1use async_trait::async_trait;
17use log::{debug, info};
18use moka::future::Cache;
19use rand::distributions::{Distribution, Uniform};
20use std::hash::Hash;
21use std::sync::Arc;
22use std::time::Duration;
23use tokio::sync::Mutex;
24use tokio::time::{Instant, sleep};
25
26use governor::clock::DefaultClock;
27use governor::state::{InMemoryState, NotKeyed};
28use governor::{Quota, RateLimiter as GovernorRateLimiter};
29use std::num::NonZeroU32;
30
31use crate::middleware::{Middleware, MiddlewareAction};
32use spider_util::constants::{
33 MIDDLEWARE_CACHE_CAPACITY, MIDDLEWARE_CACHE_TTL_SECS, RATE_LIMIT_INITIAL_DELAY_MS,
34 RATE_LIMIT_MAX_DELAY_MS, RATE_LIMIT_MAX_JITTER_MS, RATE_LIMIT_MIN_DELAY_MS,
35};
36use spider_util::error::SpiderError;
37use spider_util::request::Request;
38use spider_util::response::Response;
39
40#[derive(Clone, Copy, Debug, PartialEq, Eq, Hash)]
42pub enum Scope {
43 Global,
45 Domain,
47}
48
49#[async_trait]
51pub trait RateLimiter: Send + Sync {
52 async fn acquire(&self);
54 async fn adjust(&self, response: &Response);
56 async fn current_delay(&self) -> Duration;
58}
59
60const INITIAL_DELAY: Duration = Duration::from_millis(RATE_LIMIT_INITIAL_DELAY_MS);
61const MIN_DELAY: Duration = Duration::from_millis(RATE_LIMIT_MIN_DELAY_MS);
62const MAX_DELAY: Duration = Duration::from_millis(RATE_LIMIT_MAX_DELAY_MS);
63
64const ERROR_PENALTY_MULTIPLIER: f64 = 1.5;
65const SUCCESS_DECAY_MULTIPLIER: f64 = 0.95;
66const FORBIDDEN_PENALTY_MULTIPLIER: f64 = 1.2;
67
68struct AdaptiveState {
69 delay: Duration,
70 next_allowed_at: Instant,
71}
72
73pub struct AdaptiveLimiter {
75 state: Mutex<AdaptiveState>,
76 jitter: bool,
77}
78
79impl AdaptiveLimiter {
80 pub fn new(initial_delay: Duration, jitter: bool) -> Self {
82 Self {
83 state: Mutex::new(AdaptiveState {
84 delay: initial_delay,
85 next_allowed_at: Instant::now(),
86 }),
87 jitter,
88 }
89 }
90
91 fn apply_jitter(&self, delay: Duration) -> Duration {
92 if !self.jitter || delay.is_zero() {
93 return delay;
94 }
95
96 let max_jitter = Duration::from_millis(RATE_LIMIT_MAX_JITTER_MS);
97 let jitter_window = delay.mul_f64(0.25).min(max_jitter);
98
99 let low = delay.saturating_sub(jitter_window);
100 let high = delay + jitter_window;
101
102 let mut rng = rand::thread_rng();
103 let uniform = Uniform::new_inclusive(low, high);
104 uniform.sample(&mut rng)
105 }
106}
107
108#[async_trait]
109impl RateLimiter for AdaptiveLimiter {
110 async fn acquire(&self) {
111 let sleep_duration = {
112 let mut state = self.state.lock().await;
113 let now = Instant::now();
114
115 let delay = state.delay;
116 if now < state.next_allowed_at {
117 let wait = state.next_allowed_at - now;
118 state.next_allowed_at += delay;
119 wait
120 } else {
121 state.next_allowed_at = now + delay;
122 Duration::ZERO
123 }
124 };
125
126 let sleep_duration = self.apply_jitter(sleep_duration);
127 if !sleep_duration.is_zero() {
128 debug!("Rate limiting: sleeping for {:?}", sleep_duration);
129 sleep(sleep_duration).await;
130 }
131 }
132
133 async fn adjust(&self, response: &Response) {
134 let mut state = self.state.lock().await;
135
136 let old_delay = state.delay;
137 let status = response.status.as_u16();
138 let new_delay = match status {
139 200..=399 => state.delay.mul_f64(SUCCESS_DECAY_MULTIPLIER),
140 403 => state.delay.mul_f64(FORBIDDEN_PENALTY_MULTIPLIER),
141 429 | 500..=599 => state.delay.mul_f64(ERROR_PENALTY_MULTIPLIER),
142 _ => state.delay,
143 };
144
145 state.delay = new_delay.clamp(MIN_DELAY, MAX_DELAY);
146
147 if old_delay != state.delay {
148 debug!(
149 "Adjusting delay for status {}: {:?} -> {:?}",
150 status, old_delay, state.delay
151 );
152 }
153 }
154
155 async fn current_delay(&self) -> Duration {
156 self.state.lock().await.delay
157 }
158}
159
160pub struct TokenBucketLimiter {
162 limiter: Arc<GovernorRateLimiter<NotKeyed, InMemoryState, DefaultClock>>,
163}
164
165impl TokenBucketLimiter {
166 pub fn new(requests_per_second: u32) -> Self {
172 let quota = Quota::per_second(
