Limitação de Taxa, Novas Tentativas e Limitadores de Tempo
Combine limitadores de taxa, novas tentativas e limites de tempo para controlar a carga e conter falhas em cascata.
Limitação de Taxa, Novas Tentativas e Limitadores de Tempo é uma aula grátis de Spring Boot 4 Complete Guide no CoddyKit. Esta é a aula 3 de 4. Você pode ler a aula completa abaixo gratuitamente — depois pratica ao vivo no navegador com um editor de código integrado e um tutor de IA 24/7. Faz parte do caminho de aprendizado de Spring Boot 4 Complete Guide, e seu progresso é sincronizado entre a web e o app CoddyKit. O curso de Spring Boot 4 Complete Guide inclui 4 aulas no total.
Partes desta aula ainda não foram traduzidas e aparecem em inglês.
Three Knobs for Shaping Load
Circuit breakers stop calling a dead dependency, but they are only one tool in the resilience toolbox. To shape inbound load and contain cascading failures you combine three more Resilience4j primitives:
- RateLimiter — caps how many calls per time window are allowed to start. Excess callers wait or are rejected.
- Retry — re-invokes a failed call a bounded number of times, ideally with backoff, to ride out transient errors.
- TimeLimiter — caps how long a single call may run before it is cancelled, freeing the thread and bounding tail latency.
Used together they protect both you (don't overload your own service) and your downstream (don't hammer a struggling dependency).
Adding Resilience4j to Spring Boot 4
Spring Boot 4 integrates Resilience4j through the Spring Cloud Circuit Breaker / resilience4j-spring-boot3 starter, which exposes annotation-driven aspects for every primitive.
Add the starter and AOP support so the annotations are woven in:
resilience4j-spring-boot3bringsRateLimiter,Retry,TimeLimiter,CircuitBreaker, andBulkheadaspects.spring-boot-starter-aopis required — the annotations are implemented as AOP advice.- Metrics flow into Micrometer automatically when Actuator is present.
<dependencies>
<dependency>
<groupId>io.github.resilience4j</groupId>
<artifactId>resilience4j-spring-boot3</artifactId>
</dependency>
<dependency>
<groupId>org.springframework.boot</groupId>
<artifactId>spring-boot-starter-aop</artifactId>
</dependency>
<dependency>
<groupId>org.springframework.boot</groupId>
<artifactId>spring-boot-starter-actuator</artifactId>
</dependency>
</dependencies>RateLimiter: Capping Calls Per Window
A RateLimiter divides time into refresh periods. Each period grants a fixed number of permits. A caller that finds no permit available waits up to timeoutDuration; if still none, it fails fast with RequestNotPermitted.
Configure instances in application.yml under resilience4j.ratelimiter:
limitForPeriod— permits granted each refresh period.limitRefreshPeriod— how often the permit count resets.timeoutDuration— how long a caller blocks waiting for a permit before being rejected.
resilience4j:
ratelimiter:
instances:
pricingApi:
limitForPeriod: 50
limitRefreshPeriod: 1s
timeoutDuration: 200ms
registerHealthIndicator: trueApplying @RateLimiter
Annotate the method that calls the protected resource. The name must match the YAML instance. When the limit is exceeded and no permit frees up within timeoutDuration, Resilience4j throws RequestNotPermitted — route it to a fallback so clients get a graceful 429 instead of a stack trace.
Key decision: a RateLimiter throttles your outbound calls. It does not slow down inbound HTTP traffic by itself — pair it with a fallback that signals back-pressure.
@Service
public class PricingClient {
private final RestClient restClient;
public PricingClient(RestClient restClient) {
this.restClient = restClient;
}
@RateLimiter(name = "pricingApi", fallbackMethod = "throttled")
public Quote fetchQuote(String symbol) {
return restClient.get()
.uri("/quotes/{symbol}", symbol)
.retrieve()
.body(Quote.class);
}
private Quote throttled(String symbol, RequestNotPermitted ex) {
throw new ResponseStatusException(HttpStatus.TOO_MANY_REQUESTS,
"Pricing rate limit exceeded, retry shortly");
}
}Retry: Riding Out Transient Failures
A Retry re-invokes a failed call up to maxAttempts times. It is only correct for transient faults — connection resets, 503s, brief timeouts — and only safe on idempotent operations. Retrying a non-idempotent POST can double-charge a customer.
