Traitement AOT et pipeline de compilation natif
Découvrez le moteur Spring de traitement anticipé et compilez des images natives avec la chaîne d’outils GraalVM.
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Certaines parties de cette leçon n'ont pas encore été traduites et s'affichent en anglais.
Why Native Images?
A traditional Spring Boot app runs on the JVM: bytecode is loaded, classes are verified, and the JIT compiler warms up over time. That gives great peak throughput but pays a cost at startup and in memory footprint.
GraalVM native images flip the model. Instead of shipping bytecode plus a JVM, you produce a single, self-contained executable where almost all the work normally done at runtime is moved to build time.
- Startup drops from seconds to tens of milliseconds.
- Memory footprint shrinks dramatically (no JIT, no class metadata bloat).
- Trade-off: longer, heavier builds and a closed-world assumption.
This makes native images ideal for serverless, CLIs, and high-density containers.
The Closed-World Assumption
GraalVM's native compiler (native-image) performs static analysis of your entire program and only includes code it can prove is reachable. Everything must be known at build time — this is the closed-world assumption.
The features that make Spring flexible at runtime are exactly the ones that break under closed-world analysis:
- Reflection — calling methods/fields discovered by name at runtime.
- Dynamic proxies — Spring AOP,
@Transactional, repository interfaces. - Resource loading — files looked up by path at runtime.
- Serialization and runtime class generation.
Spring's AOT engine exists to bridge this gap: it analyzes your application ahead of time and emits the metadata and code GraalVM needs.
What Spring AOT Actually Does
When you build for native (or just enable AOT), Spring runs an ahead-of-time processing phase that transforms your dynamic application context into static, pre-computed form.
Concretely, Spring AOT generates:
- Bean definition code — instead of scanning and parsing at runtime, Spring emits Java source (
*__BeanDefinitions.java) that registers beans programmatically. - An
ApplicationContextInitializerthat wires the context without classpath scanning. - GraalVM reachability metadata — JSON hints for reflection, resources, proxies, and serialization.
The runtime context becomes effectively frozen: the bean set is fixed at build time. You cannot add beans dynamically after AOT processing.
Enabling AOT in the Build
Spring AOT is driven by build plugins. With Maven, the spring-boot-maven-plugin exposes a process-aot goal; the native profile wires it together with GraalVM's native-maven-plugin.
The key dependency for native builds is the GraalVM toolchain plugin. Here is a typical Maven setup that activates AOT and native compilation.
<plugin>
<groupId>org.graalvm.buildtools</groupId>
<artifactId>native-maven-plugin</artifactId>
</plugin>
<plugin>
<groupId>org.springframework.boot</groupId>
<artifactId>spring-boot-maven-plugin</artifactId>
<executions>
<execution>
<id>process-aot</id>
<goals>
<goal>process-aot</goal>
</goals>
</execution>
</executions>
</plugin>The Native Build Pipeline, Step by Step
Building a native image is a multi-stage pipeline. Understanding the order helps you locate failures.
- 1. Compile — normal
javaccompilation of your sources. - 2. AOT processing — Spring runs
process-aot, generating bean-definition sources and reachability metadata undertarget/spring-aot. - 3. AOT compile — the generated sources are compiled alongside your code.
- 4.
native-image— GraalVM performs static analysis (the closed-world step) and emits a native executable.
Trigger it with Maven via the native profile:
# Produce the native executable in target/
./mvnw -Pnative native:compile
# Or build a native container image with buildpacks
./mvnw -Pnative spring-boot:build-imageRuntime Hints: The Programmatic API
Spring AOT detects most reflection automatically, but for your own dynamic code (e.g., a class you load reflectively), you must declare hints. The idiomatic way is a RuntimeHintsRegistrar.
You register the registrar with @ImportRuntimeHints on a configuration or component. At AOT time Spring invokes it and folds your hints into the GraalVM metadata.
import org.springframework.aot.hint.MemberCategory;
import org.springframework.aot.hint.RuntimeHints;
import org.springframework.aot.hint.RuntimeHintsRegistrar;
public class MyRuntimeHints implements RuntimeHintsRegistrar {
@Override
public void registerHints(RuntimeHints hints, ClassLoader classLoader) {
hints.reflection().registerType(
com.example.PaymentProcessor.class,
MemberCategory.INVOKE_DECLARED_CONSTRUCTORS,
MemberCategory.INVOKE_PUBLIC_METHODS);
hints.resources().registerPattern("config/*.properties");
}
}Wiring Hints into the Context
A RuntimeHintsRegistrar does nothing until Spring knows about it. Attach it with @ImportRuntimeHints so it participates in AOT processing.
