aion/engine/api.rs
1//! `Engine` start, cancel, result, list, and shutdown support.
2
3use std::sync::Arc;
4
5use aion_core::{Event, RunId, SearchAttributeSchema, WorkflowId};
6use tokio::sync::Mutex as AsyncMutex;
7use tokio::task::JoinHandle;
8
9use crate::durability::Recorder;
10use crate::schedule::ScheduleEvaluator;
11use aion_store::EventStore;
12use aion_store::visibility::VisibilityStore;
13
14use crate::registry::TerminalOutcome;
15use crate::{
16 EngineError, Registry, RuntimeHandle, SupervisionTree, WorkflowCatalog,
17 signal::SignalResumeHandoff,
18};
19
20use super::api_schedule::{
21 ScheduleRuntimeDeps, default_schedule_evaluator, schedule_coordinator_workflow_id,
22};
23use super::delegated::DelegatedSeams;
24use super::shutdown_gate::ShutdownGate;
25
26/// Live embedded workflow engine assembled by [`crate::EngineBuilder`].
27pub struct Engine {
28 pub(super) store: Arc<dyn EventStore>,
29 pub(super) visibility_store: Arc<dyn VisibilityStore>,
30 pub(super) schedule_recorder: Arc<AsyncMutex<Recorder>>,
31 pub(super) schedule_evaluator: Arc<AsyncMutex<ScheduleEvaluator>>,
32 pub(super) schedule_coordinator_workflow_id: WorkflowId,
33 pub(super) runtime: Arc<RuntimeHandle>,
34 pub(super) catalog: Arc<WorkflowCatalog>,
35 pub(super) registry: Arc<Registry>,
36 pub(super) supervision: Arc<SupervisionTree>,
37 delegated: DelegatedSeams,
38 pub(super) signal_handoff: Arc<SignalResumeHandoff>,
39 pub(super) search_attribute_schema: Arc<SearchAttributeSchema>,
40 pub(super) shutdown_gate: ShutdownGate,
41 /// Serializes the deploy mutations (load / route / unload) end-to-end
42 /// across BOTH the catalog commit and its store persistence write, so
43 /// the persisted package set and route pointers can never disagree with
44 /// the catalog through interleaving (for example a concurrent re-deploy
45 /// re-persisting a version an unload just deleted). Workflow dispatch
46 /// never takes this lock.
47 pub(super) deploy_mutations: AsyncMutex<()>,
48 visibility_reconciliation_task: Option<JoinHandle<()>>,
49 /// One-shot slot for deferred startup recovery (#266). `NotDeferred` on a
50 /// default build; `Pending` until [`Engine::run_startup_recovery`]
51 /// consumes it.
52 pub(super) deferred_startup_recovery:
53 std::sync::Mutex<super::startup_deferred::DeferredRecoverySlot>,
54 /// Shared dispatch-hold set for durable pause (#204): the workflow ids whose
55 /// outbox rows are held `Pending` while paused. Mutated by pause/resume/cancel
56 /// and rebuilt from [`EventStore::list_paused`] at startup/adoption; read by
57 /// the outbox dispatcher at claim time.
58 pub(super) paused_runs: crate::lifecycle::PausedRuns,
59 /// The workloop cadence machinery (service + sweep task + store), present
60 /// only when the builder configured it. The sweep task is a DURABLE
61 /// WRITER on the host runtime — its sink appends `CadenceFired` and
62 /// `InvariantUnconfirmed` through loop Recorders — so it is stopped in
63 /// BOTH [`Engine::shutdown`] and `Drop`, exactly like the visibility
64 /// reconciliation loop and for the same reason: the engine-task epoch
65 /// gate cannot reach a host-runtime task.
66 pub(super) workloop: Option<super::api_workloop::WorkloopEngineRuntime>,
67}
68
69impl Drop for Engine {
70 /// Close the engine-task epoch when the engine is released, whether or not
71 /// [`Engine::shutdown`] was ever called or ever succeeded.
72 ///
73 /// Without this, an engine dropped without a successful shutdown left
74 /// completion retries armed and appending terminal events. They could not
75 /// be stopped by `EngineTaskRuntime::drop` either: an attempt in flight
76 /// upgrades its weak reference and holds the `RuntimeHandle` strongly for
77 /// the length of the attempt, so the refcount never reaches zero and that
78 /// backstop is unreachable for precisely the span of the append it exists
79 /// to stop. This drop runs before the engine's own fields are released, so
80 /// it does not depend on that refcount at all.
81 ///
82 /// Closes the engine-task epoch with `EngineTaskRuntime::shutdown`, whose
83 /// runtime drop is isolated on a plain joiner thread. That makes joined
84 /// cleanup safe even when this `Drop` runs inside a host async context: the
85 /// epoch is gated, every task is aborted, and the executor's I/O driver is
86 /// released before `Drop` returns. The gate remains load-bearing for an
87 /// attempt already past an await boundary: its append boundary reads
88 /// `is_epoch_open` and refuses.
89 ///
90 /// # The visibility reconciliation task is aborted here for the same reason
91 ///
92 /// It runs on the HOST runtime, not the engine-task executor, so the epoch
93 /// gate does not reach it — and dropping its `JoinHandle` detaches rather
94 /// than cancels. It is an unbounded loop holding the event store and the
95 /// visibility store, and `reconcile_visibility` WRITES. Left detached, an
96 /// engine released without `shutdown` went on upserting visibility rows for
97 /// the life of the process, against a store a successor engine may already
98 /// own. `Engine::shutdown` aborts it as its first act; this does the same,
99 /// so the two paths agree.
