::Proxy(format!("write proxy-config cache '{path}' failed: {e}"))
|
||||
})?;
|
||||
Ok(())
|
||||
}
|
||||
|
||||
pub async fn fetch_proxy_config_with_raw(url: &str) -> Result<(ProxyConfigData, String)> {
|
||||
let resp = reqwest::get(url)
|
||||
.await
|
||||
.map_err(|e| crate::error::ProxyError::Proxy(format!("fetch_proxy_config GET failed: {e}")))?
|
||||
;
|
||||
let http_status = resp.status().as_u16();
|
||||
|
||||
if let Some(date) = resp.headers().get(reqwest::header::DATE)
|
||||
&& let Ok(date_str) = date.to_str()
|
||||
&& let Ok(server_time) = httpdate::parse_http_date(date_str)
|
||||
&& let Ok(skew) = SystemTime::now().duration_since(server_time).or_else(|e| {
|
||||
server_time.duration_since(SystemTime::now()).map_err(|_| e)
|
||||
})
|
||||
{
|
||||
let skew_secs = skew.as_secs();
|
||||
if skew_secs > 60 {
|
||||
warn!(skew_secs, "Time skew >60s detected from fetch_proxy_config Date header");
|
||||
} else if skew_secs > 30 {
|
||||
warn!(skew_secs, "Time skew >30s detected from fetch_proxy_config Date header");
|
||||
}
|
||||
}
|
||||
|
||||
let text = resp
|
||||
.text()
|
||||
.await
|
||||
.map_err(|e| crate::error::ProxyError::Proxy(format!("fetch_proxy_config read failed: {e}")))?;
|
||||
let parsed = parse_proxy_config_text(&text, http_status);
|
||||
Ok((parsed, text))
|
||||
}
|
||||
|
||||
#[derive(Debug, Default)]
|
||||
struct StableSnapshot {
|
||||
candidate_hash: Option<u64>,
|
||||
candidate_hits: u8,
|
||||
applied_hash: Option<u64>,
|
||||
}
|
||||
|
||||
impl StableSnapshot {
|
||||
fn observe(&mut self, hash: u64) -> u8 {
|
||||
if self.candidate_hash == Some(hash) {
|
||||
self.candidate_hits = self.candidate_hits.saturating_add(1);
|
||||
} else {
|
||||
self.candidate_hash = Some(hash);
|
||||
self.candidate_hits = 1;
|
||||
}
|
||||
self.candidate_hits
|
||||
}
|
||||
|
||||
fn is_applied(&self, hash: u64) -> bool {
|
||||
self.applied_hash == Some(hash)
|
||||
}
|
||||
|
||||
fn mark_applied(&mut self, hash: u64) {
|
||||
self.applied_hash = Some(hash);
|
||||
}
|
||||
}
|
||||
|
||||
#[derive(Debug, Default)]
|
||||
struct UpdaterState {
|
||||
config_v4: StableSnapshot,
|
||||
config_v6: StableSnapshot,
|
||||
secret: StableSnapshot,
|
||||
last_map_apply_at: Option<tokio::time::Instant>,
|
||||
}
|
||||
|
||||
fn hash_proxy_config(cfg: &ProxyConfigData) -> u64 {
|
||||
let mut hasher = DefaultHasher::new();
|
||||
cfg.default_dc.hash(&mut hasher);
|
||||
|
||||
let mut by_dc: Vec<(i32, Vec<(IpAddr, u16)>)> =
|
||||
cfg.map.iter().map(|(dc, addrs)| (*dc, addrs.clone())).collect();
|
||||
by_dc.sort_by_key(|(dc, _)| *dc);
|
||||
for (dc, mut addrs) in by_dc {
|
||||
dc.hash(&mut hasher);
|
||||
addrs.sort_unstable();
|
||||
for (ip, port) in addrs {
|
||||
ip.hash(&mut hasher);
|
||||
port.hash(&mut hasher);
|
||||
}
|
||||
}
|
||||
|
||||
hasher.finish()
|
||||
}
|
||||
|
||||
fn hash_secret(secret: &[u8]) -> u64 {
|
||||
let mut hasher = DefaultHasher::new();
|
||||
secret.hash(&mut hasher);
|
||||
hasher.finish()
|
||||
}
|
||||
|
||||
fn map_apply_cooldown_ready(
|
||||
last_applied: Option<tokio::time::Instant>,
|
||||
cooldown: Duration,
|
||||
) -> bool {
|
||||
if cooldown.is_zero() {
|
||||
return true;
|
||||
}
|
||||
match last_applied {
|
||||
Some(ts) => ts.elapsed() >= cooldown,
|
||||
None => true,
|
||||
}
|
||||
}
|
||||
|
||||
fn map_apply_cooldown_remaining_secs(
|
||||
last_applied: tokio::time::Instant,
|
||||
cooldown: Duration,
|
||||
) -> u64 {
|
||||
if cooldown.is_zero() {
|
||||
return 0;
|
||||
}
|
||||
cooldown
|
||||
.checked_sub(last_applied.elapsed())
|
||||
.map(|d| d.as_secs())
|
||||
.unwrap_or(0)
|
||||
}
|
||||
|
||||
fn parse_host_port(s: &str) -> Option<(IpAddr, u16)> {
|
||||
if let Some(bracket_end) = s.rfind(']')
|
||||
&& s.starts_with('[')
|
||||
&& bracket_end + 1 < s.len()
|
||||
&& s.as_bytes().get(bracket_end + 1) == Some(&b':')
|
||||
{
|
||||
let host = &s[1..bracket_end];
|
||||
let port_str = &s[bracket_end + 2..];
|
||||
let ip = host.parse::<IpAddr>().ok()?;
|
||||
let port = port_str.parse::<u16>().ok()?;
|
||||
return Some((ip, port));
|
||||
}
|
||||
|
||||
let idx = s.rfind(':')?;
|
||||
let host = &s[..idx];
|
||||
let port_str = &s[idx + 1..];
|
||||
let ip = host.parse::<IpAddr>().ok()?;
|
||||
let port = port_str.parse::<u16>().ok()?;
|
||||
Some((ip, port))
|
||||
}
|
||||
|
||||
fn parse_proxy_line(line: &str) -> Option<(i32, IpAddr, u16)> {
|
||||
// Accepts lines like:
|
||||
// proxy_for 4 91.108.4.195:8888;
|
||||
// proxy_for 2 [2001:67c:04e8:f002::d]:80;
|
||||
// proxy_for 2 2001:67c:04e8:f002::d:80;
|
||||
let trimmed = line.trim();
|
||||
if !trimmed.starts_with("proxy_for") {
|
||||
return None;
|
||||
}
|
||||
// Capture everything between dc and trailing ';'
|
||||
let without_prefix = trimmed.trim_start_matches("proxy_for").trim();
|
||||
let mut parts = without_prefix.split_whitespace();
|
||||
let dc_str = parts.next()?;
|
||||
let rest = parts.next()?;
|
||||
let host_port = rest.trim_end_matches(';');
|
||||
let dc = dc_str.parse::<i32>().ok()?;
|
||||
let (ip, port) = parse_host_port(host_port)?;
|
||||
Some((dc, ip, port))
|
||||
}
|
||||
|
||||
pub async fn fetch_proxy_config(url: &str) -> Result<ProxyConfigData> {
|
||||
fetch_proxy_config_with_raw(url)
|
||||
.await
|
||||
.map(|(parsed, _raw)| parsed)
|
||||
}
|
||||
|
||||
fn snapshot_passes_guards(
|
||||
cfg: &ProxyConfig,
|
||||
snapshot: &ProxyConfigData,
|
||||
snapshot_name: &'static str,
|
||||
) -> bool {
|
||||
if cfg.general.me_snapshot_require_http_2xx
|
||||
&& !(200..=299).contains(&snapshot.http_status)
|
||||
{
|
||||
warn!(
|
||||
snapshot = snapshot_name,
|
||||
http_status = snapshot.http_status,
|
||||
"ME snapshot rejected by non-2xx HTTP status"
|
||||
);
|
||||
return false;
|
||||
}
|
||||
|
||||
let min_proxy_for = cfg.general.me_snapshot_min_proxy_for_lines;
|
||||
if snapshot.proxy_for_lines < min_proxy_for {
|
||||
warn!(
|
||||
snapshot = snapshot_name,
|
||||
parsed_proxy_for_lines = snapshot.proxy_for_lines,
|
||||
min_proxy_for_lines = min_proxy_for,
|
||||
"ME snapshot rejected by proxy_for line floor"
|
||||
);
|
||||
return false;
|
||||
}
|
||||
|
||||
true
|
||||
}
|
||||
|
||||
async fn run_update_cycle(
|
||||
pool: &Arc<MePool>,
|
||||
cfg: &ProxyConfig,
|
||||
state: &mut UpdaterState,
|
||||
reinit_tx: &mpsc::Sender<MeReinitTrigger>,
|
||||
) {
|
||||
pool.update_runtime_reinit_policy(
|
||||
cfg.general.hardswap,
|
||||
cfg.general.me_pool_drain_ttl_secs,
|
||||
cfg.general.effective_me_pool_force_close_secs(),
|
||||
cfg.general.me_pool_min_fresh_ratio,
|
||||
cfg.general.me_hardswap_warmup_delay_min_ms,
|
||||
cfg.general.me_hardswap_warmup_delay_max_ms,
|
||||
cfg.general.me_hardswap_warmup_extra_passes,
|
||||
cfg.general.me_hardswap_warmup_pass_backoff_base_ms,
|
||||
cfg.general.me_bind_stale_mode,
|
||||
cfg.general.me_bind_stale_ttl_secs,
|
||||
cfg.general.me_secret_atomic_snapshot,
|
||||
cfg.general.me_deterministic_writer_sort,
|
||||
cfg.general.me_single_endpoint_shadow_writers,
|
||||
cfg.general.me_single_endpoint_outage_mode_enabled,
|
||||
cfg.general.me_single_endpoint_outage_disable_quarantine,
|
||||
cfg.general.me_single_endpoint_outage_backoff_min_ms,
|
||||
cfg.general.me_single_endpoint_outage_backoff_max_ms,
|
||||
cfg.general.me_single_endpoint_shadow_rotate_every_secs,
|
||||
cfg.general.me_floor_mode,
|
||||
cfg.general.me_adaptive_floor_idle_secs,
|
||||
cfg.general.me_adaptive_floor_min_writers_single_endpoint,
|
||||
cfg.general.me_adaptive_floor_recover_grace_secs,
|
||||
);
|
||||
|
||||
let required_cfg_snapshots = cfg.general.me_config_stable_snapshots.max(1);
|
||||
let required_secret_snapshots = cfg.general.proxy_secret_stable_snapshots.max(1);
|
||||
let apply_cooldown = Duration::from_secs(cfg.general.me_config_apply_cooldown_secs);
|
||||
let mut maps_changed = false;
|
||||
|
||||
let mut ready_v4: Option<(ProxyConfigData, u64)> = None;
|
||||
let cfg_v4 = retry_fetch("https://core.telegram.org/getProxyConfig").await;
|
||||
if let Some(cfg_v4) = cfg_v4 {
|
||||
if snapshot_passes_guards(cfg, &cfg_v4, "getProxyConfig") {
|
||||
let cfg_v4_hash = hash_proxy_config(&cfg_v4);
|
||||
let stable_hits = state.config_v4.observe(cfg_v4_hash);
|
||||
if stable_hits < required_cfg_snapshots {
|
||||
debug!(
|
||||
stable_hits,
|
||||
required_cfg_snapshots,
|
||||
snapshot = format_args!("0x{cfg_v4_hash:016x}"),
|
||||
"ME config v4 candidate observed"
|
||||
);
|
||||
} else if state.config_v4.is_applied(cfg_v4_hash) {
|
||||
debug!(
|
||||
snapshot = format_args!("0x{cfg_v4_hash:016x}"),
|
||||
"ME config v4 stable snapshot already applied"
|
||||
);
|
||||
} else {
|
||||
ready_v4 = Some((cfg_v4, cfg_v4_hash));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let mut ready_v6: Option<(ProxyConfigData, u64)> = None;
|
||||
let cfg_v6 = retry_fetch("https://core.telegram.org/getProxyConfigV6").await;
|
||||
if let Some(cfg_v6) = cfg_v6 {
|
||||
if snapshot_passes_guards(cfg, &cfg_v6, "getProxyConfigV6") {
|
||||
let cfg_v6_hash = hash_proxy_config(&cfg_v6);
|
||||
let stable_hits = state.config_v6.observe(cfg_v6_hash);
|
||||
if stable_hits < required_cfg_snapshots {
|
||||
debug!(
|
||||
stable_hits,
|
||||
required_cfg_snapshots,
|
||||
snapshot = format_args!("0x{cfg_v6_hash:016x}"),
|
||||
"ME config v6 candidate observed"
|
||||
);
|
||||
} else if state.config_v6.is_applied(cfg_v6_hash) {
|
||||
debug!(
|
||||
snapshot = format_args!("0x{cfg_v6_hash:016x}"),
|
||||
"ME config v6 stable snapshot already applied"
|
||||
);
|
||||
} else {
|
||||
ready_v6 = Some((cfg_v6, cfg_v6_hash));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if ready_v4.is_some() || ready_v6.is_some() {
|
||||
if map_apply_cooldown_ready(state.last_map_apply_at, apply_cooldown) {
|
||||
let update_v4 = ready_v4
|
||||
.as_ref()
|
||||
.map(|(snapshot, _)| snapshot.map.clone())
|
||||
.unwrap_or_default();
|
||||
let update_v6 = ready_v6
|
||||
.as_ref()
|
||||
.map(|(snapshot, _)| snapshot.map.clone());
|
||||
let update_is_empty =
|
||||
update_v4.is_empty() && update_v6.as_ref().is_none_or(|v| v.is_empty());
|
||||
let apply_outcome = if update_is_empty && !cfg.general.me_snapshot_reject_empty_map {
|
||||
super::pool_config::SnapshotApplyOutcome::AppliedNoDelta
|
||||
} else {
|
||||
pool.update_proxy_maps(update_v4, update_v6).await
|
||||
};
|
||||
|
||||
if matches!(
|
||||
apply_outcome,
|
||||
super::pool_config::SnapshotApplyOutcome::RejectedEmpty
|
||||
) {
|
||||
warn!("ME config stable snapshot rejected (empty endpoint map)");
|
||||
} else {
|
||||
if let Some((snapshot, hash)) = ready_v4 {
|
||||
if let Some(dc) = snapshot.default_dc {
|
||||
pool.default_dc
|
||||
.store(dc, std::sync::atomic::Ordering::Relaxed);
|
||||
}
|
||||
state.config_v4.mark_applied(hash);
|
||||
}
|
||||
|
||||
if let Some((_snapshot, hash)) = ready_v6 {
|
||||
state.config_v6.mark_applied(hash);
|
||||
}
|
||||
|
||||
state.last_map_apply_at = Some(tokio::time::Instant::now());
|
||||
|
||||
if apply_outcome.changed() {
|
||||
maps_changed = true;
|
||||
info!("ME config update applied after stable-gate");
|
||||
} else {
|
||||
debug!("ME config stable-gate applied with no map delta");
|
||||
}
|
||||
}
|
||||
} else if let Some(last) = state.last_map_apply_at {
|
||||
let wait_secs = map_apply_cooldown_remaining_secs(last, apply_cooldown);
|
||||
debug!(
|
||||
wait_secs,
|
||||
"ME config stable snapshot deferred by cooldown"
|
||||
);
|
||||
}
|
||||
}
|
||||
|
||||
if maps_changed {
|
||||
enqueue_reinit_trigger(reinit_tx, MeReinitTrigger::MapChanged);
|
||||
}
|
||||
|
||||
pool.reset_stun_state();
|
||||
|
||||
if cfg.general.proxy_secret_rotate_runtime {
|
||||
match download_proxy_secret_with_max_len(cfg.general.proxy_secret_len_max).await {
|
||||
Ok(secret) => {
|
||||
let secret_hash = hash_secret(&secret);
|
||||
let stable_hits = state.secret.observe(secret_hash);
|
||||
if stable_hits < required_secret_snapshots {
|
||||
debug!(
|
||||
stable_hits,
|
||||
required_secret_snapshots,
|
||||
snapshot = format_args!("0x{secret_hash:016x}"),
|
||||
"proxy-secret candidate observed"
|
||||
);
|
||||
} else if state.secret.is_applied(secret_hash) {
|
||||
debug!(
|
||||
snapshot = format_args!("0x{secret_hash:016x}"),
|
||||
"proxy-secret stable snapshot already applied"
|
||||
);
|
||||
} else {
|
||||
let rotated = pool.update_secret(secret).await;
|
||||
state.secret.mark_applied(secret_hash);
|
||||
if rotated {
|
||||
info!("proxy-secret rotated after stable-gate");
|
||||
} else {
|
||||
debug!("proxy-secret stable snapshot confirmed as unchanged");
|
||||
}
|
||||
}
|
||||
}
|
||||
Err(e) => warn!(error = %e, "proxy-secret update failed"),
|
||||
}
|
||||
} else {
|
||||
debug!("proxy-secret runtime rotation disabled by config");
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn me_config_updater(
|
||||
pool: Arc<MePool>,
|
||||
mut config_rx: watch::Receiver<Arc<ProxyConfig>>,
|
||||
reinit_tx: mpsc::Sender<MeReinitTrigger>,
|
||||
) {
|
||||
let mut state = UpdaterState::default();
|
||||
let mut update_every_secs = config_rx
|
||||
.borrow()
|
||||
.general
|
||||
.effective_update_every_secs()
|
||||
.max(1);
|
||||
let mut update_every = Duration::from_secs(update_every_secs);
|
||||
let mut next_tick = tokio::time::Instant::now() + update_every;
|
||||
info!(update_every_secs, "ME config updater started");
|
||||
|
||||
loop {
|
||||
let sleep = tokio::time::sleep_until(next_tick);
|
||||
tokio::pin!(sleep);
|
||||
|
||||
tokio::select! {
|
||||
_ = &mut sleep => {
|
||||
let cfg = config_rx.borrow().clone();
|
||||
run_update_cycle(&pool, cfg.as_ref(), &mut state, &reinit_tx).await;
|
||||
let refreshed_secs = cfg.general.effective_update_every_secs().max(1);
|
||||
if refreshed_secs != update_every_secs {
|
||||
info!(
|
||||
old_update_every_secs = update_every_secs,
|
||||
new_update_every_secs = refreshed_secs,
|
||||
"ME config updater interval changed"
|
||||
);
|
||||
update_every_secs = refreshed_secs;
|
||||
update_every = Duration::from_secs(update_every_secs);
|
||||
}
|
||||
next_tick = tokio::time::Instant::now() + update_every;
|
||||
}
|
||||
changed = config_rx.changed() => {
|
||||
if changed.is_err() {
|
||||
warn!("ME config updater stopped: config channel closed");
|
||||
break;
|
||||
}
|
||||
let cfg = config_rx.borrow().clone();
|
||||
pool.update_runtime_reinit_policy(
|
||||
cfg.general.hardswap,
|
||||
cfg.general.me_pool_drain_ttl_secs,
|
||||
cfg.general.effective_me_pool_force_close_secs(),
|
||||
cfg.general.me_pool_min_fresh_ratio,
|
||||
cfg.general.me_hardswap_warmup_delay_min_ms,
|
||||
cfg.general.me_hardswap_warmup_delay_max_ms,
|
||||
cfg.general.me_hardswap_warmup_extra_passes,
|
||||
cfg.general.me_hardswap_warmup_pass_backoff_base_ms,
|
||||
cfg.general.me_bind_stale_mode,
|
||||
cfg.general.me_bind_stale_ttl_secs,
|
||||
cfg.general.me_secret_atomic_snapshot,
|
||||
cfg.general.me_deterministic_writer_sort,
|
||||
cfg.general.me_single_endpoint_shadow_writers,
|
||||
cfg.general.me_single_endpoint_outage_mode_enabled,
|
||||
cfg.general.me_single_endpoint_outage_disable_quarantine,
|
||||
cfg.general.me_single_endpoint_outage_backoff_min_ms,
|
||||
cfg.general.me_single_endpoint_outage_backoff_max_ms,
|
||||
cfg.general.me_single_endpoint_shadow_rotate_every_secs,
|
||||
cfg.general.me_floor_mode,
|
||||
cfg.general.me_adaptive_floor_idle_secs,
|
||||
cfg.general.me_adaptive_floor_min_writers_single_endpoint,
|
||||
cfg.general.me_adaptive_floor_recover_grace_secs,
|
||||
);
|
||||
let new_secs = cfg.general.effective_update_every_secs().max(1);
|
||||
if new_secs == update_every_secs {
|
||||
continue;
|
||||
}
|
||||
|
||||
if new_secs < update_every_secs {
|
||||
info!(
|
||||
old_update_every_secs = update_every_secs,
|
||||
new_update_every_secs = new_secs,
|
||||
"ME config updater interval decreased, running immediate refresh"
|
||||
);
|
||||
update_every_secs = new_secs;
|
||||
update_every = Duration::from_secs(update_every_secs);
|
||||
run_update_cycle(&pool, cfg.as_ref(), &mut state, &reinit_tx).await;
|
||||
next_tick = tokio::time::Instant::now() + update_every;
|
||||
} else {
|
||||
info!(
|
||||
old_update_every_secs = update_every_secs,
|
||||
new_update_every_secs = new_secs,
|
||||
"ME config updater interval increased"
|
||||
);
|
||||
update_every_secs = new_secs;
|
||||
update_every = Duration::from_secs(update_every_secs);
|
||||
next_tick = tokio::time::Instant::now() + update_every;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
|
||||
#[test]
|
||||
fn parse_ipv6_bracketed() {
|
||||
let line = "proxy_for 2 [2001:67c:04e8:f002::d]:80;";
|
||||
let res = parse_proxy_line(line).unwrap();
|
||||
assert_eq!(res.0, 2);
|
||||
assert_eq!(res.1, "2001:67c:04e8:f002::d".parse::<IpAddr>().unwrap());
|
||||
assert_eq!(res.2, 80);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn parse_ipv6_plain() {
|
||||
let line = "proxy_for 2 2001:67c:04e8:f002::d:80;";
|
||||
let res = parse_proxy_line(line).unwrap();
|
||||
assert_eq!(res.0, 2);
|
||||
assert_eq!(res.1, "2001:67c:04e8:f002::d".parse::<IpAddr>().unwrap());
|
||||
assert_eq!(res.2, 80);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn parse_ipv4() {
|
||||
let line = "proxy_for 4 91.108.4.195:8888;";
|
||||
let res = parse_proxy_line(line).unwrap();
|
||||
assert_eq!(res.0, 4);
|
||||
assert_eq!(res.1, "91.108.4.195".parse::<IpAddr>().unwrap());
|
||||
assert_eq!(res.2, 8888);
|
||||
}
|
||||
}
|
||||
684
src/transport/middle_proxy/handshake.rs
Normal file
684
src/transport/middle_proxy/handshake.rs
Normal file
@@ -0,0 +1,684 @@
|
||||
use std::net::{IpAddr, SocketAddr};
|
||||
use std::sync::atomic::Ordering;
|
||||
use std::time::{Duration, Instant};
|
||||
use std::collections::hash_map::DefaultHasher;
|
||||
use std::hash::{Hash, Hasher};
|
||||
use socket2::{SockRef, TcpKeepalive};
|
||||
#[cfg(target_os = "linux")]
|
||||
use libc;
|
||||
#[cfg(target_os = "linux")]
|
||||
use std::os::fd::{AsRawFd, RawFd};
|
||||
#[cfg(target_os = "linux")]
|
||||
use std::os::raw::c_int;
|
||||
|
||||
use bytes::BytesMut;
|
||||
use tokio::io::{AsyncReadExt, AsyncWriteExt, ReadHalf, WriteHalf};
|
||||
use tokio::net::{TcpStream, TcpSocket};
|
||||
use tokio::time::timeout;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::MeSocksKdfPolicy;
|
||||
use crate::crypto::{SecureRandom, build_middleproxy_prekey, derive_middleproxy_keys, sha256};
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::network::IpFamily;
|
||||
use crate::network::probe::is_bogon;
|
||||
use crate::protocol::constants::{
|
||||
ME_CONNECT_TIMEOUT_SECS, ME_HANDSHAKE_TIMEOUT_SECS, RPC_CRYPTO_AES_U32,
|
||||
RPC_HANDSHAKE_ERROR_U32, rpc_crypto_flags,
|
||||
};
|
||||
use crate::transport::{UpstreamEgressInfo, UpstreamRouteKind};
|
||||
|
||||
use super::codec::{
|
||||
RpcChecksumMode, build_handshake_payload, build_nonce_payload, build_rpc_frame,
|
||||
cbc_decrypt_inplace, cbc_encrypt_padded, parse_handshake_flags, parse_nonce_payload,
|
||||
read_rpc_frame_plaintext, rpc_crc,
|
||||
};
|
||||
use super::wire::{extract_ip_material, IpMaterial};
|
||||
use super::MePool;
|
||||
|
||||
const ME_KDF_DRIFT_STRICT: bool = false;
|
||||
|
||||
#[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
|
||||
enum KdfClientPortSource {
|
||||
LocalSocket = 0,
|
||||
SocksBound = 1,
|
||||
}
|
||||
|
||||
impl KdfClientPortSource {
|
||||
fn from_socks_bound_port(socks_bound_port: Option<u16>) -> Self {
|
||||
if socks_bound_port.is_some() {
|
||||
Self::SocksBound
|
||||
} else {
|
||||
Self::LocalSocket
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/// Result of a successful ME handshake with timings.
|
||||
pub(crate) struct HandshakeOutput {
|
||||
pub rd: ReadHalf<TcpStream>,
|
||||
pub wr: WriteHalf<TcpStream>,
|
||||
pub read_key: [u8; 32],
|
||||
pub read_iv: [u8; 16],
|
||||
pub write_key: [u8; 32],
|
||||
pub write_iv: [u8; 16],
|
||||
pub crc_mode: RpcChecksumMode,
|
||||
pub handshake_ms: f64,
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
fn kdf_material_fingerprint(
|
||||
local_ip_nat: IpAddr,
|
||||
peer_addr_nat: SocketAddr,
|
||||
reflected_ip: Option<IpAddr>,
|
||||
socks_bound_ip: Option<IpAddr>,
|
||||
client_port_source: KdfClientPortSource,
|
||||
) -> u64 {
|
||||
let mut hasher = DefaultHasher::new();
|
||||
local_ip_nat.hash(&mut hasher);
|
||||
peer_addr_nat.hash(&mut hasher);
|
||||
reflected_ip.hash(&mut hasher);
|
||||
socks_bound_ip.hash(&mut hasher);
|
||||
client_port_source.hash(&mut hasher);
|
||||
hasher.finish()
|
||||
}
|
||||
|
||||
async fn resolve_dc_idx_for_endpoint(&self, addr: SocketAddr) -> Option<i16> {
|
||||
if addr.is_ipv4() {
|
||||
let map = self.proxy_map_v4.read().await;
|
||||
for (dc, addrs) in map.iter() {
|
||||
if addrs
|
||||
.iter()
|
||||
.any(|(ip, port)| SocketAddr::new(*ip, *port) == addr)
|
||||
{
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc > 0
|
||||
&& let Ok(dc_idx) = i16::try_from(abs_dc)
|
||||
{
|
||||
return Some(dc_idx);
|
||||
}
|
||||
}
|
||||
}
|
||||
} else {
|
||||
let map = self.proxy_map_v6.read().await;
|
||||
for (dc, addrs) in map.iter() {
|
||||
if addrs
|
||||
.iter()
|
||||
.any(|(ip, port)| SocketAddr::new(*ip, *port) == addr)
|
||||
{
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc > 0
|
||||
&& let Ok(dc_idx) = i16::try_from(abs_dc)
|
||||
{
|
||||
return Some(dc_idx);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
None
|
||||
}
|
||||
|
||||
fn direct_bind_ip_for_stun(
|
||||
family: IpFamily,
|
||||
upstream_egress: Option<UpstreamEgressInfo>,
|
||||
) -> Option<IpAddr> {
|
||||
let info = upstream_egress?;
|
||||
if info.route_kind != UpstreamRouteKind::Direct {
|
||||
return None;
|
||||
}
|
||||
match (family, info.direct_bind_ip) {
|
||||
(IpFamily::V4, Some(IpAddr::V4(ip))) => Some(IpAddr::V4(ip)),
|
||||
(IpFamily::V6, Some(IpAddr::V6(ip))) => Some(IpAddr::V6(ip)),
|
||||
_ => None,
|
||||
}
|
||||
}
|
||||
|
||||
fn select_socks_bound_addr(
|
||||
family: IpFamily,
|
||||
upstream_egress: Option<UpstreamEgressInfo>,
|
||||
) -> Option<SocketAddr> {
|
||||
let info = upstream_egress?;
|
||||
if !matches!(
|
||||
info.route_kind,
|
||||
UpstreamRouteKind::Socks4 | UpstreamRouteKind::Socks5
|
||||
) {
|
||||
return None;
|
||||
}
|
||||
let bound = info.socks_bound_addr?;
|
||||
let family_matches = matches!(
|
||||
(family, bound.ip()),
|
||||
(IpFamily::V4, IpAddr::V4(_)) | (IpFamily::V6, IpAddr::V6(_))
|
||||
);
|
||||
if !family_matches || is_bogon(bound.ip()) || bound.ip().is_unspecified() {
|
||||
return None;
|
||||
}
|
||||
Some(bound)
|
||||
}
|
||||
|
||||
fn is_socks_route(upstream_egress: Option<UpstreamEgressInfo>) -> bool {
|
||||
matches!(
|
||||
upstream_egress.map(|info| info.route_kind),
|
||||
Some(UpstreamRouteKind::Socks4 | UpstreamRouteKind::Socks5)
|
||||
)
|
||||
}
|
||||
|
||||
/// TCP connect with timeout + return RTT in milliseconds.
