Compare commits
6 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| 0d5944af63 | |||
| 65a78932c1 | |||
| 73aab3f83e | |||
| 3fd23ecafa | |||
| f379847942 | |||
| ea12107497 |
@@ -937,14 +937,20 @@ public abstract class HerdrPeerLauncher implements PeerLauncher {
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*/
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@Override
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public void stop(String idOrPane) {
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// Teardown knows only the pane, not which profile spawned it. Attempt tab cleanup when any
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// profile uses tab placement (so the bridge may have created a dedicated peer tab); the
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// single-occupant check below is what actually protects the user's shared tabs.
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// Teardown knows only the pane, not which profile spawned it — and, when this call is
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// routed here through CompositePeerLauncher's single-daemon stop() shortcut (fleetd #342),
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// not even which adapter's config actually governed the spawn: the shortcut can hand the
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// pane to a delegate that never spawned it, whose own profiles say nothing about how THIS
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// pane was placed. So the decision to look for a tab to clean up is made from the pane's
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// actual state, not from this delegate's static profile config: resolve the tab
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// unconditionally and let {@link WorkspaceControl#locatePane} tolerate "not found" (it
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// returns null rather than throwing); the single-occupant check below is what actually
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// protects the user's shared tabs, exactly as it always has.
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String paneId = paneByAgentId.remove(idOrPane);
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if (paneId == null) {
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paneId = idOrPane; // raw-pane fallback (reap, gate timeout, pane-addressed callers)
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}
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WorkspaceControl.PaneLocation loc = usesTabPlacement() ? spaces.locatePane(paneId) : null;
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WorkspaceControl.PaneLocation loc = spaces.locatePane(paneId);
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try {
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agents.close(paneId);
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} catch (HerdrException e) {
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@@ -985,11 +991,6 @@ public abstract class HerdrPeerLauncher implements PeerLauncher {
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}
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}
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/** Whether any configured profile places peers in their own tab (so tabs may need cleanup). */
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private boolean usesTabPlacement() {
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return profiles.values().stream().anyMatch(FleetConfig.Profile::tabPlacement);
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}
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/** True when a herdr error means the target is already gone (safe to treat as done). */
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private static boolean isAlreadyGone(HerdrException e) {
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return e.code() != null && e.code().endsWith("_not_found");
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@@ -891,6 +891,10 @@ public final class MessageService {
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boolean wasDelivered = delivery.completion().isDone()
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&& !delivery.completion().isCompletedExceptionally();
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if (!wasDelivered) {
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if (timeoutCancellationRaceHookForTest != null) {
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// Test-only (fleetd #345): see the field's own javadoc.
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timeoutCancellationRaceHookForTest.run();
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}
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// The target monitor makes cancellation atomic with onStatus picking this
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// Pending up. If pickup won, report TIMED_OUT_WORKING because the text landed.
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wasDelivered = injector.cancel(delivery) == Injector.Cancellation.DELIVERED;
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@@ -961,13 +965,41 @@ public final class MessageService {
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return new AskResult(AskOutcome.ANSWERED, answer);
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} catch (TimeoutException e) {
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log.debug("fleet_ask from {} went unanswered in {}ms", workerSession, timeoutMillis);
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// fleetd #307: mark the task BEFORE clearAsyncQuestion(forgetTurn=true) below drops it out of
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// asyncTasksByTurn and nulls its turnId — that forgetting is deliberate and stays (it is
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// what keeps the target from staying BUSY forever), but it would otherwise also erase
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// askAnsweredAsyncTasks' only signal that the worker's eventual real fleet_reply still
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// belongs to this task, stranding it in the inbox with a false "never replied" verdict.
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markAskTimedOut(ticket.turnId());
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clearAsyncQuestion(ticket.turnId(), true);
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// Only the fresh owner tears down the shared turn (mirrors the finally block below).
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// A duplicate's own timeoutMillis says nothing about whether the SHARED ask is actually
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// done — it must leave the close/forget bookkeeping to the fresh owner, exactly as it
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// already leaves closeAsk to it.
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if (ticket.fresh()) {
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// fleetd #334: close the ask turn BEFORE forgetting this task's turnId mapping below.
