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aion_server/
run.rs

1//! Run loop for the Aion workflow server: tracing initialization,
2//! configuration load, transport startup, and signal-driven graceful
3//! shutdown.
4//!
5//! This is the library entry point behind the `aion server` command. It
6//! preserves the operational contract of the former standalone
7//! `aion-server` binary: exit code 2 for configuration errors, the drain
8//! outcome's exit code on shutdown, and 130 when a second termination
9//! signal forces immediate exit.
10
11use std::{net::SocketAddr, process::ExitCode};
12
13use tokio::net::TcpListener;
14use tonic::transport::Server as TonicServer;
15use tracing::{error, info, warn};
16
17use std::sync::Arc;
18
19use crate::{
20    ServerConfig, ServerError, ServerState, api,
21    config::{CliOverrides, NamespaceMode, OutboxConfig, OutboxTransport, StoreBackend},
22    observability,
23    shutdown::{self, ShutdownOutcome},
24    worker::{
25        ActivityDispatcher, DeliveryGate, OutboxDeliveryCallback, OutboxDispatcher,
26        OutboxDispatcherConfig, OutboxReconciler, OutboxReconcilerConfig, OutboxRowDispatch,
27        ServerOutboxDeliveryCallback, WorkerOutboxDispatch,
28    },
29};
30
31/// Short TTL for the dispatcher's per-namespace placement cache (Control-Plane
32/// Phase 2, P2-P3). Kept small so an operator's `PUT /namespaces/{name}/placement`
33/// takes effect on the hot claim loop within a couple of seconds, while still
34/// collapsing a per-sweep quorum `get_namespace` into a cheap in-process lookup.
35/// A stale entry under `Prefer` only mis-prefers a worker for at most one window
36/// and self-corrects — it never affects correctness or replay.
37const PLACEMENT_CACHE_TTL: std::time::Duration = std::time::Duration::from_secs(2);
38
39/// Short TTL for the dispatcher's per-namespace quota cache (Control-Plane Phase 2,
40/// P2-Q2). Kept small so an operator raising/lowering a tenant's
41/// `max_in_flight_activities` takes effect on the hot claim loop within a couple of
42/// seconds, while still collapsing a per-sweep quorum `get_namespace` into a cheap
43/// in-process lookup. A stale entry only over- or under-admits slightly for one
44/// window and self-corrects — backpressure never drops a row, so it cannot affect
45/// correctness or replay.
46const QUOTA_CACHE_TTL: std::time::Duration = std::time::Duration::from_secs(2);
47
48/// Cadence of the ops-console quota-state broadcaster (Control-Plane Phase 2,
49/// P2-Q3). Each tick samples every registry namespace's durable Claimed-row count
50/// and cluster-wide ceiling, then pushes one `NamespaceQuotaState` per namespace
51/// onto the cluster channel, so the console badge tracks live load. Kept at 1s:
52/// brisk enough that the badge visibly ticks as work flows, throttled enough that
53/// it is never a per-row firehose (in-flight changes on every claim/settle). It is
54/// a server-side push on a timer, NOT a client poll — the dashboard rule bans the
55/// latter, not a throttled server snapshot of REAL durable state.
56const QUOTA_BROADCAST_CADENCE: std::time::Duration = std::time::Duration::from_secs(1);
57
58/// Resolved keyed-backpressure inputs for the outbox dispatcher (Control-Plane
59/// Phase 2, P2-Q2): the generous platform-default ceiling and this node's
60/// owned-shard fraction of the cluster shard space.
61#[derive(Clone, Copy, Debug)]
62struct BackpressureSettings {
63    /// The `[namespaces] max_in_flight_activities` platform default, applied to any
64    /// namespace carrying no explicit per-tenant override.
65    platform_default: u32,
66    /// This node's owned-shard fraction of the cluster's virtual shard space,
67    /// derived from `[store] owned_shards` and `[store] shard_count`.
68    fraction: crate::worker::OwnedShardFraction,
69}
70
71impl BackpressureSettings {
72    /// Derive the backpressure inputs from the merged server config.
73    ///
74    /// An empty `[store] owned_shards` means own-all (the single-node default), so
75    /// the fraction is 1 and per-node ceilings equal the cluster-wide quota. A
76    /// declared owned set enforces the proportional per-node slice
77    /// `|owned| / shard_count` (CP-Phase-2 §3.6).