|
||||
pub(crate) async fn connect_tcp(
|
||||
&self,
|
||||
addr: SocketAddr,
|
||||
) -> Result<(TcpStream, f64, Option<UpstreamEgressInfo>)> {
|
||||
let start = Instant::now();
|
||||
let (stream, upstream_egress) = if let Some(upstream) = &self.upstream {
|
||||
let dc_idx = self.resolve_dc_idx_for_endpoint(addr).await;
|
||||
let (stream, egress) = upstream.connect_with_details(addr, dc_idx, None).await?;
|
||||
(stream, Some(egress))
|
||||
} else {
|
||||
let connect_fut = async {
|
||||
if addr.is_ipv6()
|
||||
&& let Some(v6) = self.detected_ipv6
|
||||
{
|
||||
match TcpSocket::new_v6() {
|
||||
Ok(sock) => {
|
||||
if let Err(e) = sock.bind(SocketAddr::new(IpAddr::V6(v6), 0)) {
|
||||
debug!(error = %e, bind_ip = %v6, "ME IPv6 bind failed, falling back to default bind");
|
||||
} else {
|
||||
match sock.connect(addr).await {
|
||||
Ok(stream) => return Ok(stream),
|
||||
Err(e) => debug!(error = %e, target = %addr, "ME IPv6 bound connect failed, retrying default connect"),
|
||||
}
|
||||
}
|
||||
}
|
||||
Err(e) => debug!(error = %e, "ME IPv6 socket creation failed, falling back to default connect"),
|
||||
}
|
||||
}
|
||||
TcpStream::connect(addr).await
|
||||
};
|
||||
|
||||
let stream = timeout(Duration::from_secs(ME_CONNECT_TIMEOUT_SECS), connect_fut)
|
||||
.await
|
||||
.map_err(|_| ProxyError::ConnectionTimeout {
|
||||
addr: addr.to_string(),
|
||||
})??;
|
||||
(stream, None)
|
||||
};
|
||||
|
||||
let connect_ms = start.elapsed().as_secs_f64() * 1000.0;
|
||||
stream.set_nodelay(true).ok();
|
||||
if let Err(e) = Self::configure_keepalive(&stream) {
|
||||
warn!(error = %e, "ME keepalive setup failed");
|
||||
}
|
||||
#[cfg(target_os = "linux")]
|
||||
if let Err(e) = Self::configure_user_timeout(stream.as_raw_fd()) {
|
||||
warn!(error = %e, "ME TCP_USER_TIMEOUT setup failed");
|
||||
}
|
||||
Ok((stream, connect_ms, upstream_egress))
|
||||
}
|
||||
|
||||
fn configure_keepalive(stream: &TcpStream) -> std::io::Result<()> {
|
||||
let sock = SockRef::from(stream);
|
||||
let ka = TcpKeepalive::new()
|
||||
.with_time(Duration::from_secs(30))
|
||||
.with_interval(Duration::from_secs(10))
|
||||
.with_retries(3);
|
||||
sock.set_tcp_keepalive(&ka)?;
|
||||
sock.set_keepalive(true)?;
|
||||
Ok(())
|
||||
}
|
||||
|
||||
#[cfg(target_os = "linux")]
|
||||
fn configure_user_timeout(fd: RawFd) -> std::io::Result<()> {
|
||||
let timeout_ms: c_int = 30_000;
|
||||
let rc = unsafe {
|
||||
libc::setsockopt(
|
||||
fd,
|
||||
libc::IPPROTO_TCP,
|
||||
libc::TCP_USER_TIMEOUT,
|
||||
&timeout_ms as *const _ as *const libc::c_void,
|
||||
std::mem::size_of_val(&timeout_ms) as libc::socklen_t,
|
||||
)
|
||||
};
|
||||
if rc != 0 {
|
||||
return Err(std::io::Error::last_os_error());
|
||||
}
|
||||
Ok(())
|
||||
}
|
||||
|
||||
/// Perform full ME RPC handshake on an established TCP stream.
|
||||
/// Returns cipher keys/ivs and split halves; does not register writer.
|
||||
pub(crate) async fn handshake_only(
|
||||
&self,
|
||||
stream: TcpStream,
|
||||
addr: SocketAddr,
|
||||
upstream_egress: Option<UpstreamEgressInfo>,
|
||||
rng: &SecureRandom,
|
||||
) -> Result<HandshakeOutput> {
|
||||
let hs_start = Instant::now();
|
||||
|
||||
let local_addr = stream.local_addr().map_err(ProxyError::Io)?;
|
||||
let transport_peer_addr = stream.peer_addr().map_err(ProxyError::Io)?;
|
||||
let peer_addr = addr;
|
||||
|
||||
let _ = self.maybe_detect_nat_ip(local_addr.ip()).await;
|
||||
let family = if local_addr.ip().is_ipv4() {
|
||||
IpFamily::V4
|
||||
} else {
|
||||
IpFamily::V6
|
||||
};
|
||||
let is_socks_route = Self::is_socks_route(upstream_egress);
|
||||
let socks_bound_addr = Self::select_socks_bound_addr(family, upstream_egress);
|
||||
let reflected = if let Some(bound) = socks_bound_addr {
|
||||
Some(bound)
|
||||
} else if is_socks_route {
|
||||
match self.socks_kdf_policy() {
|
||||
MeSocksKdfPolicy::Strict => {
|
||||
self.stats.increment_me_socks_kdf_strict_reject();
|
||||
return Err(ProxyError::InvalidHandshake(
|
||||
"SOCKS route returned no valid BND.ADDR for ME KDF (strict policy)"
|
||||
.to_string(),
|
||||
));
|
||||
}
|
||||
MeSocksKdfPolicy::Compat => {
|
||||
self.stats.increment_me_socks_kdf_compat_fallback();
|
||||
if self.nat_probe {
|
||||
let bind_ip = Self::direct_bind_ip_for_stun(family, upstream_egress);
|
||||
self.maybe_reflect_public_addr(family, bind_ip).await
|
||||
} else {
|
||||
None
|
||||
}
|
||||
}
|
||||
}
|
||||
} else if self.nat_probe {
|
||||
let bind_ip = Self::direct_bind_ip_for_stun(family, upstream_egress);
|
||||
self.maybe_reflect_public_addr(family, bind_ip).await
|
||||
} else {
|
||||
None
|
||||
};
|
||||
|
||||
let local_addr_nat = self.translate_our_addr_with_reflection(local_addr, reflected);
|
||||
let peer_addr_nat = SocketAddr::new(self.translate_ip_for_nat(peer_addr.ip()), peer_addr.port());
|
||||
let (mut rd, mut wr) = tokio::io::split(stream);
|
||||
|
||||
let my_nonce: [u8; 16] = rng.bytes(16).try_into().unwrap();
|
||||
let crypto_ts = std::time::SystemTime::now()
|
||||
.duration_since(std::time::UNIX_EPOCH)
|
||||
.unwrap_or_default()
|
||||
.as_secs() as u32;
|
||||
|
||||
let secret_atomic_snapshot = self.secret_atomic_snapshot.load(Ordering::Relaxed);
|
||||
let (ks, secret) = if secret_atomic_snapshot {
|
||||
let snapshot = self.secret_snapshot().await;
|
||||
(snapshot.key_selector, snapshot.secret)
|
||||
} else {
|
||||
// Backward-compatible mode: key selector and secret may come from different updates.
|
||||
let key_selector = self.key_selector().await;
|
||||
let secret = self.secret_snapshot().await.secret;
|
||||
(key_selector, secret)
|
||||
};
|
||||
let nonce_payload = build_nonce_payload(ks, crypto_ts, &my_nonce);
|
||||
let nonce_frame = build_rpc_frame(-2, &nonce_payload, RpcChecksumMode::Crc32);
|
||||
let dump = hex_dump(&nonce_frame[..nonce_frame.len().min(44)]);
|
||||
debug!(
|
||||
key_selector = format_args!("0x{ks:08x}"),
|
||||
crypto_ts,
|
||||
frame_len = nonce_frame.len(),
|
||||
nonce_frame_hex = %dump,
|
||||
"Sending ME nonce frame"
|
||||
);
|
||||
wr.write_all(&nonce_frame).await.map_err(ProxyError::Io)?;
|
||||
wr.flush().await.map_err(ProxyError::Io)?;
|
||||
|
||||
let (srv_seq, srv_nonce_payload) = timeout(
|
||||
Duration::from_secs(ME_HANDSHAKE_TIMEOUT_SECS),
|
||||
read_rpc_frame_plaintext(&mut rd),
|
||||
)
|
||||
.await
|
||||
.map_err(|_| ProxyError::TgHandshakeTimeout)??;
|
||||
|
||||
if srv_seq != -2 {
|
||||
return Err(ProxyError::InvalidHandshake(format!("Expected seq=-2, got {srv_seq}")));
|
||||
}
|
||||
|
||||
let (srv_key_select, schema, srv_ts, srv_nonce) = parse_nonce_payload(&srv_nonce_payload)?;
|
||||
if schema != RPC_CRYPTO_AES_U32 {
|
||||
warn!(schema = format_args!("0x{schema:08x}"), "Unsupported ME crypto schema");
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Unsupported crypto schema: 0x{schema:x}"
|
||||
)));
|
||||
}
|
||||
|
||||
if srv_key_select != ks {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Server key_select 0x{srv_key_select:08x} != client 0x{ks:08x}"
|
||||
)));
|
||||
}
|
||||
|
||||
let skew = crypto_ts.abs_diff(srv_ts);
|
||||
if skew > 30 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"nonce crypto_ts skew too large: client={crypto_ts}, server={srv_ts}, skew={skew}s"
|
||||
)));
|
||||
}
|
||||
|
||||
info!(
|
||||
%local_addr,
|
||||
%local_addr_nat,
|
||||
reflected_ip = reflected.map(|r| r.ip()).as_ref().map(ToString::to_string),
|
||||
%peer_addr,
|
||||
%transport_peer_addr,
|
||||
%peer_addr_nat,
|
||||
socks_bound_addr = socks_bound_addr.map(|v| v.to_string()),
|
||||
key_selector = format_args!("0x{ks:08x}"),
|
||||
crypto_schema = format_args!("0x{schema:08x}"),
|
||||
skew_secs = skew,
|
||||
"ME key derivation parameters"
|
||||
);
|
||||
|
||||
let ts_bytes = crypto_ts.to_le_bytes();
|
||||
let server_port_bytes = peer_addr_nat.port().to_le_bytes();
|
||||
let socks_bound_port = socks_bound_addr
|
||||
.map(|bound| bound.port())
|
||||
.filter(|port| *port != 0);
|
||||
let client_port_for_kdf = socks_bound_port.unwrap_or(local_addr_nat.port());
|
||||
let client_port_source = KdfClientPortSource::from_socks_bound_port(socks_bound_port);
|
||||
let kdf_fingerprint = Self::kdf_material_fingerprint(
|
||||
local_addr_nat.ip(),
|
||||
peer_addr_nat,
|
||||
reflected.map(|value| value.ip()),
|
||||
socks_bound_addr.map(|value| value.ip()),
|
||||
client_port_source,
|
||||
);
|
||||
let previous_kdf_fingerprint = {
|
||||
let kdf_fingerprint_guard = self.kdf_material_fingerprint.read().await;
|
||||
kdf_fingerprint_guard.get(&peer_addr_nat).copied()
|
||||
};
|
||||
if let Some((prev_fingerprint, prev_client_port)) = previous_kdf_fingerprint
|
||||
{
|
||||
if prev_fingerprint != kdf_fingerprint {
|
||||
self.stats.increment_me_kdf_drift_total();
|
||||
warn!(
|
||||
%peer_addr_nat,
|
||||
%local_addr_nat,
|
||||
client_port_for_kdf,
|
||||
client_port_source = ?client_port_source,
|
||||
"ME KDF material drift detected for endpoint"
|
||||
);
|
||||
if ME_KDF_DRIFT_STRICT {
|
||||
return Err(ProxyError::InvalidHandshake(
|
||||
"ME KDF material drift detected (strict mode)".to_string(),
|
||||
));
|
||||
}
|
||||
} else if prev_client_port != client_port_for_kdf {
|
||||
self.stats.increment_me_kdf_port_only_drift_total();
|
||||
debug!(
|
||||
%peer_addr_nat,
|
||||
previous_client_port_for_kdf = prev_client_port,
|
||||
client_port_for_kdf,
|
||||
client_port_source = ?client_port_source,
|
||||
"ME KDF client port changed with stable material"
|
||||
);
|
||||
}
|
||||
}
|
||||
// Keep fingerprint updates eventually consistent for diagnostics while avoiding
|
||||
// serializing all concurrent handshakes on a single async mutex.
|
||||
let mut kdf_fingerprint_guard = self.kdf_material_fingerprint.write().await;
|
||||
kdf_fingerprint_guard.insert(peer_addr_nat, (kdf_fingerprint, client_port_for_kdf));
|
||||
drop(kdf_fingerprint_guard);
|
||||
|
||||
let client_port_bytes = client_port_for_kdf.to_le_bytes();
|
||||
|
||||
let server_ip = extract_ip_material(peer_addr_nat);
|
||||
let client_ip = extract_ip_material(local_addr_nat);
|
||||
|
||||
let (srv_ip_opt, clt_ip_opt, clt_v6_opt, srv_v6_opt, hs_our_ip, hs_peer_ip) = match (server_ip, client_ip) {
|
||||
(IpMaterial::V4(mut srv), IpMaterial::V4(mut clt)) => {
|
||||
srv.reverse();
|
||||
clt.reverse();
|
||||
(Some(srv), Some(clt), None, None, clt, srv)
|
||||
}
|
||||
(IpMaterial::V6(srv), IpMaterial::V6(clt)) => {
|
||||
let zero = [0u8; 4];
|
||||
(None, None, Some(clt), Some(srv), zero, zero)
|
||||
}
|
||||
_ => {
|
||||
return Err(ProxyError::InvalidHandshake(
|
||||
"mixed IPv4/IPv6 endpoints are not supported for ME key derivation".to_string(),
|
||||
));
|
||||
}
|
||||
};
|
||||
|
||||
let diag_level: u8 = std::env::var("ME_DIAG").ok().and_then(|v| v.parse().ok()).unwrap_or(0);
|
||||
|
||||
let prekey_client = build_middleproxy_prekey(
|
||||
&srv_nonce,
|
||||
&my_nonce,
|
||||
&ts_bytes,
|
||||
srv_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&client_port_bytes,
|
||||
b"CLIENT",
|
||||
clt_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&server_port_bytes,
|
||||
&secret,
|
||||
clt_v6_opt.as_ref(),
|
||||
srv_v6_opt.as_ref(),
|
||||
);
|
||||
let prekey_server = build_middleproxy_prekey(
|
||||
&srv_nonce,
|
||||
&my_nonce,
|
||||
&ts_bytes,
|
||||
srv_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&client_port_bytes,
|
||||
b"SERVER",
|
||||
clt_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&server_port_bytes,
|
||||
&secret,
|
||||
clt_v6_opt.as_ref(),
|
||||
srv_v6_opt.as_ref(),
|
||||
);
|
||||
|
||||
let (wk, wi) = derive_middleproxy_keys(
|
||||
&srv_nonce,
|
||||
&my_nonce,
|
||||
&ts_bytes,
|
||||
srv_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&client_port_bytes,
|
||||
b"CLIENT",
|
||||
clt_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&server_port_bytes,
|
||||
&secret,
|
||||
clt_v6_opt.as_ref(),
|
||||
srv_v6_opt.as_ref(),
|
||||
);
|
||||
let (rk, ri) = derive_middleproxy_keys(
|
||||
&srv_nonce,
|
||||
&my_nonce,
|
||||
&ts_bytes,
|
||||
srv_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&client_port_bytes,
|
||||
b"SERVER",
|
||||
clt_ip_opt.as_ref().map(|x| &x[..]),
|
||||
&server_port_bytes,
|
||||
&secret,
|
||||
clt_v6_opt.as_ref(),
|
||||
srv_v6_opt.as_ref(),
|
||||
);
|
||||
|
||||
let requested_crc_mode = RpcChecksumMode::Crc32c;
|
||||
let hs_payload = build_handshake_payload(
|
||||
hs_our_ip,
|
||||
local_addr.port(),
|
||||
hs_peer_ip,
|
||||
peer_addr.port(),
|
||||
requested_crc_mode.advertised_flags(),
|
||||
);
|
||||
let hs_frame = build_rpc_frame(-1, &hs_payload, RpcChecksumMode::Crc32);
|
||||
if diag_level >= 1 {
|
||||
info!(
|
||||
write_key = %hex_dump(&wk),
|
||||
write_iv = %hex_dump(&wi),
|
||||
read_key = %hex_dump(&rk),
|
||||
read_iv = %hex_dump(&ri),
|
||||
srv_ip = %srv_ip_opt.map(|ip| hex_dump(&ip)).unwrap_or_default(),
|
||||
clt_ip = %clt_ip_opt.map(|ip| hex_dump(&ip)).unwrap_or_default(),
|
||||
srv_port = %hex_dump(&server_port_bytes),
|
||||
clt_port = %hex_dump(&client_port_bytes),
|
||||
crypto_ts = %hex_dump(&ts_bytes),
|
||||
nonce_srv = %hex_dump(&srv_nonce),
|
||||
nonce_clt = %hex_dump(&my_nonce),
|
||||
prekey_sha256_client = %hex_dump(&sha256(&prekey_client)),
|
||||
prekey_sha256_server = %hex_dump(&sha256(&prekey_server)),
|
||||
hs_plain = %hex_dump(&hs_frame),
|
||||
proxy_secret_sha256 = %hex_dump(&sha256(&secret)),
|
||||
"ME diag: derived keys and handshake plaintext"
|
||||
);
|
||||
}
|
||||
if diag_level >= 2 {
|
||||
info!(
|
||||
prekey_client = %hex_dump(&prekey_client),
|
||||
prekey_server = %hex_dump(&prekey_server),
|
||||
"ME diag: full prekey buffers"
|
||||
);
|
||||
}
|
||||
|
||||
let (encrypted_hs, write_iv) = cbc_encrypt_padded(&wk, &wi, &hs_frame)?;
|
||||
if diag_level >= 1 {
|
||||
info!(
|
||||
hs_cipher = %hex_dump(&encrypted_hs),
|
||||
"ME diag: handshake ciphertext"
|
||||
);
|
||||
}
|
||||
wr.write_all(&encrypted_hs).await.map_err(ProxyError::Io)?;
|
||||
wr.flush().await.map_err(ProxyError::Io)?;
|
||||
|
||||
let deadline = Instant::now() + Duration::from_secs(ME_HANDSHAKE_TIMEOUT_SECS);
|
||||
let mut enc_buf = BytesMut::with_capacity(256);
|
||||
let mut dec_buf = BytesMut::with_capacity(256);
|
||||
let mut read_iv = ri;
|
||||
let mut negotiated_crc_mode = RpcChecksumMode::Crc32;
|
||||
let mut handshake_ok = false;
|
||||
|
||||
while Instant::now() < deadline && !handshake_ok {
|
||||
let remaining = deadline - Instant::now();
|
||||
let mut tmp = [0u8; 256];
|
||||
let n = match timeout(remaining, rd.read(&mut tmp)).await {
|
||||
Ok(Ok(0)) => {
|
||||
return Err(ProxyError::Io(std::io::Error::new(
|
||||
std::io::ErrorKind::UnexpectedEof,
|
||||
"ME closed during handshake",
|
||||
)));
|
||||
}
|
||||
Ok(Ok(n)) => n,
|
||||
Ok(Err(e)) => return Err(ProxyError::Io(e)),
|
||||
Err(_) => return Err(ProxyError::TgHandshakeTimeout),
|
||||
};
|
||||
|
||||
enc_buf.extend_from_slice(&tmp[..n]);
|
||||
|
||||
let blocks = enc_buf.len() / 16 * 16;
|
||||
if blocks > 0 {
|
||||
let mut chunk = vec![0u8; blocks];
|
||||
chunk.copy_from_slice(&enc_buf[..blocks]);
|
||||
read_iv = cbc_decrypt_inplace(&rk, &read_iv, &mut chunk)?;
|
||||
dec_buf.extend_from_slice(&chunk);
|
||||
let _ = enc_buf.split_to(blocks);
|
||||
}
|
||||
|
||||
while dec_buf.len() >= 4 {
|
||||
let fl = u32::from_le_bytes(dec_buf[0..4].try_into().unwrap()) as usize;
|
||||
|
||||
if fl == 4 {
|
||||
let _ = dec_buf.split_to(4);
|
||||
continue;
|
||||
}
|
||||
if !(12..=(1 << 24)).contains(&fl) {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Bad HS response frame len: {fl}"
|
||||
)));
|
||||
}
|
||||
if dec_buf.len() < fl {
|
||||
break;
|
||||
}
|
||||
|
||||
let frame = dec_buf.split_to(fl);
|
||||
let pe = fl - 4;
|
||||
let ec = u32::from_le_bytes(frame[pe..pe + 4].try_into().unwrap());
|
||||
let ac = rpc_crc(RpcChecksumMode::Crc32, &frame[..pe]);
|
||||
if ec != ac {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"HS CRC mismatch: 0x{ec:08x} vs 0x{ac:08x}"
|
||||
)));
|
||||
}
|
||||
|
||||
let hs_payload = &frame[8..pe];
|
||||
if hs_payload.len() < 4 {
|
||||
return Err(ProxyError::InvalidHandshake(
|
||||
"Handshake payload too short".to_string(),
|
||||
));
|
||||
}
|
||||
let hs_type = u32::from_le_bytes(hs_payload[0..4].try_into().unwrap());
|
||||
if hs_type == RPC_HANDSHAKE_ERROR_U32 {
|
||||
let err_code = if hs_payload.len() >= 8 {
|
||||
i32::from_le_bytes(hs_payload[4..8].try_into().unwrap())
|
||||
} else {
|
||||
-1
|
||||
};
|
||||
self.stats.increment_me_handshake_reject_total();
|
||||
self.stats.increment_me_handshake_error_code(err_code);
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"ME rejected handshake (error={err_code})"
|
||||
)));
|
||||
}
|
||||
let hs_flags = parse_handshake_flags(hs_payload)?;
|
||||
if hs_flags & 0xff != 0 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Unsupported handshake flags: 0x{hs_flags:08x}"
|
||||
)));
|
||||
}
|
||||
negotiated_crc_mode = if (hs_flags & requested_crc_mode.advertised_flags()) != 0 {
|
||||
RpcChecksumMode::from_handshake_flags(hs_flags)
|
||||
} else if (hs_flags & rpc_crypto_flags::USE_CRC32C) != 0 {
|
||||
return Err(ProxyError::InvalidHandshake(format!(
|
||||
"Peer negotiated unsupported CRC flags: 0x{hs_flags:08x}"
|
||||
)));
|
||||
} else {
|
||||
RpcChecksumMode::Crc32
|
||||
};
|
||||
|
||||
handshake_ok = true;
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
if !handshake_ok {
|
||||
return Err(ProxyError::TgHandshakeTimeout);
|
||||
}
|
||||
|
||||
let handshake_ms = hs_start.elapsed().as_secs_f64() * 1000.0;
|
||||
info!(%addr, "RPC handshake OK");
|
||||
|
||||
Ok(HandshakeOutput {
|
||||
rd,
|
||||
wr,
|
||||
read_key: rk,
|
||||
read_iv,
|
||||
write_key: wk,
|
||||
write_iv,
|
||||
crc_mode: negotiated_crc_mode,
|
||||
handshake_ms,
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
fn hex_dump(data: &[u8]) -> String {
|
||||
const MAX: usize = 64;
|
||||
let mut out = String::with_capacity(data.len() * 2 + 3);
|
||||
for (i, b) in data.iter().take(MAX).enumerate() {
|
||||
if i > 0 {
|
||||
out.push(' ');
|
||||
}
|
||||
out.push_str(&format!("{b:02x}"));
|
||||
}
|
||||
if data.len() > MAX {
|
||||
out.push_str(" …");
|
||||
}
|
||||
out
|
||||
}
|
||||
696
src/transport/middle_proxy/health.rs
Normal file
696
src/transport/middle_proxy/health.rs
Normal file
@@ -0,0 +1,696 @@
|
||||
use std::collections::HashMap;
|
||||
use std::collections::HashSet;
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
use std::time::{Duration, Instant};
|
||||
|
||||
use rand::Rng;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::MeFloorMode;
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::network::IpFamily;
|
||||
|
||||
use super::MePool;
|
||||
|
||||
const HEALTH_INTERVAL_SECS: u64 = 1;
|
||||
const JITTER_FRAC_NUM: u64 = 2; // jitter up to 50% of backoff
|
||||
#[allow(dead_code)]
|
||||
const MAX_CONCURRENT_PER_DC_DEFAULT: usize = 1;
|
||||
const SHADOW_ROTATE_RETRY_SECS: u64 = 30;
|
||||
const IDLE_REFRESH_TRIGGER_BASE_SECS: u64 = 45;
|
||||
const IDLE_REFRESH_TRIGGER_JITTER_SECS: u64 = 5;
|
||||
const IDLE_REFRESH_RETRY_SECS: u64 = 8;
|
||||
const IDLE_REFRESH_SUCCESS_GUARD_SECS: u64 = 5;
|
||||
|
||||
pub async fn me_health_monitor(pool: Arc<MePool>, rng: Arc<SecureRandom>, _min_connections: usize) {
|
||||
let mut backoff: HashMap<(i32, IpFamily), u64> = HashMap::new();
|
||||
let mut next_attempt: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
let mut inflight: HashMap<(i32, IpFamily), usize> = HashMap::new();
|
||||
let mut outage_backoff: HashMap<(i32, IpFamily), u64> = HashMap::new();
|
||||
let mut outage_next_attempt: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
let mut single_endpoint_outage: HashSet<(i32, IpFamily)> = HashSet::new();
|
||||
let mut shadow_rotate_deadline: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
let mut idle_refresh_next_attempt: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
let mut adaptive_idle_since: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
let mut adaptive_recover_until: HashMap<(i32, IpFamily), Instant> = HashMap::new();
|
||||
loop {
|
||||
tokio::time::sleep(Duration::from_secs(HEALTH_INTERVAL_SECS)).await;
|
||||
pool.prune_closed_writers().await;
|
||||
check_family(
|
||||
IpFamily::V4,
|
||||
&pool,
|
||||
&rng,
|
||||
&mut backoff,
|
||||
&mut next_attempt,
|
||||
&mut inflight,
|
||||
&mut outage_backoff,
|
||||
&mut outage_next_attempt,
|
||||
&mut single_endpoint_outage,
|
||||
&mut shadow_rotate_deadline,
|
||||
&mut idle_refresh_next_attempt,
|
||||
&mut adaptive_idle_since,
|
||||
&mut adaptive_recover_until,
|
||||
)
|
||||
.await;
|
||||
check_family(
|
||||
IpFamily::V6,
|
||||
&pool,
|
||||
&rng,
|
||||
&mut backoff,
|
||||
&mut next_attempt,
|
||||
&mut inflight,
|
||||
&mut outage_backoff,
|
||||
&mut outage_next_attempt,
|
||||
&mut single_endpoint_outage,
|
||||
&mut shadow_rotate_deadline,
|
||||
&mut idle_refresh_next_attempt,
|
||||
&mut adaptive_idle_since,
|
||||
&mut adaptive_recover_until,
|
||||
)
|
||||
.await;
|
||||
}
|
||||
}
|
||||
|
||||
async fn check_family(
|
||||
family: IpFamily,
|
||||
pool: &Arc<MePool>,
|
||||
rng: &Arc<SecureRandom>,
|
||||
backoff: &mut HashMap<(i32, IpFamily), u64>,
|
||||
next_attempt: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
inflight: &mut HashMap<(i32, IpFamily), usize>,
|
||||
outage_backoff: &mut HashMap<(i32, IpFamily), u64>,
|
||||
outage_next_attempt: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
single_endpoint_outage: &mut HashSet<(i32, IpFamily)>,
|
||||
shadow_rotate_deadline: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
idle_refresh_next_attempt: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
adaptive_idle_since: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
adaptive_recover_until: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
) {
|
||||
let enabled = match family {
|
||||
IpFamily::V4 => pool.decision.ipv4_me,
|
||||
IpFamily::V6 => pool.decision.ipv6_me,
|
||||
};
|
||||
if !enabled {
|
||||
return;
|
||||
}
|
||||
|
||||
let map = match family {
|
||||
IpFamily::V4 => pool.proxy_map_v4.read().await.clone(),
|
||||
IpFamily::V6 => pool.proxy_map_v6.read().await.clone(),
|
||||
};
|
||||
|
||||
let mut dc_endpoints = HashMap::<i32, Vec<SocketAddr>>::new();
|
||||
for (dc, addrs) in map {
|
||||
let entry = dc_endpoints.entry(dc.abs()).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.push(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
for endpoints in dc_endpoints.values_mut() {
|
||||
endpoints.sort_unstable();
|
||||
endpoints.dedup();
|
||||
}
|
||||
|
||||
if pool.floor_mode() == MeFloorMode::Static {
|
||||
adaptive_idle_since.clear();
|
||||
adaptive_recover_until.clear();
|
||||
}
|
||||
|
||||
let mut live_addr_counts = HashMap::<SocketAddr, usize>::new();
|
||||
let mut live_writer_ids_by_addr = HashMap::<SocketAddr, Vec<u64>>::new();
|
||||
for writer in pool.writers.read().await.iter().filter(|w| {
|
||||
!w.draining.load(std::sync::atomic::Ordering::Relaxed)
|
||||
}) {
|
||||
*live_addr_counts.entry(writer.addr).or_insert(0) += 1;
|
||||
live_writer_ids_by_addr
|
||||
.entry(writer.addr)
|
||||
.or_default()
|
||||
.push(writer.id);
|
||||
}
|
||||
let writer_idle_since = pool.registry.writer_idle_since_snapshot().await;
|
||||
|
||||
for (dc, endpoints) in dc_endpoints {
|
||||
if endpoints.is_empty() {
|
||||
continue;
|
||||
}
|
||||
let key = (dc, family);
|
||||
let reduce_for_idle = should_reduce_floor_for_idle(
|
||||
pool,
|
||||
key,
|
||||
&endpoints,
|
||||
&live_writer_ids_by_addr,
|
||||
adaptive_idle_since,
|
||||
adaptive_recover_until,
|
||||
)
|
||||
.await;
|
||||
let required = pool.required_writers_for_dc_with_floor_mode(endpoints.len(), reduce_for_idle);
|
||||
let alive = endpoints
|
||||
.iter()
|
||||
.map(|addr| *live_addr_counts.get(addr).unwrap_or(&0))
|
||||
.sum::<usize>();
|
||||
|
||||
if endpoints.len() == 1 && pool.single_endpoint_outage_mode_enabled() && alive == 0 {
|
||||
if single_endpoint_outage.insert(key) {
|
||||
pool.stats.increment_me_single_endpoint_outage_enter_total();
|
||||
warn!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
"Single-endpoint DC outage detected"
|
||||
);
|
||||
}
|
||||
|
||||
recover_single_endpoint_outage(
|
||||
pool,
|
||||
rng,
|
||||
key,
|
||||
endpoints[0],
|
||||
required,
|
||||
outage_backoff,
|
||||
outage_next_attempt,
|
||||
)
|
||||
.await;
|
||||
continue;
|
||||
}
|
||||
|
||||
if single_endpoint_outage.remove(&key) {
|
||||
pool.stats.increment_me_single_endpoint_outage_exit_total();
|
||||
outage_backoff.remove(&key);
|
||||
outage_next_attempt.remove(&key);
|
||||
shadow_rotate_deadline.remove(&key);
|
||||
idle_refresh_next_attempt.remove(&key);
|
||||
adaptive_idle_since.remove(&key);
|
||||
adaptive_recover_until.remove(&key);
|
||||
info!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
alive,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
"Single-endpoint DC outage recovered"
|
||||
);
|
||||
}
|
||||
|
||||
if alive >= required {
|
||||
maybe_refresh_idle_writer_for_dc(
|
||||
pool,
|
||||
rng,
|
||||
key,
|
||||
dc,
|
||||
family,
|
||||
&endpoints,
|
||||
alive,
|
||||
required,
|
||||
&live_writer_ids_by_addr,
|
||||
&writer_idle_since,
|
||||
idle_refresh_next_attempt,
|
||||
)
|
||||
.await;
|
||||
maybe_rotate_single_endpoint_shadow(
|
||||
pool,
|
||||
rng,
|
||||
key,
|
||||
dc,
|
||||
family,
|
||||
&endpoints,
|
||||
alive,
|
||||
required,
|
||||
&live_writer_ids_by_addr,
|
||||
shadow_rotate_deadline,
|
||||
)
|
||||
.await;
|
||||
continue;
|
||||
}
|
||||
let missing = required - alive;
|
||||
|
||||
let now = Instant::now();
|
||||
if let Some(ts) = next_attempt.get(&key)
|
||||
&& now < *ts
|
||||
{
|
||||
continue;
|
||||
}
|
||||
|
||||
let max_concurrent = pool.me_reconnect_max_concurrent_per_dc.max(1) as usize;
|
||||
if *inflight.get(&key).unwrap_or(&0) >= max_concurrent {
|
||||
continue;
|
||||
}
|
||||
if pool.has_refill_inflight_for_endpoints(&endpoints).await {
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
alive,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
"Skipping health reconnect: immediate refill is already in flight for this DC group"
|
||||
);
|
||||
continue;
|
||||
}
|
||||
*inflight.entry(key).or_insert(0) += 1;
|
||||
|
||||
let mut restored = 0usize;
|
||||
for _ in 0..missing {
|
||||
let res = tokio::time::timeout(
|
||||
pool.me_one_timeout,
|
||||
pool.connect_endpoints_round_robin(&endpoints, rng.as_ref()),
|
||||
)
|
||||
.await;
|
||||
match res {
|
||||
Ok(true) => {
|
||||
restored += 1;
|
||||
pool.stats.increment_me_reconnect_success();
|
||||
}
|
||||
Ok(false) => {
|
||||
pool.stats.increment_me_reconnect_attempt();
|
||||
debug!(dc = %dc, ?family, "ME round-robin reconnect failed")
|
||||