100 ///
101 /// # The live timer wheel is disarmed here for the third time, same reason
102 ///
103 /// 🔴 THIS WAS MISSING, AND IT LEFT A DURABLE WRITER ARMED. Live-wheel
104 /// timer tasks are `tokio::spawn`ed on the HOST runtime
105 /// (`runtime/nif_timer_bridge.rs`), so — exactly like the reconciliation
106 /// loop — the engine-task epoch gate does not reach them. Their body is
107 /// `fire_wheel_timer`, which records a durable `TimerFired`. They hold a
108 /// `Weak<EngineNifState>`, and this drop deliberately does NOT clear the
109 /// seams (see below), so that upgrade succeeds and the fire proceeds.
110 ///
111 /// An engine released without `shutdown` therefore kept a durable-append
112 /// path armed for the life of the process. `Engine::shutdown` names the
113 /// consequence precisely: across a failover, the dead owner's orphaned
114 /// wheel task races the survivor's adoption-armed timer and can record the
115 /// one durable `TimerFired` first, leaving the survivor's resident sleeper
116 /// parked forever. That is the single-writer invariant, and nothing about
117 /// it cares whether the engine was shut down or dropped.
118 ///
119 /// Safe in a `Drop`: `shutdown_timer_wheel` sets a flag and then performs a
120 /// `DashMap` drain plus `abort()` — non-blocking, structurally identical to
121 /// the `visibility_reconciliation_task.abort()` above. It therefore remains
122 /// safe before the joined engine-task shutdown below.
123 ///
124 /// 🔴 AND IT IS A GATE, NOT ONLY A DRAIN — which it had to become for this
125 /// `Drop` to be worth anything. A drain closes the set of timers armed at
126 /// one instant; this `Drop` deliberately leaves the beamr scheduler and the
127 /// engine seams alive, so a workflow process still runnable could reach
128 /// `sleep` a moment later and arm a fresh durable `TimerFired` writer
129 /// through a wheel this drop believed it had emptied. `arm_timer` now
130 /// refuses once the flag is set (`nif_timer_bridge.rs`, `shut_down`), so
131 /// the guarantee below is a property of the wheel from here on rather than
132 /// of one instant.
133 ///
134 /// # 🔴 WHAT THIS DOES NOT DO, STATED SO NOBODY READS MORE INTO IT
135 ///
136 /// It does not clear the engine NIF seams. Those hold `Arc`s back to the
137 /// `RuntimeHandle`, so until `clear_engine_seams` runs the handle, its
138 /// beamr scheduler and every store clone they reach outlive this drop.
139 /// `Engine::shutdown` clears them only after the scheduler has stopped and
140 /// the child-task and timer-wheel epochs have closed; none of that has
141 /// happened here, and a NIF could still read a slot this drop cleared.
142 /// Trading a scheduler leak for a use-after-clear is the wrong direction,
143 /// so that leak stands and is named: **an engine released without explicit
144 /// `shutdown` still holds its scheduler and installed seams.** The dedicated
145 /// engine-task executor is different: it is joined below so its I/O driver
146 /// cannot accumulate process descriptors. What this drop guarantees for
147 /// durability is still narrower — **no durable writer this drop can reach
148 /// keeps writing, and no writer it cannot reach can end a run.** The first
149 /// clause covers FOUR BACKGROUND writers, stopped in two different ways:
150 ///
151 /// 1. anything armed on the **engine-task epoch** — `shutdown()` below;
152 /// 2. the **visibility reconciliation loop** — `abort()` below;
153 /// 3. the **live timer wheel** — `shutdown_timer_wheel()` below, which
154 /// gates and drains, *and* refuses at the point of writing, because
155 /// `abort` cannot stop a task already inside a poll. That refusal is in
156 /// TWO places, not one, and the second is easy to miss: an ordinary timer
157 /// is refused at the bridge's append boundary
158 /// (`nif_timer_bridge.rs`, `record_workflow_event`), but a reserved
159 /// `deadline:{run}` fire never reaches that boundary — `fire_timer_guarded`
160 /// demuxes it to the deadline handler first — so it is refused inside
161 /// [`crate::lifecycle::deadline::WorkflowDeadlineHandler`] instead, off
162 /// the same latch;
163 /// 4. the **activity completion / retry task**
164 /// ([`crate::runtime::nif_activity_retry_dispatch::spawn_completion_task`]),
165 /// which this drop **cannot reach at all**: its `JoinHandle` is
166 /// discarded, so it is detached on the host runtime and nothing here
167 /// registers or aborts it. It is stopped instead at its append boundary,
168 /// which reads `is_epoch_open()` under the recorder lock — so step 1's
169 /// the engine-task epoch closure is what silences it, one indirection away.
170 ///
171 /// # 🔴 AND THERE IS A FIFTH, WHICH IS NOT A BACKGROUND WRITER AT ALL
172 ///
173 /// The four above are things the engine spawned; this drop stops them
174 /// because it can reach them. The fifth is the **workflow process itself**,
175 /// and this drop deliberately does not stop it — it leaves the beamr
176 /// scheduler running and the NIF seams installed, which is exactly what the
177 /// section above says it is trading for. A still-runnable workflow process
178 /// therefore keeps calling NIFs after the `Engine` is gone, and **13 of the
179 /// 24 registered engine NIFs perform durable writes** — `dispatch_activity`,
180 /// `dispatch_activity_in_vm`, `await_activity_result`, `sleep`,
181 /// `start_timer`, `cancel_timer`, `with_timeout`, `continue_as_new`,
182 /// `send_signal`, `spawn_child`, `collect_all`, `collect_race`,
183 /// `collect_map`. The other 11 read or reply and record nothing. The
184 /// registration table is `runtime::engine_nifs::engine_nif_entries`, whose
185 /// own test asserts the total, so both halves of that split are checkable
186 /// against a closed set rather than taken on trust — which is the point,
187 /// since the first draft of this paragraph carried a transposed count.