78    fn from_config(config: &ServerConfig) -> Self {
79        let total = u32::try_from(config.store.shard_count).unwrap_or(u32::MAX);
80        let fraction = if config.store.owned_shards.is_empty() {
81            crate::worker::OwnedShardFraction::own_all()
82        } else {
83            let owned = u32::try_from(config.store.owned_shards.len()).unwrap_or(u32::MAX);
84            crate::worker::OwnedShardFraction::new(owned, total)
85        };
86        Self {
87            platform_default: config.namespaces.max_in_flight_activities,
88            fraction,
89        }
90    }
91}
92
93/// Owns the liminal worker listener for the server's lifetime when the outbox is
94/// commissioned over the liminal transport.
95///
96/// The aion-server HOSTS the liminal listener that remote workers connect IN to;
97/// its inner [`ServerListener`](liminal_server::server::listener::ServerListener)
98/// owns the accept worker. Held as a local in [`run_server`] across the whole
99/// serve `select!`, so it is dropped exactly at server shutdown — and the
100/// listener's own `Drop` stops the accept worker cleanly (no leaked thread, no
101/// orphaned listener). Every non-liminal boot (the default) carries the `None`
102/// guard, which holds nothing and drops to a no-op, so behaviour is unchanged.
103#[derive(Debug, Default)]
104struct OutboxWorkerListener {
105    /// Held purely for its `Drop` side-effect (stopping the accept worker on
106    /// server shutdown); never read after construction, hence the leading
107    /// underscore.
108    #[cfg(feature = "liminal-transport")]
109    _inner: Option<liminal_server::server::listener::ServerListener>,
110}
111
112/// Run the Aion workflow server until it shuts down, returning the process
113/// exit code.
114///
115/// Initializes the JSON tracing subscriber, loads and validates the merged
116/// configuration (file, environment, then `overrides`), serves the gRPC and
117/// HTTP transports, and drains gracefully after the first termination
118/// signal. Every failure is logged through tracing and mapped to the exit
119/// code contract above; the caller only has to exit with the returned code.
120pub async fn run(overrides: CliOverrides) -> ExitCode {
121    match run_server(overrides).await {
122        Ok(code) => code,
123        Err(error) => {
124            error!(%error, "aion-server failed");
125            if error.is_config() {
126                ExitCode::from(2)
127            } else {
128                ExitCode::FAILURE
129            }
130        }
131    }
132}
133
134async fn run_server(cli: CliOverrides) -> Result<ExitCode, ServerError> {
135    observability::tracing::init()?;
136
137    let loaded = ServerConfig::load_resolved(&cli)?;
138    loaded.resolution.ensure_private_home()?;
139    loaded.resolution.log_startup();
140    let config = loaded.config;
141    reject_auth_without_feature(&config)?;
142    let store_backend = config.store.backend;
143    // Static shard assignment (SS-1): read the operator's pinned shard set from
144    // `[store] owned_shards`. Empty means own ALL shards (single-node default).
145    // The set is carried into `RuntimeConfig` by `into_parts` and applied to the
146    // `EngineBuilder` during state construction; surface it here so the boot
147    // banner records which shards this node serves. No election is performed.
148    let owned_shards = config.store.owned_shards.clone();
149    // Capture the outbox settings before `build` consumes `config`, so the
150    // (default-off) outbox dispatcher can be wired after state is up. The
151    // dispatcher shares the engine's already-opened libSQL store (one
152    // connection) via `state.outbox_store()`, so no store settings are needed.
153    let outbox_config = config.outbox.clone();
154    // Control-Plane Phase 2 (P2-Q2): capture the keyed-backpressure inputs — the
155    // generous platform-default ceiling and this node's owned-shard fraction —
156    // before `build` consumes `config`. On a single-node / own-all boot the fraction
157    // is 1, so per-node ceilings equal the cluster-wide quota and, with the generous
158    // default and no tenant override, the ceiling never engages (byte-identical claim).
159    let backpressure_settings = BackpressureSettings::from_config(&config);
160    // Capture the SS-5b failover supervisor knobs before `build` consumes config.
161    // Only a distributed haematite boot carries a `[store.cluster]` section; this
162    // is `None` for every single-node boot, so no supervisor is ever spawned.