}
|
||||
Err(_) => {
|
||||
pool.stats.increment_me_reconnect_attempt();
|
||||
debug!(dc = %dc, ?family, "ME reconnect timed out");
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let now_alive = alive + restored;
|
||||
if now_alive >= required {
|
||||
info!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
alive = now_alive,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
"ME writer floor restored for DC"
|
||||
);
|
||||
backoff.insert(key, pool.me_reconnect_backoff_base.as_millis() as u64);
|
||||
let jitter = pool.me_reconnect_backoff_base.as_millis() as u64 / JITTER_FRAC_NUM;
|
||||
let wait = pool.me_reconnect_backoff_base
|
||||
+ Duration::from_millis(rand::rng().random_range(0..=jitter.max(1)));
|
||||
next_attempt.insert(key, now + wait);
|
||||
} else {
|
||||
let curr = *backoff.get(&key).unwrap_or(&(pool.me_reconnect_backoff_base.as_millis() as u64));
|
||||
let next_ms = (curr.saturating_mul(2)).min(pool.me_reconnect_backoff_cap.as_millis() as u64);
|
||||
backoff.insert(key, next_ms);
|
||||
let jitter = next_ms / JITTER_FRAC_NUM;
|
||||
let wait = Duration::from_millis(next_ms)
|
||||
+ Duration::from_millis(rand::rng().random_range(0..=jitter.max(1)));
|
||||
next_attempt.insert(key, now + wait);
|
||||
if pool.is_runtime_ready() {
|
||||
warn!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
alive = now_alive,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
backoff_ms = next_ms,
|
||||
"DC writer floor is below required level, scheduled reconnect"
|
||||
);
|
||||
} else {
|
||||
info!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
alive = now_alive,
|
||||
required,
|
||||
endpoint_count = endpoints.len(),
|
||||
backoff_ms = next_ms,
|
||||
"DC writer floor is below required level during startup, scheduled reconnect"
|
||||
);
|
||||
}
|
||||
}
|
||||
if let Some(v) = inflight.get_mut(&key) {
|
||||
*v = v.saturating_sub(1);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
async fn maybe_refresh_idle_writer_for_dc(
|
||||
pool: &Arc<MePool>,
|
||||
rng: &Arc<SecureRandom>,
|
||||
key: (i32, IpFamily),
|
||||
dc: i32,
|
||||
family: IpFamily,
|
||||
endpoints: &[SocketAddr],
|
||||
alive: usize,
|
||||
required: usize,
|
||||
live_writer_ids_by_addr: &HashMap<SocketAddr, Vec<u64>>,
|
||||
writer_idle_since: &HashMap<u64, u64>,
|
||||
idle_refresh_next_attempt: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
) {
|
||||
if alive < required {
|
||||
return;
|
||||
}
|
||||
|
||||
let now = Instant::now();
|
||||
if let Some(next) = idle_refresh_next_attempt.get(&key)
|
||||
&& now < *next
|
||||
{
|
||||
return;
|
||||
}
|
||||
|
||||
let now_epoch_secs = MePool::now_epoch_secs();
|
||||
let mut candidate: Option<(u64, SocketAddr, u64, u64)> = None;
|
||||
for endpoint in endpoints {
|
||||
let Some(writer_ids) = live_writer_ids_by_addr.get(endpoint) else {
|
||||
continue;
|
||||
};
|
||||
for writer_id in writer_ids {
|
||||
let Some(idle_since_epoch_secs) = writer_idle_since.get(writer_id).copied() else {
|
||||
continue;
|
||||
};
|
||||
let idle_age_secs = now_epoch_secs.saturating_sub(idle_since_epoch_secs);
|
||||
let threshold_secs = IDLE_REFRESH_TRIGGER_BASE_SECS
|
||||
+ (*writer_id % (IDLE_REFRESH_TRIGGER_JITTER_SECS + 1));
|
||||
if idle_age_secs < threshold_secs {
|
||||
continue;
|
||||
}
|
||||
if candidate
|
||||
.as_ref()
|
||||
.map(|(_, _, age, _)| idle_age_secs > *age)
|
||||
.unwrap_or(true)
|
||||
{
|
||||
candidate = Some((*writer_id, *endpoint, idle_age_secs, threshold_secs));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let Some((old_writer_id, endpoint, idle_age_secs, threshold_secs)) = candidate else {
|
||||
return;
|
||||
};
|
||||
|
||||
let rotate_ok = match tokio::time::timeout(pool.me_one_timeout, pool.connect_one(endpoint, rng.as_ref())).await {
|
||||
Ok(Ok(())) => true,
|
||||
Ok(Err(error)) => {
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
old_writer_id,
|
||||
idle_age_secs,
|
||||
threshold_secs,
|
||||
%error,
|
||||
"Idle writer pre-refresh connect failed"
|
||||
);
|
||||
false
|
||||
}
|
||||
Err(_) => {
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
old_writer_id,
|
||||
idle_age_secs,
|
||||
threshold_secs,
|
||||
"Idle writer pre-refresh connect timed out"
|
||||
);
|
||||
false
|
||||
}
|
||||
};
|
||||
|
||||
if !rotate_ok {
|
||||
idle_refresh_next_attempt.insert(key, now + Duration::from_secs(IDLE_REFRESH_RETRY_SECS));
|
||||
return;
|
||||
}
|
||||
|
||||
pool.mark_writer_draining_with_timeout(old_writer_id, pool.force_close_timeout(), false)
|
||||
.await;
|
||||
idle_refresh_next_attempt.insert(
|
||||
key,
|
||||
now + Duration::from_secs(IDLE_REFRESH_SUCCESS_GUARD_SECS),
|
||||
);
|
||||
info!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
old_writer_id,
|
||||
idle_age_secs,
|
||||
threshold_secs,
|
||||
alive,
|
||||
required,
|
||||
"Idle writer refreshed before upstream idle timeout"
|
||||
);
|
||||
}
|
||||
|
||||
async fn should_reduce_floor_for_idle(
|
||||
pool: &Arc<MePool>,
|
||||
key: (i32, IpFamily),
|
||||
endpoints: &[SocketAddr],
|
||||
live_writer_ids_by_addr: &HashMap<SocketAddr, Vec<u64>>,
|
||||
adaptive_idle_since: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
adaptive_recover_until: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
) -> bool {
|
||||
if endpoints.len() != 1 || pool.floor_mode() != MeFloorMode::Adaptive {
|
||||
adaptive_idle_since.remove(&key);
|
||||
adaptive_recover_until.remove(&key);
|
||||
return false;
|
||||
}
|
||||
|
||||
let now = Instant::now();
|
||||
let endpoint = endpoints[0];
|
||||
let writer_ids = live_writer_ids_by_addr
|
||||
.get(&endpoint)
|
||||
.map(Vec::as_slice)
|
||||
.unwrap_or(&[]);
|
||||
let has_bound_clients = has_bound_clients_on_endpoint(pool, writer_ids).await;
|
||||
if has_bound_clients {
|
||||
adaptive_idle_since.remove(&key);
|
||||
adaptive_recover_until.insert(key, now + pool.adaptive_floor_recover_grace_duration());
|
||||
return false;
|
||||
}
|
||||
|
||||
if let Some(recover_until) = adaptive_recover_until.get(&key)
|
||||
&& now < *recover_until
|
||||
{
|
||||
adaptive_idle_since.remove(&key);
|
||||
return false;
|
||||
}
|
||||
adaptive_recover_until.remove(&key);
|
||||
|
||||
let idle_since = adaptive_idle_since.entry(key).or_insert(now);
|
||||
now.saturating_duration_since(*idle_since) >= pool.adaptive_floor_idle_duration()
|
||||
}
|
||||
|
||||
async fn has_bound_clients_on_endpoint(pool: &Arc<MePool>, writer_ids: &[u64]) -> bool {
|
||||
for writer_id in writer_ids {
|
||||
if !pool.registry.is_writer_empty(*writer_id).await {
|
||||
return true;
|
||||
}
|
||||
}
|
||||
false
|
||||
}
|
||||
|
||||
async fn recover_single_endpoint_outage(
|
||||
pool: &Arc<MePool>,
|
||||
rng: &Arc<SecureRandom>,
|
||||
key: (i32, IpFamily),
|
||||
endpoint: SocketAddr,
|
||||
required: usize,
|
||||
outage_backoff: &mut HashMap<(i32, IpFamily), u64>,
|
||||
outage_next_attempt: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
) {
|
||||
let now = Instant::now();
|
||||
if let Some(ts) = outage_next_attempt.get(&key)
|
||||
&& now < *ts
|
||||
{
|
||||
return;
|
||||
}
|
||||
|
||||
let (min_backoff_ms, max_backoff_ms) = pool.single_endpoint_outage_backoff_bounds_ms();
|
||||
pool.stats
|
||||
.increment_me_single_endpoint_outage_reconnect_attempt_total();
|
||||
|
||||
let bypass_quarantine = pool.single_endpoint_outage_disable_quarantine();
|
||||
let attempt_ok = if bypass_quarantine {
|
||||
pool.stats
|
||||
.increment_me_single_endpoint_quarantine_bypass_total();
|
||||
match tokio::time::timeout(pool.me_one_timeout, pool.connect_one(endpoint, rng.as_ref())).await {
|
||||
Ok(Ok(())) => true,
|
||||
Ok(Err(e)) => {
|
||||
debug!(
|
||||
dc = %key.0,
|
||||
family = ?key.1,
|
||||
%endpoint,
|
||||
error = %e,
|
||||
"Single-endpoint outage reconnect failed (quarantine bypass path)"
|
||||
);
|
||||
false
|
||||
}
|
||||
Err(_) => {
|
||||
debug!(
|
||||
dc = %key.0,
|
||||
family = ?key.1,
|
||||
%endpoint,
|
||||
"Single-endpoint outage reconnect timed out (quarantine bypass path)"
|
||||
);
|
||||
false
|
||||
}
|
||||
}
|
||||
} else {
|
||||
let one_endpoint = [endpoint];
|
||||
match tokio::time::timeout(
|
||||
pool.me_one_timeout,
|
||||
pool.connect_endpoints_round_robin(&one_endpoint, rng.as_ref()),
|
||||
)
|
||||
.await
|
||||
{
|
||||
Ok(ok) => ok,
|
||||
Err(_) => {
|
||||
debug!(
|
||||
dc = %key.0,
|
||||
family = ?key.1,
|
||||
%endpoint,
|
||||
"Single-endpoint outage reconnect timed out"
|
||||
);
|
||||
false
|
||||
}
|
||||
}
|
||||
};
|
||||
|
||||
if attempt_ok {
|
||||
pool.stats
|
||||
.increment_me_single_endpoint_outage_reconnect_success_total();
|
||||
pool.stats.increment_me_reconnect_success();
|
||||
outage_backoff.insert(key, min_backoff_ms);
|
||||
let jitter = min_backoff_ms / JITTER_FRAC_NUM;
|
||||
let wait = Duration::from_millis(min_backoff_ms)
|
||||
+ Duration::from_millis(rand::rng().random_range(0..=jitter.max(1)));
|
||||
outage_next_attempt.insert(key, now + wait);
|
||||
info!(
|
||||
dc = %key.0,
|
||||
family = ?key.1,
|
||||
%endpoint,
|
||||
required,
|
||||
backoff_ms = min_backoff_ms,
|
||||
"Single-endpoint outage reconnect succeeded"
|
||||
);
|
||||
return;
|
||||
}
|
||||
|
||||
pool.stats.increment_me_reconnect_attempt();
|
||||
let current_ms = *outage_backoff.get(&key).unwrap_or(&min_backoff_ms);
|
||||
let next_ms = current_ms.saturating_mul(2).min(max_backoff_ms);
|
||||
outage_backoff.insert(key, next_ms);
|
||||
let jitter = next_ms / JITTER_FRAC_NUM;
|
||||
let wait = Duration::from_millis(next_ms)
|
||||
+ Duration::from_millis(rand::rng().random_range(0..=jitter.max(1)));
|
||||
outage_next_attempt.insert(key, now + wait);
|
||||
warn!(
|
||||
dc = %key.0,
|
||||
family = ?key.1,
|
||||
%endpoint,
|
||||
required,
|
||||
backoff_ms = next_ms,
|
||||
"Single-endpoint outage reconnect scheduled"
|
||||
);
|
||||
}
|
||||
|
||||
async fn maybe_rotate_single_endpoint_shadow(
|
||||
pool: &Arc<MePool>,
|
||||
rng: &Arc<SecureRandom>,
|
||||
key: (i32, IpFamily),
|
||||
dc: i32,
|
||||
family: IpFamily,
|
||||
endpoints: &[SocketAddr],
|
||||
alive: usize,
|
||||
required: usize,
|
||||
live_writer_ids_by_addr: &HashMap<SocketAddr, Vec<u64>>,
|
||||
shadow_rotate_deadline: &mut HashMap<(i32, IpFamily), Instant>,
|
||||
) {
|
||||
if endpoints.len() != 1 || alive < required {
|
||||
return;
|
||||
}
|
||||
|
||||
let Some(interval) = pool.single_endpoint_shadow_rotate_interval() else {
|
||||
return;
|
||||
};
|
||||
|
||||
let now = Instant::now();
|
||||
if let Some(deadline) = shadow_rotate_deadline.get(&key)
|
||||
&& now < *deadline
|
||||
{
|
||||
return;
|
||||
}
|
||||
|
||||
let endpoint = endpoints[0];
|
||||
if pool.is_endpoint_quarantined(endpoint).await {
|
||||
pool.stats
|
||||
.increment_me_single_endpoint_shadow_rotate_skipped_quarantine_total();
|
||||
shadow_rotate_deadline.insert(key, now + Duration::from_secs(SHADOW_ROTATE_RETRY_SECS));
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
"Single-endpoint shadow rotation skipped: endpoint is quarantined"
|
||||
);
|
||||
return;
|
||||
}
|
||||
|
||||
let Some(writer_ids) = live_writer_ids_by_addr.get(&endpoint) else {
|
||||
shadow_rotate_deadline.insert(key, now + Duration::from_secs(SHADOW_ROTATE_RETRY_SECS));
|
||||
return;
|
||||
};
|
||||
|
||||
let mut candidate_writer_id = None;
|
||||
for writer_id in writer_ids {
|
||||
if pool.registry.is_writer_empty(*writer_id).await {
|
||||
candidate_writer_id = Some(*writer_id);
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
let Some(old_writer_id) = candidate_writer_id else {
|
||||
shadow_rotate_deadline.insert(key, now + Duration::from_secs(SHADOW_ROTATE_RETRY_SECS));
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
alive,
|
||||
required,
|
||||
"Single-endpoint shadow rotation skipped: no empty writer candidate"
|
||||
);
|
||||
return;
|
||||
};
|
||||
|
||||
let rotate_ok = match tokio::time::timeout(pool.me_one_timeout, pool.connect_one(endpoint, rng.as_ref())).await {
|
||||
Ok(Ok(())) => true,
|
||||
Ok(Err(e)) => {
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
error = %e,
|
||||
"Single-endpoint shadow rotation connect failed"
|
||||
);
|
||||
false
|
||||
}
|
||||
Err(_) => {
|
||||
debug!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
"Single-endpoint shadow rotation connect timed out"
|
||||
);
|
||||
false
|
||||
}
|
||||
};
|
||||
|
||||
if !rotate_ok {
|
||||
shadow_rotate_deadline.insert(
|
||||
key,
|
||||
now + interval.min(Duration::from_secs(SHADOW_ROTATE_RETRY_SECS)),
|
||||
);
|
||||
return;
|
||||
}
|
||||
|
||||
pool.mark_writer_draining_with_timeout(old_writer_id, pool.force_close_timeout(), false)
|
||||
.await;
|
||||
pool.stats.increment_me_single_endpoint_shadow_rotate_total();
|
||||
shadow_rotate_deadline.insert(key, now + interval);
|
||||
info!(
|
||||
dc = %dc,
|
||||
?family,
|
||||
%endpoint,
|
||||
old_writer_id,
|
||||
rotate_every_secs = interval.as_secs(),
|
||||
"Single-endpoint shadow writer rotated"
|
||||
);
|
||||
}
|
||||
46
src/transport/middle_proxy/mod.rs
Normal file
46
src/transport/middle_proxy/mod.rs
Normal file
@@ -0,0 +1,46 @@
|
||||
//! Middle Proxy RPC transport.
|
||||
|
||||
mod codec;
|
||||
mod config_updater;
|
||||
mod handshake;
|
||||
mod health;
|
||||
mod pool;
|
||||
mod pool_config;
|
||||
mod pool_init;
|
||||
mod pool_nat;
|
||||
mod pool_refill;
|
||||
mod pool_reinit;
|
||||
mod pool_writer;
|
||||
mod ping;
|
||||
mod reader;
|
||||
mod registry;
|
||||
mod rotation;
|
||||
mod send;
|
||||
mod secret;
|
||||
mod wire;
|
||||
mod pool_status;
|
||||
|
||||
use bytes::Bytes;
|
||||
|
||||
pub use health::me_health_monitor;
|
||||
#[allow(unused_imports)]
|
||||
pub use ping::{run_me_ping, format_sample_line, format_me_route, MePingReport, MePingSample, MePingFamily};
|
||||
pub use pool::MePool;
|
||||
#[allow(unused_imports)]
|
||||
pub use pool_nat::{stun_probe, detect_public_ip};
|
||||
pub use registry::ConnRegistry;
|
||||
pub use secret::fetch_proxy_secret;
|
||||
#[allow(unused_imports)]
|
||||
pub use config_updater::{
|
||||
ProxyConfigData, fetch_proxy_config, fetch_proxy_config_with_raw, load_proxy_config_cache,
|
||||
me_config_updater, save_proxy_config_cache,
|
||||
};
|
||||
pub use rotation::{MeReinitTrigger, me_reinit_scheduler, me_rotation_task};
|
||||
pub use wire::proto_flags_for_tag;
|
||||
|
||||
#[derive(Debug)]
|
||||
pub enum MeResponse {
|
||||
Data { flags: u32, data: Bytes },
|
||||
Ack(u32),
|
||||
Close,
|
||||
}
|
||||
386
src/transport/middle_proxy/ping.rs
Normal file
386
src/transport/middle_proxy/ping.rs
Normal file
@@ -0,0 +1,386 @@
|
||||
use std::collections::HashMap;
|
||||
use std::net::{IpAddr, SocketAddr};
|
||||
use std::sync::Arc;
|
||||
|
||||
use tokio::net::UdpSocket;
|
||||
|
||||
use crate::config::{UpstreamConfig, UpstreamType};
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::error::ProxyError;
|
||||
use crate::transport::{UpstreamEgressInfo, UpstreamRouteKind};
|
||||
|
||||
use super::MePool;
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
|
||||
pub enum MePingFamily {
|
||||
V4,
|
||||
V6,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone)]
|
||||
pub struct MePingSample {
|
||||
pub dc: i32,
|
||||
pub addr: SocketAddr,
|
||||
pub route: Option<String>,
|
||||
pub connect_ms: Option<f64>,
|
||||
pub handshake_ms: Option<f64>,
|
||||
pub error: Option<String>,
|
||||
pub family: MePingFamily,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone)]
|
||||
#[allow(dead_code)]
|
||||
pub struct MePingReport {
|
||||
pub dc: i32,
|
||||
pub family: MePingFamily,
|
||||
pub samples: Vec<MePingSample>,
|
||||
}
|
||||
|
||||
pub fn format_sample_line(sample: &MePingSample) -> String {
|
||||
let sign = if sample.dc >= 0 { "+" } else { "-" };
|
||||
let addr = format!("{}:{}", sample.addr.ip(), sample.addr.port());
|
||||
|
||||
match (sample.connect_ms, sample.handshake_ms.as_ref(), sample.error.as_ref()) {
|
||||
(Some(conn), Some(hs), None) => format!(
|
||||
" {sign} {addr}\tPing: {:.0} ms / RPC: {:.0} ms / OK",
|
||||
conn, hs
|
||||
),
|
||||
(Some(conn), None, Some(err)) => format!(
|
||||
" {sign} {addr}\tPing: {:.0} ms / RPC: FAIL ({err})",
|
||||
conn
|
||||
),
|
||||
(None, _, Some(err)) => format!(" {sign} {addr}\tPing: FAIL ({err})"),
|
||||
(Some(conn), None, None) => format!(" {sign} {addr}\tPing: {:.0} ms / RPC: FAIL", conn),
|
||||
_ => format!(" {sign} {addr}\tPing: FAIL"),
|
||||
}
|
||||
}
|
||||
|
||||
fn format_direct_with_config(
|
||||
interface: &Option<String>,
|
||||
bind_addresses: &Option<Vec<String>>,
|
||||
) -> Option<String> {
|
||||
let mut direct_parts: Vec<String> = Vec::new();
|
||||
if let Some(dev) = interface.as_deref().filter(|v| !v.is_empty()) {
|
||||
direct_parts.push(format!("dev={dev}"));
|
||||
}
|
||||
if let Some(src) = bind_addresses.as_ref().filter(|v| !v.is_empty()) {
|
||||
direct_parts.push(format!("src={}", src.join(",")));
|
||||
}
|
||||
if direct_parts.is_empty() {
|
||||
None
|
||||
} else {
|
||||
Some(format!("direct {}", direct_parts.join(" ")))
|
||||
}
|
||||
}
|
||||
|
||||
fn pick_target_for_family(reports: &[MePingReport], family: MePingFamily) -> Option<SocketAddr> {
|
||||
reports.iter().find_map(|report| {
|
||||
if report.family != family {
|
||||
return None;
|
||||
}
|
||||
report
|
||||
.samples
|
||||
.iter()
|
||||
.find(|s| s.error.is_none() && s.handshake_ms.is_some())
|
||||
.map(|s| s.addr)
|
||||
})
|
||||
}
|
||||
|
||||
fn route_from_egress(egress: Option<UpstreamEgressInfo>) -> Option<String> {
|
||||
let info = egress?;
|
||||
match info.route_kind {
|
||||
UpstreamRouteKind::Direct => {
|
||||
let src_ip = info
|
||||
.direct_bind_ip
|
||||
.or_else(|| info.local_addr.map(|addr| addr.ip()));
|
||||
let ip = src_ip?;
|
||||
let mut parts = Vec::new();
|
||||
if let Some(dev) = detect_interface_for_ip(ip) {
|
||||
parts.push(format!("dev={dev}"));
|
||||
}
|
||||
parts.push(format!("src={ip}"));
|
||||
Some(format!("direct {}", parts.join(" ")))
|
||||
}
|
||||
UpstreamRouteKind::Socks4 => {
|
||||
let route = info
|
||||
.socks_proxy_addr
|
||||
.map(|addr| format!("socks4://{addr}"))
|
||||
.unwrap_or_else(|| "socks4://unknown".to_string());
|
||||
Some(match info.socks_bound_addr {
|
||||
Some(bound) => format!("{route} bnd={bound}"),
|
||||
None => route,
|
||||
})
|
||||
}
|
||||
UpstreamRouteKind::Socks5 => {
|
||||
let route = info
|
||||
.socks_proxy_addr
|
||||
.map(|addr| format!("socks5://{addr}"))
|
||||
.unwrap_or_else(|| "socks5://unknown".to_string());
|
||||
Some(match info.socks_bound_addr {
|
||||
Some(bound) => format!("{route} bnd={bound}"),
|
||||
None => route,
|
||||
})
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(unix)]
|
||||
fn detect_interface_for_ip(ip: IpAddr) -> Option<String> {
|
||||
use nix::ifaddrs::getifaddrs;
|
||||
|
||||
if let Ok(addrs) = getifaddrs() {
|
||||
for iface in addrs {
|
||||
if let Some(address) = iface.address {
|
||||
if let Some(v4) = address.as_sockaddr_in() {
|
||||
if IpAddr::V4(v4.ip()) == ip {
|
||||
return Some(iface.interface_name);
|
||||
}
|
||||
} else if let Some(v6) = address.as_sockaddr_in6() {
|
||||
if IpAddr::V6(v6.ip()) == ip {
|
||||
return Some(iface.interface_name);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
None
|
||||
}
|
||||
|
||||
#[cfg(not(unix))]
|
||||
fn detect_interface_for_ip(_ip: IpAddr) -> Option<String> {
|
||||
None
|
||||
}
|
||||
|
||||
async fn detect_direct_route_details(
|
||||
reports: &[MePingReport],
|
||||
prefer_ipv6: bool,
|
||||
v4_ok: bool,
|
||||
v6_ok: bool,
|
||||
) -> Option<String> {
|
||||
let target_addr = if prefer_ipv6 && v6_ok {
|
||||
pick_target_for_family(reports, MePingFamily::V6)
|
||||
.or_else(|| pick_target_for_family(reports, MePingFamily::V4))
|
||||
} else if v4_ok {
|
||||
pick_target_for_family(reports, MePingFamily::V4)
|
||||
.or_else(|| pick_target_for_family(reports, MePingFamily::V6))
|
||||
} else {
|
||||
pick_target_for_family(reports, MePingFamily::V6)
|
||||
.or_else(|| pick_target_for_family(reports, MePingFamily::V4))
|
||||
}?;
|
||||
|
||||
let local_ip = if target_addr.is_ipv4() {
|
||||
let sock = UdpSocket::bind("0.0.0.0:0").await.ok()?;
|
||||
sock.connect(target_addr).await.ok()?;
|
||||
sock.local_addr().ok().map(|a| a.ip())
|
||||
} else {
|
||||
let sock = UdpSocket::bind("[::]:0").await.ok()?;
|
||||
sock.connect(target_addr).await.ok()?;
|
||||
sock.local_addr().ok().map(|a| a.ip())
|
||||
};
|
||||
|
||||
let mut parts = Vec::new();
|
||||
if let Some(ip) = local_ip {
|
||||
if let Some(dev) = detect_interface_for_ip(ip) {
|
||||
parts.push(format!("dev={dev}"));
|
||||
}
|
||||
parts.push(format!("src={ip}"));
|
||||
}
|
||||
|
||||
if parts.is_empty() {
|
||||
None
|
||||
} else {
|
||||
Some(format!("direct {}", parts.join(" ")))
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn format_me_route(
|
||||
upstreams: &[UpstreamConfig],
|
||||
reports: &[MePingReport],
|
||||
prefer_ipv6: bool,
|
||||
v4_ok: bool,
|
||||
v6_ok: bool,
|
||||
) -> String {
|
||||
if let Some(route) = reports
|
||||
.iter()
|
||||
.flat_map(|report| report.samples.iter())
|
||||
.find(|sample| sample.error.is_none() && sample.handshake_ms.is_some())
|
||||
.and_then(|sample| sample.route.clone())
|
||||
{
|
||||
return route;
|
||||
}
|
||||
|
||||
let enabled_upstreams: Vec<_> = upstreams.iter().filter(|u| u.enabled).collect();
|
||||
if enabled_upstreams.is_empty() {
|
||||
return detect_direct_route_details(reports, prefer_ipv6, v4_ok, v6_ok)
|
||||
.await
|
||||
.unwrap_or_else(|| "direct".to_string());
|
||||
}
|
||||
|
||||
if enabled_upstreams.len() == 1 {
|
||||
return match &enabled_upstreams[0].upstream_type {
|
||||
UpstreamType::Direct {
|
||||
interface,
|
||||
bind_addresses,
|
||||
} => {
|
||||
if let Some(route) = format_direct_with_config(interface, bind_addresses) {
|
||||
route
|
||||
} else {
|
||||
detect_direct_route_details(reports, prefer_ipv6, v4_ok, v6_ok)
|
||||
.await
|
||||
.unwrap_or_else(|| "direct".to_string())
|
||||
}
|
||||
}
|
||||
UpstreamType::Socks4 { address, .. } => format!("socks4://{address}"),
|
||||
UpstreamType::Socks5 { address, .. } => format!("socks5://{address}"),
|
||||
};
|
||||
}
|
||||
|
||||
let has_direct = enabled_upstreams
|
||||
.iter()
|
||||
.any(|u| matches!(u.upstream_type, UpstreamType::Direct { .. }));
|
||||
let has_socks4 = enabled_upstreams
|
||||
.iter()
|
||||
.any(|u| matches!(u.upstream_type, UpstreamType::Socks4 { .. }));
|
||||
let has_socks5 = enabled_upstreams
|
||||
.iter()
|
||||
.any(|u| matches!(u.upstream_type, UpstreamType::Socks5 { .. }));
|
||||
let mut kinds = Vec::new();
|
||||
if has_direct {
|
||||
kinds.push("direct");
|
||||
}
|
||||
if has_socks4 {
|
||||
kinds.push("socks4");
|
||||
}
|
||||
if has_socks5 {
|
||||
kinds.push("socks5");
|
||||
}
|
||||
format!("mixed upstreams ({})", kinds.join(", "))
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::*;
|
||||
use std::net::{IpAddr, Ipv4Addr, SocketAddr};
|
||||
|
||||
fn sample(base: MePingSample) -> MePingSample {
|
||||
base
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn ok_line_contains_both_timings() {
|
||||
let s = sample(MePingSample {
|
||||
dc: 4,
|
||||
addr: SocketAddr::new(IpAddr::V4(Ipv4Addr::new(1, 2, 3, 4)), 8888),
|
||||
route: Some("direct src=1.2.3.4".to_string()),
|
||||
connect_ms: Some(12.3),
|
||||
handshake_ms: Some(34.7),
|
||||
error: None,
|
||||
family: MePingFamily::V4,
|
||||
});
|
||||
let line = format_sample_line(&s);
|
||||
assert!(line.contains("Ping: 12 ms"));
|
||||
assert!(line.contains("RPC: 35 ms"));
|
||||
assert!(line.contains("OK"));
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn error_line_mentions_reason() {
|
||||
let s = sample(MePingSample {
|
||||
dc: -5,
|
||||
addr: SocketAddr::new(IpAddr::V4(Ipv4Addr::new(5, 6, 7, 8)), 80),
|
||||
route: Some("socks5".to_string()),
|
||||
connect_ms: Some(10.0),
|
||||
handshake_ms: None,
|
||||
error: Some("handshake timeout".to_string()),
|
||||
family: MePingFamily::V4,
|
||||
});
|
||||
let line = format_sample_line(&s);
|
||||
assert!(line.contains("- 5.6.7.8:80"));
|
||||
assert!(line.contains("handshake timeout"));
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn run_me_ping(pool: &Arc<MePool>, rng: &SecureRandom) -> Vec<MePingReport> {
|
||||
let mut reports = Vec::new();
|
||||
|
||||
let v4_map = if pool.decision.ipv4_me {
|
||||
pool.proxy_map_v4.read().await.clone()
|
||||
} else {
|
||||
HashMap::new()
|
||||
};
|
||||
let v6_map = if pool.decision.ipv6_me {
|
||||
pool.proxy_map_v6.read().await.clone()
|
||||
} else {
|
||||
HashMap::new()
|
||||
};
|
||||
|
||||
let mut grouped: Vec<(MePingFamily, i32, Vec<(IpAddr, u16)>)> = Vec::new();
|
||||
for (dc, addrs) in v4_map {
|
||||
grouped.push((MePingFamily::V4, dc, addrs));
|
||||
}
|
||||
for (dc, addrs) in v6_map {
|
||||
grouped.push((MePingFamily::V6, dc, addrs));
|
||||
}
|
||||
|
||||
for (family, dc, addrs) in grouped {
|
||||
let mut samples = Vec::new();
|
||||
for (ip, port) in addrs {
|
||||
let addr = SocketAddr::new(ip, port);
|
||||
let mut connect_ms = None;
|
||||
let mut handshake_ms = None;
|
||||
let mut error = None;
|
||||
let mut route = None;
|
||||
|
||||
match pool.connect_tcp(addr).await {
|
||||
Ok((stream, conn_rtt, upstream_egress)) => {
|
||||
connect_ms = Some(conn_rtt);
|
||||
route = route_from_egress(upstream_egress);
|
||||
match pool.handshake_only(stream, addr, upstream_egress, rng).await {
|
||||
Ok(hs) => {
|
||||
handshake_ms = Some(hs.handshake_ms);
|
||||
// drop halves to close
|
||||
drop(hs.rd);
|
||||
drop(hs.wr);
|
||||
}
|
||||
Err(e) => {
|
||||
error = Some(short_err(&e));
|
||||
}
|
||||
}
|
||||
}
|
||||
Err(e) => {
|
||||
error = Some(short_err(&e));
|
||||
}
|
||||
}
|
||||
|
||||
samples.push(MePingSample {
|
||||
dc,
|
||||
addr,
|
||||
route,
|
||||
connect_ms,
|
||||
handshake_ms,
|
||||
error,
|
||||
family,
|
||||
});
|
||||
}
|
||||
|
||||
reports.push(MePingReport {
|
||||
dc,
|
||||
family,
|
||||
samples,
|
||||
});
|
||||
}
|
||||
|
||||
reports
|
||||
}
|
||||
|
||||
fn short_err(err: &ProxyError) -> String {
|
||||
match err {
|
||||
ProxyError::ConnectionTimeout { .. } => "connect timeout".to_string(),
|
||||
ProxyError::TgHandshakeTimeout => "handshake timeout".to_string(),
|
||||
ProxyError::InvalidHandshake(e) => format!("bad handshake: {e}"),
|
||||
ProxyError::Crypto(e) => format!("crypto: {e}"),
|
||||
ProxyError::Proxy(e) => format!("proxy: {e}"),
|
||||
ProxyError::Io(e) => format!("io: {e}"),
|
||||
_ => format!("{err}"),
|
||||
}
|
||||
}
|
||||
633
src/transport/middle_proxy/pool.rs
Normal file
633
src/transport/middle_proxy/pool.rs
Normal file
@@ -0,0 +1,633 @@
|
||||
use std::collections::{HashMap, HashSet};
|
||||
use std::net::{IpAddr, Ipv6Addr, SocketAddr};
