request_rate_limiter/
limiter.rs1use std::{
4 fmt::Debug,
5 sync::{
6 atomic::{AtomicU64, Ordering},
7 Arc,
8 },
9 time::{Duration, Instant},
10};
11
12use async_trait::async_trait;
13use tokio::time::{sleep, timeout};
14
15use crate::algorithms::{RateLimitAlgorithm, RequestSample};
16
17type RequestCount = u64;
18type AtomicRequestCount = AtomicU64;
19
20#[derive(Debug)]
23pub struct Token {
24 start_time: Instant,
25}
26
27#[async_trait]
33pub trait RateLimiter: Debug + Sync {
34 async fn acquire(&self) -> Token;
36
37 async fn acquire_timeout(&self, duration: Duration) -> Option<Token>;
39
40 async fn release(&self, token: Token, outcome: Option<RequestOutcome>);
43}
44
45#[derive(Debug)]
49pub struct DefaultRateLimiter<T> {
50 algorithm: T,
51 tokens: Arc<AtomicRequestCount>,
52 last_refill: Arc<std::sync::Mutex<Instant>>,
53 requests_per_second: Arc<AtomicRequestCount>,
54 bucket_capacity: RequestCount,
55}
56
57#[derive(Debug, Clone, Copy)]
61pub struct RateLimiterState {
62 requests_per_second: RequestCount,
64 available_tokens: RequestCount,
66 bucket_capacity: RequestCount,
68}
69
70#[derive(Debug, Clone, Copy, PartialEq, Eq)]
74pub enum RequestOutcome {
75 Success,
77 Overload,
79 ClientError,
81}
82
83impl<T> DefaultRateLimiter<T>
84where
85 T: RateLimitAlgorithm,
86{
87 pub fn new(algorithm: T) -> Self {
89 let initial_rps = algorithm.requests_per_second();
90 let bucket_capacity = initial_rps; assert!(initial_rps >= 1);
93 Self {
94 algorithm,
95 tokens: Arc::new(AtomicRequestCount::new(bucket_capacity)),
96 last_refill: Arc::new(std::sync::Mutex::new(Instant::now())),
97 requests_per_second: Arc::new(AtomicRequestCount::new(initial_rps)),
98 bucket_capacity,
99 }
100 }
101
102 fn refill_tokens(&self) {
103 let now = Instant::now();
104 if let Ok(mut last_refill) = self.last_refill.try_lock() {
105 let elapsed = now.duration_since(*last_refill);
106 let tokens_to_add = (elapsed.as_secs_f64()
107 * self.requests_per_second.load(Ordering::Acquire) as f64)
108 as u64;
109
110 if tokens_to_add > 0 {
111 let current_tokens = self.tokens.load(Ordering::Acquire);
112 let new_tokens = (current_tokens + tokens_to_add).min(self.bucket_capacity);
113 self.tokens.store(new_tokens, Ordering::SeqCst);
114 *last_refill = now;
115 }
116 }
117 }
118
119 pub fn state(&self) -> RateLimiterState {
121 self.refill_tokens();
122 RateLimiterState {
123 requests_per_second: self.requests_per_second.load(Ordering::Acquire),
124 available_tokens: self.tokens.load(Ordering::Acquire),
125 bucket_capacity: self.bucket_capacity,
126 }
127 }
128}
129
130#[async_trait]
131impl<T> RateLimiter for DefaultRateLimiter<T>
132where
133 T: RateLimitAlgorithm + Sync + Debug,
134{
135 async fn acquire(&self) -> Token {
136 loop {
137 self.refill_tokens();
138
139 let current_tokens = self.tokens.load(Ordering::Acquire);
141 if current_tokens > 0 {
142 match self.tokens.compare_exchange_weak(
143 current_tokens,
144 current_tokens - 1,
145 Ordering::Release,
146 Ordering::Relaxed,
147 ) {
148 Ok(_) => {
149 return Token {
150 start_time: Instant::now(),
151 };
152 }
153 Err(_) => continue, }
155 } else {
156 sleep(Duration::from_millis(1)).await;
158 }
159 }
160 }
161
162 async fn acquire_timeout(&self, duration: Duration) -> Option<Token> {
163 timeout(duration, self.acquire()).await.ok()
164 }
165
166 async fn release(&self, token: Token, outcome: Option<RequestOutcome>) {
167 let response_time = token.start_time.elapsed();
168
169 if let Some(outcome) = outcome {
170 let current_rps = self.requests_per_second.load(Ordering::Acquire);
171 let sample = RequestSample::new(response_time, current_rps, outcome);
172
173 let new_rps = self.algorithm.update(sample).await;
174 self.requests_per_second.store(new_rps, Ordering::Release);
175 }
176 }
177}
178
179impl RateLimiterState {
180 pub fn requests_per_second(&self) -> RequestCount {
182 self.requests_per_second
183 }
184 pub fn available_tokens(&self) -> RequestCount {
186 self.available_tokens
187 }
188 pub fn bucket_capacity(&self) -> RequestCount {
190 self.bucket_capacity
191 }
192}
193
194#[cfg(test)]
195mod tests {
196 use crate::{
197 algorithms::Fixed,
198 limiter::{DefaultRateLimiter, RateLimiter, RequestOutcome},
199 };
200 use std::time::Duration;
201
202 #[tokio::test]
203 async fn rate_limiter_allows_requests_within_limit() {
204 let limiter = DefaultRateLimiter::new(Fixed::new(10));
205
206 let token = limiter.acquire().await;
208
209 limiter.release(token, Some(RequestOutcome::Success)).await;
211 }
212
213 #[tokio::test]
214 async fn rate_limiter_waits_for_tokens() {
215 use std::sync::Arc;
216
217 let limiter = Arc::new(DefaultRateLimiter::new(Fixed::new(1)));
218
219 let token1 = limiter.acquire().await;
221
222 let limiter_clone = Arc::clone(&limiter);
224 let acquire_task = tokio::spawn(async move { limiter_clone.acquire().await });
225
226 tokio::time::sleep(Duration::from_millis(10)).await;
228
229 limiter.release(token1, Some(RequestOutcome::Success)).await;
231
232 let token2 = acquire_task.await.unwrap();
234 limiter.release(token2, Some(RequestOutcome::Success)).await;
235 }
236}