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// Before this fix the order was reversed — the mapping was forgotten here first, and
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// rendezvous.closeAsk only ran afterward, in the shared finally. A primary's answer()
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// call racing this exact timeout could then find rendezvous.askSession(turnId) still
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// non-null (the ask still "answerable") after the Task mapping was already gone:
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// answer()'s own asyncTasksByTurn lookup returned null, its task != null guard skipped
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// the completion, and the async ticket sat at PENDING forever even though answer()
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// itself reported the worker's real reply. Closing here first removes that window:
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// any answer() call that still observes askSession(turnId) != null is necessarily
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// racing a point BEFORE the forgetting below runs (both happen on this one thread, in
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// this order, with nothing that yields in between), so the Task mapping is still there
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// for it to find; any call that observes askSession(turnId) == null now correctly
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// bails out STALE_TURN (see answer()'s own top check) before ever reaching
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// asyncTasksByTurn. rendezvous.closeAsk is idempotent — a no-op once the turn is
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// already removed, see its own javadoc — so the shared finally below re-running it
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// for this same fresh call is harmless.
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rendezvous.closeAsk(ticket.turnId());
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if (askTimeoutRaceHookForTest != null) {
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// Test-only (fleetd #334): see the field's own javadoc.
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askTimeoutRaceHookForTest.run();
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}
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// fleetd #307: mark the task BEFORE clearAsyncQuestion(forgetTurn=true) below drops it
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// out of asyncTasksByTurn and nulls its turnId — that forgetting is deliberate and
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// stays (it is what keeps the target from staying BUSY forever), but it would
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// otherwise also erase askAnsweredAsyncTasks' only signal that the worker's eventual
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// real fleet_reply still belongs to this task, stranding it in the inbox with a false
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// "never replied" verdict.
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markAskTimedOut(ticket.turnId());
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clearAsyncQuestion(ticket.turnId(), true);
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}
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return new AskResult(AskOutcome.TIMED_OUT, null);
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} catch (ExecutionException e) {
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Throwable cause = e.getCause();
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@@ -1066,19 +1098,28 @@ public final class MessageService {
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// the chained ask deliberately left open.
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//
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// A null task is NOT only "this was never an async ticket". That reading was in this
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// comment when #329 merged and it is wrong. A genuine async ticket also lands here
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// with task == null, because ask()'s timeout path runs clearAsyncQuestion(turnId,
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// true) — which drops the asyncTasksByTurn entry — in its catch block, while
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// rendezvous.closeAsk(turnId) runs later, in its finally. Between those two the ask
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// is still answerable but the map entry is already gone, so the lookup at :991
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// returns null and this ticket is never completed. Measured on 2026-09-04: a probe
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// firing only that first half before answer() runs printed
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// "answer=REPLIED phase=PENDING reply=null" — the same stranded ticket #329 set out
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// to fix, one step earlier in the same race. The probe used forgetTurnForTest, which
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// omits ask()'s markAskTimedOut; that cannot change the outcome, because askTimedOut
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// is read only by askAnsweredAsyncTasks, and reply() never reaches it while this
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// method's own waiter is live. So #329 narrows this window rather than closing it.
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// Open as fleetd #334 — do not read this guard as complete.
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// comment when #329 merged and it is wrong; it is still not the whole story after
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// #334. A genuine async ticket can still land here with task == null — a blocking
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// (wait:true) send's fleet_ask never has a Task at all, so that case is expected and
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// fine. What #334 fixed was a SECOND, unintended way to get here with task == null:
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// ask()'s timeout path used to run clearAsyncQuestion(turnId, true) — which drops the
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// asyncTasksByTurn entry — in its catch block, while rendezvous.closeAsk(turnId) ran
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// later, in its finally. Between those two the ask was still answerable but the map
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// entry was already gone, so the lookup at :1053 returned null and this ticket was
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// never completed. Measured on 2026-09-04: a probe firing only that first half before
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// answer() ran printed "answer=REPLIED phase=PENDING reply=null" — the same stranded
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// ticket #329 set out to fix, one step earlier in the same race; the probe used
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// forgetTurnForTest, which omits ask()'s markAskTimedOut, and that omission does not
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// change the outcome, because askTimedOut is read only by askAnsweredAsyncTasks, and
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// reply() never reaches it while this method's own waiter is live. #334's fix
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// reorders ask()'s timeout catch to run closeAsk before the forgetting (see the
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// fresh-owner block there), which removes this path entirely rather than narrowing
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// it further: once closeAsk has run, rendezvous.askSession(turnId) is null and
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// answer() returns STALE_TURN from its own top check, before it ever reaches this
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// lookup — see aLateAnswerDuringAskTimeoutTeardownStillCompletesTheAsyncTicket in
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// MessageServiceTest, which pins the exact window with askTimeoutRaceHookForTest.
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// So by the time this line runs, task == null means only the ordinary blocking-send
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// case (or #329's own already-fixed race elsewhere) — not this one.