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::{AtomicBool, AtomicI32, AtomicU8, AtomicU32, AtomicU64, AtomicUsize, Ordering};
|
||||
use std::time::{Duration, Instant, SystemTime, UNIX_EPOCH};
|
||||
|
||||
use tokio::sync::{Mutex, Notify, RwLock, mpsc};
|
||||
use tokio_util::sync::CancellationToken;
|
||||
|
||||
use crate::config::{MeBindStaleMode, MeFloorMode, MeRouteNoWriterMode, MeSocksKdfPolicy};
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::network::IpFamily;
|
||||
use crate::network::probe::NetworkDecision;
|
||||
use crate::transport::UpstreamManager;
|
||||
|
||||
use super::ConnRegistry;
|
||||
use super::codec::WriterCommand;
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
|
||||
pub(super) struct RefillDcKey {
|
||||
pub dc: i32,
|
||||
pub family: IpFamily,
|
||||
}
|
||||
|
||||
#[derive(Clone)]
|
||||
pub struct MeWriter {
|
||||
pub id: u64,
|
||||
pub addr: SocketAddr,
|
||||
pub generation: u64,
|
||||
pub contour: Arc<AtomicU8>,
|
||||
pub created_at: Instant,
|
||||
pub tx: mpsc::Sender<WriterCommand>,
|
||||
pub cancel: CancellationToken,
|
||||
pub degraded: Arc<AtomicBool>,
|
||||
pub draining: Arc<AtomicBool>,
|
||||
pub draining_started_at_epoch_secs: Arc<AtomicU64>,
|
||||
pub allow_drain_fallback: Arc<AtomicBool>,
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
|
||||
#[repr(u8)]
|
||||
pub(super) enum WriterContour {
|
||||
Warm = 0,
|
||||
Active = 1,
|
||||
Draining = 2,
|
||||
}
|
||||
|
||||
impl WriterContour {
|
||||
pub(super) fn as_u8(self) -> u8 {
|
||||
self as u8
|
||||
}
|
||||
|
||||
pub(super) fn from_u8(value: u8) -> Self {
|
||||
match value {
|
||||
0 => Self::Warm,
|
||||
1 => Self::Active,
|
||||
2 => Self::Draining,
|
||||
_ => Self::Draining,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
#[derive(Debug, Clone)]
|
||||
pub struct SecretSnapshot {
|
||||
pub epoch: u64,
|
||||
pub key_selector: u32,
|
||||
pub secret: Vec<u8>,
|
||||
}
|
||||
|
||||
#[allow(dead_code)]
|
||||
pub struct MePool {
|
||||
pub(super) registry: Arc<ConnRegistry>,
|
||||
pub(super) writers: Arc<RwLock<Vec<MeWriter>>>,
|
||||
pub(super) rr: AtomicU64,
|
||||
pub(super) decision: NetworkDecision,
|
||||
pub(super) upstream: Option<Arc<UpstreamManager>>,
|
||||
pub(super) rng: Arc<SecureRandom>,
|
||||
pub(super) proxy_tag: Option<Vec<u8>>,
|
||||
pub(super) proxy_secret: Arc<RwLock<SecretSnapshot>>,
|
||||
pub(super) nat_ip_cfg: Option<IpAddr>,
|
||||
pub(super) nat_ip_detected: Arc<RwLock<Option<IpAddr>>>,
|
||||
pub(super) nat_probe: bool,
|
||||
pub(super) nat_stun: Option<String>,
|
||||
pub(super) nat_stun_servers: Vec<String>,
|
||||
pub(super) nat_stun_live_servers: Arc<RwLock<Vec<String>>>,
|
||||
pub(super) nat_probe_concurrency: usize,
|
||||
pub(super) detected_ipv6: Option<Ipv6Addr>,
|
||||
pub(super) nat_probe_attempts: std::sync::atomic::AtomicU8,
|
||||
pub(super) nat_probe_disabled: std::sync::atomic::AtomicBool,
|
||||
pub(super) stun_backoff_until: Arc<RwLock<Option<Instant>>>,
|
||||
pub(super) me_one_retry: u8,
|
||||
pub(super) me_one_timeout: Duration,
|
||||
pub(super) me_keepalive_enabled: bool,
|
||||
pub(super) me_keepalive_interval: Duration,
|
||||
pub(super) me_keepalive_jitter: Duration,
|
||||
pub(super) me_keepalive_payload_random: bool,
|
||||
pub(super) rpc_proxy_req_every_secs: AtomicU64,
|
||||
pub(super) me_warmup_stagger_enabled: bool,
|
||||
pub(super) me_warmup_step_delay: Duration,
|
||||
pub(super) me_warmup_step_jitter: Duration,
|
||||
pub(super) me_reconnect_max_concurrent_per_dc: u32,
|
||||
pub(super) me_reconnect_backoff_base: Duration,
|
||||
pub(super) me_reconnect_backoff_cap: Duration,
|
||||
pub(super) me_reconnect_fast_retry_count: u32,
|
||||
pub(super) me_single_endpoint_shadow_writers: AtomicU8,
|
||||
pub(super) me_single_endpoint_outage_mode_enabled: AtomicBool,
|
||||
pub(super) me_single_endpoint_outage_disable_quarantine: AtomicBool,
|
||||
pub(super) me_single_endpoint_outage_backoff_min_ms: AtomicU64,
|
||||
pub(super) me_single_endpoint_outage_backoff_max_ms: AtomicU64,
|
||||
pub(super) me_single_endpoint_shadow_rotate_every_secs: AtomicU64,
|
||||
pub(super) me_floor_mode: AtomicU8,
|
||||
pub(super) me_adaptive_floor_idle_secs: AtomicU64,
|
||||
pub(super) me_adaptive_floor_min_writers_single_endpoint: AtomicU8,
|
||||
pub(super) me_adaptive_floor_recover_grace_secs: AtomicU64,
|
||||
pub(super) proxy_map_v4: Arc<RwLock<HashMap<i32, Vec<(IpAddr, u16)>>>>,
|
||||
pub(super) proxy_map_v6: Arc<RwLock<HashMap<i32, Vec<(IpAddr, u16)>>>>,
|
||||
pub(super) default_dc: AtomicI32,
|
||||
pub(super) next_writer_id: AtomicU64,
|
||||
pub(super) ping_tracker: Arc<Mutex<HashMap<i64, (std::time::Instant, u64)>>>,
|
||||
pub(super) rtt_stats: Arc<Mutex<HashMap<u64, (f64, f64)>>>,
|
||||
pub(super) nat_reflection_cache: Arc<Mutex<NatReflectionCache>>,
|
||||
pub(super) writer_available: Arc<Notify>,
|
||||
pub(super) refill_inflight: Arc<Mutex<HashSet<SocketAddr>>>,
|
||||
pub(super) refill_inflight_dc: Arc<Mutex<HashSet<RefillDcKey>>>,
|
||||
pub(super) conn_count: AtomicUsize,
|
||||
pub(super) stats: Arc<crate::stats::Stats>,
|
||||
pub(super) generation: AtomicU64,
|
||||
pub(super) active_generation: AtomicU64,
|
||||
pub(super) warm_generation: AtomicU64,
|
||||
pub(super) pending_hardswap_generation: AtomicU64,
|
||||
pub(super) pending_hardswap_started_at_epoch_secs: AtomicU64,
|
||||
pub(super) pending_hardswap_map_hash: AtomicU64,
|
||||
pub(super) hardswap: AtomicBool,
|
||||
pub(super) endpoint_quarantine: Arc<Mutex<HashMap<SocketAddr, Instant>>>,
|
||||
pub(super) kdf_material_fingerprint: Arc<RwLock<HashMap<SocketAddr, (u64, u16)>>>,
|
||||
pub(super) me_pool_drain_ttl_secs: AtomicU64,
|
||||
pub(super) me_pool_force_close_secs: AtomicU64,
|
||||
pub(super) me_pool_min_fresh_ratio_permille: AtomicU32,
|
||||
pub(super) me_hardswap_warmup_delay_min_ms: AtomicU64,
|
||||
pub(super) me_hardswap_warmup_delay_max_ms: AtomicU64,
|
||||
pub(super) me_hardswap_warmup_extra_passes: AtomicU32,
|
||||
pub(super) me_hardswap_warmup_pass_backoff_base_ms: AtomicU64,
|
||||
pub(super) me_bind_stale_mode: AtomicU8,
|
||||
pub(super) me_bind_stale_ttl_secs: AtomicU64,
|
||||
pub(super) secret_atomic_snapshot: AtomicBool,
|
||||
pub(super) me_deterministic_writer_sort: AtomicBool,
|
||||
pub(super) me_socks_kdf_policy: AtomicU8,
|
||||
pub(super) me_route_no_writer_mode: AtomicU8,
|
||||
pub(super) me_route_no_writer_wait: Duration,
|
||||
pub(super) me_route_inline_recovery_attempts: u32,
|
||||
pub(super) me_route_inline_recovery_wait: Duration,
|
||||
pub(super) runtime_ready: AtomicBool,
|
||||
pool_size: usize,
|
||||
}
|
||||
|
||||
#[derive(Debug, Default)]
|
||||
pub struct NatReflectionCache {
|
||||
pub v4: Option<(std::time::Instant, std::net::SocketAddr)>,
|
||||
pub v6: Option<(std::time::Instant, std::net::SocketAddr)>,
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
fn ratio_to_permille(ratio: f32) -> u32 {
|
||||
let clamped = ratio.clamp(0.0, 1.0);
|
||||
(clamped * 1000.0).round() as u32
|
||||
}
|
||||
|
||||
pub(super) fn permille_to_ratio(permille: u32) -> f32 {
|
||||
(permille.min(1000) as f32) / 1000.0
|
||||
}
|
||||
|
||||
pub(super) fn now_epoch_secs() -> u64 {
|
||||
SystemTime::now()
|
||||
.duration_since(UNIX_EPOCH)
|
||||
.unwrap_or_default()
|
||||
.as_secs()
|
||||
}
|
||||
|
||||
pub fn new(
|
||||
proxy_tag: Option<Vec<u8>>,
|
||||
proxy_secret: Vec<u8>,
|
||||
nat_ip: Option<IpAddr>,
|
||||
nat_probe: bool,
|
||||
nat_stun: Option<String>,
|
||||
nat_stun_servers: Vec<String>,
|
||||
nat_probe_concurrency: usize,
|
||||
detected_ipv6: Option<Ipv6Addr>,
|
||||
me_one_retry: u8,
|
||||
me_one_timeout_ms: u64,
|
||||
proxy_map_v4: HashMap<i32, Vec<(IpAddr, u16)>>,
|
||||
proxy_map_v6: HashMap<i32, Vec<(IpAddr, u16)>>,
|
||||
default_dc: Option<i32>,
|
||||
decision: NetworkDecision,
|
||||
upstream: Option<Arc<UpstreamManager>>,
|
||||
rng: Arc<SecureRandom>,
|
||||
stats: Arc<crate::stats::Stats>,
|
||||
me_keepalive_enabled: bool,
|
||||
me_keepalive_interval_secs: u64,
|
||||
me_keepalive_jitter_secs: u64,
|
||||
me_keepalive_payload_random: bool,
|
||||
rpc_proxy_req_every_secs: u64,
|
||||
me_warmup_stagger_enabled: bool,
|
||||
me_warmup_step_delay_ms: u64,
|
||||
me_warmup_step_jitter_ms: u64,
|
||||
me_reconnect_max_concurrent_per_dc: u32,
|
||||
me_reconnect_backoff_base_ms: u64,
|
||||
me_reconnect_backoff_cap_ms: u64,
|
||||
me_reconnect_fast_retry_count: u32,
|
||||
me_single_endpoint_shadow_writers: u8,
|
||||
me_single_endpoint_outage_mode_enabled: bool,
|
||||
me_single_endpoint_outage_disable_quarantine: bool,
|
||||
me_single_endpoint_outage_backoff_min_ms: u64,
|
||||
me_single_endpoint_outage_backoff_max_ms: u64,
|
||||
me_single_endpoint_shadow_rotate_every_secs: u64,
|
||||
me_floor_mode: MeFloorMode,
|
||||
me_adaptive_floor_idle_secs: u64,
|
||||
me_adaptive_floor_min_writers_single_endpoint: u8,
|
||||
me_adaptive_floor_recover_grace_secs: u64,
|
||||
hardswap: bool,
|
||||
me_pool_drain_ttl_secs: u64,
|
||||
me_pool_force_close_secs: u64,
|
||||
me_pool_min_fresh_ratio: f32,
|
||||
me_hardswap_warmup_delay_min_ms: u64,
|
||||
me_hardswap_warmup_delay_max_ms: u64,
|
||||
me_hardswap_warmup_extra_passes: u8,
|
||||
me_hardswap_warmup_pass_backoff_base_ms: u64,
|
||||
me_bind_stale_mode: MeBindStaleMode,
|
||||
me_bind_stale_ttl_secs: u64,
|
||||
me_secret_atomic_snapshot: bool,
|
||||
me_deterministic_writer_sort: bool,
|
||||
me_socks_kdf_policy: MeSocksKdfPolicy,
|
||||
me_route_backpressure_base_timeout_ms: u64,
|
||||
me_route_backpressure_high_timeout_ms: u64,
|
||||
me_route_backpressure_high_watermark_pct: u8,
|
||||
me_route_no_writer_mode: MeRouteNoWriterMode,
|
||||
me_route_no_writer_wait_ms: u64,
|
||||
me_route_inline_recovery_attempts: u32,
|
||||
me_route_inline_recovery_wait_ms: u64,
|
||||
) -> Arc<Self> {
|
||||
let registry = Arc::new(ConnRegistry::new());
|
||||
registry.update_route_backpressure_policy(
|
||||
me_route_backpressure_base_timeout_ms,
|
||||
me_route_backpressure_high_timeout_ms,
|
||||
me_route_backpressure_high_watermark_pct,
|
||||
);
|
||||
Arc::new(Self {
|
||||
registry,
|
||||
writers: Arc::new(RwLock::new(Vec::new())),
|
||||
rr: AtomicU64::new(0),
|
||||
decision,
|
||||
upstream,
|
||||
rng,
|
||||
proxy_tag,
|
||||
proxy_secret: Arc::new(RwLock::new(SecretSnapshot {
|
||||
epoch: 1,
|
||||
key_selector: if proxy_secret.len() >= 4 {
|
||||
u32::from_le_bytes([
|
||||
proxy_secret[0],
|
||||
proxy_secret[1],
|
||||
proxy_secret[2],
|
||||
proxy_secret[3],
|
||||
])
|
||||
} else {
|
||||
0
|
||||
},
|
||||
secret: proxy_secret,
|
||||
})),
|
||||
nat_ip_cfg: nat_ip,
|
||||
nat_ip_detected: Arc::new(RwLock::new(None)),
|
||||
nat_probe,
|
||||
nat_stun,
|
||||
nat_stun_servers,
|
||||
nat_stun_live_servers: Arc::new(RwLock::new(Vec::new())),
|
||||
nat_probe_concurrency: nat_probe_concurrency.max(1),
|
||||
detected_ipv6,
|
||||
nat_probe_attempts: std::sync::atomic::AtomicU8::new(0),
|
||||
nat_probe_disabled: std::sync::atomic::AtomicBool::new(false),
|
||||
stun_backoff_until: Arc::new(RwLock::new(None)),
|
||||
me_one_retry,
|
||||
me_one_timeout: Duration::from_millis(me_one_timeout_ms),
|
||||
stats,
|
||||
me_keepalive_enabled,
|
||||
me_keepalive_interval: Duration::from_secs(me_keepalive_interval_secs),
|
||||
me_keepalive_jitter: Duration::from_secs(me_keepalive_jitter_secs),
|
||||
me_keepalive_payload_random,
|
||||
rpc_proxy_req_every_secs: AtomicU64::new(rpc_proxy_req_every_secs),
|
||||
me_warmup_stagger_enabled,
|
||||
me_warmup_step_delay: Duration::from_millis(me_warmup_step_delay_ms),
|
||||
me_warmup_step_jitter: Duration::from_millis(me_warmup_step_jitter_ms),
|
||||
me_reconnect_max_concurrent_per_dc,
|
||||
me_reconnect_backoff_base: Duration::from_millis(me_reconnect_backoff_base_ms),
|
||||
me_reconnect_backoff_cap: Duration::from_millis(me_reconnect_backoff_cap_ms),
|
||||
me_reconnect_fast_retry_count,
|
||||
me_single_endpoint_shadow_writers: AtomicU8::new(me_single_endpoint_shadow_writers),
|
||||
me_single_endpoint_outage_mode_enabled: AtomicBool::new(
|
||||
me_single_endpoint_outage_mode_enabled,
|
||||
),
|
||||
me_single_endpoint_outage_disable_quarantine: AtomicBool::new(
|
||||
me_single_endpoint_outage_disable_quarantine,
|
||||
),
|
||||
me_single_endpoint_outage_backoff_min_ms: AtomicU64::new(
|
||||
me_single_endpoint_outage_backoff_min_ms,
|
||||
),
|
||||
me_single_endpoint_outage_backoff_max_ms: AtomicU64::new(
|
||||
me_single_endpoint_outage_backoff_max_ms,
|
||||
),
|
||||
me_single_endpoint_shadow_rotate_every_secs: AtomicU64::new(
|
||||
me_single_endpoint_shadow_rotate_every_secs,
|
||||
),
|
||||
me_floor_mode: AtomicU8::new(me_floor_mode.as_u8()),
|
||||
me_adaptive_floor_idle_secs: AtomicU64::new(me_adaptive_floor_idle_secs),
|
||||
me_adaptive_floor_min_writers_single_endpoint: AtomicU8::new(
|
||||
me_adaptive_floor_min_writers_single_endpoint,
|
||||
),
|
||||
me_adaptive_floor_recover_grace_secs: AtomicU64::new(
|
||||
me_adaptive_floor_recover_grace_secs,
|
||||
),
|
||||
pool_size: 2,
|
||||
proxy_map_v4: Arc::new(RwLock::new(proxy_map_v4)),
|
||||
proxy_map_v6: Arc::new(RwLock::new(proxy_map_v6)),
|
||||
default_dc: AtomicI32::new(default_dc.unwrap_or(0)),
|
||||
next_writer_id: AtomicU64::new(1),
|
||||
ping_tracker: Arc::new(Mutex::new(HashMap::new())),
|
||||
rtt_stats: Arc::new(Mutex::new(HashMap::new())),
|
||||
nat_reflection_cache: Arc::new(Mutex::new(NatReflectionCache::default())),
|
||||
writer_available: Arc::new(Notify::new()),
|
||||
refill_inflight: Arc::new(Mutex::new(HashSet::new())),
|
||||
refill_inflight_dc: Arc::new(Mutex::new(HashSet::new())),
|
||||
conn_count: AtomicUsize::new(0),
|
||||
generation: AtomicU64::new(1),
|
||||
active_generation: AtomicU64::new(1),
|
||||
warm_generation: AtomicU64::new(0),
|
||||
pending_hardswap_generation: AtomicU64::new(0),
|
||||
pending_hardswap_started_at_epoch_secs: AtomicU64::new(0),
|
||||
pending_hardswap_map_hash: AtomicU64::new(0),
|
||||
hardswap: AtomicBool::new(hardswap),
|
||||
endpoint_quarantine: Arc::new(Mutex::new(HashMap::new())),
|
||||
kdf_material_fingerprint: Arc::new(RwLock::new(HashMap::new())),
|
||||
me_pool_drain_ttl_secs: AtomicU64::new(me_pool_drain_ttl_secs),
|
||||
me_pool_force_close_secs: AtomicU64::new(me_pool_force_close_secs),
|
||||
me_pool_min_fresh_ratio_permille: AtomicU32::new(Self::ratio_to_permille(
|
||||
me_pool_min_fresh_ratio,
|
||||
)),
|
||||
me_hardswap_warmup_delay_min_ms: AtomicU64::new(me_hardswap_warmup_delay_min_ms),
|
||||
me_hardswap_warmup_delay_max_ms: AtomicU64::new(me_hardswap_warmup_delay_max_ms),
|
||||
me_hardswap_warmup_extra_passes: AtomicU32::new(me_hardswap_warmup_extra_passes as u32),
|
||||
me_hardswap_warmup_pass_backoff_base_ms: AtomicU64::new(
|
||||
me_hardswap_warmup_pass_backoff_base_ms,
|
||||
),
|
||||
me_bind_stale_mode: AtomicU8::new(me_bind_stale_mode.as_u8()),
|
||||
me_bind_stale_ttl_secs: AtomicU64::new(me_bind_stale_ttl_secs),
|
||||
secret_atomic_snapshot: AtomicBool::new(me_secret_atomic_snapshot),
|
||||
me_deterministic_writer_sort: AtomicBool::new(me_deterministic_writer_sort),
|
||||
me_socks_kdf_policy: AtomicU8::new(me_socks_kdf_policy.as_u8()),
|
||||
me_route_no_writer_mode: AtomicU8::new(me_route_no_writer_mode.as_u8()),
|
||||
me_route_no_writer_wait: Duration::from_millis(me_route_no_writer_wait_ms),
|
||||
me_route_inline_recovery_attempts,
|
||||
me_route_inline_recovery_wait: Duration::from_millis(me_route_inline_recovery_wait_ms),
|
||||
runtime_ready: AtomicBool::new(false),
|
||||
})
|
||||
}
|
||||
|
||||
pub fn current_generation(&self) -> u64 {
|
||||
self.active_generation.load(Ordering::Relaxed)
|
||||
}
|
||||
|
||||
pub fn set_runtime_ready(&self, ready: bool) {
|
||||
self.runtime_ready.store(ready, Ordering::Relaxed);
|
||||
}
|
||||
|
||||
pub fn is_runtime_ready(&self) -> bool {
|
||||
self.runtime_ready.load(Ordering::Relaxed)
|
||||
}
|
||||
|
||||
pub fn update_runtime_reinit_policy(
|
||||
&self,
|
||||
hardswap: bool,
|
||||
drain_ttl_secs: u64,
|
||||
force_close_secs: u64,
|
||||
min_fresh_ratio: f32,
|
||||
hardswap_warmup_delay_min_ms: u64,
|
||||
hardswap_warmup_delay_max_ms: u64,
|
||||
hardswap_warmup_extra_passes: u8,
|
||||
hardswap_warmup_pass_backoff_base_ms: u64,
|
||||
bind_stale_mode: MeBindStaleMode,
|
||||
bind_stale_ttl_secs: u64,
|
||||
secret_atomic_snapshot: bool,
|
||||
deterministic_writer_sort: bool,
|
||||
single_endpoint_shadow_writers: u8,
|
||||
single_endpoint_outage_mode_enabled: bool,
|
||||
single_endpoint_outage_disable_quarantine: bool,
|
||||
single_endpoint_outage_backoff_min_ms: u64,
|
||||
single_endpoint_outage_backoff_max_ms: u64,
|
||||
single_endpoint_shadow_rotate_every_secs: u64,
|
||||
floor_mode: MeFloorMode,
|
||||
adaptive_floor_idle_secs: u64,
|
||||
adaptive_floor_min_writers_single_endpoint: u8,
|
||||
adaptive_floor_recover_grace_secs: u64,
|
||||
) {
|
||||
self.hardswap.store(hardswap, Ordering::Relaxed);
|
||||
self.me_pool_drain_ttl_secs
|
||||
.store(drain_ttl_secs, Ordering::Relaxed);
|
||||
self.me_pool_force_close_secs
|
||||
.store(force_close_secs, Ordering::Relaxed);
|
||||
self.me_pool_min_fresh_ratio_permille
|
||||
.store(Self::ratio_to_permille(min_fresh_ratio), Ordering::Relaxed);
|
||||
self.me_hardswap_warmup_delay_min_ms
|
||||
.store(hardswap_warmup_delay_min_ms, Ordering::Relaxed);
|
||||
self.me_hardswap_warmup_delay_max_ms
|
||||
.store(hardswap_warmup_delay_max_ms, Ordering::Relaxed);
|
||||
self.me_hardswap_warmup_extra_passes
|
||||
.store(hardswap_warmup_extra_passes as u32, Ordering::Relaxed);
|
||||
self.me_hardswap_warmup_pass_backoff_base_ms
|
||||
.store(hardswap_warmup_pass_backoff_base_ms, Ordering::Relaxed);
|
||||
self.me_bind_stale_mode
|
||||
.store(bind_stale_mode.as_u8(), Ordering::Relaxed);
|
||||
self.me_bind_stale_ttl_secs
|
||||
.store(bind_stale_ttl_secs, Ordering::Relaxed);
|
||||
self.secret_atomic_snapshot
|
||||
.store(secret_atomic_snapshot, Ordering::Relaxed);
|
||||
self.me_deterministic_writer_sort
|
||||
.store(deterministic_writer_sort, Ordering::Relaxed);
|
||||
self.me_single_endpoint_shadow_writers
|
||||
.store(single_endpoint_shadow_writers, Ordering::Relaxed);
|
||||
self.me_single_endpoint_outage_mode_enabled
|
||||
.store(single_endpoint_outage_mode_enabled, Ordering::Relaxed);
|
||||
self.me_single_endpoint_outage_disable_quarantine
|
||||
.store(single_endpoint_outage_disable_quarantine, Ordering::Relaxed);
|
||||
self.me_single_endpoint_outage_backoff_min_ms
|
||||
.store(single_endpoint_outage_backoff_min_ms, Ordering::Relaxed);
|
||||
self.me_single_endpoint_outage_backoff_max_ms
|
||||
.store(single_endpoint_outage_backoff_max_ms, Ordering::Relaxed);
|
||||
self.me_single_endpoint_shadow_rotate_every_secs
|
||||
.store(single_endpoint_shadow_rotate_every_secs, Ordering::Relaxed);
|
||||
let previous_floor_mode = self.floor_mode();
|
||||
self.me_floor_mode
|
||||
.store(floor_mode.as_u8(), Ordering::Relaxed);
|
||||
self.me_adaptive_floor_idle_secs
|
||||
.store(adaptive_floor_idle_secs, Ordering::Relaxed);
|
||||
self.me_adaptive_floor_min_writers_single_endpoint
|
||||
.store(adaptive_floor_min_writers_single_endpoint, Ordering::Relaxed);
|
||||
self.me_adaptive_floor_recover_grace_secs
|
||||
.store(adaptive_floor_recover_grace_secs, Ordering::Relaxed);
|
||||
if previous_floor_mode != floor_mode {
|
||||
self.stats.increment_me_floor_mode_switch_total();
|
||||
match (previous_floor_mode, floor_mode) {
|
||||
(MeFloorMode::Static, MeFloorMode::Adaptive) => {
|
||||
self.stats
|
||||
.increment_me_floor_mode_switch_static_to_adaptive_total();
|
||||
}
|
||||
(MeFloorMode::Adaptive, MeFloorMode::Static) => {
|
||||
self.stats
|
||||
.increment_me_floor_mode_switch_adaptive_to_static_total();
|
||||
}
|
||||
_ => {}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub fn reset_stun_state(&self) {
|
||||
self.nat_probe_attempts.store(0, Ordering::Relaxed);
|
||||
self.nat_probe_disabled.store(false, Ordering::Relaxed);
|
||||
if let Ok(mut live) = self.nat_stun_live_servers.try_write() {
|
||||
live.clear();
|
||||
}
|
||||
}
|
||||
|
||||
pub fn translate_our_addr(&self, addr: SocketAddr) -> SocketAddr {
|
||||
let ip = self.translate_ip_for_nat(addr.ip());
|
||||
SocketAddr::new(ip, addr.port())
|
||||
}
|
||||
|
||||
pub fn registry(&self) -> &Arc<ConnRegistry> {
|
||||
&self.registry
|
||||
}
|
||||
|
||||
pub fn update_runtime_transport_policy(
|
||||
&self,
|
||||
socks_kdf_policy: MeSocksKdfPolicy,
|
||||
route_backpressure_base_timeout_ms: u64,
|
||||
route_backpressure_high_timeout_ms: u64,
|
||||
route_backpressure_high_watermark_pct: u8,
|
||||
) {
|
||||
self.me_socks_kdf_policy
|
||||
.store(socks_kdf_policy.as_u8(), Ordering::Relaxed);
|
||||
self.registry.update_route_backpressure_policy(
|
||||
route_backpressure_base_timeout_ms,
|
||||
route_backpressure_high_timeout_ms,
|
||||
route_backpressure_high_watermark_pct,
|
||||
);
|
||||
}
|
||||
|
||||
pub(super) fn socks_kdf_policy(&self) -> MeSocksKdfPolicy {
|
||||
MeSocksKdfPolicy::from_u8(self.me_socks_kdf_policy.load(Ordering::Relaxed))
|
||||
}
|
||||
|
||||
pub(super) fn writers_arc(&self) -> Arc<RwLock<Vec<MeWriter>>> {
|
||||
self.writers.clone()
|
||||
}
|
||||
|
||||
pub(super) fn force_close_timeout(&self) -> Option<Duration> {
|
||||
let secs = self.me_pool_force_close_secs.load(Ordering::Relaxed);
|
||||
if secs == 0 {
|
||||
None
|
||||
} else {
|
||||
Some(Duration::from_secs(secs))
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) async fn key_selector(&self) -> u32 {
|
||||
self.proxy_secret.read().await.key_selector
|
||||
}
|
||||
|
||||
pub(super) async fn secret_snapshot(&self) -> SecretSnapshot {
|
||||
self.proxy_secret.read().await.clone()
|
||||
}
|
||||
|
||||
pub(super) fn bind_stale_mode(&self) -> MeBindStaleMode {
|
||||
MeBindStaleMode::from_u8(self.me_bind_stale_mode.load(Ordering::Relaxed))
|
||||
}
|
||||
|
||||
pub(super) fn required_writers_for_dc(&self, endpoint_count: usize) -> usize {
|
||||
if endpoint_count == 0 {
|
||||
return 0;
|
||||
}
|
||||
if endpoint_count == 1 {
|
||||
let shadow = self
|
||||
.me_single_endpoint_shadow_writers
|
||||
.load(Ordering::Relaxed) as usize;
|
||||
return (1 + shadow).max(3);
|
||||
}
|
||||
endpoint_count.max(3)
|
||||
}
|
||||
|
||||
pub(super) fn floor_mode(&self) -> MeFloorMode {
|
||||
MeFloorMode::from_u8(self.me_floor_mode.load(Ordering::Relaxed))
|
||||
}
|
||||
|
||||
pub(super) fn adaptive_floor_idle_duration(&self) -> Duration {
|
||||
Duration::from_secs(self.me_adaptive_floor_idle_secs.load(Ordering::Relaxed))
|
||||
}
|
||||
|
||||
pub(super) fn adaptive_floor_recover_grace_duration(&self) -> Duration {
|
||||
Duration::from_secs(
|
||||
self.me_adaptive_floor_recover_grace_secs
|
||||
.load(Ordering::Relaxed),
|
||||
)
|
||||
}
|
||||
|
||||
pub(super) fn required_writers_for_dc_with_floor_mode(
|
||||
&self,
|
||||
endpoint_count: usize,
|
||||
reduce_for_idle: bool,
|
||||
) -> usize {
|
||||
let base_required = self.required_writers_for_dc(endpoint_count);
|
||||
if !reduce_for_idle {
|
||||
return base_required;
|
||||
}
|
||||
if endpoint_count != 1 || self.floor_mode() != MeFloorMode::Adaptive {
|
||||
return base_required;
|
||||
}
|
||||
let min_writers = (self
|
||||
.me_adaptive_floor_min_writers_single_endpoint
|
||||
.load(Ordering::Relaxed) as usize)
|
||||
.max(1);
|
||||
base_required.min(min_writers)
|
||||
}
|
||||
|
||||
pub(super) fn single_endpoint_outage_mode_enabled(&self) -> bool {
|
||||
self.me_single_endpoint_outage_mode_enabled
|
||||
.load(Ordering::Relaxed)
|
||||
}
|
||||
|
||||
pub(super) fn single_endpoint_outage_disable_quarantine(&self) -> bool {
|
||||
self.me_single_endpoint_outage_disable_quarantine
|
||||
.load(Ordering::Relaxed)
|
||||
}
|
||||
|
||||
pub(super) fn single_endpoint_outage_backoff_bounds_ms(&self) -> (u64, u64) {
|
||||
let min_ms = self
|
||||
.me_single_endpoint_outage_backoff_min_ms
|
||||
.load(Ordering::Relaxed);
|
||||
let max_ms = self
|
||||
.me_single_endpoint_outage_backoff_max_ms
|
||||
.load(Ordering::Relaxed);
|
||||
if min_ms <= max_ms {
|
||||
(min_ms, max_ms)
|
||||
} else {
|
||||
(max_ms, min_ms)
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) fn single_endpoint_shadow_rotate_interval(&self) -> Option<Duration> {
|
||||
let secs = self
|
||||
.me_single_endpoint_shadow_rotate_every_secs
|
||||
.load(Ordering::Relaxed);
|
||||
if secs == 0 {
|
||||
None
|
||||
} else {
|
||||
Some(Duration::from_secs(secs))
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) fn family_order(&self) -> Vec<IpFamily> {
|
||||
let mut order = Vec::new();
|
||||
if self.decision.prefer_ipv6() {
|
||||
if self.decision.ipv6_me {
|
||||
order.push(IpFamily::V6);
|
||||
}
|
||||
if self.decision.ipv4_me {
|
||||
order.push(IpFamily::V4);
|
||||
}
|
||||
} else {
|
||||
if self.decision.ipv4_me {
|
||||
order.push(IpFamily::V4);
|
||||
}
|
||||
if self.decision.ipv6_me {
|
||||
order.push(IpFamily::V6);
|
||||
}
|
||||
}
|
||||
order
|
||||
}
|
||||
|
||||
pub(super) async fn proxy_map_for_family(
|
||||
&self,
|
||||
family: IpFamily,
|
||||
) -> HashMap<i32, Vec<(IpAddr, u16)>> {
|
||||
match family {
|
||||
IpFamily::V4 => self.proxy_map_v4.read().await.clone(),
|
||||
IpFamily::V6 => self.proxy_map_v6.read().await.clone(),
|
||||
}
|
||||
}
|
||||
}
|
||||
113
src/transport/middle_proxy/pool_config.rs
Normal file
113
src/transport/middle_proxy/pool_config.rs
Normal file
@@ -0,0 +1,113 @@
|
||||
use std::collections::HashMap;
|
||||
use std::net::IpAddr;
|
||||
use std::sync::Arc;
|
||||
use std::time::Duration;
|
||||
|
||||
use tracing::warn;
|
||||
|
||||
use super::pool::MePool;
|
||||
|
||||
#[derive(Debug, Clone, Copy, PartialEq, Eq)]
|
||||
pub enum SnapshotApplyOutcome {
|
||||
AppliedChanged,
|
||||
AppliedNoDelta,
|
||||
RejectedEmpty,
|
||||
}
|
||||
|
||||
impl SnapshotApplyOutcome {
|
||||
pub fn changed(self) -> bool {
|
||||
matches!(self, SnapshotApplyOutcome::AppliedChanged)
|
||||
}
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
pub async fn update_proxy_maps(
|
||||
&self,
|
||||
new_v4: HashMap<i32, Vec<(IpAddr, u16)>>,
|
||||
new_v6: Option<HashMap<i32, Vec<(IpAddr, u16)>>>,
|
||||
) -> SnapshotApplyOutcome {
|
||||
if new_v4.is_empty() && new_v6.as_ref().is_none_or(|v| v.is_empty()) {
|
||||
return SnapshotApplyOutcome::RejectedEmpty;
|
||||
}
|
||||
|
||||
let mut changed = false;
|
||||
{
|
||||
let mut guard = self.proxy_map_v4.write().await;
|
||||
if !new_v4.is_empty() && *guard != new_v4 {
|
||||
*guard = new_v4;
|
||||
changed = true;
|
||||
}
|
||||
}
|
||||
if let Some(v6) = new_v6 {
|
||||
let mut guard = self.proxy_map_v6.write().await;
|
||||
if !v6.is_empty() && *guard != v6 {
|
||||
*guard = v6;
|
||||
changed = true;
|
||||
}
|
||||
}
|
||||
// Ensure negative DC entries mirror positives when absent (Telegram convention).