188 /// None of the 13 consults the engine-task epoch, and
189 /// nothing in the append path does either: `NifContext::block_on_recorder`
190 /// takes the recorder lock and nothing else, and `Recorder::append_one`
191 /// goes straight to `store.append`.
192 ///
193 /// An earlier revision of this doc said "there are FOUR" full stop, and was
194 /// wrong in the way that matters most: it did not omit an obscure writer, it
195 /// omitted **the one that executes user code**.
196 ///
197 /// What has been closed is the part that can END A RUN.
198 /// `WorkflowContinuedAsNew` is a TERMINAL, it was the ONE terminal this
199 /// fifth writer could still record, and it is now refused off the same epoch
200 /// (`runtime::nif_continue_as_new::record_continuation`). The reason it had
201 /// to be, in one line: **the successor run that terminal obliges was already
202 /// refused** at `completion::start_continuation_replacement`, so the two
203 /// halves of one transition disagreed and the run was left terminal with no
204 /// continuation. Every other terminal reachable from workflow code was
205 /// already gated — process exit at the completion append boundary,
206 /// `WorkflowTimedOut` off the timer bridge's stand-down latch.
207 ///
208 /// **And the refusal ENDS THE PROCESS, which is the half that makes it a
209 /// gain rather than a trade.** Before the gate, the recorder call either
210 /// succeeded or aborted the NIF, and the success path always reached
211 /// `cancel_pid` — that instruction is where this fifth writer died. A
212 /// refusal that merely returned early would have removed it, leaving the
213 /// process runnable and free to make every ungated write listed below. So
214 /// `runtime::nif_continue_as_new` terminates on the epoch refusal too — and,
215 /// of the refusals, on that one ONLY. A pre-terminal store fault is an
216 /// ordinary error workflow code may handle, and killing a process for it
217 /// would turn a transient blip into a dead run; an already-terminal run is
218 /// spared for a different reason — its terminal was recorded by a seam
219 /// that owns its own teardown, and of those owners some end the pid (a
220 /// second `cancel_pid` from here would race them) while some only
221 /// deregister (a kill from here would usurp them). The predicate's doc
222 /// carries that split; the "Five ordinary terminal paths" paragraph in
223 /// `lifecycle/completion.rs` carries the one enumeration of the owners.
224 /// It ALSO terminates whenever the terminal actually landed, including
225 /// the half-completed case where the terminal is durable but the deadline
226 /// retirement that follows it failed — because the question that decides
227 /// this is "did the terminal land", not "was there an error". The
228 /// predicate is `outcome_must_end_the_process`, pinned by a test with both
229 /// negative controls.
230 ///
231 /// The cost, stated because it is not zero: the refusal returns before
232 /// `retire_run_deadline`, so the predecessor's deadline row stays armed. A
233 /// restart gap longer than the run's remaining budget times the run out
234 /// instead of continuing it. That is the same exposure every other in-flight
235 /// run already carries across an outage; the old path escaped it only by
236 /// recording a terminal for a transition that never completed.
237 ///
238 /// # 🔴 WHAT IS STILL OPEN, AND WHY IT IS NOT CLOSED HERE
239 ///
240 /// A workflow process refused by the EPOCH gate is now stopped, so the
241 /// writes below are not reachable from that path. Say "the epoch gate" and
242 /// not "was refused": the other refusals deliberately leave the process
243 /// alive, so a reader who takes this sentence at its widest reading would
244 /// believe an exposure is closed that is open by design.
245 ///
246 /// They remain fully open on every other path — a process that never calls
247 /// `continue_as_new` is untouched by any of this and keeps writing.
248 ///
249 /// The fifth writer's NON-terminal durable writes are ungated and remain so:
250 /// `TimerStarted` plus a durable timer row (`sleep`, `start_timer`,
251 /// `with_timeout` — `TimerService::schedule` writes the row and only then
252 /// arms, so the wheel's refusal lands after both), activity schedule/start
253 /// and completion records, `spawn_child`'s whole child-start chain, and
254 /// `send_signal`, which writes into a THIRD workflow's history.
255 ///
256 /// Two things bound that, and neither is what a reader might assume:
257 /// - `WriteToken` fences NOTHING. It is a zero-sized marker with a public
258 /// `recorder()` constructor and no engine, epoch, lease or node identity;
259 /// two engines over one store both mint valid ones. Its own doc says so —
260 /// it exists to stop an `Arc<dyn EventStore>` alone being write authority.
261 /// - `SequenceConflict` catches only the LOSER of a head race, and a
262 /// released engine is structurally positioned to be the winner: its
263 /// Recorder is the one already at the current head, because it is the one
264 /// that has been appending. If it writes first, its write succeeds and the
265 /// SUCCESSOR takes the conflict.