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if (result.outcome() != Outcome.QUESTION && task != null) {
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finishAsyncTask(task, result);
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}
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@@ -1401,6 +1442,24 @@ public final class MessageService {
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this.afterFinishAsyncTaskCompleteHookForTest = hook;
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}
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/**
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* Null in production; test seam for fleetd #345 — invoked in {@link #send}'s timeout path after
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* {@link Injector.Delivery#completion()} reports incomplete and before {@link Injector#cancel}
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* takes the target monitor. A test installs this to make {@code onStatus} pick the exact queued
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* delivery up in that window, so {@code cancel} returns {@link Injector.Cancellation#DELIVERED}.
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* This deterministically covers the caller's need to use that result rather than relying on a
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* timing-sensitive real race.
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*/
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private volatile Runnable timeoutCancellationRaceHookForTest;
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/**
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* Test-only (fleetd #345): install {@link #timeoutCancellationRaceHookForTest}. Package-private
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* so the test, in the same package, can reach it without widening any production API.
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*/
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void setTimeoutCancellationRaceHookForTest(Runnable hook) {
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this.timeoutCancellationRaceHookForTest = hook;
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}
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/**
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* Null in production; test seam for fleetd #329 (F3) — invoked from {@link #reply} right after
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* the single local read of {@code orphan.turnId} passes its null-check and before that (now-local)
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@@ -1457,6 +1516,29 @@ public final class MessageService {
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this.abandonCleanupHookForTest = hook;
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}
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/**
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* Null in production; test seam for fleetd #334 — invoked from {@link #ask}'s {@code
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* TimeoutException} catch, only for the fresh owner, right after {@code rendezvous.closeAsk}
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* has run and before {@link #markAskTimedOut} / {@link #clearAsyncQuestion} forget this task's
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* turnId mapping. A test installs this to call {@link #answer} for the very same {@code turnId}
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* synchronously from inside that exact window, deterministically reproducing the race a real
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* concurrent {@code answer()} call could otherwise only win by timing luck: with the ask already
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* closed, that call must see {@code rendezvous.askSession(turnId) == null} and return {@link
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* Outcome#STALE_TURN} immediately, never reaching {@code asyncTasksByTurn} at all — proving the
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* window fleetd #334 describes (mapping forgotten while the ask was still "answerable") is
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* closed, rather than merely narrowed the way fleetd #329 narrowed the sibling race in {@link
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* #finishAsyncTask}.
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*/
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private volatile Runnable askTimeoutRaceHookForTest;
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/**
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* Test-only (fleetd #334): install {@link #askTimeoutRaceHookForTest}. Package-private so the
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* test, in the same package, can reach it without widening any production API.
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*/
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void setAskTimeoutRaceHookForTest(Runnable hook) {
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this.askTimeoutRaceHookForTest = hook;
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}
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/** A new send must not open a waiter while an async ticket owns this worker's paused turn. */
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private boolean hasAsyncQuestion(String target) {
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return asyncTasksByTurn.values().stream().anyMatch(task -> target.equals(task.target));
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@@ -299,6 +299,41 @@ class CompositePeerLauncherTest {
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"two adapter kinds sharing one daemon keep the fallback route");
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}
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@Test
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void stopThroughTheSingleDaemonShortcutStillClosesTheTabWhenTheFallbackDelegateUsesPanePlacement() {
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// fleetd #342: the single-daemon shortcut (spawnedBy empty, herdrDaemonCount()==1) always
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// routes stop() through delegates.getFirst() — here the claude adapter, configured for
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// PANE placement (its own profiles never create a dedicated tab). The pane being torn
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// down here actually belongs to the opencode adapter's TAB placement, sharing the same
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// herdr daemon — mixing placements is the point: every existing stop-fallback test in this
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// class configures BOTH adapters as "tab", so usesTabPlacement() was true either way and
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// the mis-routing never showed.
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//
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// Before the fix, HerdrPeerLauncher#stop gated tab resolution on usesTabPlacement() of the
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// delegate it happened to be called through, so the wrongly-routed (pane-placement) claude
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// adapter never even looked for a tab to close, and the now-empty tab leaked with nothing
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// to reap it. The fix (fleetd #342) resolves the pane's real tab unconditionally, so the
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// decision follows the pane's actual placement rather than the fallback delegate's static
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// config.