|
||||
{
|
||||
let mut guard = self.proxy_map_v4.write().await;
|
||||
let keys: Vec<i32> = guard.keys().cloned().collect();
|
||||
for k in keys.iter().cloned().filter(|k| *k > 0) {
|
||||
if !guard.contains_key(&-k)
|
||||
&& let Some(addrs) = guard.get(&k).cloned()
|
||||
{
|
||||
guard.insert(-k, addrs);
|
||||
}
|
||||
}
|
||||
}
|
||||
{
|
||||
let mut guard = self.proxy_map_v6.write().await;
|
||||
let keys: Vec<i32> = guard.keys().cloned().collect();
|
||||
for k in keys.iter().cloned().filter(|k| *k > 0) {
|
||||
if !guard.contains_key(&-k)
|
||||
&& let Some(addrs) = guard.get(&k).cloned()
|
||||
{
|
||||
guard.insert(-k, addrs);
|
||||
}
|
||||
}
|
||||
}
|
||||
if changed {
|
||||
SnapshotApplyOutcome::AppliedChanged
|
||||
} else {
|
||||
SnapshotApplyOutcome::AppliedNoDelta
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn update_secret(self: &Arc<Self>, new_secret: Vec<u8>) -> bool {
|
||||
if new_secret.len() < 32 {
|
||||
warn!(len = new_secret.len(), "proxy-secret update ignored (too short)");
|
||||
return false;
|
||||
}
|
||||
let mut guard = self.proxy_secret.write().await;
|
||||
if guard.secret != new_secret {
|
||||
guard.secret = new_secret;
|
||||
guard.key_selector = if guard.secret.len() >= 4 {
|
||||
u32::from_le_bytes([
|
||||
guard.secret[0],
|
||||
guard.secret[1],
|
||||
guard.secret[2],
|
||||
guard.secret[3],
|
||||
])
|
||||
} else {
|
||||
0
|
||||
};
|
||||
guard.epoch = guard.epoch.saturating_add(1);
|
||||
drop(guard);
|
||||
self.reconnect_all().await;
|
||||
return true;
|
||||
}
|
||||
false
|
||||
}
|
||||
|
||||
pub async fn reconnect_all(self: &Arc<Self>) {
|
||||
let ws = self.writers.read().await.clone();
|
||||
for w in ws {
|
||||
if let Ok(()) = self.connect_one(w.addr, self.rng.as_ref()).await {
|
||||
self.mark_writer_draining(w.id).await;
|
||||
tokio::time::sleep(Duration::from_secs(2)).await;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
230
src/transport/middle_proxy/pool_init.rs
Normal file
230
src/transport/middle_proxy/pool_init.rs
Normal file
@@ -0,0 +1,230 @@
|
||||
use std::collections::{HashMap, HashSet};
|
||||
use std::net::{IpAddr, SocketAddr};
|
||||
use std::sync::Arc;
|
||||
|
||||
use rand::Rng;
|
||||
use rand::seq::SliceRandom;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::error::{ProxyError, Result};
|
||||
|
||||
use super::pool::MePool;
|
||||
|
||||
impl MePool {
|
||||
pub async fn init(self: &Arc<Self>, pool_size: usize, rng: &Arc<SecureRandom>) -> Result<()> {
|
||||
let family_order = self.family_order();
|
||||
let connect_concurrency = self.me_reconnect_max_concurrent_per_dc.max(1) as usize;
|
||||
let ks = self.key_selector().await;
|
||||
info!(
|
||||
me_servers = self.proxy_map_v4.read().await.len(),
|
||||
pool_size,
|
||||
connect_concurrency,
|
||||
key_selector = format_args!("0x{ks:08x}"),
|
||||
secret_len = self.proxy_secret.read().await.secret.len(),
|
||||
"Initializing ME pool"
|
||||
);
|
||||
|
||||
for family in family_order {
|
||||
let map = self.proxy_map_for_family(family).await;
|
||||
let mut grouped_dc_addrs: HashMap<i32, Vec<(IpAddr, u16)>> = HashMap::new();
|
||||
for (dc, addrs) in map {
|
||||
if addrs.is_empty() {
|
||||
continue;
|
||||
}
|
||||
grouped_dc_addrs.entry(dc.abs()).or_default().extend(addrs);
|
||||
}
|
||||
let mut dc_addrs: Vec<(i32, Vec<(IpAddr, u16)>)> = grouped_dc_addrs
|
||||
.into_iter()
|
||||
.map(|(dc, mut addrs)| {
|
||||
addrs.sort_unstable();
|
||||
addrs.dedup();
|
||||
(dc, addrs)
|
||||
})
|
||||
.collect();
|
||||
dc_addrs.sort_unstable_by_key(|(dc, _)| *dc);
|
||||
dc_addrs.sort_by_key(|(_, addrs)| (addrs.len() != 1, addrs.len()));
|
||||
|
||||
// Stage 1: build base coverage for conditional-cast.
|
||||
// Single-endpoint DCs are prefilled first; multi-endpoint DCs require one live writer.
|
||||
let mut join = tokio::task::JoinSet::new();
|
||||
for (dc, addrs) in dc_addrs.iter().cloned() {
|
||||
if addrs.is_empty() {
|
||||
continue;
|
||||
}
|
||||
let target_writers = if addrs.len() == 1 {
|
||||
self.required_writers_for_dc_with_floor_mode(addrs.len(), false)
|
||||
} else {
|
||||
1usize
|
||||
};
|
||||
let endpoints: HashSet<SocketAddr> = addrs
|
||||
.iter()
|
||||
.map(|(ip, port)| SocketAddr::new(*ip, *port))
|
||||
.collect();
|
||||
if self.active_writer_count_for_endpoints(&endpoints).await >= target_writers {
|
||||
continue;
|
||||
}
|
||||
let pool = Arc::clone(self);
|
||||
let rng_clone = Arc::clone(rng);
|
||||
join.spawn(async move {
|
||||
pool.connect_primary_for_dc(
|
||||
dc,
|
||||
addrs,
|
||||
target_writers,
|
||||
rng_clone,
|
||||
connect_concurrency,
|
||||
)
|
||||
.await
|
||||
});
|
||||
}
|
||||
while join.join_next().await.is_some() {}
|
||||
|
||||
let mut missing_dcs = Vec::new();
|
||||
for (dc, addrs) in &dc_addrs {
|
||||
let endpoints: HashSet<SocketAddr> = addrs
|
||||
.iter()
|
||||
.map(|(ip, port)| SocketAddr::new(*ip, *port))
|
||||
.collect();
|
||||
if self.active_writer_count_for_endpoints(&endpoints).await == 0 {
|
||||
missing_dcs.push(*dc);
|
||||
}
|
||||
}
|
||||
if !missing_dcs.is_empty() {
|
||||
return Err(ProxyError::Proxy(format!(
|
||||
"ME init incomplete: no live writers for DC groups {missing_dcs:?}"
|
||||
)));
|
||||
}
|
||||
|
||||
// Stage 2: continue saturating multi-endpoint DC groups in background.
|
||||
let pool = Arc::clone(self);
|
||||
let rng_clone = Arc::clone(rng);
|
||||
let dc_addrs_bg = dc_addrs.clone();
|
||||
tokio::spawn(async move {
|
||||
let mut join_bg = tokio::task::JoinSet::new();
|
||||
for (dc, addrs) in dc_addrs_bg {
|
||||
if addrs.len() <= 1 {
|
||||
continue;
|
||||
}
|
||||
let target_writers = pool.required_writers_for_dc_with_floor_mode(addrs.len(), false);
|
||||
let pool_clone = Arc::clone(&pool);
|
||||
let rng_clone_local = Arc::clone(&rng_clone);
|
||||
join_bg.spawn(async move {
|
||||
pool_clone
|
||||
.connect_primary_for_dc(
|
||||
dc,
|
||||
addrs,
|
||||
target_writers,
|
||||
rng_clone_local,
|
||||
connect_concurrency,
|
||||
)
|
||||
.await
|
||||
});
|
||||
}
|
||||
while join_bg.join_next().await.is_some() {}
|
||||
debug!(
|
||||
current_pool_size = pool.connection_count(),
|
||||
"Background ME saturation warmup finished"
|
||||
);
|
||||
});
|
||||
|
||||
if !self.decision.effective_multipath && self.connection_count() > 0 {
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
if self.writers.read().await.is_empty() {
|
||||
return Err(ProxyError::Proxy("No ME connections".into()));
|
||||
}
|
||||
info!(
|
||||
active_writers = self.connection_count(),
|
||||
"ME primary pool ready; reserve warmup continues in background"
|
||||
);
|
||||
Ok(())
|
||||
}
|
||||
|
||||
async fn connect_primary_for_dc(
|
||||
self: Arc<Self>,
|
||||
dc: i32,
|
||||
mut addrs: Vec<(IpAddr, u16)>,
|
||||
target_writers: usize,
|
||||
rng: Arc<SecureRandom>,
|
||||
connect_concurrency: usize,
|
||||
) -> bool {
|
||||
if addrs.is_empty() {
|
||||
return false;
|
||||
}
|
||||
let target_writers = target_writers.max(1);
|
||||
addrs.shuffle(&mut rand::rng());
|
||||
let endpoints: Vec<SocketAddr> = addrs
|
||||
.iter()
|
||||
.map(|(ip, port)| SocketAddr::new(*ip, *port))
|
||||
.collect();
|
||||
let endpoint_set: HashSet<SocketAddr> = endpoints.iter().copied().collect();
|
||||
|
||||
loop {
|
||||
let alive = self.active_writer_count_for_endpoints(&endpoint_set).await;
|
||||
if alive >= target_writers {
|
||||
info!(
|
||||
dc = %dc,
|
||||
alive,
|
||||
target_writers,
|
||||
"ME connected"
|
||||
);
|
||||
return true;
|
||||
}
|
||||
|
||||
let missing = target_writers.saturating_sub(alive).max(1);
|
||||
let concurrency = connect_concurrency.max(1).min(missing);
|
||||
let mut join = tokio::task::JoinSet::new();
|
||||
for _ in 0..concurrency {
|
||||
let pool = Arc::clone(&self);
|
||||
let rng_clone = Arc::clone(&rng);
|
||||
let endpoints_clone = endpoints.clone();
|
||||
join.spawn(async move {
|
||||
pool.connect_endpoints_round_robin(&endpoints_clone, rng_clone.as_ref())
|
||||
.await
|
||||
});
|
||||
}
|
||||
|
||||
let mut progress = false;
|
||||
while let Some(res) = join.join_next().await {
|
||||
match res {
|
||||
Ok(true) => {
|
||||
progress = true;
|
||||
}
|
||||
Ok(false) => {}
|
||||
Err(e) => {
|
||||
warn!(dc = %dc, error = %e, "ME connect task failed");
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let alive_after = self.active_writer_count_for_endpoints(&endpoint_set).await;
|
||||
if alive_after >= target_writers {
|
||||
info!(
|
||||
dc = %dc,
|
||||
alive = alive_after,
|
||||
target_writers,
|
||||
"ME connected"
|
||||
);
|
||||
return true;
|
||||
}
|
||||
if !progress {
|
||||
warn!(
|
||||
dc = %dc,
|
||||
alive = alive_after,
|
||||
target_writers,
|
||||
"All ME servers for DC failed at init"
|
||||
);
|
||||
return false;
|
||||
}
|
||||
|
||||
if self.me_warmup_stagger_enabled {
|
||||
let jitter = rand::rng()
|
||||
.random_range(0..=self.me_warmup_step_jitter.as_millis() as u64);
|
||||
let delay_ms = self.me_warmup_step_delay.as_millis() as u64 + jitter;
|
||||
tokio::time::sleep(std::time::Duration::from_millis(delay_ms)).await;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
338
src/transport/middle_proxy/pool_nat.rs
Normal file
338
src/transport/middle_proxy/pool_nat.rs
Normal file
@@ -0,0 +1,338 @@
|
||||
use std::collections::HashMap;
|
||||
use std::net::{IpAddr, Ipv4Addr};
|
||||
use std::time::Duration;
|
||||
|
||||
use tokio::task::JoinSet;
|
||||
use tokio::time::timeout;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::network::probe::is_bogon;
|
||||
use crate::network::stun::{stun_probe_dual, stun_probe_family_with_bind, IpFamily};
|
||||
|
||||
use super::MePool;
|
||||
use std::time::Instant;
|
||||
|
||||
const STUN_BATCH_TIMEOUT: Duration = Duration::from_secs(5);
|
||||
|
||||
#[allow(dead_code)]
|
||||
pub async fn stun_probe(stun_addr: Option<String>) -> Result<crate::network::stun::DualStunResult> {
|
||||
let stun_addr = stun_addr.unwrap_or_else(|| {
|
||||
crate::config::defaults::default_stun_servers()
|
||||
.into_iter()
|
||||
.next()
|
||||
.unwrap_or_default()
|
||||
});
|
||||
if stun_addr.is_empty() {
|
||||
return Err(ProxyError::Proxy("STUN server is not configured".to_string()));
|
||||
}
|
||||
stun_probe_dual(&stun_addr).await
|
||||
}
|
||||
|
||||
#[allow(dead_code)]
|
||||
pub async fn detect_public_ip() -> Option<IpAddr> {
|
||||
fetch_public_ipv4_with_retry().await.ok().flatten().map(IpAddr::V4)
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
fn configured_stun_servers(&self) -> Vec<String> {
|
||||
if !self.nat_stun_servers.is_empty() {
|
||||
return self.nat_stun_servers.clone();
|
||||
}
|
||||
if let Some(s) = &self.nat_stun
|
||||
&& !s.trim().is_empty()
|
||||
{
|
||||
return vec![s.clone()];
|
||||
}
|
||||
Vec::new()
|
||||
}
|
||||
|
||||
async fn probe_stun_batch_for_family(
|
||||
&self,
|
||||
servers: &[String],
|
||||
family: IpFamily,
|
||||
attempt: u8,
|
||||
bind_ip: Option<IpAddr>,
|
||||
) -> (Vec<String>, Option<std::net::SocketAddr>) {
|
||||
let mut join_set = JoinSet::new();
|
||||
let mut next_idx = 0usize;
|
||||
let mut live_servers = Vec::new();
|
||||
let mut best_by_ip: HashMap<IpAddr, (usize, std::net::SocketAddr)> = HashMap::new();
|
||||
let concurrency = self.nat_probe_concurrency.max(1);
|
||||
|
||||
while next_idx < servers.len() || !join_set.is_empty() {
|
||||
while next_idx < servers.len() && join_set.len() < concurrency {
|
||||
let stun_addr = servers[next_idx].clone();
|
||||
next_idx += 1;
|
||||
join_set.spawn(async move {
|
||||
let res = timeout(
|
||||
STUN_BATCH_TIMEOUT,
|
||||
stun_probe_family_with_bind(&stun_addr, family, bind_ip),
|
||||
)
|
||||
.await;
|
||||
(stun_addr, res)
|
||||
});
|
||||
}
|
||||
|
||||
let Some(task) = join_set.join_next().await else {
|
||||
break;
|
||||
};
|
||||
|
||||
match task {
|
||||
Ok((stun_addr, Ok(Ok(picked)))) => {
|
||||
if let Some(result) = picked {
|
||||
live_servers.push(stun_addr.clone());
|
||||
let entry = best_by_ip
|
||||
.entry(result.reflected_addr.ip())
|
||||
.or_insert((0, result.reflected_addr));
|
||||
entry.0 += 1;
|
||||
debug!(
|
||||
local = %result.local_addr,
|
||||
reflected = %result.reflected_addr,
|
||||
family = ?family,
|
||||
stun = %stun_addr,
|
||||
"NAT probe: reflected address"
|
||||
);
|
||||
}
|
||||
}
|
||||
Ok((stun_addr, Ok(Err(e)))) => {
|
||||
debug!(
|
||||
error = %e,
|
||||
stun = %stun_addr,
|
||||
attempt = attempt + 1,
|
||||
"NAT probe failed, trying next server"
|
||||
);
|
||||
}
|
||||
Ok((stun_addr, Err(_))) => {
|
||||
debug!(
|
||||
stun = %stun_addr,
|
||||
attempt = attempt + 1,
|
||||
"NAT probe timeout, trying next server"
|
||||
);
|
||||
}
|
||||
Err(e) => {
|
||||
debug!(
|
||||
error = %e,
|
||||
attempt = attempt + 1,
|
||||
"NAT probe task join failed"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
live_servers.sort_unstable();
|
||||
live_servers.dedup();
|
||||
let best_reflected = best_by_ip
|
||||
.into_values()
|
||||
.max_by_key(|(count, _)| *count)
|
||||
.map(|(_, addr)| addr);
|
||||
|
||||
(live_servers, best_reflected)
|
||||
}
|
||||
|
||||
pub(super) fn translate_ip_for_nat(&self, ip: IpAddr) -> IpAddr {
|
||||
let nat_ip = self
|
||||
.nat_ip_cfg
|
||||
.or_else(|| self.nat_ip_detected.try_read().ok().and_then(|g| *g));
|
||||
|
||||
let Some(nat_ip) = nat_ip else {
|
||||
return ip;
|
||||
};
|
||||
|
||||
match (ip, nat_ip) {
|
||||
(IpAddr::V4(src), IpAddr::V4(dst))
|
||||
if is_bogon(IpAddr::V4(src))
|
||||
|| src.is_loopback()
|
||||
|| src.is_unspecified() =>
|
||||
{
|
||||
IpAddr::V4(dst)
|
||||
}
|
||||
(IpAddr::V6(src), IpAddr::V6(dst)) if src.is_loopback() || src.is_unspecified() => {
|
||||
IpAddr::V6(dst)
|
||||
}
|
||||
(orig, _) => orig,
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) fn translate_our_addr_with_reflection(
|
||||
&self,
|
||||
addr: std::net::SocketAddr,
|
||||
reflected: Option<std::net::SocketAddr>,
|
||||
) -> std::net::SocketAddr {
|
||||
let ip = if let Some(r) = reflected {
|
||||
// Use reflected IP (not port) only when local address is non-public.
|
||||
if is_bogon(addr.ip()) || addr.ip().is_loopback() || addr.ip().is_unspecified() {
|
||||
r.ip()
|
||||
} else {
|
||||
self.translate_ip_for_nat(addr.ip())
|
||||
}
|
||||
} else {
|
||||
self.translate_ip_for_nat(addr.ip())
|
||||
};
|
||||
|
||||
// Keep the kernel-assigned TCP source port; STUN port can differ.