266 ///
267 /// So the remaining exposure is real and is stated rather than denied. It is
268 /// not closed here because **no flag in this crate distinguishes "released"
269 /// from "shutting down"** — `begin_close` sets one bit and both `Engine::drop`
270 /// and `Engine::shutdown` set it. A gate on that bit at a workflow-process
271 /// write path would therefore also fire during an ORDINARY graceful
272 /// shutdown, for the whole unbounded span between `begin_close()` and
273 /// `runtime.shutdown()` further down this file, and there the failure is an
274 /// `{error, _}` returned INSIDE running workflow code — a failed `sleep`, a
275 /// failed `spawn_child` — on runs the shutdown was trying to leave intact.
276 /// The terminal was worth that trade because its successor was already
277 /// refused at `start_continuation_replacement`: recording it could only
278 /// produce a run that is terminal with no continuation.
279 ///
280 /// ⚠️ **Refusing it is not free, and an earlier revision of this sentence
281 /// said it was.** It read "refusing cost nothing that was not already lost",
282 /// which is the exact claim `runtime::nif_continue_as_new`'s own
283 /// documentation exists to retract — and which the "cost, stated because it
284 /// is not zero" paragraph above already contradicts. The price is stated
285 /// there and holds here: the refusal returns before `retire_run_deadline`,
286 /// so the predecessor's deadline stays armed and a long enough outage
287 /// times the run out instead of continuing it. What makes the trade worth
288 /// taking is not that it is free but that the alternative bought its
289 /// exemption with a false terminal.
290 ///
291 /// Refusing ordinary progress is a different bargain and needs a latch that
292 /// means what it says. Do not add one of these gates without adding that
293 /// latch.
294 ///
295 /// 🔴 THAT LIST IS A CLAIM ABOUT DURABLE WRITERS AND IT IS ONLY AS GOOD AS
296 /// ITS ENUMERATION — four times proven. An earlier revision named two and
297 /// was wrong: the timer wheel was the third, and it was armed. The revision
298 /// after that named three and was also wrong: the completion task was the
299 /// fourth, it had no epoch check of any kind, and it sleeps an
300 /// SDK-declared backoff with no ceiling between attempts. And the revision
301 /// after THAT — the one that added the wheel's append-boundary refusal —
302 /// wrote entry 3 as though that boundary covered the whole wheel, when the
303 /// deadline path is demuxed away before it and had no refusal at all: an
304 /// engine released without `shutdown` could still record a durable
305 /// `WorkflowTimedOut` and tear a run down. **The enumeration was right and
306 /// the mechanism named under it was not**, which is the harder failure to
307 /// see, because the list looked complete.
308 ///
309 /// And the FOURTH time is the section above: every revision so far had
310 /// enumerated only what this drop *reaches*, and then written a guarantee
311 /// over every writer that *exists*. The workflow process is not on any list
312 /// of things a `Recorder` grep or a `spawn` grep produces, because nobody
313 /// spawned it here and it holds no handle this file can see — it is reached
314 /// through an installed NIF seam by code the operator wrote. **A search
315 /// shaped like the mechanism you already know will not find the writer you
316 /// do not.** That is why the method below now starts from the NIF
317 /// registration table, which is a closed set that something asserts the size
318 /// of, rather than from a grep whose completeness nothing checks.
319 ///
320 /// The way to check this list is: take
321 /// `runtime::engine_nifs::engine_nif_entries` and account for every entry;
322 /// grep the crate for every construction of a `Recorder` handle and every
323 /// detached `spawn`; and then, for each writer either search yields, follow
324 /// the ACTUAL route from the wake to the append and confirm the named gate
325 /// sits on it. Not to re-read this sentence and find it plausible.
326 fn drop(&mut self) {
327 if let Some(task) = &self.visibility_reconciliation_task {
328 task.abort();
329 }
330 // The workloop sweep task is a SIXTH durable writer on the host
331 // runtime (its sink appends CadenceFired/InvariantUnconfirmed through
332 // loop Recorders), added to the enumeration above the way that doc
333 // demands: it is stopped here and in `Engine::shutdown`, exactly like
334 // the visibility reconciliation loop, because the engine-task epoch
335 // gate cannot reach it.
336 if let Some(workloop) = &self.workloop {
337 workloop.stop();
338 }
339 self.runtime.nif_state().shutdown_timer_wheel();
340 self.runtime.engine_tasks().shutdown();
341 }
342}
343
344/// Components required to construct an [`Engine`].
345pub(crate) struct EngineComponents {
346 pub(crate) store: Arc<dyn EventStore>,
347 pub(crate) visibility_store: Arc<dyn VisibilityStore>,
348 pub(crate) runtime: Arc<RuntimeHandle>,
349 pub(crate) catalog: Arc<WorkflowCatalog>,
350 pub(crate) registry: Arc<Registry>,
351 pub(crate) supervision: Arc<SupervisionTree>,
352 pub(crate) delegated: DelegatedSeams,
353 pub(crate) signal_handoff: Arc<SignalResumeHandoff>,
354 pub(crate) search_attribute_schema: Arc<SearchAttributeSchema>,
355 pub(crate) visibility_reconciliation_task: Option<JoinHandle<()>>,
356 /// `Some` when the builder deferred startup recovery (#266): the stowed
357 /// recovery inputs [`Engine::run_startup_recovery`] consumes. `None` when
358 /// `build()` ran recovery itself, as it does by default.
359 pub(crate) deferred_startup_recovery: Option<super::startup_deferred::DeferredStartupRecovery>,
360 /// The assembled workloop machinery, when the builder configured it.
361 pub(crate) workloop: Option<super::api_workloop::WorkloopEngineRuntime>,
362}
363
364impl Engine {
365 /// Construct an engine from already-assembled components.