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FakeHerdr herdr = new FakeHerdr();
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FleetConfig.Profile claudePane = new FleetConfig.Profile("claude", "http://gx00.gw:8000",
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"coder", null, "FLEETD_WORKER_TOKEN", List.of("claude"), "pane", "fleetd-workers",
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"w #{n}", null, null, null);
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ClaudeCodeLauncher claude = new ClaudeCodeLauncher(new AgentControl(herdr), new WorkspaceControl(herdr),
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new SubscriptionGuard(Set.of("gx00.gw")), Map.of("claude", claudePane), "claude", _ -> null);
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PeerLauncher composite = new CompositePeerLauncher(List.of(claude, opencodeAdapter(herdr)), "claude");
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// "w9:pW" was never spawned through this composite instance, so spawnedBy has no entry for
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// it (the same in-memory-cache-miss shape a daemon restart leaves behind) — stop() falls
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// through to the single-daemon shortcut and hands it to delegates.getFirst() (claude).
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composite.stop("w9:pW");
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assertTrue(herdr.called("pane.close"), "the pane itself is still closed on every routed path");
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assertTrue(herdr.called("tab.close"),
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"the pane's real (sole-occupant) tab must be closed even though the fallback routed "
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+ "through a delegate configured for pane placement");
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}
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@Test
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void listKeepsBothPanesWhenTwoDaemonsShareAPaneId() {
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// herdr pane ids are per-daemon counters, so two daemons really can both hold w1:p1 on
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@@ -377,6 +377,76 @@ class MessageServiceTest {
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assertEquals(MessageService.Outcome.QUESTION, q.outcome());
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}
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/**
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* fleetd #334. {@code ask()}'s {@code TimeoutException} catch used to forget this task's
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* {@code turnId} mapping ({@code clearAsyncQuestion(turnId, true)}) BEFORE closing the ask
|
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* ({@code rendezvous.closeAsk}, in the shared {@code finally}). A primary's {@code answer()}
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* call racing that exact window found the ask still "answerable" ({@code
|
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* rendezvous.askSession(turnId)} still non-null) while the {@code Task} was already forgotten,
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* so its {@code task != null} guard skipped the completion and the async ticket sat at
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* {@code PENDING} forever even though {@code answer()} itself reported a result. The fix
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* (closing the ask first) makes this window impossible: a racing {@code answer()} call either
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* still finds the ask open (and the {@code Task} mapping guaranteed intact) or finds it already
|
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* closed (and bails {@code STALE_TURN} before ever touching the {@code Task}). This test pins
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* the exact window with {@code askTimeoutRaceHookForTest} and proves both invariants the ticket
|
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* named: (1) a late/racing {@code answer()} sees the ask as already lapsed ({@code STALE_TURN}),
|
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* never made answerable again, and (2) the async ticket still resolves {@code DONE} once the
|
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* worker's real {@code fleet_reply} lands — it is never stranded {@code PENDING}.
|
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*/
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@Test
|
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void aLateAnswerDuringAskTimeoutTeardownStillCompletesTheAsyncTicket() throws Exception {
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String ticket = messages.sendAsync(T, "long task");
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awaitWaiting();
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injector.onStatus(T, AgentStatus.IDLE); // deliver
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injector.onStatus(T, AgentStatus.WORKING); // worker picks it up, then pauses to ask
|
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|
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CompletableFuture<MessageService.AskResult> ask =
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CompletableFuture.supplyAsync(() -> messages.ask(T, "which config file?", 200));
|
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|
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// Wait for the question to actually surface (poll sees ASKING) before racing the timeout.
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MessageService.TaskView asking = null;
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long deadline = System.currentTimeMillis() + 2000;
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while ((asking == null || asking.phase() != MessageService.Phase.ASKING)
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&& System.currentTimeMillis() < deadline) {
|
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asking = messages.poll(ticket);
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//noinspection BusyWait
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Thread.sleep(5);
|
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}
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assertNotNull(asking, "the question must surface before the ask times out");
|
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String turnId = asking.turnId();
|
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assertNotNull(turnId, "an ASKING view carries the turnId to answer on");
|
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|
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CompletableFuture<MessageService.Reply> lateAnswer = new CompletableFuture<>();
|
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messages.setAskTimeoutRaceHookForTest(() ->
|
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lateAnswer.complete(messages.answer(turnId, "too late", 500)));
|
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try {
|
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MessageService.AskResult a = ask.get(5, TimeUnit.SECONDS);
|
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assertEquals(MessageService.AskOutcome.TIMED_OUT, a.outcome());
|
||||
|
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MessageService.Reply late = lateAnswer.get(5, TimeUnit.SECONDS);
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assertEquals(MessageService.Outcome.STALE_TURN, late.outcome(),
|
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"a late answer racing the timeout teardown must see the ask as already lapsed");
|
||||
|
||||
// The worker resumes on its own (per the ask() contract) and eventually sends its real
|
||||
// fleet_reply; the async ticket must still resolve with it, not strand at PENDING.