|
||||
std::net::SocketAddr::new(ip, addr.port())
|
||||
}
|
||||
|
||||
pub(super) async fn maybe_detect_nat_ip(&self, local_ip: IpAddr) -> Option<IpAddr> {
|
||||
if self.nat_ip_cfg.is_some() {
|
||||
return self.nat_ip_cfg;
|
||||
}
|
||||
|
||||
if !(is_bogon(local_ip) || local_ip.is_loopback() || local_ip.is_unspecified()) {
|
||||
return None;
|
||||
}
|
||||
|
||||
if let Some(ip) = *self.nat_ip_detected.read().await {
|
||||
return Some(ip);
|
||||
}
|
||||
|
||||
match fetch_public_ipv4_with_retry().await {
|
||||
Ok(Some(ip)) => {
|
||||
{
|
||||
let mut guard = self.nat_ip_detected.write().await;
|
||||
*guard = Some(IpAddr::V4(ip));
|
||||
}
|
||||
info!(public_ip = %ip, "Auto-detected public IP for NAT translation");
|
||||
Some(IpAddr::V4(ip))
|
||||
}
|
||||
Ok(None) => None,
|
||||
Err(e) => {
|
||||
warn!(error = %e, "Failed to auto-detect public IP");
|
||||
None
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub(super) async fn maybe_reflect_public_addr(
|
||||
&self,
|
||||
family: IpFamily,
|
||||
bind_ip: Option<IpAddr>,
|
||||
) -> Option<std::net::SocketAddr> {
|
||||
const STUN_CACHE_TTL: Duration = Duration::from_secs(600);
|
||||
let use_shared_cache = bind_ip.is_none();
|
||||
if !use_shared_cache {
|
||||
match (family, bind_ip) {
|
||||
(IpFamily::V4, Some(IpAddr::V4(_)))
|
||||
| (IpFamily::V6, Some(IpAddr::V6(_)))
|
||||
| (_, None) => {}
|
||||
_ => return None,
|
||||
}
|
||||
}
|
||||
// Backoff window
|
||||
if use_shared_cache
|
||||
&& let Some(until) = *self.stun_backoff_until.read().await
|
||||
&& Instant::now() < until
|
||||
{
|
||||
if let Ok(cache) = self.nat_reflection_cache.try_lock() {
|
||||
let slot = match family {
|
||||
IpFamily::V4 => cache.v4,
|
||||
IpFamily::V6 => cache.v6,
|
||||
};
|
||||
return slot.map(|(_, addr)| addr);
|
||||
}
|
||||
return None;
|
||||
}
|
||||
|
||||
if use_shared_cache
|
||||
&& let Ok(mut cache) = self.nat_reflection_cache.try_lock()
|
||||
{
|
||||
let slot = match family {
|
||||
IpFamily::V4 => &mut cache.v4,
|
||||
IpFamily::V6 => &mut cache.v6,
|
||||
};
|
||||
if let Some((ts, addr)) = slot
|
||||
&& ts.elapsed() < STUN_CACHE_TTL
|
||||
{
|
||||
return Some(*addr);
|
||||
}
|
||||
}
|
||||
|
||||
let attempt = if use_shared_cache {
|
||||
self.nat_probe_attempts.fetch_add(1, std::sync::atomic::Ordering::Relaxed)
|
||||
} else {
|
||||
0
|
||||
};
|
||||
let configured_servers = self.configured_stun_servers();
|
||||
let live_snapshot = self.nat_stun_live_servers.read().await.clone();
|
||||
let primary_servers = if live_snapshot.is_empty() {
|
||||
configured_servers.clone()
|
||||
} else {
|
||||
live_snapshot
|
||||
};
|
||||
|
||||
let (mut live_servers, mut selected_reflected) = self
|
||||
.probe_stun_batch_for_family(&primary_servers, family, attempt, bind_ip)
|
||||
.await;
|
||||
|
||||
if selected_reflected.is_none() && !configured_servers.is_empty() && primary_servers != configured_servers {
|
||||
let (rediscovered_live, rediscovered_reflected) = self
|
||||
.probe_stun_batch_for_family(&configured_servers, family, attempt, bind_ip)
|
||||
.await;
|
||||
live_servers = rediscovered_live;
|
||||
selected_reflected = rediscovered_reflected;
|
||||
}
|
||||
|
||||
let live_server_count = live_servers.len();
|
||||
if !live_servers.is_empty() {
|
||||
*self.nat_stun_live_servers.write().await = live_servers;
|
||||
} else {
|
||||
self.nat_stun_live_servers.write().await.clear();
|
||||
}
|
||||
|
||||
if let Some(reflected_addr) = selected_reflected {
|
||||
if use_shared_cache {
|
||||
self.nat_probe_attempts.store(0, std::sync::atomic::Ordering::Relaxed);
|
||||
}
|
||||
info!(
|
||||
family = ?family,
|
||||
live_servers = live_server_count,
|
||||
"STUN-Quorum reached, IP: {}",
|
||||
reflected_addr.ip()
|
||||
);
|
||||
if use_shared_cache
|
||||
&& let Ok(mut cache) = self.nat_reflection_cache.try_lock()
|
||||
{
|
||||
let slot = match family {
|
||||
IpFamily::V4 => &mut cache.v4,
|
||||
IpFamily::V6 => &mut cache.v6,
|
||||
};
|
||||
*slot = Some((Instant::now(), reflected_addr));
|
||||
}
|
||||
return Some(reflected_addr);
|
||||
}
|
||||
|
||||
if use_shared_cache {
|
||||
let backoff = Duration::from_secs(60 * 2u64.pow((attempt as u32).min(6)));
|
||||
*self.stun_backoff_until.write().await = Some(Instant::now() + backoff);
|
||||
}
|
||||
None
|
||||
}
|
||||
}
|
||||
|
||||
async fn fetch_public_ipv4_with_retry() -> Result<Option<Ipv4Addr>> {
|
||||
let providers = [
|
||||
"https://checkip.amazonaws.com",
|
||||
"http://v4.ident.me",
|
||||
"http://ipv4.icanhazip.com",
|
||||
];
|
||||
for url in providers {
|
||||
if let Ok(Some(ip)) = fetch_public_ipv4_once(url).await {
|
||||
return Ok(Some(ip));
|
||||
}
|
||||
}
|
||||
Ok(None)
|
||||
}
|
||||
|
||||
async fn fetch_public_ipv4_once(url: &str) -> Result<Option<Ipv4Addr>> {
|
||||
let res = reqwest::get(url).await.map_err(|e| {
|
||||
ProxyError::Proxy(format!("public IP detection request failed: {e}"))
|
||||
})?;
|
||||
|
||||
let text = res.text().await.map_err(|e| {
|
||||
ProxyError::Proxy(format!("public IP detection read failed: {e}"))
|
||||
})?;
|
||||
|
||||
let ip = text.trim().parse().ok();
|
||||
Ok(ip)
|
||||
}
|
||||
336
src/transport/middle_proxy/pool_refill.rs
Normal file
336
src/transport/middle_proxy/pool_refill.rs
Normal file
@@ -0,0 +1,336 @@
|
||||
use std::collections::HashSet;
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::Ordering;
|
||||
use std::time::{Duration, Instant};
|
||||
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::network::IpFamily;
|
||||
|
||||
use super::pool::{MePool, RefillDcKey, WriterContour};
|
||||
|
||||
const ME_FLAP_UPTIME_THRESHOLD_SECS: u64 = 20;
|
||||
const ME_FLAP_QUARANTINE_SECS: u64 = 25;
|
||||
|
||||
impl MePool {
|
||||
pub(super) async fn maybe_quarantine_flapping_endpoint(
|
||||
&self,
|
||||
addr: SocketAddr,
|
||||
uptime: Duration,
|
||||
) {
|
||||
if uptime > Duration::from_secs(ME_FLAP_UPTIME_THRESHOLD_SECS) {
|
||||
return;
|
||||
}
|
||||
|
||||
let until = Instant::now() + Duration::from_secs(ME_FLAP_QUARANTINE_SECS);
|
||||
let mut guard = self.endpoint_quarantine.lock().await;
|
||||
guard.retain(|_, expiry| *expiry > Instant::now());
|
||||
guard.insert(addr, until);
|
||||
self.stats.increment_me_endpoint_quarantine_total();
|
||||
warn!(
|
||||
%addr,
|
||||
uptime_ms = uptime.as_millis(),
|
||||
quarantine_secs = ME_FLAP_QUARANTINE_SECS,
|
||||
"ME endpoint temporarily quarantined due to rapid writer flap"
|
||||
);
|
||||
}
|
||||
|
||||
pub(super) async fn is_endpoint_quarantined(&self, addr: SocketAddr) -> bool {
|
||||
let mut guard = self.endpoint_quarantine.lock().await;
|
||||
let now = Instant::now();
|
||||
guard.retain(|_, expiry| *expiry > now);
|
||||
guard.contains_key(&addr)
|
||||
}
|
||||
|
||||
async fn connectable_endpoints(&self, endpoints: &[SocketAddr]) -> Vec<SocketAddr> {
|
||||
if endpoints.is_empty() {
|
||||
return Vec::new();
|
||||
}
|
||||
|
||||
let mut guard = self.endpoint_quarantine.lock().await;
|
||||
let now = Instant::now();
|
||||
guard.retain(|_, expiry| *expiry > now);
|
||||
|
||||
let mut ready = Vec::<SocketAddr>::with_capacity(endpoints.len());
|
||||
let mut earliest_quarantine: Option<(SocketAddr, Instant)> = None;
|
||||
for addr in endpoints {
|
||||
if let Some(expiry) = guard.get(addr).copied() {
|
||||
match earliest_quarantine {
|
||||
Some((_, current_expiry)) if current_expiry <= expiry => {}
|
||||
_ => earliest_quarantine = Some((*addr, expiry)),
|
||||
}
|
||||
} else {
|
||||
ready.push(*addr);
|
||||
}
|
||||
}
|
||||
|
||||
if !ready.is_empty() {
|
||||
return ready;
|
||||
}
|
||||
|
||||
if let Some((addr, expiry)) = earliest_quarantine {
|
||||
debug!(
|
||||
%addr,
|
||||
wait_ms = expiry.saturating_duration_since(now).as_millis(),
|
||||
"All ME endpoints are quarantined for the DC group; retrying earliest one"
|
||||
);
|
||||
return vec![addr];
|
||||
}
|
||||
|
||||
Vec::new()
|
||||
}
|
||||
|
||||
pub(super) async fn has_refill_inflight_for_endpoints(&self, endpoints: &[SocketAddr]) -> bool {
|
||||
if endpoints.is_empty() {
|
||||
return false;
|
||||
}
|
||||
|
||||
{
|
||||
let guard = self.refill_inflight.lock().await;
|
||||
if endpoints.iter().any(|addr| guard.contains(addr)) {
|
||||
return true;
|
||||
}
|
||||
}
|
||||
|
||||
let dc_keys = self.resolve_refill_dc_keys_for_endpoints(endpoints).await;
|
||||
if dc_keys.is_empty() {
|
||||
return false;
|
||||
}
|
||||
let guard = self.refill_inflight_dc.lock().await;
|
||||
dc_keys.iter().any(|key| guard.contains(key))
|
||||
}
|
||||
|
||||
async fn resolve_refill_dc_key_for_addr(&self, addr: SocketAddr) -> Option<RefillDcKey> {
|
||||
let family = if addr.is_ipv4() {
|
||||
IpFamily::V4
|
||||
} else {
|
||||
IpFamily::V6
|
||||
};
|
||||
let map = self.proxy_map_for_family(family).await;
|
||||
for (dc, endpoints) in map {
|
||||
if endpoints
|
||||
.into_iter()
|
||||
.any(|(ip, port)| SocketAddr::new(ip, port) == addr)
|
||||
{
|
||||
return Some(RefillDcKey {
|
||||
dc: dc.abs(),
|
||||
family,
|
||||
});
|
||||
}
|
||||
}
|
||||
None
|
||||
}
|
||||
|
||||
async fn resolve_refill_dc_keys_for_endpoints(
|
||||
&self,
|
||||
endpoints: &[SocketAddr],
|
||||
) -> HashSet<RefillDcKey> {
|
||||
let mut out = HashSet::<RefillDcKey>::new();
|
||||
for addr in endpoints {
|
||||
if let Some(key) = self.resolve_refill_dc_key_for_addr(*addr).await {
|
||||
out.insert(key);
|
||||
}
|
||||
}
|
||||
out
|
||||
}
|
||||
|
||||
pub(super) async fn connect_endpoints_round_robin(
|
||||
self: &Arc<Self>,
|
||||
endpoints: &[SocketAddr],
|
||||
rng: &SecureRandom,
|
||||
) -> bool {
|
||||
self.connect_endpoints_round_robin_with_generation_contour(
|
||||
endpoints,
|
||||
rng,
|
||||
self.current_generation(),
|
||||
WriterContour::Active,
|
||||
)
|
||||
.await
|
||||
}
|
||||
|
||||
pub(super) async fn connect_endpoints_round_robin_with_generation_contour(
|
||||
self: &Arc<Self>,
|
||||
endpoints: &[SocketAddr],
|
||||
rng: &SecureRandom,
|
||||
generation: u64,
|
||||
contour: WriterContour,
|
||||
) -> bool {
|
||||
let candidates = self.connectable_endpoints(endpoints).await;
|
||||
if candidates.is_empty() {
|
||||
return false;
|
||||
}
|
||||
let start = (self.rr.fetch_add(1, Ordering::Relaxed) as usize) % candidates.len();
|
||||
for offset in 0..candidates.len() {
|
||||
let idx = (start + offset) % candidates.len();
|
||||
let addr = candidates[idx];
|
||||
match self
|
||||
.connect_one_with_generation_contour(addr, rng, generation, contour)
|
||||
.await
|
||||
{
|
||||
Ok(()) => return true,
|
||||
Err(e) => debug!(%addr, error = %e, "ME connect failed during round-robin warmup"),
|
||||
}
|
||||
}
|
||||
false
|
||||
}
|
||||
|
||||
async fn endpoints_for_same_dc(&self, addr: SocketAddr) -> Vec<SocketAddr> {
|
||||
let mut target_dc = HashSet::<i32>::new();
|
||||
let mut endpoints = HashSet::<SocketAddr>::new();
|
||||
|
||||
if self.decision.ipv4_me {
|
||||
let map = self.proxy_map_v4.read().await.clone();
|
||||
for (dc, addrs) in &map {
|
||||
if addrs
|
||||
.iter()
|
||||
.any(|(ip, port)| SocketAddr::new(*ip, *port) == addr)
|
||||
{
|
||||
target_dc.insert(dc.abs());
|
||||
}
|
||||
}
|
||||
for dc in &target_dc {
|
||||
for key in [*dc, -*dc] {
|
||||
if let Some(addrs) = map.get(&key) {
|
||||
for (ip, port) in addrs {
|
||||
endpoints.insert(SocketAddr::new(*ip, *port));
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if self.decision.ipv6_me {
|
||||
let map = self.proxy_map_v6.read().await.clone();
|
||||
for (dc, addrs) in &map {
|
||||
if addrs
|
||||
.iter()
|
||||
.any(|(ip, port)| SocketAddr::new(*ip, *port) == addr)
|
||||
{
|
||||
target_dc.insert(dc.abs());
|
||||
}
|
||||
}
|
||||
for dc in &target_dc {
|
||||
for key in [*dc, -*dc] {
|
||||
if let Some(addrs) = map.get(&key) {
|
||||
for (ip, port) in addrs {
|
||||
endpoints.insert(SocketAddr::new(*ip, *port));
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let mut sorted: Vec<SocketAddr> = endpoints.into_iter().collect();
|
||||
sorted.sort_unstable();
|
||||
sorted
|
||||
}
|
||||
|
||||
async fn refill_writer_after_loss(self: &Arc<Self>, addr: SocketAddr) -> bool {
|
||||
let fast_retries = self.me_reconnect_fast_retry_count.max(1);
|
||||
let same_endpoint_quarantined = self.is_endpoint_quarantined(addr).await;
|
||||
|
||||
if !same_endpoint_quarantined {
|
||||
for attempt in 0..fast_retries {
|
||||
self.stats.increment_me_reconnect_attempt();
|
||||
match self.connect_one(addr, self.rng.as_ref()).await {
|
||||
Ok(()) => {
|
||||
self.stats.increment_me_reconnect_success();
|
||||
self.stats.increment_me_writer_restored_same_endpoint_total();
|
||||
info!(
|
||||
%addr,
|
||||
attempt = attempt + 1,
|
||||
"ME writer restored on the same endpoint"
|
||||
);
|
||||
return true;
|
||||
}
|
||||
Err(e) => {
|
||||
debug!(
|
||||
%addr,
|
||||
attempt = attempt + 1,
|
||||
error = %e,
|
||||
"ME immediate same-endpoint reconnect failed"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
} else {
|
||||
debug!(
|
||||
%addr,
|
||||
"Skipping immediate same-endpoint reconnect because endpoint is quarantined"
|
||||
);
|
||||
}
|
||||
|
||||
let dc_endpoints = self.endpoints_for_same_dc(addr).await;
|
||||
if dc_endpoints.is_empty() {
|
||||
self.stats.increment_me_refill_failed_total();
|
||||
return false;
|
||||
}
|
||||
|
||||
for attempt in 0..fast_retries {
|
||||
self.stats.increment_me_reconnect_attempt();
|
||||
if self
|
||||
.connect_endpoints_round_robin(&dc_endpoints, self.rng.as_ref())
|
||||
.await
|
||||
{
|
||||
self.stats.increment_me_reconnect_success();
|
||||
self.stats.increment_me_writer_restored_fallback_total();
|
||||
info!(
|
||||
%addr,
|
||||
attempt = attempt + 1,
|
||||
"ME writer restored via DC fallback endpoint"
|
||||
);
|
||||
return true;
|
||||
}
|
||||
}
|
||||
|
||||
self.stats.increment_me_refill_failed_total();
|
||||
false
|
||||
}
|
||||
|
||||
pub(crate) fn trigger_immediate_refill(self: &Arc<Self>, addr: SocketAddr) {
|
||||
let pool = Arc::clone(self);
|
||||
tokio::spawn(async move {
|
||||
let dc_endpoints = pool.endpoints_for_same_dc(addr).await;
|
||||
let dc_keys = pool.resolve_refill_dc_keys_for_endpoints(&dc_endpoints).await;
|
||||
|
||||
{
|
||||
let mut guard = pool.refill_inflight.lock().await;
|
||||
if !guard.insert(addr) {
|
||||
pool.stats.increment_me_refill_skipped_inflight_total();
|
||||
return;
|
||||
}
|
||||
}
|
||||
|
||||
if !dc_keys.is_empty() {
|
||||
let mut dc_guard = pool.refill_inflight_dc.lock().await;
|
||||
if dc_keys.iter().any(|key| dc_guard.contains(key)) {
|
||||
pool.stats.increment_me_refill_skipped_inflight_total();
|
||||
drop(dc_guard);
|
||||
let mut guard = pool.refill_inflight.lock().await;
|
||||
guard.remove(&addr);
|
||||
return;
|
||||
}
|
||||
dc_guard.extend(dc_keys.iter().copied());
|
||||
}
|
||||
|
||||
pool.stats.increment_me_refill_triggered_total();
|
||||
|
||||
let restored = pool.refill_writer_after_loss(addr).await;
|
||||
if !restored {
|
||||
warn!(%addr, "ME immediate refill failed");
|
||||
}
|
||||
|
||||
let mut guard = pool.refill_inflight.lock().await;
|
||||
guard.remove(&addr);
|
||||
drop(guard);
|
||||
if !dc_keys.is_empty() {
|
||||
let mut dc_guard = pool.refill_inflight_dc.lock().await;
|
||||
for key in &dc_keys {
|
||||
dc_guard.remove(key);
|
||||
}
|
||||
}
|
||||
});
|
||||
}
|
||||
}
|
||||
493
src/transport/middle_proxy/pool_reinit.rs
Normal file
493
src/transport/middle_proxy/pool_reinit.rs
Normal file
@@ -0,0 +1,493 @@
|
||||
use std::collections::{HashMap, HashSet};
|
||||
use std::hash::{Hash, Hasher};
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::Ordering;
|
||||
use std::time::Duration;
|
||||
|
||||
use rand::Rng;
|
||||
use rand::seq::SliceRandom;
|
||||
use tracing::{debug, info, warn};
|
||||
use std::collections::hash_map::DefaultHasher;
|
||||
|
||||
use crate::crypto::SecureRandom;
|
||||
|
||||
use super::pool::{MePool, WriterContour};
|
||||
|
||||
const ME_HARDSWAP_PENDING_TTL_SECS: u64 = 1800;
|
||||
|
||||
impl MePool {
|
||||
fn desired_map_hash(desired_by_dc: &HashMap<i32, HashSet<SocketAddr>>) -> u64 {
|
||||
let mut hasher = DefaultHasher::new();
|
||||
let mut dcs: Vec<i32> = desired_by_dc.keys().copied().collect();
|
||||
dcs.sort_unstable();
|
||||
for dc in dcs {
|
||||
dc.hash(&mut hasher);
|
||||
let mut endpoints: Vec<SocketAddr> = desired_by_dc
|
||||
.get(&dc)
|
||||
.map(|set| set.iter().copied().collect())
|
||||
.unwrap_or_default();
|
||||
endpoints.sort_unstable();
|
||||
for endpoint in endpoints {
|
||||
endpoint.hash(&mut hasher);
|
||||
}
|
||||
}
|
||||
hasher.finish()
|
||||
}
|
||||
|
||||
fn clear_pending_hardswap_state(&self) {
|
||||
self.pending_hardswap_generation.store(0, Ordering::Relaxed);
|
||||
self.pending_hardswap_started_at_epoch_secs
|
||||
.store(0, Ordering::Relaxed);
|
||||
self.pending_hardswap_map_hash.store(0, Ordering::Relaxed);
|
||||
self.warm_generation.store(0, Ordering::Relaxed);
|
||||
}
|
||||
|
||||
async fn promote_warm_generation_to_active(&self, generation: u64) {
|
||||
self.active_generation.store(generation, Ordering::Relaxed);
|
||||
self.warm_generation.store(0, Ordering::Relaxed);
|
||||
|
||||
let ws = self.writers.read().await;
|
||||
for writer in ws.iter() {
|
||||
if writer.draining.load(Ordering::Relaxed) {
|
||||
continue;
|
||||
}
|
||||
if writer.generation == generation {
|
||||
writer
|
||||
.contour
|
||||
.store(WriterContour::Active.as_u8(), Ordering::Relaxed);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
fn coverage_ratio(
|
||||
desired_by_dc: &HashMap<i32, HashSet<SocketAddr>>,
|
||||
active_writer_addrs: &HashSet<SocketAddr>,
|
||||
) -> (f32, Vec<i32>) {
|
||||
if desired_by_dc.is_empty() {
|
||||
return (1.0, Vec::new());
|
||||
}
|
||||
|
||||
let mut missing_dc = Vec::<i32>::new();
|
||||
let mut covered = 0usize;
|
||||
for (dc, endpoints) in desired_by_dc {
|
||||
if endpoints.is_empty() {
|
||||
continue;
|
||||
}
|
||||
if endpoints
|
||||
.iter()
|
||||
.any(|addr| active_writer_addrs.contains(addr))
|
||||
{
|
||||
covered += 1;
|
||||
} else {
|
||||
missing_dc.push(*dc);
|
||||
}
|
||||
}
|
||||
|
||||
missing_dc.sort_unstable();
|
||||
let total = desired_by_dc.len().max(1);
|
||||
let ratio = (covered as f32) / (total as f32);
|
||||
(ratio, missing_dc)
|
||||
}
|
||||
|
||||
pub async fn reconcile_connections(self: &Arc<Self>, rng: &SecureRandom) {
|
||||
let writers = self.writers.read().await;
|
||||
let current: HashSet<SocketAddr> = writers
|
||||
.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.map(|w| w.addr)
|
||||
.collect();
|
||||
drop(writers);
|
||||
|
||||
for family in self.family_order() {
|
||||
let map = self.proxy_map_for_family(family).await;
|
||||
for (_dc, addrs) in &map {
|
||||
let dc_addrs: Vec<SocketAddr> = addrs
|
||||
.iter()
|
||||
.map(|(ip, port)| SocketAddr::new(*ip, *port))
|
||||
.collect();
|
||||
if !dc_addrs.iter().any(|a| current.contains(a)) {
|
||||
let mut shuffled = dc_addrs.clone();
|
||||
shuffled.shuffle(&mut rand::rng());
|
||||
for addr in shuffled {
|
||||
if self.connect_one(addr, rng).await.is_ok() {
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
if !self.decision.effective_multipath && !current.is_empty() {
|
||||
break;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
async fn desired_dc_endpoints(&self) -> HashMap<i32, HashSet<SocketAddr>> {
|
||||
let mut out: HashMap<i32, HashSet<SocketAddr>> = HashMap::new();
|
||||
|
||||
if self.decision.ipv4_me {
|
||||
let map_v4 = self.proxy_map_v4.read().await.clone();
|
||||
for (dc, addrs) in map_v4 {
|
||||
let entry = out.entry(dc.abs()).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if self.decision.ipv6_me {
|
||||
let map_v6 = self.proxy_map_v6.read().await.clone();
|
||||
for (dc, addrs) in map_v6 {
|
||||
let entry = out.entry(dc.abs()).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
out
|
||||
}
|
||||
|
||||
fn hardswap_warmup_connect_delay_ms(&self) -> u64 {
|
||||
let min_ms = self.me_hardswap_warmup_delay_min_ms.load(Ordering::Relaxed);
|
||||
let max_ms = self.me_hardswap_warmup_delay_max_ms.load(Ordering::Relaxed);
|
||||
let (min_ms, max_ms) = if min_ms <= max_ms {
|
||||
(min_ms, max_ms)
|
||||
} else {
|
||||
(max_ms, min_ms)
|
||||
};
|
||||
if min_ms == max_ms {
|
||||
return min_ms;
|
||||
}
|
||||
rand::rng().random_range(min_ms..=max_ms)
|
||||
}
|
||||
|
||||
fn hardswap_warmup_backoff_ms(&self, pass_idx: usize) -> u64 {
|
||||
let base_ms = self
|
||||
.me_hardswap_warmup_pass_backoff_base_ms
|
||||
.load(Ordering::Relaxed);
|
||||
let cap_ms = (self.me_reconnect_backoff_cap.as_millis() as u64).max(base_ms);
|
||||
let shift = (pass_idx as u32).min(20);
|
||||
let scaled = base_ms.saturating_mul(1u64 << shift);
|
||||
let core = scaled.min(cap_ms);
|
||||
let jitter = (core / 2).max(1);
|
||||
core.saturating_add(rand::rng().random_range(0..=jitter))
|
||||
}
|
||||
|
||||
async fn fresh_writer_count_for_endpoints(
|
||||
&self,
|
||||
generation: u64,
|
||||
endpoints: &HashSet<SocketAddr>,
|
||||
) -> usize {
|
||||
let ws = self.writers.read().await;
|
||||
ws.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.filter(|w| w.generation == generation)
|
||||
.filter(|w| endpoints.contains(&w.addr))
|
||||
.count()
|
||||
}
|
||||
|
||||
pub(super) async fn active_writer_count_for_endpoints(
|
||||
&self,
|
||||
endpoints: &HashSet<SocketAddr>,
|
||||
) -> usize {
|
||||
let ws = self.writers.read().await;
|
||||
ws.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.filter(|w| endpoints.contains(&w.addr))
|
||||
.count()
|
||||
}
|
||||
|
||||
async fn warmup_generation_for_all_dcs(
|
||||
self: &Arc<Self>,
|
||||
rng: &SecureRandom,
|
||||
generation: u64,
|
||||
desired_by_dc: &HashMap<i32, HashSet<SocketAddr>>,
|
||||
) {
|
||||
let extra_passes = self
|
||||
.me_hardswap_warmup_extra_passes
|
||||
.load(Ordering::Relaxed)
|
||||
.min(10) as usize;
|
||||
let total_passes = 1 + extra_passes;
|
||||
|
||||
for (dc, endpoints) in desired_by_dc {
|
||||
if endpoints.is_empty() {
|
||||
continue;
|
||||
}
|
||||
|
||||
let mut endpoint_list: Vec<SocketAddr> = endpoints.iter().copied().collect();
|
||||
endpoint_list.sort_unstable();
|
||||
let required = self.required_writers_for_dc(endpoint_list.len());
|
||||
let mut completed = false;
|
||||
let mut last_fresh_count = self
|
||||
.fresh_writer_count_for_endpoints(generation, endpoints)
|
||||
.await;
|
||||
|
||||
for pass_idx in 0..total_passes {
|
||||
if last_fresh_count >= required {
|
||||
completed = true;
|
||||
break;
|
||||
}
|
||||
|
||||
let missing = required.saturating_sub(last_fresh_count);
|
||||
debug!(
|
||||
dc = *dc,
|
||||
pass = pass_idx + 1,
|
||||
total_passes,
|
||||
fresh_count = last_fresh_count,
|
||||
required,
|
||||
missing,
|
||||
endpoint_count = endpoint_list.len(),
|
||||
"ME hardswap warmup pass started"
|
||||
);
|
||||
|
||||
for attempt_idx in 0..missing {
|
||||
let delay_ms = self.hardswap_warmup_connect_delay_ms();
|
||||
tokio::time::sleep(Duration::from_millis(delay_ms)).await;
|
||||
|
||||
let connected = self
|
||||
.connect_endpoints_round_robin_with_generation_contour(
|
||||
&endpoint_list,
|
||||
rng,
|
||||
generation,
|
||||
WriterContour::Warm,
|
||||
)
|
||||
.await;
|
||||
debug!(
|
||||
dc = *dc,
|
||||
pass = pass_idx + 1,
|
||||
total_passes,
|
||||
attempt = attempt_idx + 1,
|
||||
delay_ms,
|
||||
connected,
|
||||
"ME hardswap warmup connect attempt finished"
|
||||
);
|
||||
}
|
||||
|
||||
last_fresh_count = self
|
||||
.fresh_writer_count_for_endpoints(generation, endpoints)
|
||||
.await;
|
||||
if last_fresh_count >= required {
|
||||
completed = true;
|
||||
info!(
|
||||
dc = *dc,
|
||||
pass = pass_idx + 1,
|
||||
total_passes,
|
||||
fresh_count = last_fresh_count,
|
||||
required,
|
||||
"ME hardswap warmup floor reached for DC"
|
||||
);
|
||||
break;
|
||||
}
|
||||
|
||||
if pass_idx + 1 < total_passes {
|
||||
let backoff_ms = self.hardswap_warmup_backoff_ms(pass_idx);
|
||||
debug!(
|
||||
dc = *dc,
|
||||
pass = pass_idx + 1,
|
||||
total_passes,
|
||||
fresh_count = last_fresh_count,
|
||||
required,
|
||||
backoff_ms,
|
||||
"ME hardswap warmup pass incomplete, delaying next pass"
|
||||
);
|
||||
tokio::time::sleep(Duration::from_millis(backoff_ms)).await;
|
||||
}
|
||||
}
|
||||
|
||||
if !completed {
|
||||
warn!(
|
||||
dc = *dc,
|
||||
fresh_count = last_fresh_count,
|
||||
required,
|
||||
endpoint_count = endpoint_list.len(),
|
||||
total_passes,
|
||||
"ME warmup stopped: unable to reach required writer floor for DC"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn zero_downtime_reinit_after_map_change(self: &Arc<Self>, rng: &SecureRandom) {
|
||||
let desired_by_dc = self.desired_dc_endpoints().await;
|
||||
if desired_by_dc.is_empty() {
|
||||
warn!("ME endpoint map is empty; skipping stale writer drain");
|
||||
return;
|
||||
}
|
||||
|
||||
let desired_map_hash = Self::desired_map_hash(&desired_by_dc);
|
||||
let now_epoch_secs = Self::now_epoch_secs();
|
||||
let previous_generation = self.current_generation();
|
||||
let hardswap = self.hardswap.load(Ordering::Relaxed);
|
||||
let generation = if hardswap {
|
||||
let pending_generation = self.pending_hardswap_generation.load(Ordering::Relaxed);
|
||||
let pending_started_at = self
|
||||
.pending_hardswap_started_at_epoch_secs
|
||||
.load(Ordering::Relaxed);
|
||||
let pending_map_hash = self.pending_hardswap_map_hash.load(Ordering::Relaxed);
|
||||
let pending_age_secs = now_epoch_secs.saturating_sub(pending_started_at);
|
||||
let pending_ttl_expired = pending_started_at > 0 && pending_age_secs > ME_HARDSWAP_PENDING_TTL_SECS;
|
||||
let pending_matches_map = pending_map_hash != 0 && pending_map_hash == desired_map_hash;
|
||||
|
||||
if pending_generation != 0
|
||||
&& pending_generation >= previous_generation
|
||||
&& pending_matches_map
|
||||
&& !pending_ttl_expired
|
||||
{
|
||||
self.stats.increment_me_hardswap_pending_reuse_total();
|
||||
debug!(
|
||||
previous_generation,
|
||||
generation = pending_generation,
|
||||
pending_age_secs,
|
||||
"ME hardswap continues with pending generation"
|
||||
);
|
||||
pending_generation
|
||||
} else {
|
||||
if pending_generation != 0 && pending_ttl_expired {
|
||||
self.stats.increment_me_hardswap_pending_ttl_expired_total();
|
||||
warn!(
|
||||
previous_generation,
|
||||
generation = pending_generation,
|
||||
pending_age_secs,
|
||||
pending_ttl_secs = ME_HARDSWAP_PENDING_TTL_SECS,
|
||||
"ME hardswap pending generation expired by TTL; starting fresh generation"
|
||||
);
|
||||
}
|
||||
let next_generation = self.generation.fetch_add(1, Ordering::Relaxed) + 1;
|
||||
self.pending_hardswap_generation
|
||||
.store(next_generation, Ordering::Relaxed);
|
||||
self.pending_hardswap_started_at_epoch_secs
|
||||
.store(now_epoch_secs, Ordering::Relaxed);
|
||||
self.pending_hardswap_map_hash
|
||||
.store(desired_map_hash, Ordering::Relaxed);
|
||||
self.warm_generation.store(next_generation, Ordering::Relaxed);
|
||||
next_generation
|
||||
}
|
||||
} else {
|
||||
self.clear_pending_hardswap_state();
|
||||
self.generation.fetch_add(1, Ordering::Relaxed) + 1
|
||||
};
|
||||
|
||||
if hardswap {
|
||||
self.warm_generation.store(generation, Ordering::Relaxed);
|
||||
self.warmup_generation_for_all_dcs(rng, generation, &desired_by_dc)
|
||||
.await;
|
||||
} else {
|
||||
self.reconcile_connections(rng).await;
|
||||
}
|
||||
|
||||
let writers = self.writers.read().await;
|
||||
let active_writer_addrs: HashSet<SocketAddr> = writers
|
||||
.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.map(|w| w.addr)
|
||||
.collect();
|
||||
let min_ratio = Self::permille_to_ratio(
|
||||
self.me_pool_min_fresh_ratio_permille
|
||||
.load(Ordering::Relaxed),
|
||||
);
|
||||
let (coverage_ratio, missing_dc) = Self::coverage_ratio(&desired_by_dc, &active_writer_addrs);
|
||||
if !hardswap && coverage_ratio < min_ratio {
|
||||
warn!(
|
||||
previous_generation,
|
||||
generation,
|
||||
coverage_ratio = format_args!("{coverage_ratio:.3}"),
|
||||
min_ratio = format_args!("{min_ratio:.3}"),
|
||||
missing_dc = ?missing_dc,
|
||||
"ME reinit coverage below threshold; keeping stale writers"
|
||||
);
|
||||
return;
|
||||
}
|
||||
|
||||
if hardswap {
|
||||
let mut fresh_missing_dc = Vec::<(i32, usize, usize)>::new();
|
||||
for (dc, endpoints) in &desired_by_dc {
|
||||
if endpoints.is_empty() {
|
||||
continue;
|
||||
}
|
||||
let required = self.required_writers_for_dc(endpoints.len());
|
||||
let fresh_count = writers
|
||||
.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.filter(|w| w.generation == generation)
|
||||
.filter(|w| endpoints.contains(&w.addr))
|
||||
.count();
|
||||
if fresh_count < required {
|
||||
fresh_missing_dc.push((*dc, fresh_count, required));
|
||||
}
|
||||
}
|
||||
if !fresh_missing_dc.is_empty() {
|
||||
warn!(
|
||||
previous_generation,
|
||||
generation,
|
||||
missing_dc = ?fresh_missing_dc,
|
||||
"ME hardswap pending: fresh generation coverage incomplete"
|
||||
);
|
||||
return;
|
||||
}
|
||||
} else if !missing_dc.is_empty() {
|
||||
warn!(
|
||||
missing_dc = ?missing_dc,
|
||||
// Keep stale writers alive when fresh coverage is incomplete.