366 #[must_use]
367 pub(crate) fn new(components: EngineComponents) -> Self {
368 let EngineComponents {
369 store,
370 visibility_store,
371 runtime,
372 catalog,
373 registry,
374 supervision,
375 delegated,
376 signal_handoff,
377 search_attribute_schema,
378 visibility_reconciliation_task,
379 deferred_startup_recovery,
380 workloop,
381 } = components;
382 let schedule_coordinator_workflow_id = schedule_coordinator_workflow_id();
383 let schedule_recorder = Arc::new(AsyncMutex::new(Recorder::new(
384 schedule_coordinator_workflow_id.clone(),
385 Arc::clone(&store),
386 )));
387 let runtime_arc = runtime;
388 let registry_arc = registry;
389 let supervision_arc = supervision;
390 let schedule_evaluator = Arc::new(AsyncMutex::new(default_schedule_evaluator(
391 schedule_coordinator_workflow_id.clone(),
392 Arc::clone(&schedule_recorder),
393 ScheduleRuntimeDeps {
394 store: Arc::clone(&store),
395 visibility_store: Arc::clone(&visibility_store),
396 runtime: Arc::clone(&runtime_arc),
397 catalog: Arc::clone(&catalog),
398 registry: Arc::clone(®istry_arc),
399 supervision: Arc::clone(&supervision_arc),
400 search_attribute_schema: Arc::clone(&search_attribute_schema),
401 },
402 )));
403 Self {
404 store,
405 visibility_store,
406 schedule_recorder,
407 schedule_evaluator,
408 schedule_coordinator_workflow_id,
409 runtime: runtime_arc,
410 catalog,
411 registry: registry_arc,
412 supervision: supervision_arc,
413 delegated,
414 signal_handoff,
415 search_attribute_schema,
416 shutdown_gate: ShutdownGate::default(),
417 deploy_mutations: AsyncMutex::new(()),
418 visibility_reconciliation_task,
419 deferred_startup_recovery: super::startup_deferred::DeferredRecoverySlot::from_build(
420 deferred_startup_recovery,
421 ),
422 paused_runs: crate::lifecycle::PausedRuns::default(),
423 workloop,
424 }
425 }
426
427 /// Advance the schedule coordinator's recorder head to match persisted
428 /// events so that a rebuilt engine resumes appending at the correct
429 /// sequence rather than conflicting at head 0.
430 ///
431 /// # Errors
432 ///
433 /// Returns store read errors.
434 pub(crate) async fn catchup_schedule_coordinator(&self) -> Result<(), EngineError> {
435 let history = self
436 .store
437 .read_history(&self.schedule_coordinator_workflow_id)
438 .await?;
439 let head = u64::try_from(history.len()).unwrap_or(u64::MAX);
440 if head > 0 {
441 let mut recorder = self.schedule_recorder.lock().await;
442 *recorder = Recorder::resume_at(
443 self.schedule_coordinator_workflow_id.clone(),
444 Arc::clone(&self.store),
445 head,
446 );
447 }
448 Ok(())
449 }
450
451 /// Event store used by lifecycle and delegated AD/AT operations.
452 #[must_use]
453 pub fn store(&self) -> Arc<dyn EventStore> {
454 Arc::clone(&self.store)
455 }
456
457 /// Visibility store used for workflow summary projections.
458 #[must_use]
459 pub fn visibility_store(&self) -> Arc<dyn VisibilityStore> {
460 Arc::clone(&self.visibility_store)
461 }
462
463 /// Runtime boundary assembled for this engine.
464 #[must_use]
465 pub fn runtime(&self) -> &RuntimeHandle {
466 &self.runtime
467 }
468
469 /// Shared workflow package catalog: loaded versions and routing.
470 #[must_use]
471 pub fn workflow_catalog(&self) -> &Arc<WorkflowCatalog> {
472 &self.catalog
473 }
474
475 /// Active execution registry.
476 #[must_use]
477 pub fn registry(&self) -> &Registry {
478 &self.registry
479 }
480
481 /// Supervision tree snapshot/model.
482 #[must_use]
483 pub fn supervision(&self) -> &SupervisionTree {
484 &self.supervision
485 }
486
487 /// Delegated signal/query/subscribe seams installed for AT/AD integration.
488 #[must_use]
489 pub const fn delegated(&self) -> &DelegatedSeams {
490 &self.delegated
491 }
492
493 /// Shared in-memory handoff for already-recorded non-resident signals.
494 #[must_use]
495 pub fn signal_handoff(&self) -> Arc<SignalResumeHandoff> {
496 Arc::clone(&self.signal_handoff)
497 }
498
499 /// Absorb a dead peer's distribution shards into this LIVE engine and resume
500 /// their orphaned workflows — the SS-5 failover entry point.
501 ///
502 /// This is the production failover step a cluster supervisor invokes when it
503 /// observes a peer gone (membership loss). It is the post-boot counterpart to
504 /// the boot path's `EngineBuilder::owned_shards` election + recovery, run
505 /// against an already-running engine:
506 ///
507 /// 1. **Elect + union-merge.** `acquire_owned_shards` wins the per-shard
508 /// election for each `shards` entry (fencing the dead owner) and
509 /// `become_live` union-merges that shard's committed history locally, so
510 /// every event the dead node had quorum-committed is now present on this
511 /// node. The election is blocking and runs off the tokio runtime inside the
512 /// store seam, honouring haematite's no-blocking-election-in-async
513 /// constraint, so this `async` method may call it directly.