This keeps native-specific knowledge close to the code that needs it, rather than in a separate JSON file you must hand-maintain.
import org.springframework.context.annotation.Configuration;
import org.springframework.context.annotation.ImportRuntimeHints;
@Configuration
@ImportRuntimeHints(MyRuntimeHints.class)
public class NativeConfig {
// Beans defined here are processed with the hints above
}The @RegisterReflectionForBinding Shortcut
The most common reason to need hints is serialization/deserialization of DTOs — Jackson reflects over your classes. Writing a full registrar for every DTO is tedious.
Spring offers @RegisterReflectionForBinding, which automatically registers the reflection metadata needed to bind (serialize/deserialize) the listed types.
import org.springframework.aot.hint.annotation.RegisterReflectionForBinding;
import org.springframework.web.bind.annotation.GetMapping;
import org.springframework.web.bind.annotation.RestController;
@RestController
@RegisterReflectionForBinding({ OrderResponse.class, OrderItem.class })
class OrderController {
@GetMapping("/orders/latest")
OrderResponse latest() {
return new OrderResponse("A-100", List.of(new OrderItem("sku-1", 2)));
}
}The GraalVM Tracing Agent
For third-party libraries that use reflection but ship no metadata, the AOT engine can't always infer the hints. The fallback is the GraalVM tracing agent.
You run your app on the JVM with the agent attached and exercise its code paths (tests, a smoke run). The agent records every reflective access, resource load, and proxy and writes them as metadata JSON.
- Output lands under
META-INF/native-image/. - It only captures paths you actually execute — incomplete test coverage means missing hints.
- Treat it as a last resort; prefer reachability metadata repos and Spring's automatic detection first.
# Attach the tracing agent while running tests on the JVM
java -agentlib:native-image-agent=config-output-dir=src/main/resources/META-INF/native-image \
-jar target/app.jarBuild-Time vs Runtime Initialization
A subtle but critical concept: native-image can run static initializers at build time and bake the resulting state into the image. Spring Boot's defaults push most app initialization to build time for speed.
This causes a classic bug: anything that captures environment-specific or time-sensitive state in a static initializer gets frozen at build time.
- A
static final SecureRandom seedcomputed at build time would be identical on every machine. - Reading an environment variable in a static block captures the build server's value, not production's.
The fix: defer such work to runtime (e.g., a @Bean method or lazy init) so it executes when the executable actually starts.
@Configuration
class CryptoConfig {
// Created when the native executable starts, NOT at build time
@Bean
SecureRandom secureRandom() {
return new SecureRandom();
}
}Verifying and Debugging the Native Build
Native builds fail differently from JVM apps. Two habits save hours:
- Test the AOT path on the JVM first. Run with the
springAotmode or the generated context before doing the slownative-imagestep — most bean-wiring issues surface here in seconds. - Read the static-analysis errors. A
ClassNotFoundExceptionorNo instances of X are allowed in the image heapat run time almost always means a missing reflection/resource hint or an accidental build-time initialization.
You can run the AOT-processed app on the JVM to validate the frozen context quickly:
# Run the AOT-optimized context on a regular JVM (fast feedback loop)
./mvnw spring-boot:run -Dspring-boot.run.profiles=default \
-Dspring.aot.enabled=trueQuick Check: AOT and the Native Pipeline
Test your understanding of how Spring's AOT engine cooperates with GraalVM.
Recap: AOT Processing and the Native Pipeline
You now understand how Spring Boot 4 turns a dynamic application into a native executable:
- Why native: millisecond startup and low memory, at the cost of slow builds and a closed-world assumption.
- Spring AOT runs at build time, emitting bean-definition code, an
ApplicationContextInitializer, and GraalVM reachability metadata; the bean set becomes frozen. - The pipeline: compile →
process-aot→ compile generated sources →native-imagestatic analysis. - Hints: use
RuntimeHintsRegistrar+@ImportRuntimeHintsfor custom needs,@RegisterReflectionForBindingfor DTOs, and the tracing agent as a last resort for opaque libraries. - Watch out for build-time initialization freezing state; defer environment- and time-sensitive work to runtime beans.
- Debug fast by running the AOT context on the JVM before the slow native build.
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Toutes les leçons de ce cours
- Traitement AOT et pipeline de compilation natif
- Indications d’exécution pour la réflexion et les ressources
- Partage des données de classes et optimisation du démarrage de la JVM
- Diagnostic et résolution des problèmes de compatibilité native