Use exponential backoff to avoid synchronized retry storms, and be explicit about which exceptions retry vs. which abort immediately:
retryExceptions— only these trigger a retry.ignoreExceptions— these abort instantly (e.g. 4xx client errors).enableExponentialBackoffwith a multiplier spreads attempts out.
resilience4j:
retry:
instances:
pricingApi:
maxAttempts: 3
waitDuration: 200ms
enableExponentialBackoff: true
exponentialBackoffMultiplier: 2
retryExceptions:
- java.io.IOException
- org.springframework.web.client.HttpServerErrorException
ignoreExceptions:
- org.springframework.web.client.HttpClientErrorExceptionExponential Backoff with Jitter, Conceptually
Exponential backoff multiplies the wait after each attempt: 200ms, 400ms, 800ms... But if thousands of clients fail at the same instant, they all back off in lock-step and re-converge — a retry storm. Adding jitter (randomized wait) de-synchronizes them.
This standalone program models the wait schedule so you can see the spread of backoff-with-jitter delays an online judge can run with no framework:
import java.util.concurrent.ThreadLocalRandom;
public class BackoffDemo {
static long backoffWithJitter(int attempt, long baseMillis, double multiplier) {
double exp = baseMillis * Math.pow(multiplier, attempt - 1);
long jitter = ThreadLocalRandom.current().nextLong((long) (exp / 2) + 1);
return (long) (exp / 2) + jitter; // half fixed, half random
}
public static void main(String[] args) {
for (int attempt = 1; attempt <= 4; attempt++) {
long wait = backoffWithJitter(attempt, 200, 2.0);
System.out.println("Attempt " + attempt + " -> wait ~" + wait + "ms");
}
}
}Applying @Retry
Stack @Retry on the same method. Order matters when annotations combine: Resilience4j applies aspects in the order Retry → CircuitBreaker → RateLimiter → TimeLimiter → Bulkhead (outermost to innermost), so a retry wraps the rate-limited call and each attempt re-acquires a permit.
The fallback receives the final exception after all attempts are exhausted:
@Service
public class PricingClient {
@Retry(name = "pricingApi")
@RateLimiter(name = "pricingApi", fallbackMethod = "throttled")
public Quote fetchQuote(String symbol) {
return restClient.get()
.uri("/quotes/{symbol}", symbol)
.retrieve()
.body(Quote.class);
}
private Quote throttled(String symbol, Throwable ex) {
// Returns a last-known-good or default after retries + limit exhausted
return Quote.unavailable(symbol);
}
}TimeLimiter: Bounding Tail Latency
A TimeLimiter caps how long a single asynchronous call may run. It only works with futures — the method must return CompletableFuture (or another supported async type) so Resilience4j can cancel it when the deadline passes.
This is the antidote to slow dependencies: a retry handles failures, but a call that simply hangs for 30 seconds will exhaust your thread pool. The TimeLimiter converts a hang into a fast TimeoutException.
timeoutDuration— the per-call deadline.cancelRunningFuture— interrupt the running task on timeout to free its thread.
resilience4j:
timelimiter:
instances:
pricingApi:
timeoutDuration: 2s
cancelRunningFuture: trueApplying @TimeLimiter on an Async Method
@TimeLimiter requires the method to return a CompletableFuture. Without an async return type the aspect silently does nothing. Combine it with a CircuitBreaker so repeated timeouts eventually open the breaker and stop wasting effort.
Note the fallback also returns a CompletableFuture — its signature must match the protected method's return type:
@Service
public class PricingClient {
@TimeLimiter(name = "pricingApi")
@CircuitBreaker(name = "pricingApi", fallbackMethod = "timedOut")
public CompletableFuture<Quote> fetchQuoteAsync(String symbol) {
return CompletableFuture.supplyAsync(() ->
restClient.get()
.uri("/quotes/{symbol}", symbol)
.retrieve()
.body(Quote.class));
}
private CompletableFuture<Quote> timedOut(String symbol, Throwable ex) {
return CompletableFuture.completedFuture(Quote.unavailable(symbol));
}
}Ordering the Three Together Correctly
When you stack all three, the aspect order determines behavior. Resilience4j's documented default decoration order, from outer to inner, is:
Retry( CircuitBreaker( RateLimiter( TimeLimiter( Bulkhead( call ) ) ) ) )
- Retry outermost so a retry re-runs the whole protected chain, re-checking the circuit breaker and re-acquiring a rate-limit permit each attempt.