514 /// 2. **Widen the scope.** `extend_owned_shards` unions `shards` into this
515 /// node's owned-enumeration set so the adopted workflows, timers, and
516 /// outbox rows become visible to enumeration WITHOUT dropping this node's
517 /// own shards.
518 /// 3. **Publish ownership.** `publish_shard_owner` records this node as each
519 /// adopted shard's current owner in the cluster's quorum-replicated
520 /// shard-owner directory (SS-3), so a request reaching a DIFFERENT survivor
521 /// routes to this adopter rather than mis-resolving to the dead declared
522 /// owner. The publish is fenced by the election just won, so only the true
523 /// adopter writes it; a non-distributed store no-ops it.
524 /// 4. **Re-resident.** Re-run the idempotent active-workflow recovery and
525 /// timer recovery, which re-spawn every adopted workflow from the
526 /// union-merged history through the same production recovery seam the boot
527 /// path uses, skipping the workflows this node already owns.
528 ///
529 /// Detection of the peer's death is the CALLER's responsibility (a cluster
530 /// supervisor / membership-loss trigger); this method performs the
531 /// re-acquisition and resume once that decision is made. It is idempotent:
532 /// adopting a shard this node already serves re-acquires (a no-op on the
533 /// fence it already holds) and recovers nothing new.
534 ///
535 /// # Errors
536 ///
537 /// Returns [`EngineError::ShuttingDown`] after shutdown begins, store errors
538 /// from the election / union-merge ([`EngineError::Durability`]), and any
539 /// typed recovery error from re-residenting an adopted workflow.
540 pub async fn adopt_shards(&self, shards: &[usize]) -> Result<(), EngineError> {
541 let operation = self.shutdown_gate.begin_start()?;
542 let result = self.adopt_shards_inner(shards).await;
543 drop(operation);
544 result
545 }
546
547 /// Body of [`Self::adopt_shards`]: acquire+publish each shard as a UNIT under
548 /// the double-adoption fence (ADR-021 clean-partial), then widen scope and
549 /// recover over EXACTLY the shards that survived BOTH steps.
550 ///
551 /// ## Ordering invariant (the fix)
552 ///
553 /// For each shard the publish-fence happens BEFORE the shard contributes to
554 /// `extend_owned_shards` AND before it is recovered. The pre-fix order
555 /// (extend → publish) let a survivor that won the election but was then
556 /// deposed at publish-time still widen its scope and recover the shard, so two
557 /// survivors could both execute its workflows. Here, a `NotOwner` from EITHER
558 /// `acquire_owned_shard` OR `publish_shard_owner` DROPS that shard: it never
559 /// reaches `extend_owned_shards`, is never recovered, and is NEVER a hard
560 /// `Durability` error. A deposed survivor therefore leaves ZERO widened
561 /// owned-shards scope and recovers nothing.
562 async fn adopt_shards_inner(&self, shards: &[usize]) -> Result<(), EngineError> {
563 // 1-3. Drive the double-adoption fence in the FIXED order (acquire →
564 // publish per shard as a UNIT, then re-assert ownership and widen the
565 // enumeration scope ONCE) and learn which shards survived it. A shard
566 // deposed at acquire OR publish (or in the residual window) is dropped
567 // cleanly — never extended, never recovered, never a hard error. The
568 // planner GUARANTEES each survivor's publish-fence precedes both the
569 // scope widening and (below) recovery. A single-node store no-ops
570 // every step, so this path stays byte-identical there.
571 // The returned survivor set is already reflected in the store's widened
572 // owned-shard scope (the planner's single `extend`), which is what recovery
573 // enumerates over; the value is bound only to make that contract explicit.
574 let _recoverable = super::fence::plan_adopted_shards(
575 &super::fence::StoreFenceSeam {
576 store: &*self.store,
577 },
578 shards,
579 )?;
580 // 3b. Rebuild the pause dispatch-hold for the newly-adopted shards (#204).
581 // The fence above widened the owned-shard scope, so `list_paused` now
582 // sees the adopted shards' durably-`Paused` runs. `extend` (not replace)
583 // preserves the holds for shards this node already owned. A run paused on
584 // an adopted shard keeps its outbox rows held after failover; without this
585 // the adopting node's dispatcher would claim and dispatch them. A store
586 // error is logged, not fatal: the adoption itself is durable and the next
587 // startup/rebuild repopulates the hold.
588 match self.store.list_paused().await {
589 Ok(paused) => self.paused_runs.extend(paused),
590 Err(error) => {
591 tracing::warn!(%error, "failed to rebuild paused-runs dispatch hold at shard adoption");
592 }
593 }
594 // 4. Re-resident the adopted workflows through the production recovery
595 // seam (idempotent: this node's own workflows are skipped). Recovery
596 // enumerates over the owned scope, which now contains only shards that
597 // survived the fence.
