Files
CC-Switch/src-tauri/src/proxy/circuit_breaker.rs
T
Dex Miller f3343992f2 feat(proxy): add thinking signature rectifier for Claude API (#595)
* feat(proxy): add thinking signature rectifier for Claude API

Add automatic request rectification when Anthropic API returns signature
validation errors. This improves compatibility when switching between
different Claude providers or when historical messages contain incompatible
thinking block signatures.

- Add thinking_rectifier.rs module with trigger detection and rectification
- Integrate rectifier into forwarder error handling flow
- Remove thinking/redacted_thinking blocks and signature fields on retry
- Delete top-level thinking field when assistant message lacks thinking prefix

* fix(proxy): complete rectifier retry path with failover switch and chain continuation

- Add failover switch trigger on rectifier retry success when provider differs from start
- Replace direct error return with error categorization on rectifier retry failure
- Continue failover chain for retryable errors instead of terminating early

* feat(proxy): add rectifier config with master switch

- Add RectifierConfig struct with enabled and requestThinkingSignature fields
- Update should_rectify_thinking_signature to check master switch first
- Add tests for master switch functionality

* feat(db): add rectifier config storage in settings table

Store rectifier config as JSON in single key for extensibility

* feat(commands): add get/set rectifier config commands

* feat(ui): add rectifier config panel in advanced settings

- Add RectifierConfigPanel component with master switch and thinking signature toggle
- Add API wrapper for rectifier config
- Add i18n translations for zh/en/ja

* feat(proxy): integrate rectifier config into request forwarding

- Load rectifier config from database in RequestContext
- Pass config to RequestForwarder for runtime checking
- Use should_rectify_thinking_signature with config parameter

* test(proxy): add nested JSON error detection test for thinking rectifier

* fix(proxy): resolve HalfOpen permit leak and RectifierConfig default values

- Fix RectifierConfig::default() to return enabled=true (was false due to derive)
- Add release_permit_neutral() for releasing permits without affecting health stats
- Fix 3 permit leak points in rectifier retry branches
- Add unit tests for default values and permit release

* style(ui): format ProviderCard style attribute

* fix(rectifier): add detection for signature field required error

Add support for detecting "signature: Field required" error pattern
in the thinking signature rectifier. This enables automatic request
rectification when upstream API returns this specific validation error.
2026-01-14 00:12:13 +08:00