173 NonZeroU32::new(requests_per_second).expect("requests_per_second must be non-zero"),
174 );
175 TokenBucketLimiter {
176 limiter: Arc::new(GovernorRateLimiter::direct_with_clock(
177 quota,
178 &DefaultClock::default(),
179 )),
180 }
181 }
182}
183
184#[async_trait]
185impl RateLimiter for TokenBucketLimiter {
186 async fn acquire(&self) {
187 self.limiter.until_ready().await;
188 }
189
190 async fn adjust(&self, _response: &Response) {}
192
193 async fn current_delay(&self) -> Duration {
194 Duration::ZERO
195 }
196}
197
198pub struct RateLimitMiddleware {
200 scope: Scope,
201 limiters: Cache<String, Arc<dyn RateLimiter>>,
202 limiter_factory: Arc<dyn Fn() -> Arc<dyn RateLimiter> + Send + Sync>,
203}
204
205impl RateLimitMiddleware {
206 pub fn builder() -> RateLimitMiddlewareBuilder {
208 RateLimitMiddlewareBuilder::default()
209 }
210
211 fn scope_key(&self, request: &Request) -> String {
212 match self.scope {
213 Scope::Global => "global".to_string(),
214 Scope::Domain => spider_util::util::normalize_origin(request),
215 }
216 }
217}
218
219#[async_trait]
220impl<C: Send + Sync> Middleware<C> for RateLimitMiddleware {
221 fn name(&self) -> &str {
222 "RateLimitMiddleware"
223 }
224
225 async fn process_request(
226 &mut self,
227 _client: &C,
228 request: Request,
229 ) -> Result<MiddlewareAction<Request>, SpiderError> {
230 let key = self.scope_key(&request);
231
232 let limiter = self
233 .limiters
234 .get_with(key.clone(), async { (self.limiter_factory)() })
235 .await;
236
237 let current_delay = limiter.current_delay().await;
238 debug!(
239 "Acquiring lock for key '{}' (delay: {:?})",
240 key, current_delay
241 );
242
243 limiter.acquire().await;
244 Ok(MiddlewareAction::Continue(request))
245 }
246
247 async fn process_response(
248 &mut self,
249 response: Response,
250 ) -> Result<MiddlewareAction<Response>, SpiderError> {
251 let key = self.scope_key(&response.request_from_response());
252
253 if let Some(limiter) = self.limiters.get(&key).await {
254 let old_delay = limiter.current_delay().await;
255 limiter.adjust(&response).await;
256 let new_delay = limiter.current_delay().await;
257 if old_delay != new_delay {
258 debug!(
259 "Adjusted rate limit for key '{}': {:?} -> {:?}",
260 key, old_delay, new_delay
261 );
262 }
263 }
264
265 Ok(MiddlewareAction::Continue(response))
266 }
267}
268
269pub struct RateLimitMiddlewareBuilder {
271 scope: Scope,
272 cache_ttl: Duration,
273 cache_capacity: u64,
274 limiter_factory: Box<dyn Fn() -> Arc<dyn RateLimiter> + Send + Sync>,
275}
276
277impl Default for RateLimitMiddlewareBuilder {
278 fn default() -> Self {
279 Self {
280 scope: Scope::Domain,
281 cache_ttl: Duration::from_secs(MIDDLEWARE_CACHE_TTL_SECS),
282 cache_capacity: MIDDLEWARE_CACHE_CAPACITY,
283 limiter_factory: Box::new(|| Arc::new(AdaptiveLimiter::new(INITIAL_DELAY, true))),
284 }
285 }
286}
287
288impl RateLimitMiddlewareBuilder {
289 pub fn scope(mut self, scope: Scope) -> Self {
291 self.scope = scope;
292 self
293 }
294
295 pub fn use_token_bucket_limiter(mut self, requests_per_second: u32) -> Self {
297 self.limiter_factory =
298 Box::new(move || Arc::new(TokenBucketLimiter::new(requests_per_second)));
299 self
300 }
301
302 pub fn limiter(mut self, limiter: impl RateLimiter + 'static) -> Self {
304 let arc = Arc::new(limiter);
305 self.limiter_factory = Box::new(move || arc.clone());
306 self
307 }
308
309 pub fn limiter_factory(
311 mut self,
312 factory: impl Fn() -> Arc<dyn RateLimiter> + Send + Sync + 'static,
313 ) -> Self {
314 self.limiter_factory = Box::new(factory);
315 self
316 }
317
318 pub fn build(self) -> RateLimitMiddleware {
320 info!(
321 "Initializing RateLimitMiddleware with config: scope={:?}, cache_ttl={:?}, cache_capacity={}",
322 self.scope, self.cache_ttl, self.cache_capacity
323 );
324 RateLimitMiddleware {
325 scope: self.scope,
326 limiters: Cache::builder()
327 .time_to_idle(self.cache_ttl)
328 .max_capacity(self.cache_capacity)
329 .build(),
330 limiter_factory: self.limiter_factory.into(),
331 }
332 }
333}