598 super::startup::recover_adopted_shards(super::startup::StartupRecoveryContext {
599 store: Arc::clone(&self.store),
600 visibility_store: Arc::clone(&self.visibility_store),
601 runtime: Arc::clone(&self.runtime),
602 catalog: Arc::clone(&self.catalog),
603 registry: Arc::clone(&self.registry),
604 supervision: Arc::clone(&self.supervision),
605 recovery: None,
606 search_attribute_schema: Arc::clone(&self.search_attribute_schema),
607 bootstrap_schedule_coordinator: false,
608 })
609 .await?;
610 // 5. Re-arm durable timers for the adopted workflows — the SAME step the
611 // boot path runs after `recover_active_workflows_on_startup` (see
612 // `EngineBuilder::build`). This is LOAD-BEARING for a workflow PARKED on
613 // a durable timer (#119): step 4 replays it and re-parks it, but the
614 // replay of a not-yet-fired sleep does NOT re-arm the live wheel (only a
615 // first, non-replay arrival does — see `nif_timer::sleep`'s `ResumeLive`
616 // branch). Without this call the adopted workflow stays parked forever:
617 // the recovery sweep fires already-expired timers and the startup
618 // sweep's re-arm pass (`TimerRecovery::recover_on_startup`) re-arms
619 // still-future ones onto the now-resident process. Removing it reproduces the #119 symptom (a
620 // survivor adopts the shard but the parked timer never reaches the
621 // resumed workflow). Guarded by `tests/adoption_parked_timer_e2e.rs`
622 // (single-process) and `tests/adoption_parked_timer_xnode_e2e.rs`
623 // (real cross-node failover).
624 super::startup::recover_timers_on_startup(self.runtime.nif_state(), Arc::clone(&self.store))
625 .await
626 }
627
628 /// Gracefully stop accepting new starts and shut down the embedded runtime.
629 ///
630 /// # Errors
631 ///
632 /// Returns registry poison or runtime shutdown failures as typed errors.
633 pub fn shutdown(&self) -> Result<(), EngineError> {
634 if let Some(task) = &self.visibility_reconciliation_task {
635 task.abort();
636 }
637 // The workloop sweep task is a durable writer on the host runtime,
638 // outside the engine-task epoch's reach: stop it here, first, for the
639 // same reason the reconciliation loop is aborted first.
640 if let Some(workloop) = &self.workloop {
641 workloop.stop();
642 }
643 // 🔴 THE EPOCH CLOSES FIRST, BEFORE ANY WAIT.
644 //
645 // The first cut put the unconditional close in `RuntimeHandle::shutdown`
646 // — one level BELOW the call the shipped server actually makes — and
647 // left this function short-circuiting above it. Two ways that lost the
648 // property it was written to guarantee:
649 //
650 // 1. `close_and_wait` returns `Err` on registry poison, so `?` here
651 // returned before the epoch was ever gated and completion retries
652 // stayed armed.
653 // 2. `close_and_wait` is a condvar wait with NO timeout. A lifecycle
654 // operation stuck on a degraded store — precisely the condition
655 // that arms completion retries in the first place — blocks this
656 // function indefinitely, and the operator reasonably concludes the
657 // node is wedged and brings up a successor while this process is
658 // still appending terminals.
659 //
660 // Gating costs nothing, cannot fail, and is idempotent. Doing it first
661 // means no path through this function leaves retries armed. Everything
662 // after is teardown that still needs to run.
663 //
664 // 🔴 WHAT THIS ORDERING COSTS, STATED WHERE THE ORDERING IS CHOSEN.
665 // Process-exit callbacks are still admitted for the whole span between
666 // this line and `process_exits.begin_shutdown()` below, and the
667 // completion path refuses every one of them because the epoch is
668 // already closed. A run exiting in that window records no terminal and
669 // stays `Running` in the store, with one `error!` line naming it. The
670 // span is UNBOUNDED — `close_and_wait` is a condvar wait with no
671 // timeout — and it is longest under exactly the degraded-store
672 // condition the completion retries exist for. That window is the price
673 // of the two properties above and is argued in full at the refusal site
674 // (`lifecycle::completion`, at `refuse_if_epoch_closed`); it is
675 // repeated here because a reader deciding to move this line would
676 // otherwise not know a cost had been accepted.
677 self.runtime.engine_tasks().begin_close();
678 // Every step below runs on every path, and the FIRST error is returned
679 // at the end. A `?` here would skip the timer-wheel shutdown and the
680 // seam clearing, whose consequences are spelled out at their own call
681 // sites — an orphaned wheel task racing a survivor's adoption timer, and
682 // a durable backend's writer lock held past shutdown. Neither is
683 // something to trade for reporting an earlier error sooner.
684 //
685 // 🔴 THE SEAM CLEARING IS THE HALF WITH NO BACKSTOP, AND THAT IS THE
686 // WHOLE REASON. An earlier revision said `Drop for Engine` "backstops
687 // neither", which stopped being true in this same file when `Drop`
688 // gained `shutdown_timer_wheel` (see it above) — so the wheel half IS
689 // backstopped, and a reader checking only that half would conclude the
690 // `?` costs nothing. It does: `clear_engine_seams` runs from
691 // `Engine::shutdown` and NOWHERE else, by design — it may only run once
692 // the scheduler has stopped and both epochs are closed, which `Drop`
693 // cannot establish. Skip it and the `RuntimeHandle` ↔ `EngineNifState`
694 // cycle is never broken, so every store clone reached through the seams
695 // outlives the process's interest in them and a durable backend's
696 // cross-process writer lock is held until exit.
697 //
698 // 🔴 THE THIRD COST, STATED BECAUSE EVERY OTHER ONE IN THIS FUNCTION IS.
699 // `ShutdownGate::close_and_wait` returns `Err` on exactly one condition
700 // — mutex poison — and continuing past it means the gate's DRAIN
701 // guarantee is skipped, not merely its error deferred: a lifecycle
702 // operation admitted before the poison may still be in flight when
703 // `runtime.shutdown()` stops the scheduler and `clear_engine_seams()`
704 // nulls the seam slots. That is not a memory hazard (the slots are
705 // `Option`-shaped and a NIF reading a cleared one gets a typed error),
706 // and no NEW operation can be admitted either, because `begin_start`
707 // and `begin_operation` share the same poisoned `state()`. What is lost
708 // is the promise that nothing was still running when teardown began.