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//! 熔断器模块
//!
//! 实现熔断器模式,用于防止向不健康的供应商发送请求
use super::log_codes::cb as log_cb;
use serde::{Deserialize, Serialize};
use std::sync::atomic::{AtomicU32, Ordering};
use std::sync::Arc;
use std::time::Instant;
use tokio::sync::RwLock;
/// 熔断器状态
#[derive(Debug, Clone, Copy, PartialEq, Eq, Serialize, Deserialize)]
#[serde(rename_all = "snake_case")]
pub enum CircuitState {
/// 关闭状态 - 正常工作
Closed,
/// 打开状态 - 熔断激活,拒绝请求
Open,
/// 半开状态 - 尝试恢复,允许部分请求通过
HalfOpen,
}
impl std::fmt::Display for CircuitState {
fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
match self {
CircuitState::Closed => write!(f, "closed"),
CircuitState::Open => write!(f, "open"),
CircuitState::HalfOpen => write!(f, "half_open"),
}
}
}
/// 熔断器配置
#[derive(Debug, Clone, Serialize, Deserialize)]
#[serde(rename_all = "camelCase")]
pub struct CircuitBreakerConfig {
/// 失败阈值 - 连续失败多少次后打开熔断器
pub failure_threshold: u32,
/// 成功阈值 - 半开状态下成功多少次后关闭熔断器
pub success_threshold: u32,
/// 超时时间 - 熔断器打开后多久尝试半开(秒)
pub timeout_seconds: u64,
/// 错误率阈值 - 错误率超过此值时打开熔断器 (0.0-1.0)
pub error_rate_threshold: f64,
/// 最小请求数 - 计算错误率前的最小请求数
pub min_requests: u32,
}
impl Default for CircuitBreakerConfig {
fn default() -> Self {
Self {
failure_threshold: 4,
success_threshold: 2,
timeout_seconds: 60,
error_rate_threshold: 0.6,
min_requests: 10,
}
}
}
/// 熔断器实例
pub struct CircuitBreaker {
/// 当前状态
state: Arc<RwLock<CircuitState>>,
/// 连续失败计数
consecutive_failures: Arc<AtomicU32>,
/// 连续成功计数(半开状态)
consecutive_successes: Arc<AtomicU32>,
/// 总请求计数
total_requests: Arc<AtomicU32>,
/// 失败请求计数
failed_requests: Arc<AtomicU32>,
/// 上次打开时间
last_opened_at: Arc<RwLock<Option<Instant>>>,
/// 配置(支持热更新)
config: Arc<RwLock<CircuitBreakerConfig>>,
/// 半开状态已放行的请求数(用于限流)
half_open_requests: Arc<AtomicU32>,
}
/// 熔断器放行结果
///
/// `used_half_open_permit` 表示本次放行是否占用了 HalfOpen 探测名额。
/// 调用方应在请求结束后把该值传回 `record_success` / `record_failure` 用于正确释放名额。
#[derive(Debug, Clone, Copy)]
pub struct AllowResult {
pub allowed: bool,
pub used_half_open_permit: bool,
}
impl CircuitBreaker {
/// 创建新的熔断器
pub fn new(config: CircuitBreakerConfig) -> Self {
Self {
state: Arc::new(RwLock::new(CircuitState::Closed)),
consecutive_failures: Arc::new(AtomicU32::new(0)),
consecutive_successes: Arc::new(AtomicU32::new(0)),
total_requests: Arc::new(AtomicU32::new(0)),
failed_requests: Arc::new(AtomicU32::new(0)),
last_opened_at: Arc::new(RwLock::new(None)),
config: Arc::new(RwLock::new(config)),
half_open_requests: Arc::new(AtomicU32::new(0)),
}
}
/// 更新熔断器配置(热更新,不重置状态)
pub async fn update_config(&self, new_config: CircuitBreakerConfig) {
*self.config.write().await = new_config;
}
/// 判断当前 Provider 是否“可被纳入候选链路”
///
/// 这个方法不会占用 HalfOpen 探测名额,仅用于路由选择阶段的“可用性判断”:
/// - Closed / HalfOpen:可用(返回 true
/// - Open:若超时到达则切到 HalfOpen 并返回 true,否则返回 false
///
/// 注意:真正发起请求前仍需调用 `allow_request()` 来获取 HalfOpen 探测名额,
/// 并在请求结束后通过 `record_success()` / `record_failure()` 释放。
pub async fn is_available(&self) -> bool {
let state = *self.state.read().await;
let config = self.config.read().await;
match state {
CircuitState::Closed | CircuitState::HalfOpen => true,
CircuitState::Open => {
if let Some(opened_at) = *self.last_opened_at.read().await {
if opened_at.elapsed().as_secs() >= config.timeout_seconds {
drop(config); // 释放读锁再转换状态
log::info!(
"[{}] 熔断器 Open → HalfOpen (超时恢复)",
log_cb::OPEN_TO_HALF_OPEN
);
self.transition_to_half_open().await;
return true;
}
}
false
}
}
}
/// 检查是否允许请求通过
pub async fn allow_request(&self) -> AllowResult {
let state = *self.state.read().await;
match state {
CircuitState::Closed => AllowResult {
allowed: true,
used_half_open_permit: false,
},
CircuitState::Open => {
let config = self.config.read().await;
// 检查是否应该尝试半开
if let Some(opened_at) = *self.last_opened_at.read().await {