|
||||
"ME reinit coverage incomplete; keeping stale writers"
|
||||
);
|
||||
return;
|
||||
}
|
||||
|
||||
if hardswap {
|
||||
self.promote_warm_generation_to_active(generation).await;
|
||||
}
|
||||
|
||||
let desired_addrs: HashSet<SocketAddr> = desired_by_dc
|
||||
.values()
|
||||
.flat_map(|set| set.iter().copied())
|
||||
.collect();
|
||||
|
||||
let stale_writer_ids: Vec<u64> = writers
|
||||
.iter()
|
||||
.filter(|w| !w.draining.load(Ordering::Relaxed))
|
||||
.filter(|w| {
|
||||
if hardswap {
|
||||
w.generation < generation
|
||||
} else {
|
||||
!desired_addrs.contains(&w.addr)
|
||||
}
|
||||
})
|
||||
.map(|w| w.id)
|
||||
.collect();
|
||||
drop(writers);
|
||||
|
||||
if stale_writer_ids.is_empty() {
|
||||
if hardswap {
|
||||
self.clear_pending_hardswap_state();
|
||||
}
|
||||
debug!("ME reinit cycle completed with no stale writers");
|
||||
return;
|
||||
}
|
||||
|
||||
let drain_timeout = self.force_close_timeout();
|
||||
let drain_timeout_secs = drain_timeout.map(|d| d.as_secs()).unwrap_or(0);
|
||||
info!(
|
||||
stale_writers = stale_writer_ids.len(),
|
||||
previous_generation,
|
||||
generation,
|
||||
hardswap,
|
||||
coverage_ratio = format_args!("{coverage_ratio:.3}"),
|
||||
min_ratio = format_args!("{min_ratio:.3}"),
|
||||
drain_timeout_secs,
|
||||
"ME reinit cycle covered; draining stale writers"
|
||||
);
|
||||
self.stats.increment_pool_swap_total();
|
||||
for writer_id in stale_writer_ids {
|
||||
self.mark_writer_draining_with_timeout(writer_id, drain_timeout, !hardswap)
|
||||
.await;
|
||||
}
|
||||
if hardswap {
|
||||
self.clear_pending_hardswap_state();
|
||||
}
|
||||
}
|
||||
|
||||
pub async fn zero_downtime_reinit_periodic(self: &Arc<Self>, rng: &SecureRandom) {
|
||||
self.zero_downtime_reinit_after_map_change(rng).await;
|
||||
}
|
||||
}
|
||||
552
src/transport/middle_proxy/pool_status.rs
Normal file
552
src/transport/middle_proxy/pool_status.rs
Normal file
@@ -0,0 +1,552 @@
|
||||
use std::collections::{BTreeMap, BTreeSet, HashMap};
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::atomic::Ordering;
|
||||
use std::time::Instant;
|
||||
|
||||
use super::pool::{MePool, WriterContour};
|
||||
use crate::config::{MeBindStaleMode, MeFloorMode, MeSocksKdfPolicy};
|
||||
use crate::transport::upstream::IpPreference;
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiWriterStatusSnapshot {
|
||||
pub writer_id: u64,
|
||||
pub dc: Option<i16>,
|
||||
pub endpoint: SocketAddr,
|
||||
pub generation: u64,
|
||||
pub state: &'static str,
|
||||
pub draining: bool,
|
||||
pub degraded: bool,
|
||||
pub bound_clients: usize,
|
||||
pub idle_for_secs: Option<u64>,
|
||||
pub rtt_ema_ms: Option<f64>,
|
||||
}
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiDcStatusSnapshot {
|
||||
pub dc: i16,
|
||||
pub endpoints: Vec<SocketAddr>,
|
||||
pub available_endpoints: usize,
|
||||
pub available_pct: f64,
|
||||
pub required_writers: usize,
|
||||
pub alive_writers: usize,
|
||||
pub coverage_pct: f64,
|
||||
pub rtt_ms: Option<f64>,
|
||||
pub load: usize,
|
||||
}
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiStatusSnapshot {
|
||||
pub generated_at_epoch_secs: u64,
|
||||
pub configured_dc_groups: usize,
|
||||
pub configured_endpoints: usize,
|
||||
pub available_endpoints: usize,
|
||||
pub available_pct: f64,
|
||||
pub required_writers: usize,
|
||||
pub alive_writers: usize,
|
||||
pub coverage_pct: f64,
|
||||
pub writers: Vec<MeApiWriterStatusSnapshot>,
|
||||
pub dcs: Vec<MeApiDcStatusSnapshot>,
|
||||
}
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiQuarantinedEndpointSnapshot {
|
||||
pub endpoint: SocketAddr,
|
||||
pub remaining_ms: u64,
|
||||
}
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiDcPathSnapshot {
|
||||
pub dc: i16,
|
||||
pub ip_preference: Option<&'static str>,
|
||||
pub selected_addr_v4: Option<SocketAddr>,
|
||||
pub selected_addr_v6: Option<SocketAddr>,
|
||||
}
|
||||
|
||||
#[derive(Clone, Debug)]
|
||||
pub(crate) struct MeApiRuntimeSnapshot {
|
||||
pub active_generation: u64,
|
||||
pub warm_generation: u64,
|
||||
pub pending_hardswap_generation: u64,
|
||||
pub pending_hardswap_age_secs: Option<u64>,
|
||||
pub hardswap_enabled: bool,
|
||||
pub floor_mode: &'static str,
|
||||
pub adaptive_floor_idle_secs: u64,
|
||||
pub adaptive_floor_min_writers_single_endpoint: u8,
|
||||
pub adaptive_floor_recover_grace_secs: u64,
|
||||
pub me_keepalive_enabled: bool,
|
||||
pub me_keepalive_interval_secs: u64,
|
||||
pub me_keepalive_jitter_secs: u64,
|
||||
pub me_keepalive_payload_random: bool,
|
||||
pub rpc_proxy_req_every_secs: u64,
|
||||
pub me_reconnect_max_concurrent_per_dc: u32,
|
||||
pub me_reconnect_backoff_base_ms: u64,
|
||||
pub me_reconnect_backoff_cap_ms: u64,
|
||||
pub me_reconnect_fast_retry_count: u32,
|
||||
pub me_pool_drain_ttl_secs: u64,
|
||||
pub me_pool_force_close_secs: u64,
|
||||
pub me_pool_min_fresh_ratio: f32,
|
||||
pub me_bind_stale_mode: &'static str,
|
||||
pub me_bind_stale_ttl_secs: u64,
|
||||
pub me_single_endpoint_shadow_writers: u8,
|
||||
pub me_single_endpoint_outage_mode_enabled: bool,
|
||||
pub me_single_endpoint_outage_disable_quarantine: bool,
|
||||
pub me_single_endpoint_outage_backoff_min_ms: u64,
|
||||
pub me_single_endpoint_outage_backoff_max_ms: u64,
|
||||
pub me_single_endpoint_shadow_rotate_every_secs: u64,
|
||||
pub me_deterministic_writer_sort: bool,
|
||||
pub me_socks_kdf_policy: &'static str,
|
||||
pub quarantined_endpoints: Vec<MeApiQuarantinedEndpointSnapshot>,
|
||||
pub network_path: Vec<MeApiDcPathSnapshot>,
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
pub(crate) async fn admission_ready_conditional_cast(&self) -> bool {
|
||||
let mut endpoints_by_dc = BTreeMap::<i16, BTreeSet<SocketAddr>>::new();
|
||||
if self.decision.ipv4_me {
|
||||
let map = self.proxy_map_v4.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
if self.decision.ipv6_me {
|
||||
let map = self.proxy_map_v6.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if endpoints_by_dc.is_empty() {
|
||||
return false;
|
||||
}
|
||||
|
||||
let writers = self.writers.read().await.clone();
|
||||
let mut live_writers_by_endpoint = HashMap::<SocketAddr, usize>::new();
|
||||
for writer in writers {
|
||||
if writer.draining.load(Ordering::Relaxed) {
|
||||
continue;
|
||||
}
|
||||
*live_writers_by_endpoint.entry(writer.addr).or_insert(0) += 1;
|
||||
}
|
||||
|
||||
for endpoints in endpoints_by_dc.values() {
|
||||
let alive: usize = endpoints
|
||||
.iter()
|
||||
.map(|endpoint| live_writers_by_endpoint.get(endpoint).copied().unwrap_or(0))
|
||||
.sum();
|
||||
if alive == 0 {
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
true
|
||||
}
|
||||
|
||||
#[allow(dead_code)]
|
||||
pub(crate) async fn admission_ready_full_floor(&self) -> bool {
|
||||
let mut endpoints_by_dc = BTreeMap::<i16, BTreeSet<SocketAddr>>::new();
|
||||
if self.decision.ipv4_me {
|
||||
let map = self.proxy_map_v4.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
if self.decision.ipv6_me {
|
||||
let map = self.proxy_map_v6.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
if endpoints_by_dc.is_empty() {
|
||||
return false;
|
||||
}
|
||||
|
||||
let writers = self.writers.read().await.clone();
|
||||
let mut live_writers_by_endpoint = HashMap::<SocketAddr, usize>::new();
|
||||
for writer in writers {
|
||||
if writer.draining.load(Ordering::Relaxed) {
|
||||
continue;
|
||||
}
|
||||
*live_writers_by_endpoint.entry(writer.addr).or_insert(0) += 1;
|
||||
}
|
||||
|
||||
for endpoints in endpoints_by_dc.values() {
|
||||
let endpoint_count = endpoints.len();
|
||||
if endpoint_count == 0 {
|
||||
return false;
|
||||
}
|
||||
let required = self.required_writers_for_dc_with_floor_mode(endpoint_count, false);
|
||||
let alive: usize = endpoints
|
||||
.iter()
|
||||
.map(|endpoint| live_writers_by_endpoint.get(endpoint).copied().unwrap_or(0))
|
||||
.sum();
|
||||
if alive < required {
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
true
|
||||
}
|
||||
|
||||
pub(crate) async fn api_status_snapshot(&self) -> MeApiStatusSnapshot {
|
||||
let now_epoch_secs = Self::now_epoch_secs();
|
||||
|
||||
let mut endpoints_by_dc = BTreeMap::<i16, BTreeSet<SocketAddr>>::new();
|
||||
if self.decision.ipv4_me {
|
||||
let map = self.proxy_map_v4.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
if self.decision.ipv6_me {
|
||||
let map = self.proxy_map_v6.read().await.clone();
|
||||
for (dc, addrs) in map {
|
||||
let abs_dc = dc.abs();
|
||||
if abs_dc == 0 {
|
||||
continue;
|
||||
}
|
||||
let Ok(dc_idx) = i16::try_from(abs_dc) else {
|
||||
continue;
|
||||
};
|
||||
let entry = endpoints_by_dc.entry(dc_idx).or_default();
|
||||
for (ip, port) in addrs {
|
||||
entry.insert(SocketAddr::new(ip, port));
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
let mut endpoint_to_dc = HashMap::<SocketAddr, i16>::new();
|
||||
for (dc, endpoints) in &endpoints_by_dc {
|
||||
for endpoint in endpoints {
|
||||
endpoint_to_dc.entry(*endpoint).or_insert(*dc);
|
||||
}
|
||||
}
|
||||
|
||||
let configured_dc_groups = endpoints_by_dc.len();
|
||||
let configured_endpoints = endpoints_by_dc.values().map(BTreeSet::len).sum();
|
||||
|
||||
let required_writers = endpoints_by_dc
|
||||
.values()
|
||||
.map(|endpoints| self.required_writers_for_dc_with_floor_mode(endpoints.len(), false))
|
||||
.sum();
|
||||
|
||||
let idle_since = self.registry.writer_idle_since_snapshot().await;
|
||||
let activity = self.registry.writer_activity_snapshot().await;
|
||||
let rtt = self.rtt_stats.lock().await.clone();
|
||||
let writers = self.writers.read().await.clone();
|
||||
|
||||
let mut live_writers_by_endpoint = HashMap::<SocketAddr, usize>::new();
|
||||
let mut live_writers_by_dc = HashMap::<i16, usize>::new();
|
||||
let mut dc_rtt_agg = HashMap::<i16, (f64, u64)>::new();
|
||||
let mut writer_rows = Vec::<MeApiWriterStatusSnapshot>::with_capacity(writers.len());
|
||||
|
||||
for writer in writers {
|
||||
let endpoint = writer.addr;
|
||||
let dc = endpoint_to_dc.get(&endpoint).copied();
|
||||
let draining = writer.draining.load(Ordering::Relaxed);
|
||||
let degraded = writer.degraded.load(Ordering::Relaxed);
|
||||
let bound_clients = activity
|
||||
.bound_clients_by_writer
|
||||
.get(&writer.id)
|
||||
.copied()
|
||||
.unwrap_or(0);
|
||||
let idle_for_secs = idle_since
|
||||
.get(&writer.id)
|
||||
.map(|idle_ts| now_epoch_secs.saturating_sub(*idle_ts));
|
||||
let rtt_ema_ms = rtt.get(&writer.id).map(|(_, ema)| *ema);
|
||||
let state = match WriterContour::from_u8(writer.contour.load(Ordering::Relaxed)) {
|
||||
WriterContour::Warm => "warm",
|
||||
WriterContour::Active => "active",
|
||||
WriterContour::Draining => "draining",
|
||||
};
|
||||
|
||||
if !draining {
|
||||
*live_writers_by_endpoint.entry(endpoint).or_insert(0) += 1;
|
||||
if let Some(dc_idx) = dc {
|
||||
*live_writers_by_dc.entry(dc_idx).or_insert(0) += 1;
|
||||
if let Some(ema_ms) = rtt_ema_ms {
|
||||
let entry = dc_rtt_agg.entry(dc_idx).or_insert((0.0, 0));
|
||||
entry.0 += ema_ms;
|
||||
entry.1 += 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
writer_rows.push(MeApiWriterStatusSnapshot {
|
||||
writer_id: writer.id,
|
||||
dc,
|
||||
endpoint,
|
||||
generation: writer.generation,
|
||||
state,
|
||||
draining,
|
||||
degraded,
|
||||
bound_clients,
|
||||
idle_for_secs,
|
||||
rtt_ema_ms,
|
||||
});
|
||||
}
|
||||
|
||||
writer_rows.sort_by_key(|row| (row.dc.unwrap_or(i16::MAX), row.endpoint, row.writer_id));
|
||||
|
||||
let mut dcs = Vec::<MeApiDcStatusSnapshot>::with_capacity(endpoints_by_dc.len());
|
||||
let mut available_endpoints = 0usize;
|
||||
let mut alive_writers = 0usize;
|
||||
for (dc, endpoints) in endpoints_by_dc {
|
||||
let endpoint_count = endpoints.len();
|
||||
let dc_available_endpoints = endpoints
|
||||
.iter()
|
||||
.filter(|endpoint| live_writers_by_endpoint.contains_key(endpoint))
|
||||
.count();
|
||||
let dc_required_writers =
|
||||
self.required_writers_for_dc_with_floor_mode(endpoint_count, false);
|
||||
let dc_alive_writers = live_writers_by_dc.get(&dc).copied().unwrap_or(0);
|
||||
let dc_load = activity
|
||||
.active_sessions_by_target_dc
|
||||
.get(&dc)
|
||||
.copied()
|
||||
.unwrap_or(0);
|
||||
let dc_rtt_ms = dc_rtt_agg
|
||||
.get(&dc)
|
||||
.and_then(|(sum, count)| (*count > 0).then_some(*sum / (*count as f64)));
|
||||
|
||||
available_endpoints += dc_available_endpoints;
|
||||
alive_writers += dc_alive_writers;
|
||||
|
||||
dcs.push(MeApiDcStatusSnapshot {
|
||||
dc,
|
||||
endpoints: endpoints.into_iter().collect(),
|
||||
available_endpoints: dc_available_endpoints,
|
||||
available_pct: ratio_pct(dc_available_endpoints, endpoint_count),
|
||||
required_writers: dc_required_writers,
|
||||
alive_writers: dc_alive_writers,
|
||||
coverage_pct: ratio_pct(dc_alive_writers, dc_required_writers),
|
||||
rtt_ms: dc_rtt_ms,
|
||||
load: dc_load,
|
||||
});
|
||||
}
|
||||
|
||||
MeApiStatusSnapshot {
|
||||
generated_at_epoch_secs: now_epoch_secs,
|
||||
configured_dc_groups,
|
||||
configured_endpoints,
|
||||
available_endpoints,
|
||||
available_pct: ratio_pct(available_endpoints, configured_endpoints),
|
||||
required_writers,
|
||||
alive_writers,
|
||||
coverage_pct: ratio_pct(alive_writers, required_writers),
|
||||
writers: writer_rows,
|
||||
dcs,
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) async fn api_runtime_snapshot(&self) -> MeApiRuntimeSnapshot {
|
||||
let now = Instant::now();
|
||||
let now_epoch_secs = Self::now_epoch_secs();
|
||||
let pending_started_at = self
|
||||
.pending_hardswap_started_at_epoch_secs
|
||||
.load(Ordering::Relaxed);
|
||||
let pending_hardswap_age_secs = (pending_started_at > 0)
|
||||
.then_some(now_epoch_secs.saturating_sub(pending_started_at));
|
||||
|
||||
let mut quarantined_endpoints = Vec::<MeApiQuarantinedEndpointSnapshot>::new();
|
||||
{
|
||||
let guard = self.endpoint_quarantine.lock().await;
|
||||
for (endpoint, expires_at) in guard.iter() {
|
||||
if *expires_at <= now {
|
||||
continue;
|
||||
}
|
||||
let remaining_ms = expires_at.duration_since(now).as_millis() as u64;
|
||||
quarantined_endpoints.push(MeApiQuarantinedEndpointSnapshot {
|
||||
endpoint: *endpoint,
|
||||
remaining_ms,
|
||||
});
|
||||
}
|
||||
}
|
||||
quarantined_endpoints.sort_by_key(|entry| entry.endpoint);
|
||||
|
||||
let mut network_path = Vec::<MeApiDcPathSnapshot>::new();
|
||||
if let Some(upstream) = &self.upstream {
|
||||
for dc in 1..=5 {
|
||||
let dc_idx = dc as i16;
|
||||
let ip_preference = upstream
|
||||
.get_dc_ip_preference(dc_idx)
|
||||
.await
|
||||
.map(ip_preference_label);
|
||||
let selected_addr_v4 = upstream.get_dc_addr(dc_idx, false).await;
|
||||
let selected_addr_v6 = upstream.get_dc_addr(dc_idx, true).await;
|
||||
network_path.push(MeApiDcPathSnapshot {
|
||||
dc: dc_idx,
|
||||
ip_preference,
|
||||
selected_addr_v4,
|
||||
selected_addr_v6,
|
||||
});
|
||||
}
|
||||
}
|
||||
|
||||
MeApiRuntimeSnapshot {
|
||||
active_generation: self.active_generation.load(Ordering::Relaxed),
|
||||
warm_generation: self.warm_generation.load(Ordering::Relaxed),
|
||||
pending_hardswap_generation: self.pending_hardswap_generation.load(Ordering::Relaxed),
|
||||
pending_hardswap_age_secs,
|
||||
hardswap_enabled: self.hardswap.load(Ordering::Relaxed),
|
||||
floor_mode: floor_mode_label(self.floor_mode()),
|
||||
adaptive_floor_idle_secs: self.me_adaptive_floor_idle_secs.load(Ordering::Relaxed),
|
||||
adaptive_floor_min_writers_single_endpoint: self
|
||||
.me_adaptive_floor_min_writers_single_endpoint
|
||||
.load(Ordering::Relaxed),
|
||||
adaptive_floor_recover_grace_secs: self
|
||||
.me_adaptive_floor_recover_grace_secs
|
||||
.load(Ordering::Relaxed),
|
||||
me_keepalive_enabled: self.me_keepalive_enabled,
|
||||
me_keepalive_interval_secs: self.me_keepalive_interval.as_secs(),
|
||||
me_keepalive_jitter_secs: self.me_keepalive_jitter.as_secs(),
|
||||
me_keepalive_payload_random: self.me_keepalive_payload_random,
|
||||
rpc_proxy_req_every_secs: self.rpc_proxy_req_every_secs.load(Ordering::Relaxed),
|
||||
me_reconnect_max_concurrent_per_dc: self.me_reconnect_max_concurrent_per_dc,
|
||||
me_reconnect_backoff_base_ms: self.me_reconnect_backoff_base.as_millis() as u64,
|
||||
me_reconnect_backoff_cap_ms: self.me_reconnect_backoff_cap.as_millis() as u64,
|
||||
me_reconnect_fast_retry_count: self.me_reconnect_fast_retry_count,
|
||||
me_pool_drain_ttl_secs: self.me_pool_drain_ttl_secs.load(Ordering::Relaxed),
|
||||
me_pool_force_close_secs: self.me_pool_force_close_secs.load(Ordering::Relaxed),
|
||||
me_pool_min_fresh_ratio: Self::permille_to_ratio(
|
||||
self.me_pool_min_fresh_ratio_permille.load(Ordering::Relaxed),
|
||||
),
|
||||
me_bind_stale_mode: bind_stale_mode_label(self.bind_stale_mode()),
|
||||
me_bind_stale_ttl_secs: self.me_bind_stale_ttl_secs.load(Ordering::Relaxed),
|
||||
me_single_endpoint_shadow_writers: self
|
||||
.me_single_endpoint_shadow_writers
|
||||
.load(Ordering::Relaxed),
|
||||
me_single_endpoint_outage_mode_enabled: self
|
||||
.me_single_endpoint_outage_mode_enabled
|
||||
.load(Ordering::Relaxed),
|
||||
me_single_endpoint_outage_disable_quarantine: self
|
||||
.me_single_endpoint_outage_disable_quarantine
|
||||
.load(Ordering::Relaxed),
|
||||
me_single_endpoint_outage_backoff_min_ms: self
|
||||
.me_single_endpoint_outage_backoff_min_ms
|
||||
.load(Ordering::Relaxed),
|
||||
me_single_endpoint_outage_backoff_max_ms: self
|
||||
.me_single_endpoint_outage_backoff_max_ms
|
||||
.load(Ordering::Relaxed),
|
||||
me_single_endpoint_shadow_rotate_every_secs: self
|
||||
.me_single_endpoint_shadow_rotate_every_secs
|
||||
.load(Ordering::Relaxed),
|
||||
me_deterministic_writer_sort: self
|
||||
.me_deterministic_writer_sort
|
||||
.load(Ordering::Relaxed),
|
||||
me_socks_kdf_policy: socks_kdf_policy_label(self.socks_kdf_policy()),
|
||||
quarantined_endpoints,
|
||||
network_path,
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
fn ratio_pct(part: usize, total: usize) -> f64 {
|
||||
if total == 0 {
|
||||
return 0.0;
|
||||
}
|
||||
let pct = ((part as f64) / (total as f64)) * 100.0;
|
||||
pct.clamp(0.0, 100.0)
|
||||
}
|
||||
|
||||
fn floor_mode_label(mode: MeFloorMode) -> &'static str {
|
||||
match mode {
|
||||
MeFloorMode::Static => "static",
|
||||
MeFloorMode::Adaptive => "adaptive",
|
||||
}
|
||||
}
|
||||
|
||||
fn bind_stale_mode_label(mode: MeBindStaleMode) -> &'static str {
|
||||
match mode {
|
||||
MeBindStaleMode::Never => "never",
|
||||
MeBindStaleMode::Ttl => "ttl",
|
||||
MeBindStaleMode::Always => "always",
|
||||
}
|
||||
}
|
||||
|
||||
fn socks_kdf_policy_label(policy: MeSocksKdfPolicy) -> &'static str {
|
||||
match policy {
|
||||
MeSocksKdfPolicy::Strict => "strict",
|
||||
MeSocksKdfPolicy::Compat => "compat",
|
||||
}
|
||||
}
|
||||
|
||||
fn ip_preference_label(preference: IpPreference) -> &'static str {
|
||||
match preference {
|
||||
IpPreference::Unknown => "unknown",
|
||||
IpPreference::PreferV6 => "prefer_v6",
|
||||
IpPreference::PreferV4 => "prefer_v4",
|
||||
IpPreference::BothWork => "both",
|
||||
IpPreference::Unavailable => "unavailable",
|
||||
}
|
||||
}
|
||||
|
||||
#[cfg(test)]
|
||||
mod tests {
|
||||
use super::ratio_pct;
|
||||
|
||||
#[test]
|
||||
fn ratio_pct_is_zero_when_denominator_is_zero() {
|
||||
assert_eq!(ratio_pct(1, 0), 0.0);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn ratio_pct_is_capped_at_100() {
|
||||
assert_eq!(ratio_pct(7, 3), 100.0);
|
||||
}
|
||||
|
||||
#[test]
|
||||
fn ratio_pct_reports_expected_value() {
|
||||
assert_eq!(ratio_pct(1, 4), 25.0);
|
||||
}
|
||||
}
|
||||
535
src/transport/middle_proxy/pool_writer.rs
Normal file
535
src/transport/middle_proxy/pool_writer.rs
Normal file
@@ -0,0 +1,535 @@
|
||||
use std::net::SocketAddr;
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::{AtomicBool, AtomicU8, AtomicU64, Ordering};
|
||||
use std::time::{Duration, Instant};
|
||||
use std::io::ErrorKind;
|
||||
|
||||
use bytes::BytesMut;
|
||||
use rand::Rng;
|
||||
use tokio::sync::mpsc;
|
||||
use tokio_util::sync::CancellationToken;
|
||||
use tracing::{debug, info, warn};
|
||||
|
||||
use crate::config::MeBindStaleMode;
|
||||
use crate::crypto::SecureRandom;
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::protocol::constants::{RPC_CLOSE_EXT_U32, RPC_PING_U32};
|
||||
|
||||
use super::codec::{RpcWriter, WriterCommand};
|
||||
use super::pool::{MePool, MeWriter, WriterContour};
|
||||
use super::reader::reader_loop;
|
||||
use super::registry::BoundConn;
|
||||
use super::wire::build_proxy_req_payload;
|
||||
|
||||
const ME_ACTIVE_PING_SECS: u64 = 25;
|
||||
const ME_ACTIVE_PING_JITTER_SECS: i64 = 5;
|
||||
const ME_IDLE_KEEPALIVE_MAX_SECS: u64 = 5;
|
||||
const ME_RPC_PROXY_REQ_RESPONSE_WAIT_MS: u64 = 700;
|
||||
|
||||
fn is_me_peer_closed_error(error: &ProxyError) -> bool {
|
||||
matches!(error, ProxyError::Io(ioe) if ioe.kind() == ErrorKind::UnexpectedEof)
|
||||
}
|
||||
|
||||
impl MePool {
|
||||
pub(crate) async fn prune_closed_writers(self: &Arc<Self>) {
|
||||
let closed_writer_ids: Vec<u64> = {
|
||||
let ws = self.writers.read().await;
|
||||
ws.iter().filter(|w| w.tx.is_closed()).map(|w| w.id).collect()
|
||||
};
|
||||
if closed_writer_ids.is_empty() {
|
||||
return;
|
||||
}
|
||||
|
||||
for writer_id in closed_writer_ids {
|
||||
if self.registry.is_writer_empty(writer_id).await {
|
||||
let _ = self.remove_writer_only(writer_id).await;
|
||||
} else {
|
||||
let _ = self.remove_writer_and_close_clients(writer_id).await;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
pub(crate) async fn connect_one(self: &Arc<Self>, addr: SocketAddr, rng: &SecureRandom) -> Result<()> {
|
||||
self.connect_one_with_generation_contour(
|
||||
addr,
|
||||
rng,
|
||||
self.current_generation(),
|
||||
WriterContour::Active,
|
||||
)
|
||||
.await
|
||||
}
|
||||
|
||||
pub(super) async fn connect_one_with_generation_contour(
|
||||
self: &Arc<Self>,
|
||||
addr: SocketAddr,
|
||||
rng: &SecureRandom,
|
||||
generation: u64,
|
||||
contour: WriterContour,
|
||||
) -> Result<()> {
|
||||
let secret_len = self.proxy_secret.read().await.secret.len();
|
||||
if secret_len < 32 {
|
||||
return Err(ProxyError::Proxy("proxy-secret too short for ME auth".into()));
|
||||
}
|
||||
|
||||
let (stream, _connect_ms, upstream_egress) = self.connect_tcp(addr).await?;
|
||||
let hs = self.handshake_only(stream, addr, upstream_egress, rng).await?;
|
||||
|
||||
let writer_id = self.next_writer_id.fetch_add(1, Ordering::Relaxed);
|
||||
let contour = Arc::new(AtomicU8::new(contour.as_u8()));
|
||||
let cancel = CancellationToken::new();
|
||||
let degraded = Arc::new(AtomicBool::new(false));
|
||||
let draining = Arc::new(AtomicBool::new(false));
|
||||
let draining_started_at_epoch_secs = Arc::new(AtomicU64::new(0));
|
||||
let allow_drain_fallback = Arc::new(AtomicBool::new(false));
|
||||
let (tx, mut rx) = mpsc::channel::<WriterCommand>(4096);
|
||||
let mut rpc_writer = RpcWriter {
|
||||
writer: hs.wr,
|
||||
key: hs.write_key,
|
||||
iv: hs.write_iv,
|
||||
seq_no: 0,
|
||||
crc_mode: hs.crc_mode,
|
||||
};
|
||||
let cancel_wr = cancel.clone();
|
||||
tokio::spawn(async move {
|
||||
loop {
|
||||
tokio::select! {
|
||||
cmd = rx.recv() => {
|
||||
match cmd {
|
||||
Some(WriterCommand::Data(payload)) => {
|
||||
if rpc_writer.send(&payload).await.is_err() { break; }
|
||||
}
|
||||
Some(WriterCommand::DataAndFlush(payload)) => {
|
||||
if rpc_writer.send_and_flush(&payload).await.is_err() { break; }
|
||||
}
|
||||
Some(WriterCommand::Close) | None => break,
|
||||
}
|
||||
}
|
||||
_ = cancel_wr.cancelled() => break,
|
||||
}
|
||||
}
|
||||
});
|
||||
let writer = MeWriter {
|
||||
id: writer_id,
|
||||
addr,
|
||||
generation,
|
||||
contour: contour.clone(),
|
||||
created_at: Instant::now(),
|
||||
tx: tx.clone(),
|
||||
cancel: cancel.clone(),
|
||||
degraded: degraded.clone(),
|
||||
draining: draining.clone(),
|
||||
draining_started_at_epoch_secs: draining_started_at_epoch_secs.clone(),
|
||||
allow_drain_fallback: allow_drain_fallback.clone(),
|
||||
};
|
||||
self.writers.write().await.push(writer.clone());
|
||||
self.registry.mark_writer_idle(writer_id).await;
|
||||
self.conn_count.fetch_add(1, Ordering::Relaxed);
|
||||
self.writer_available.notify_one();
|
||||
|
||||
let reg = self.registry.clone();
|
||||
let writers_arc = self.writers_arc();
|
||||
let ping_tracker = self.ping_tracker.clone();
|
||||
let ping_tracker_reader = ping_tracker.clone();
|
||||
let rtt_stats = self.rtt_stats.clone();
|
||||
let stats_reader = self.stats.clone();
|
||||
let stats_reader_close = self.stats.clone();
|
||||
let stats_ping = self.stats.clone();
|
||||
let pool = Arc::downgrade(self);
|
||||
let cancel_ping = cancel.clone();
|
||||
let tx_ping = tx.clone();
|
||||
let ping_tracker_ping = ping_tracker.clone();
|
||||
let cleanup_done = Arc::new(AtomicBool::new(false));
|
||||
let cleanup_for_reader = cleanup_done.clone();
|
||||
let cleanup_for_ping = cleanup_done.clone();
|
||||
let keepalive_enabled = self.me_keepalive_enabled;
|
||||
let keepalive_interval = self.me_keepalive_interval;
|
||||
let keepalive_jitter = self.me_keepalive_jitter;
|
||||
let rpc_proxy_req_every_secs = self.rpc_proxy_req_every_secs.load(Ordering::Relaxed);
|
||||
let tx_signal = tx.clone();
|
||||
let stats_signal = self.stats.clone();
|
||||
let cancel_signal = cancel.clone();
|
||||
let cleanup_for_signal = cleanup_done.clone();
|
||||
let pool_signal = Arc::downgrade(self);
|
||||
let keepalive_jitter_signal = self.me_keepalive_jitter;
|
||||
let cancel_reader_token = cancel.clone();
|
||||
let cancel_ping_token = cancel_ping.clone();
|
||||
|
||||
tokio::spawn(async move {
|
||||
let res = reader_loop(
|
||||
hs.rd,
|
||||
hs.read_key,
|
||||
hs.read_iv,
|
||||
hs.crc_mode,
|
||||
reg.clone(),
|
||||
BytesMut::new(),
|
||||
BytesMut::new(),
|
||||
tx.clone(),
|
||||
ping_tracker_reader,
|
||||
rtt_stats.clone(),
|
||||
stats_reader,
|
||||
writer_id,
|
||||
degraded.clone(),
|
||||
cancel_reader_token.clone(),
|
||||
)
|
||||
.await;
|
||||
let idle_close_by_peer = if let Err(e) = res.as_ref() {
|
||||
is_me_peer_closed_error(e) && reg.is_writer_empty(writer_id).await
|
||||
} else {
|
||||
false
|
||||
};
|
||||
if idle_close_by_peer {
|
||||
stats_reader_close.increment_me_idle_close_by_peer_total();
|
||||
info!(writer_id, "ME socket closed by peer on idle writer");
|
||||
}
|
||||
if let Some(pool) = pool.upgrade()
|
||||
&& cleanup_for_reader
|
||||
.compare_exchange(false, true, Ordering::AcqRel, Ordering::Relaxed)
|
||||
.is_ok()
|
||||
{
|
||||
pool.remove_writer_and_close_clients(writer_id).await;
|
||||
}
|
||||
if let Err(e) = res {
|
||||
if !idle_close_by_peer {
|
||||
warn!(error = %e, "ME reader ended");
|
||||
}
|
||||
}
|
||||
let mut ws = writers_arc.write().await;
|
||||
ws.retain(|w| w.id != writer_id);
|
||||
info!(remaining = ws.len(), "Dead ME writer removed from pool");
|
||||
});
|
||||
|
||||
let pool_ping = Arc::downgrade(self);
|
||||
tokio::spawn(async move {
|
||||
let mut ping_id: i64 = rand::random::<i64>();
|
||||
let idle_interval_cap = Duration::from_secs(ME_IDLE_KEEPALIVE_MAX_SECS);
|
||||
// Per-writer jittered start to avoid phase sync.