709 // Accepted for the same reason as the rest: the alternative is skipping
710 // the seam clearing, which is unbacked-up and permanent.
711 let mut first_error: Option<EngineError> = None;
712 // Scoped so the closure's unique borrow of `first_error` visibly ends
713 // before the value is read. (`drop(closure)` would end it just as
714 // surely — this crate is edition 2024, and under NLL a borrow ends at
715 // its last use — so this is a readability choice, not a soundness one.
716 // An earlier revision of this comment argued the opposite and was
717 // describing pre-NLL lexical scoping.)
718 {
719 // 🔴 THE SECOND ERROR IS REPORTED, NOT DISCARDED. Only one
720 // `EngineError` can be returned, but accumulate-and-continue means
721 // more than one step can fail — and at HEAD that could not happen
722 // at all, because `?` meant a later step never ran. Keeping only
723 // the first and dropping the rest would trade a skipped teardown
724 // for a swallowed failure, which is the same defect wearing the
725 // other hat: an operator seeing `RegistryPoisoned` would have no
726 // signal that the runtime teardown ALSO failed. Each subsequent
727 // failure is emitted at `error` level with the position that made
728 // it subsequent, so the log carries what the return value cannot.
729 let mut failed_steps = 0_u32;
730 let mut keep = |step: &'static str, result: Result<(), EngineError>| {
731 if let Err(error) = result {
732 failed_steps += 1;
733 if first_error.is_none() {
734 first_error = Some(error);
735 } else {
736 tracing::error!(
737 step,
738 failed_steps,
739 error = %error,
740 "a further engine-shutdown step failed after an earlier one; only \
741 the first failure can be returned, so this one is reported here"
742 );
743 }
744 }
745 };
746 keep(
747 "shutdown_gate.close_and_wait",
748 self.shutdown_gate.close_and_wait(),
749 );
750 // Epoch close for engine background tasks (F4): every watcher,
751 // spawn-recovery task and process-exit completion retry is aborted AND
752 // awaited to quiescence — a task still mid-record after shutdown could
753 // double-write a history a successor engine over the same store also
754 // records into. Arming is additionally gated inside the task registry
755 // the moment shutdown begins.
756 //
757 // `runtime.shutdown()` performs that close itself, because the
758 // completion retry is a core lifecycle path and its epoch close must not
759 // depend on whether an optional bridge was installed. The bridge call
760 // that follows is idempotent and kept only so an installed bridge
761 // participates explicitly.
762 keep("runtime.shutdown", self.runtime.shutdown());
763 }
764 self.runtime.nif_state().shutdown_engine_tasks();
765 // Abort armed live-wheel timer tasks (#119): they run on the tokio
766 // runtime, not the beamr scheduler, so `runtime.shutdown()` does not
767 // reach them. A timer this engine armed must NOT fire after the engine
768 // has stopped owning the workflow — otherwise, across a failover, the
769 // dead owner's orphaned wheel task races the survivor's adoption-armed
770 // timer and can record the one durable `TimerFired` first, leaving the
771 // survivor's resident sleeper parked forever.
772 self.runtime.nif_state().shutdown_timer_wheel();
773 // Break the RuntimeHandle <-> EngineNifState reference cycle (see
774 // EngineNifState::clear_engine_seams). The engine-scoped NIF seams each
775 // hold an Arc back to the runtime and/or clones of the event store and
776 // registry; without releasing them here the runtime, its NIF state, and
777 // every store clone they reach would outlive the dropped Engine
778 // forever, keeping a durable backend's writer lock held past shutdown.
779 // Safe now: the scheduler has stopped and the child-task and timer-wheel
780 // epochs have closed, so no NIF or background task can still read a slot.
781 self.runtime.nif_state().clear_engine_seams();
782 match first_error {
783 Some(error) => Err(error),
784 None => Ok(()),
785 }
786 }
787}
788
789pub(crate) fn terminal_outcome_from_history(events: &[Event]) -> Option<TerminalOutcome> {
790 // Reset-aware via the shared single-source predicate: the current lease's
791 // terminal event, where a reopen (WorkflowReopened) supersedes any earlier
792 // terminal.
793 match aion_core::current_lease_terminal(events)? {
794 Event::WorkflowCompleted { result, .. } => Some(TerminalOutcome::Completed(result.clone())),
795 Event::WorkflowFailed { error, .. } => Some(TerminalOutcome::Failed(error.clone())),
796 Event::WorkflowCancelled { reason, .. } => Some(TerminalOutcome::Cancelled(reason.clone())),
797 Event::WorkflowTimedOut { timeout, .. } => Some(TerminalOutcome::TimedOut(timeout.clone())),
798 Event::WorkflowContinuedAsNew {
799 input,
800 workflow_type,
801 parent_run_id,
802 ..
803 } => Some(TerminalOutcome::ContinuedAsNew {
804 input: input.clone(),
805 workflow_type: workflow_type.clone(),
806 parent_run_id: parent_run_id.clone(),
807 }),
808 _ => None,
809 }
810}
811
812pub(crate) fn workflow_not_found(id: &WorkflowId, run: &RunId) -> EngineError {
813 EngineError::WorkflowNotFound {
814 workflow_type: format!("{id}/{run}"),
815 }
816}
817
818#[cfg(test)]
819mod api_tests;