|
||||
assertTrue(messages.reply(T, "real result"), "the worker's real reply must still be accepted");
|
||||
} finally {
|
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messages.setAskTimeoutRaceHookForTest(null);
|
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}
|
||||
|
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MessageService.TaskView done = null;
|
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deadline = System.currentTimeMillis() + 2000;
|
||||
while ((done == null || done.phase() == MessageService.Phase.PENDING)
|
||||
&& System.currentTimeMillis() < deadline) {
|
||||
done = messages.poll(ticket);
|
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//noinspection BusyWait
|
||||
Thread.sleep(5);
|
||||
}
|
||||
assertNotNull(done);
|
||||
assertEquals(MessageService.Phase.DONE, done.phase(), "the async ticket must not be stranded PENDING");
|
||||
assertEquals("real result", done.reply());
|
||||
}
|
||||
|
||||
@Test
|
||||
void answeringAnUnknownTurnIsStale() {
|
||||
MessageService.Reply r = messages.answer(T + "#999", "too late", 500);
|
||||
@@ -410,6 +480,29 @@ class MessageServiceTest {
|
||||
"a delivered send whose worker never replies times out as still working");
|
||||
}
|
||||
|
||||
/**
|
||||
* fleetd #345. This forces the injector to pick up the exact pending delivery after {@code send}
|
||||
* first observes its completion as incomplete, but before {@code cancel} takes the target monitor.
|
||||
* The timeout must use {@link Injector.Cancellation#DELIVERED} from {@code cancel} and report
|
||||
* {@link MessageService.Outcome#TIMED_OUT_WORKING}, because the text landed.
|
||||
*
|
||||
* <p>What this does not prove: that this precise interleaving happens by itself under production
|
||||
* timing. The test forces it through a test-only hook; it proves the timeout caller handles the
|
||||
* injector result when the interleaving occurs.
|
||||
*/
|
||||
@Test
|
||||
void sendTimeoutUsesCancellationDeliveredWhenPickupWinsTheRace() {
|
||||
messages.setTimeoutCancellationRaceHookForTest(() -> injector.onStatus(T, AgentStatus.IDLE));
|
||||
try {
|
||||
MessageService.Reply reply = messages.send(T, "race delivery", 50);
|
||||
|
||||
assertEquals(MessageService.Outcome.TIMED_OUT_WORKING, reply.outcome(),
|
||||
"cancel reporting DELIVERED means the worker received the timed-out message");
|
||||
} finally {
|
||||
messages.setTimeoutCancellationRaceHookForTest(null);
|
||||
}
|
||||
}
|
||||
|
||||
@Test
|
||||
void answerTimesOutWhenTheResumedWorkerNeverReplies() throws Exception {
|
||||
CompletableFuture<MessageService.Reply> send = sendAsync();
|
||||
|
||||
@@ -711,13 +711,21 @@ class FleetAppTest {
|
||||
|
||||
@Test
|
||||
void stopWorkerInPanePlacementClosesOnlyThePane() throws Exception {
|
||||
FakeHerdr herdr = new FakeHerdr();
|
||||
// fleetd #342: tab-cleanup resolution is no longer skipped based on a profile's declared
|
||||
// placement — a stop() routed through the wrong delegate (e.g. CompositePeerLauncher's
|
||||
// single-daemon shortcut after a daemon restart) could carry a placement config that says
|
||||
// nothing true about how THIS pane was actually placed. So the pane's real tab is now
|
||||
// always resolved, and the single-occupant check below is what protects a pane-placement
|
||||
// peer's shared tab, exactly as it always protected a tab-placement one. Model that
|
||||
// realistically: the peer's pane was split into an existing tab that already held another
|
||||
// occupant, so the tab must never be closed.
|
||||
FakeHerdr herdr = new FakeHerdr().withWorkerTabPaneCount(2);
|
||||
int port = start(herdr, "http://gx00.gw:8000", Set.of("gx00.gw"), "pane");
|
||||
|
||||
assertEquals(204, req(port, "DELETE", "/members/w9:pW").statusCode());
|
||||
assertTrue(herdr.called("pane.close"));
|
||||
assertFalse(herdr.called("tab.close"), "pane placement owns no tab to close");
|
||||
assertFalse(herdr.called("pane.get"), "no tab resolution in pane placement");
|
||||
assertTrue(herdr.called("pane.get"), "tab resolution now always runs, regardless of placement");
|
||||
assertFalse(herdr.called("tab.close"), "pane placement's shared tab must never be closed");
|
||||
}
|
||||
|
||||
@Test
|
||||
|
||||
Reference in New Issue
Block a user