|
||||
let startup_jitter = if keepalive_enabled {
|
||||
let mut interval = keepalive_interval;
|
||||
if let Some(pool) = pool_ping.upgrade() {
|
||||
if pool.registry.is_writer_empty(writer_id).await {
|
||||
interval = interval.min(idle_interval_cap);
|
||||
}
|
||||
} else {
|
||||
return;
|
||||
}
|
||||
let jitter_cap_ms = interval.as_millis() / 2;
|
||||
let effective_jitter_ms = keepalive_jitter.as_millis().min(jitter_cap_ms).max(1);
|
||||
Duration::from_millis(rand::rng().random_range(0..=effective_jitter_ms as u64))
|
||||
} else {
|
||||
let jitter = rand::rng().random_range(-ME_ACTIVE_PING_JITTER_SECS..=ME_ACTIVE_PING_JITTER_SECS);
|
||||
let wait = (ME_ACTIVE_PING_SECS as i64 + jitter).max(5) as u64;
|
||||
Duration::from_secs(wait)
|
||||
};
|
||||
tokio::select! {
|
||||
_ = cancel_ping_token.cancelled() => return,
|
||||
_ = tokio::time::sleep(startup_jitter) => {}
|
||||
}
|
||||
loop {
|
||||
let wait = if keepalive_enabled {
|
||||
let mut interval = keepalive_interval;
|
||||
if let Some(pool) = pool_ping.upgrade() {
|
||||
if pool.registry.is_writer_empty(writer_id).await {
|
||||
interval = interval.min(idle_interval_cap);
|
||||
}
|
||||
} else {
|
||||
break;
|
||||
}
|
||||
let jitter_cap_ms = interval.as_millis() / 2;
|
||||
let effective_jitter_ms = keepalive_jitter.as_millis().min(jitter_cap_ms).max(1);
|
||||
interval + Duration::from_millis(rand::rng().random_range(0..=effective_jitter_ms as u64))
|
||||
} else {
|
||||
let jitter = rand::rng().random_range(-ME_ACTIVE_PING_JITTER_SECS..=ME_ACTIVE_PING_JITTER_SECS);
|
||||
let secs = (ME_ACTIVE_PING_SECS as i64 + jitter).max(5) as u64;
|
||||
Duration::from_secs(secs)
|
||||
};
|
||||
tokio::select! {
|
||||
_ = cancel_ping_token.cancelled() => {
|
||||
break;
|
||||
}
|
||||
_ = tokio::time::sleep(wait) => {}
|
||||
}
|
||||
let sent_id = ping_id;
|
||||
let mut p = Vec::with_capacity(12);
|
||||
p.extend_from_slice(&RPC_PING_U32.to_le_bytes());
|
||||
p.extend_from_slice(&sent_id.to_le_bytes());
|
||||
{
|
||||
let mut tracker = ping_tracker_ping.lock().await;
|
||||
let before = tracker.len();
|
||||
tracker.retain(|_, (ts, _)| ts.elapsed() < Duration::from_secs(120));
|
||||
let expired = before.saturating_sub(tracker.len());
|
||||
if expired > 0 {
|
||||
stats_ping.increment_me_keepalive_timeout_by(expired as u64);
|
||||
}
|
||||
tracker.insert(sent_id, (std::time::Instant::now(), writer_id));
|
||||
}
|
||||
ping_id = ping_id.wrapping_add(1);
|
||||
stats_ping.increment_me_keepalive_sent();
|
||||
if tx_ping.send(WriterCommand::DataAndFlush(p)).await.is_err() {
|
||||
stats_ping.increment_me_keepalive_failed();
|
||||
debug!("ME ping failed, removing dead writer");
|
||||
cancel_ping.cancel();
|
||||
if let Some(pool) = pool_ping.upgrade()
|
||||
&& cleanup_for_ping
|
||||
.compare_exchange(false, true, Ordering::AcqRel, Ordering::Relaxed)
|
||||
.is_ok()
|
||||
{
|
||||
pool.remove_writer_and_close_clients(writer_id).await;
|
||||
}
|
||||
break;
|
||||
}
|
||||
}
|
||||
});
|
||||
|
||||
tokio::spawn(async move {
|
||||
if rpc_proxy_req_every_secs == 0 {
|
||||
return;
|
||||
}
|
||||
|
||||
let interval = Duration::from_secs(rpc_proxy_req_every_secs);
|
||||
let startup_jitter_ms = {
|
||||
let jitter_cap_ms = interval.as_millis() / 2;
|
||||
let effective_jitter_ms = keepalive_jitter_signal
|
||||
.as_millis()
|
||||
.min(jitter_cap_ms)
|
||||
.max(1);
|
||||
rand::rng().random_range(0..=effective_jitter_ms as u64)
|
||||
};
|
||||
|
||||
tokio::select! {
|
||||
_ = cancel_signal.cancelled() => return,
|
||||
_ = tokio::time::sleep(Duration::from_millis(startup_jitter_ms)) => {}
|
||||
}
|
||||
|
||||
loop {
|
||||
let wait = {
|
||||
let jitter_cap_ms = interval.as_millis() / 2;
|
||||
let effective_jitter_ms = keepalive_jitter_signal
|
||||
.as_millis()
|
||||
.min(jitter_cap_ms)
|
||||
.max(1);
|
||||
interval + Duration::from_millis(rand::rng().random_range(0..=effective_jitter_ms as u64))
|
||||
};
|
||||
|
||||
tokio::select! {
|
||||
_ = cancel_signal.cancelled() => break,
|
||||
_ = tokio::time::sleep(wait) => {}
|
||||
}
|
||||
|
||||
let Some(pool) = pool_signal.upgrade() else {
|
||||
break;
|
||||
};
|
||||
|
||||
let Some(meta) = pool.registry.get_last_writer_meta(writer_id).await else {
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_skipped_no_meta_total();
|
||||
continue;
|
||||
};
|
||||
|
||||
let (conn_id, mut service_rx) = pool.registry.register().await;
|
||||
pool.registry
|
||||
.bind_writer(conn_id, writer_id, tx_signal.clone(), meta.clone())
|
||||
.await;
|
||||
|
||||
let payload = build_proxy_req_payload(
|
||||
conn_id,
|
||||
meta.client_addr,
|
||||
meta.our_addr,
|
||||
&[],
|
||||
pool.proxy_tag.as_deref(),
|
||||
meta.proto_flags,
|
||||
);
|
||||
|
||||
if tx_signal.send(WriterCommand::DataAndFlush(payload)).await.is_err() {
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_failed_total();
|
||||
let _ = pool.registry.unregister(conn_id).await;
|
||||
cancel_signal.cancel();
|
||||
if cleanup_for_signal
|
||||
.compare_exchange(false, true, Ordering::AcqRel, Ordering::Relaxed)
|
||||
.is_ok()
|
||||
{
|
||||
pool.remove_writer_and_close_clients(writer_id).await;
|
||||
}
|
||||
break;
|
||||
}
|
||||
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_sent_total();
|
||||
|
||||
if matches!(
|
||||
tokio::time::timeout(
|
||||
Duration::from_millis(ME_RPC_PROXY_REQ_RESPONSE_WAIT_MS),
|
||||
service_rx.recv(),
|
||||
)
|
||||
.await,
|
||||
Ok(Some(_))
|
||||
) {
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_response_total();
|
||||
}
|
||||
|
||||
let mut close_payload = Vec::with_capacity(12);
|
||||
close_payload.extend_from_slice(&RPC_CLOSE_EXT_U32.to_le_bytes());
|
||||
close_payload.extend_from_slice(&conn_id.to_le_bytes());
|
||||
|
||||
if tx_signal
|
||||
.send(WriterCommand::DataAndFlush(close_payload))
|
||||
.await
|
||||
.is_err()
|
||||
{
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_failed_total();
|
||||
let _ = pool.registry.unregister(conn_id).await;
|
||||
cancel_signal.cancel();
|
||||
if cleanup_for_signal
|
||||
.compare_exchange(false, true, Ordering::AcqRel, Ordering::Relaxed)
|
||||
.is_ok()
|
||||
{
|
||||
pool.remove_writer_and_close_clients(writer_id).await;
|
||||
}
|
||||
break;
|
||||
}
|
||||
|
||||
stats_signal.increment_me_rpc_proxy_req_signal_close_sent_total();
|
||||
let _ = pool.registry.unregister(conn_id).await;
|
||||
}
|
||||
});
|
||||
|
||||
Ok(())
|
||||
}
|
||||
|
||||
pub(crate) async fn remove_writer_and_close_clients(self: &Arc<Self>, writer_id: u64) {
|
||||
let conns = self.remove_writer_only(writer_id).await;
|
||||
for bound in conns {
|
||||
let _ = self.registry.route(bound.conn_id, super::MeResponse::Close).await;
|
||||
let _ = self.registry.unregister(bound.conn_id).await;
|
||||
}
|
||||
}
|
||||
|
||||
async fn remove_writer_only(self: &Arc<Self>, writer_id: u64) -> Vec<BoundConn> {
|
||||
let mut close_tx: Option<mpsc::Sender<WriterCommand>> = None;
|
||||
let mut removed_addr: Option<SocketAddr> = None;
|
||||
let mut removed_uptime: Option<Duration> = None;
|
||||
let mut trigger_refill = false;
|
||||
{
|
||||
let mut ws = self.writers.write().await;
|
||||
if let Some(pos) = ws.iter().position(|w| w.id == writer_id) {
|
||||
let w = ws.remove(pos);
|
||||
let was_draining = w.draining.load(Ordering::Relaxed);
|
||||
if was_draining {
|
||||
self.stats.decrement_pool_drain_active();
|
||||
}
|
||||
self.stats.increment_me_writer_removed_total();
|
||||
w.cancel.cancel();
|
||||
removed_addr = Some(w.addr);
|
||||
removed_uptime = Some(w.created_at.elapsed());
|
||||
trigger_refill = !was_draining;
|
||||
if trigger_refill {
|
||||
self.stats.increment_me_writer_removed_unexpected_total();
|
||||
}
|
||||
close_tx = Some(w.tx.clone());
|
||||
self.conn_count.fetch_sub(1, Ordering::Relaxed);
|
||||
}
|
||||
}
|
||||
if let Some(tx) = close_tx {
|
||||
let _ = tx.send(WriterCommand::Close).await;
|
||||
}
|
||||
if trigger_refill
|
||||
&& let Some(addr) = removed_addr
|
||||
{
|
||||
if let Some(uptime) = removed_uptime {
|
||||
self.maybe_quarantine_flapping_endpoint(addr, uptime).await;
|
||||
}
|
||||
self.trigger_immediate_refill(addr);
|
||||
}
|
||||
self.rtt_stats.lock().await.remove(&writer_id);
|
||||
self.registry.writer_lost(writer_id).await
|
||||
}
|
||||
|
||||
pub(crate) async fn mark_writer_draining_with_timeout(
|
||||
self: &Arc<Self>,
|
||||
writer_id: u64,
|
||||
timeout: Option<Duration>,
|
||||
allow_drain_fallback: bool,
|
||||
) {
|
||||
let timeout = timeout.filter(|d| !d.is_zero());
|
||||
let found = {
|
||||
let mut ws = self.writers.write().await;
|
||||
if let Some(w) = ws.iter_mut().find(|w| w.id == writer_id) {
|
||||
let already_draining = w.draining.swap(true, Ordering::Relaxed);
|
||||
w.allow_drain_fallback
|
||||
.store(allow_drain_fallback, Ordering::Relaxed);
|
||||
w.draining_started_at_epoch_secs
|
||||
.store(Self::now_epoch_secs(), Ordering::Relaxed);
|
||||
if !already_draining {
|
||||
self.stats.increment_pool_drain_active();
|
||||
}
|
||||
w.contour
|
||||
.store(WriterContour::Draining.as_u8(), Ordering::Relaxed);
|
||||
w.draining.store(true, Ordering::Relaxed);
|
||||
true
|
||||
} else {
|
||||
false
|
||||
}
|
||||
};
|
||||
|
||||
if !found {
|
||||
return;
|
||||
}
|
||||
|
||||
let timeout_secs = timeout.map(|d| d.as_secs()).unwrap_or(0);
|
||||
debug!(
|
||||
writer_id,
|
||||
timeout_secs,
|
||||
allow_drain_fallback,
|
||||
"ME writer marked draining"
|
||||
);
|
||||
|
||||
let pool = Arc::downgrade(self);
|
||||
tokio::spawn(async move {
|
||||
let deadline = timeout.map(|t| Instant::now() + t);
|
||||
while let Some(p) = pool.upgrade() {
|
||||
if let Some(deadline_at) = deadline
|
||||
&& Instant::now() >= deadline_at
|
||||
{
|
||||
warn!(writer_id, "Drain timeout, force-closing");
|
||||
p.stats.increment_pool_force_close_total();
|
||||
let _ = p.remove_writer_and_close_clients(writer_id).await;
|
||||
break;
|
||||
}
|
||||
if p.registry.is_writer_empty(writer_id).await {
|
||||
let _ = p.remove_writer_only(writer_id).await;
|
||||
break;
|
||||
}
|
||||
tokio::time::sleep(Duration::from_secs(1)).await;
|
||||
}
|
||||
});
|
||||
}
|
||||
|
||||
pub(crate) async fn mark_writer_draining(self: &Arc<Self>, writer_id: u64) {
|
||||
self.mark_writer_draining_with_timeout(writer_id, Some(Duration::from_secs(300)), false)
|
||||
.await;
|
||||
}
|
||||
|
||||
pub(super) fn writer_accepts_new_binding(&self, writer: &MeWriter) -> bool {
|
||||
if !writer.draining.load(Ordering::Relaxed) {
|
||||
return true;
|
||||
}
|
||||
if !writer.allow_drain_fallback.load(Ordering::Relaxed) {
|
||||
return false;
|
||||
}
|
||||
|
||||
match self.bind_stale_mode() {
|
||||
MeBindStaleMode::Never => false,
|
||||
MeBindStaleMode::Always => true,
|
||||
MeBindStaleMode::Ttl => {
|
||||
let ttl_secs = self.me_bind_stale_ttl_secs.load(Ordering::Relaxed);
|
||||
if ttl_secs == 0 {
|
||||
return true;
|
||||
}
|
||||
|
||||
let started = writer.draining_started_at_epoch_secs.load(Ordering::Relaxed);
|
||||
if started == 0 {
|
||||
return false;
|
||||
}
|
||||
|
||||
Self::now_epoch_secs().saturating_sub(started) <= ttl_secs
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
226
src/transport/middle_proxy/reader.rs
Normal file
226
src/transport/middle_proxy/reader.rs
Normal file
@@ -0,0 +1,226 @@
|
||||
use std::collections::HashMap;
|
||||
use std::io::ErrorKind;
|
||||
use std::sync::Arc;
|
||||
use std::sync::atomic::{AtomicBool, Ordering};
|
||||
use std::time::Instant;
|
||||
|
||||
use bytes::{Bytes, BytesMut};
|
||||
use tokio::io::AsyncReadExt;
|
||||
use tokio::net::TcpStream;
|
||||
use tokio::sync::{Mutex, mpsc};
|
||||
use tokio_util::sync::CancellationToken;
|
||||
use tracing::{debug, trace, warn};
|
||||
|
||||
use crate::crypto::AesCbc;
|
||||
use crate::error::{ProxyError, Result};
|
||||
use crate::protocol::constants::*;
|
||||
use crate::stats::Stats;
|
||||
|
||||
use super::codec::{RpcChecksumMode, WriterCommand, rpc_crc};
|
||||
use super::registry::RouteResult;
|
||||
use super::{ConnRegistry, MeResponse};
|
||||
|
||||
pub(crate) async fn reader_loop(
|
||||
mut rd: tokio::io::ReadHalf<TcpStream>,
|
||||
dk: [u8; 32],
|
||||
mut div: [u8; 16],
|
||||
crc_mode: RpcChecksumMode,
|
||||
reg: Arc<ConnRegistry>,
|
||||
enc_leftover: BytesMut,
|
||||
mut dec: BytesMut,
|
||||
tx: mpsc::Sender<WriterCommand>,
|
||||
ping_tracker: Arc<Mutex<HashMap<i64, (Instant, u64)>>>,
|
||||
rtt_stats: Arc<Mutex<HashMap<u64, (f64, f64)>>>,
|
||||
stats: Arc<Stats>,
|
||||
_writer_id: u64,
|
||||
degraded: Arc<AtomicBool>,
|
||||
cancel: CancellationToken,
|
||||
) -> Result<()> {
|
||||
let mut raw = enc_leftover;
|
||||
let mut expected_seq: i32 = 0;
|
||||
|
||||
loop {
|
||||
let mut tmp = [0u8; 16_384];
|
||||
let n = tokio::select! {
|
||||
res = rd.read(&mut tmp) => res.map_err(ProxyError::Io)?,
|
||||
_ = cancel.cancelled() => return Ok(()),
|
||||
};
|
||||
if n == 0 {
|
||||
stats.increment_me_reader_eof_total();
|
||||
return Err(ProxyError::Io(std::io::Error::new(
|
||||
ErrorKind::UnexpectedEof,
|
||||
"ME socket closed by peer",
|
||||
)));
|
||||
}
|
||||
raw.extend_from_slice(&tmp[..n]);
|
||||
|
||||
let blocks = raw.len() / 16 * 16;
|
||||
if blocks > 0 {
|
||||
let mut new_iv = [0u8; 16];
|
||||
new_iv.copy_from_slice(&raw[blocks - 16..blocks]);
|
||||
|
||||
let mut chunk = vec![0u8; blocks];
|
||||
chunk.copy_from_slice(&raw[..blocks]);
|
||||
AesCbc::new(dk, div)
|
||||
.decrypt_in_place(&mut chunk)
|
||||
.map_err(|e| ProxyError::Crypto(format!("{e}")))?;
|
||||
div = new_iv;
|
||||
dec.extend_from_slice(&chunk);
|
||||
let _ = raw.split_to(blocks);
|
||||
}
|
||||
|
||||
while dec.len() >= 12 {
|
||||
let fl = u32::from_le_bytes(dec[0..4].try_into().unwrap()) as usize;
|
||||
if fl == 4 {
|
||||
let _ = dec.split_to(4);
|
||||
continue;
|
||||
}
|
||||
if !(12..=(1 << 24)).contains(&fl) {
|
||||
warn!(frame_len = fl, "Invalid RPC frame len");
|
||||
dec.clear();
|
||||
break;
|
||||
}
|
||||
if dec.len() < fl {
|
||||
break;
|
||||
}
|
||||
|
||||
let frame = dec.split_to(fl);
|
||||
let pe = fl - 4;
|
||||
let ec = u32::from_le_bytes(frame[pe..pe + 4].try_into().unwrap());
|
||||
let actual_crc = rpc_crc(crc_mode, &frame[..pe]);
|
||||
if actual_crc != ec {
|
||||
stats.increment_me_crc_mismatch();
|
||||
warn!(
|
||||
frame_len = fl,
|
||||
expected_crc = format_args!("0x{ec:08x}"),
|
||||
actual_crc = format_args!("0x{actual_crc:08x}"),
|
||||
"CRC mismatch — CBC crypto desync, aborting ME connection"
|
||||
);
|
||||
return Err(ProxyError::Proxy("CRC mismatch (crypto desync)".into()));
|
||||
}
|
||||
|
||||
let seq_no = i32::from_le_bytes(frame[4..8].try_into().unwrap());
|
||||
if seq_no != expected_seq {
|
||||
stats.increment_me_seq_mismatch();
|
||||
warn!(seq_no, expected = expected_seq, "ME RPC seq mismatch");
|
||||
return Err(ProxyError::SeqNoMismatch {
|
||||
expected: expected_seq,
|
||||
got: seq_no,
|
||||
});
|
||||
}
|
||||
expected_seq = expected_seq.wrapping_add(1);
|
||||
|
||||
let payload = &frame[8..pe];
|
||||
if payload.len() < 4 {
|
||||
continue;
|
||||
}
|
||||
|
||||
let pt = u32::from_le_bytes(payload[0..4].try_into().unwrap());
|
||||
let body = &payload[4..];
|
||||
|
||||
if pt == RPC_PROXY_ANS_U32 && body.len() >= 12 {
|
||||
let flags = u32::from_le_bytes(body[0..4].try_into().unwrap());
|
||||
let cid = u64::from_le_bytes(body[4..12].try_into().unwrap());
|
||||
let data = Bytes::copy_from_slice(&body[12..]);
|
||||
trace!(cid, flags, len = data.len(), "RPC_PROXY_ANS");
|
||||
|
||||
let routed = reg.route(cid, MeResponse::Data { flags, data }).await;
|
||||
if !matches!(routed, RouteResult::Routed) {
|
||||
match routed {
|
||||
RouteResult::NoConn => stats.increment_me_route_drop_no_conn(),
|
||||
RouteResult::ChannelClosed => stats.increment_me_route_drop_channel_closed(),
|
||||
RouteResult::QueueFullBase => {
|
||||
stats.increment_me_route_drop_queue_full();
|
||||
stats.increment_me_route_drop_queue_full_base();
|
||||
}
|
||||
RouteResult::QueueFullHigh => {
|
||||
stats.increment_me_route_drop_queue_full();
|
||||
stats.increment_me_route_drop_queue_full_high();
|
||||
}
|
||||
RouteResult::Routed => {}
|
||||
}
|
||||
reg.unregister(cid).await;
|
||||
send_close_conn(&tx, cid).await;
|
||||
}
|
||||
} else if pt == RPC_SIMPLE_ACK_U32 && body.len() >= 12 {
|
||||
let cid = u64::from_le_bytes(body[0..8].try_into().unwrap());
|
||||
let cfm = u32::from_le_bytes(body[8..12].try_into().unwrap());
|
||||
trace!(cid, cfm, "RPC_SIMPLE_ACK");
|
||||
|
||||
let routed = reg.route(cid, MeResponse::Ack(cfm)).await;
|
||||
if !matches!(routed, RouteResult::Routed) {
|
||||
match routed {
|
||||
RouteResult::NoConn => stats.increment_me_route_drop_no_conn(),
|
||||
RouteResult::ChannelClosed => stats.increment_me_route_drop_channel_closed(),
|
||||
RouteResult::QueueFullBase => {
|
||||
stats.increment_me_route_drop_queue_full();
|
||||
stats.increment_me_route_drop_queue_full_base();
|
||||
}
|
||||
RouteResult::QueueFullHigh => {
|
||||
stats.increment_me_route_drop_queue_full();
|
||||
stats.increment_me_route_drop_queue_full_high();
|
||||
}
|
||||
RouteResult::Routed => {}
|
||||
}
|
||||
reg.unregister(cid).await;
|
||||
send_close_conn(&tx, cid).await;
|
||||
}
|
||||
} else if pt == RPC_CLOSE_EXT_U32 && body.len() >= 8 {
|
||||
let cid = u64::from_le_bytes(body[0..8].try_into().unwrap());
|
||||
debug!(cid, "RPC_CLOSE_EXT from ME");
|
||||
reg.route(cid, MeResponse::Close).await;
|
||||
reg.unregister(cid).await;
|
||||
} else if pt == RPC_CLOSE_CONN_U32 && body.len() >= 8 {
|
||||
let cid = u64::from_le_bytes(body[0..8].try_into().unwrap());
|
||||
debug!(cid, "RPC_CLOSE_CONN from ME");
|
||||
reg.route(cid, MeResponse::Close).await;
|
||||
reg.unregister(cid).await;
|
||||
} else if pt == RPC_PING_U32 && body.len() >= 8 {
|
||||
let ping_id = i64::from_le_bytes(body[0..8].try_into().unwrap());
|
||||
trace!(ping_id, "RPC_PING -> RPC_PONG");
|
||||
let mut pong = Vec::with_capacity(12);
|
||||
pong.extend_from_slice(&RPC_PONG_U32.to_le_bytes());
|
||||
pong.extend_from_slice(&ping_id.to_le_bytes());
|
||||
if tx.send(WriterCommand::DataAndFlush(pong)).await.is_err() {
|
||||
warn!("PONG send failed");
|
||||
break;
|
||||
}
|
||||
} else if pt == RPC_PONG_U32 && body.len() >= 8 {
|
||||
let ping_id = i64::from_le_bytes(body[0..8].try_into().unwrap());
|
||||
stats.increment_me_keepalive_pong();
|
||||
if let Some((sent, wid)) = {
|
||||
let mut guard = ping_tracker.lock().await;
|
||||
guard.remove(&ping_id)
|
||||
} {
|
||||
let rtt = sent.elapsed().as_secs_f64() * 1000.0;
|
||||
let mut stats = rtt_stats.lock().await;
|
||||
let entry = stats.entry(wid).or_insert((rtt, rtt));
|
||||
entry.1 = entry.1 * 0.8 + rtt * 0.2;
|
||||
if rtt < entry.0 {
|
||||
entry.0 = rtt;
|
||||
} else {
|
||||
// allow slow baseline drift upward to avoid stale minimum
|
||||
entry.0 = entry.0 * 0.99 + rtt * 0.01;
|
||||
}
|
||||
let degraded_now = entry.1 > entry.0 * 2.0;
|
||||
degraded.store(degraded_now, Ordering::Relaxed);
|
||||
trace!(writer_id = wid, rtt_ms = rtt, ema_ms = entry.1, base_ms = entry.0, degraded = degraded_now, "ME RTT sample");
|
||||
}
|
||||
} else {
|
||||
debug!(
|
||||
rpc_type = format_args!("0x{pt:08x}"),
|
||||
len = body.len(),
|
||||
"Unknown RPC"
|
||||
);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
async fn send_close_conn(tx: &mpsc::Sender<WriterCommand>, conn_id: u64) {
|
||||
let mut p = Vec::with_capacity(12);
|
||||
p.extend_from_slice(&RPC_CLOSE_CONN_U32.to_le_bytes());
|
||||
p.extend_from_slice(&conn_id.to_le_bytes());
|
||||
|
||||
let _ = tx.send(WriterCommand::DataAndFlush(p)).await;
|
||||
}
|
||||
Some files were not shown because too many files have changed in this diff Show More
Reference in New Issue
Block a user