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spring-security-demo/context-propagation/docs/04-executor-wrapping.md
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Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01RSrsDSRKVsY588yFiMJMo9
2026-08-25 02:01:29 +00:00

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4. Executor, ExecutorService, and AsyncTaskExecutor wrapping

← Prev: Structured concurrency | Next: Reactive context →

Chapters 13 are all about virtual threads and structured concurrency, which came later. Demo4ExecutorWrapping.java goes back to the baseline the post's "Using @Async", "Using ExecutorService", and "Using CompletableFuture" sections describe: a fixed platform-thread pool (ThreadPoolExecutor, ThreadPoolTaskExecutor), the shape almost every Spring app used before spring.threads.virtual.enabled existed, and the exact pooled-thread danger Chapter 1 demonstrated for InheritableThreadLocal. Full output in docs/output/demo4.txt.

The three wrapper classes the post names

  • DelegatingSecurityContextExecutorService wraps an entire ExecutorService -- execute(), submit(), invokeAll(), invokeAny() all go through the wrapper. This is the fix for the post's TaskExecutionService ("Using ExecutorService") example.
  • DelegatingSecurityContextExecutor wraps a plain Executor and is what you hand to CompletableFuture.supplyAsync(supplier, executor) -- the fix for CompletableFutureService ("Using CompletableFuture"). The common ForkJoinPool that CompletableFuture.supplyAsync(supplier) uses when you don't supply an executor never propagates context; scenario C2 in the output shows that directly.
  • DelegatingSecurityContextAsyncTaskExecutor wraps Spring's own AsyncTaskExecutor/TaskExecutor abstraction -- the type AsyncConfigurer#getAsyncExecutor() actually returns, and the object Spring's @Async infrastructure calls execute()/submit() on. This is the fix for the post's AsyncConfig example.

All three extend the same mechanism Chapter 2 already described: wrap the submitted Runnable/Callable, capture SecurityContextHolder.getContext() once (at wrap time, not at thread-construction time), and push/pop it around the delegate's execution on whatever thread that turns out to be.

The edge case Chapter 1 sets up and this chapter resolves

Chapter 1's whole point was that a reused pool worker keeps whatever InheritableThreadLocal value existed when the pool created it, not what the submitting thread had at submission time -- that's why MODE_INHERITABLETHREADLOCAL is dangerous with a fixed thread pool. The EDGE scenario in this demo asks the same question of the Delegating* wrappers, and the answer is the opposite:

EDGE) task 1 on possibly-reused worker: authenticated as carol-task1
EDGE) task 2, same pool, different caller context: authenticated as dave-task2  <-- correct, NOT stale

Two tasks submitted through DelegatingSecurityContextExecutorService to the same two-worker pool, with the caller's SecurityContextHolder context changed in between, each see their own context -- never the other task's. That's because the wrapper captures context per submission (inside wrap(), called synchronously from execute()/submit()), not once per worker thread the way thread-local inheritance does. This is the actual reason the Delegating* family predates virtual threads by years and is still correct on a fixed pool: it never depended on thread identity in the first place.

Chapter 8 pins this exact contrast as a JUnit assertion (delegatingSecurityContextExecutorServicePropagatesAndCapturesIndependentlyPerTask), not just a printed line.

Practical note: which one do you actually need?

If you already have an AsyncConfigurer returning a ThreadPoolTaskExecutor, wrap it with DelegatingSecurityContextAsyncTaskExecutor and nothing else changes -- @Async keeps working as written. If you're calling CompletableFuture.supplyAsync(...) without an explicit executor anywhere in the codebase, that's the common-ForkJoinPool trap in scenario C2; the fix is always to supply a DelegatingSecurityContextExecutor-wrapped executor, never to reach for MODE_INHERITABLETHREADLOCAL as a global patch for one call site.