if opened_at.elapsed().as_secs() >= config.timeout_seconds {
drop(config); // 释放读锁再转换状态
log::info!(
"[{}] 熔断器 Open → HalfOpen (超时恢复)",
log_cb::OPEN_TO_HALF_OPEN
);
self.transition_to_half_open().await;
// 转换后按当前状态决定是否需要获取 HalfOpen 探测名额
let current_state = *self.state.read().await;
return match current_state {
CircuitState::Closed => AllowResult {
allowed: true,
used_half_open_permit: false,
},
CircuitState::HalfOpen => self.allow_half_open_probe(),
CircuitState::Open => AllowResult {
allowed: false,
used_half_open_permit: false,
},
};
}
}
AllowResult {
allowed: false,
used_half_open_permit: false,
}
}
CircuitState::HalfOpen => self.allow_half_open_probe(),
}
}
/// 记录成功
pub async fn record_success(&self, used_half_open_permit: bool) {
let state = *self.state.read().await;
let config = self.config.read().await;
if used_half_open_permit {
self.release_half_open_permit();
}
// 重置失败计数
self.consecutive_failures.store(0, Ordering::SeqCst);
self.total_requests.fetch_add(1, Ordering::SeqCst);
if state == CircuitState::HalfOpen {
let successes = self.consecutive_successes.fetch_add(1, Ordering::SeqCst) + 1;
if successes >= config.success_threshold {
drop(config); // 释放读锁再转换状态
log::info!(
"[{}] 熔断器 HalfOpen → Closed (恢复正常)",
log_cb::HALF_OPEN_TO_CLOSED
);
self.transition_to_closed().await;
}
}
}
/// 记录失败
pub async fn record_failure(&self, used_half_open_permit: bool) {
let state = *self.state.read().await;
let config = self.config.read().await;
if used_half_open_permit {
self.release_half_open_permit();
}
// 更新计数器
let failures = self.consecutive_failures.fetch_add(1, Ordering::SeqCst) + 1;
self.total_requests.fetch_add(1, Ordering::SeqCst);
self.failed_requests.fetch_add(1, Ordering::SeqCst);
// 重置成功计数
self.consecutive_successes.store(0, Ordering::SeqCst);
// 检查是否应该打开熔断器
match state {
CircuitState::HalfOpen => {
// HalfOpen 状态下失败,立即转为 Open
log::warn!(
"[{}] 熔断器 HalfOpen 探测失败 → Open",
log_cb::HALF_OPEN_PROBE_FAILED
);
drop(config);
self.transition_to_open().await;
}
CircuitState::Closed => {
// 检查连续失败次数
if failures >= config.failure_threshold {
log::warn!(
"[{}] 熔断器触发: 连续失败 {failures} 次 → Open",
log_cb::TRIGGERED_FAILURES
);
drop(config); // 释放读锁再转换状态
self.transition_to_open().await;
} else {
// 检查错误率
let total = self.total_requests.load(Ordering::SeqCst);
let failed = self.failed_requests.load(Ordering::SeqCst);
if total >= config.min_requests {
let error_rate = failed as f64 / total as f64;
if error_rate >= config.error_rate_threshold {
log::warn!(
"[{}] 熔断器触发: 错误率 {:.1}% → Open",
log_cb::TRIGGERED_ERROR_RATE,
error_rate * 100.0
);
drop(config); // 释放读锁再转换状态
self.transition_to_open().await;
}
}
}
}
_ => {}
}
}
/// 获取当前状态
#[allow(dead_code)]
pub async fn get_state(&self) -> CircuitState {
*self.state.read().await
}
/// 获取统计信息
#[allow(dead_code)]
pub async fn get_stats(&self) -> CircuitBreakerStats {
CircuitBreakerStats {
state: *self.state.read().await,
consecutive_failures: self.consecutive_failures.load(Ordering::SeqCst),
consecutive_successes: self.consecutive_successes.load(Ordering::SeqCst),
total_requests: self.total_requests.load(Ordering::SeqCst),
failed_requests: self.failed_requests.load(Ordering::SeqCst),
}
}
/// 重置熔断器(手动恢复)
#[allow(dead_code)]
pub async fn reset(&self) {
log::info!("[{}] 熔断器手动重置 → Closed", log_cb::MANUAL_RESET);
self.transition_to_closed().await;
}
fn allow_half_open_probe(&self) -> AllowResult {
// 半开状态限流:只允许有限请求通过进行探测
let max_half_open_requests = 1u32;
let current = self.half_open_requests.fetch_add(1, Ordering::SeqCst);
if current < max_half_open_requests {
AllowResult {
allowed: true,
used_half_open_permit: true,
}
} else {
// 超过限额,回退计数,拒绝请求
self.half_open_requests.fetch_sub(1, Ordering::SeqCst);
AllowResult {
allowed: false,
used_half_open_permit: false,
}
}
}
/// 仅释放 HalfOpen permit,不影响健康统计
///
/// 用于整流器等场景:请求结果不应计入 Provider 健康度,
/// 但仍需释放占用的探测名额,避免 HalfOpen 状态卡死