- TimeLimiter inner so each individual attempt has its own deadline — a retry of a timed-out call gets a fresh clock.
- Putting Retry inside the RateLimiter would let one logical call consume several permits per attempt — usually wrong, and it can starve other callers.
With annotations you don't manually order them; Resilience4j enforces this order via aspect precedence.
Observing and Tuning via Actuator
You cannot tune what you cannot see. With Actuator on the classpath, every instance publishes Micrometer metrics and health indicators. Expose them and watch the key signals:
resilience4j_ratelimiter_available_permissions— if this sits at zero, you are throttling real traffic; raise the limit or scale out.resilience4j_retry_callstaggedkind=successful_with_retryvsfailed_with_retry— high failed-with-retry means retries aren't helping; the fault isn't transient.resilience4j_timelimiter_callstaggedkind=timeout— rising timeouts signal a degrading dependency before the breaker even opens.
management:
endpoints:
web:
exposure:
include: health, metrics, ratelimiters, retries
metrics:
tags:
application: tracing-service
health:
ratelimiters:
enabled: trueQuick Check: Choosing the Right Primitive
A downstream pricing API occasionally hangs for 30+ seconds instead of returning an error, and these hangs are exhausting your service's request threads. Which Resilience4j primitive most directly addresses this specific failure mode?
Recap: Shaping Load and Containing Failure
You combined three complementary primitives to shape load and contain cascading failures:
- RateLimiter caps calls per window, rejecting excess with
RequestNotPermittedso you never overload yourself or a downstream. - Retry rides out transient faults on idempotent calls, using exponential backoff plus jitter to avoid retry storms.
- TimeLimiter bounds tail latency on async (
CompletableFuture) calls, turning hangs into fast timeouts that free threads.
Stack them via annotations; Resilience4j enforces the order Retry → CircuitBreaker → RateLimiter → TimeLimiter → Bulkhead so a retry re-runs the whole protected chain while each attempt keeps its own deadline. Always wire fallbacks for graceful degradation and watch Actuator/Micrometer metrics to tune the limits against real traffic.
Perguntas Frequentes
A aula “Limitação de Taxa, Novas Tentativas e Limitadores de Tempo” é grátis?
Sim — o texto completo de “Limitação de Taxa, Novas Tentativas e Limitadores de Tempo” é grátis para ler aqui na web. Para praticá-la interativamente (um editor de código integrado e um tutor de IA 24/7) e desbloquear o restante do curso de Spring Boot 4 Complete Guide, atualize para CoddyKit PRO. O curso de Spring Boot 4 Complete Guide inclui 4 aulas no total.
O que vou aprender em “Limitação de Taxa, Novas Tentativas e Limitadores de Tempo”?
Combine limitadores de taxa, novas tentativas e limites de tempo para controlar a carga e conter falhas em cascata. Você pratica Spring Boot 4 Complete Guide com código prático que executa diretamente no navegador, e um tutor de IA 24/7 responde suas dúvidas enquanto trabalha na aula.
Preciso ter experiência prévia para começar Spring Boot 4 Complete Guide?
Nenhuma experiência prévia é necessária. Spring Boot 4 Complete Guide no CoddyKit é estruturado para alunos iniciantes até avançados, então você pode começar aqui ou desde o início e aprender no seu ritmo. Esta é a aula 3 de 4.
Quanto tempo leva a aula “Limitação de Taxa, Novas Tentativas e Limitadores de Tempo”?
A maioria das aulas CoddyKit leva cerca de 5–10 minutos. Cada uma é compacta e interativa, então você faz progresso constante e retoma exatamente de onde parou entre web e app.
Posso escrever e executar código nesta aula de Spring Boot 4 Complete Guide?
Sim. Cada aula de Spring Boot 4 Complete Guide inclui um editor de código integrado, então você escreve e executa código real direto no navegador e recebe feedback de IA instantaneamente — nenhuma configuração local necessária.
Todas as aulas deste curso
- Propagação de Contexto e Instrumentação de Intervalos
- Disjuntores e Isolamento por Compartimentos
- Limitação de Taxa, Novas Tentativas e Limitadores de Tempo
- Correlação de Registros, Métricas e Rastreamentos