pub fn release_half_open_permit(&self) {
let mut current = self.half_open_requests.load(Ordering::SeqCst);
loop {
if current == 0 {
return;
}
match self.half_open_requests.compare_exchange(
current,
current - 1,
Ordering::SeqCst,
Ordering::SeqCst,
) {
Ok(_) => return,
Err(actual) => current = actual,
}
}
}
/// 转换到打开状态
async fn transition_to_open(&self) {
*self.state.write().await = CircuitState::Open;
*self.last_opened_at.write().await = Some(Instant::now());
self.consecutive_failures.store(0, Ordering::SeqCst);
self.consecutive_successes.store(0, Ordering::SeqCst);
}
/// 转换到半开状态
async fn transition_to_half_open(&self) {
let mut state = self.state.write().await;
if *state != CircuitState::Open {
return;
}
*state = CircuitState::HalfOpen;
self.consecutive_successes.store(0, Ordering::SeqCst);
// 重置半开状态的请求限流计数
self.half_open_requests.store(0, Ordering::SeqCst);
}
/// 转换到关闭状态
async fn transition_to_closed(&self) {
*self.state.write().await = CircuitState::Closed;
self.consecutive_failures.store(0, Ordering::SeqCst);
self.consecutive_successes.store(0, Ordering::SeqCst);
// 重置计数器
self.total_requests.store(0, Ordering::SeqCst);
self.failed_requests.store(0, Ordering::SeqCst);
}
}
/// 熔断器统计信息
#[derive(Debug, Clone, Serialize, Deserialize)]
#[serde(rename_all = "camelCase")]
pub struct CircuitBreakerStats {
pub state: CircuitState,
pub consecutive_failures: u32,
pub consecutive_successes: u32,
pub total_requests: u32,
pub failed_requests: u32,
}
#[cfg(test)]
mod tests {
use super::*;
#[tokio::test]
async fn test_circuit_breaker_closed_to_open() {
let config = CircuitBreakerConfig {
failure_threshold: 3,
..Default::default()
};
let breaker = CircuitBreaker::new(config);
// 初始状态应该是关闭
assert_eq!(breaker.get_state().await, CircuitState::Closed);
assert!(breaker.allow_request().await.allowed);
// 记录 3 次失败
for _ in 0..3 {
breaker.record_failure(false).await;
}
// 应该转换到打开状态
assert_eq!(breaker.get_state().await, CircuitState::Open);
assert!(!breaker.allow_request().await.allowed);
}
#[tokio::test]
async fn test_circuit_breaker_half_open_to_closed() {
let config = CircuitBreakerConfig {
failure_threshold: 2,
success_threshold: 2,
..Default::default()
};
let breaker = CircuitBreaker::new(config);
// 打开熔断器
breaker.record_failure(false).await;
breaker.record_failure(false).await;
assert_eq!(breaker.get_state().await, CircuitState::Open);
// 手动转换到半开状态
breaker.transition_to_half_open().await;
assert_eq!(breaker.get_state().await, CircuitState::HalfOpen);
// 记录 2 次成功
breaker.record_success(false).await;
breaker.record_success(false).await;
// 应该转换到关闭状态
assert_eq!(breaker.get_state().await, CircuitState::Closed);
}
#[tokio::test]
async fn test_half_open_transition_does_not_reset_inflight_permit() {
let config = CircuitBreakerConfig {
timeout_seconds: 0,
..Default::default()
};
let breaker = CircuitBreaker::new(config);
// 进入 Open,然后由于 timeout_seconds=0allow_request 会立即切换到 HalfOpen 并占用探测名额
breaker.transition_to_open().await;
let first = breaker.allow_request().await;
assert!(first.allowed);
assert!(first.used_half_open_permit);
assert_eq!(breaker.get_state().await, CircuitState::HalfOpen);
// 模拟并发下的“重复 HalfOpen 转换调用”,不应重置 in-flight 计数
breaker.transition_to_half_open().await;
// 由于名额仍被占用,第二次请求应被拒绝
let second = breaker.allow_request().await;
assert!(!second.allowed);
assert!(!second.used_half_open_permit);
}
#[tokio::test]
async fn test_circuit_breaker_reset() {
let config = CircuitBreakerConfig {
failure_threshold: 2,
..Default::default()
};
let breaker = CircuitBreaker::new(config);
// 打开熔断器
breaker.record_failure(false).await;
breaker.record_failure(false).await;
assert_eq!(breaker.get_state().await, CircuitState::Open);
// 重置
breaker.reset().await;
assert_eq!(breaker.get_state().await, CircuitState::Closed);
assert!(breaker.allow_request().await.allowed);
}
}