163    #[cfg(feature = "haematite-backend")]
164    let cluster_config = config.store.cluster.clone();
165    // Capture the managed-worker supervision policy before `build` consumes
166    // `config`. Resolution already happened during config validation, so this
167    // cannot surprise an operator at boot; it is re-read here because the
168    // policy is COMMISSIONED onto the supervisor built into state below, and a
169    // server without the section supervises nothing.
170    let supervision_policy = config.worker_supervision.resolve()?;
171    let state = ServerState::build(config).await?;
172    reject_tls_until_supported(&state)?;
173
174    let runtime = state.runtime_config();
175    let grpc_address = runtime.listen.grpc;
176    let http_address = runtime.listen.http;
177    let workflow_packages: Vec<String> = runtime
178        .workflow_packages
179        .iter()
180        .map(|path| path.display().to_string())
181        .collect();
182    // The revision, not just the version. A crate version cannot distinguish
183    // two builds from different commits of the same version, and that is the
184    // distinction an operator needs when deciding whether a restart restores
185    // what was running or substitutes something else (#123). The endpoint
186    // answers this too, but a crashed server leaves only its log.
187    let build = crate::build_identity::BuildIdentity::current();
188    // #139: the server-resolved workspace root (the aion home's `clones/`
189    // directory) that declared bodies expand `{workspace_root}` with. Reported
190    // here so composition points (setup.sh today, the workspace verb later)
191    // READ the value from the server that will use it instead of re-deriving
192    // it. An unresolvable root is reported as exactly that — never fabricated;
193    // a placeholder-bearing dispatch will refuse terminally with this reason.
194    // The rendering itself is `WorkspaceRoot::banner_value`, pinned by its own
195    // two-case test, so the banner and the tests cannot drift apart.
196    let workspace_root = state.workspace_root().banner_value();
197    info!(
198        version = env!("CARGO_PKG_VERSION"),
199        build = %build.line(),
200        commit = build.commit,
201        grpc_address = %grpc_address,
202        http_address = %http_address,
203        default_namespace = %runtime.default_namespace,
204        namespace_mode = namespace_mode_label(&runtime.namespace.mode),
205        store_backend = store_backend_label(store_backend),
206        auth_enabled = runtime.auth.enabled,
207        deploy_enabled = runtime.deploy.enabled,
208        metrics_enabled = runtime.metrics.enabled,
209        workspace_root = %workspace_root,
210        workflow_package_count = workflow_packages.len(),
211        workflow_packages = ?workflow_packages,
212        owned_shards = ?owned_shards,
213        owns_all_shards = owned_shards.is_empty(),
214        "aion-server startup banner"
215    );
216    // #139 leg C: the assistant ships IN aion. The embedded document is
217    // installed here — after the engine has reloaded every persisted package,
218    // so the install can see what is already resident, and before the
219    // transports accept traffic, so the first caller finds it. It claims only a
220    // catalog holding no version of the assistant type; anything else is the
221    // operator's cut to make, and the outcome says so in the log either way.
222    crate::assistant::install_embedded_assistant_for_server(&state).await;
223    let (shutdown_tx, shutdown_rx) = tokio::sync::watch::channel(false);
224    // LSUB-4-1: a distributed haematite boot carries a `[store.cluster]` section.
225    // The single outbox dispatcher task is spawned in BOTH modes; the difference
226    // is only how ownership is enforced. Single-node (`None`) owns all shards by
227    // construction (`owned_shard_scope() == None`), so its claim sweeps see every
228    // row. Clustered (`Some`) relies on `claim_outbox_rows`' `owned_shard_scope()`
229    // filter — already seeded by `set_owned_shards` during `ServerState::build`,
230    // which runs before this point — so each node only ever claims rows on the
231    // shards it owns. Compute the flag here where the (feature-gated) cluster
232    // section is in scope; pass it to the gate so the boot banner records the mode.
233    #[cfg(feature = "haematite-backend")]
234    let outbox_clustered = cluster_config.is_some();
235    #[cfg(not(feature = "haematite-backend"))]
236    let outbox_clustered = false;
237    // Dormant by default: only when `outbox.enabled` is set does the
238    // non-replayed outbox dispatcher task start. With the flag off (the
239    // default) nothing here runs and server behaviour is unchanged.
240    // Hold the liminal worker listener (if any) for the server's lifetime: it is
241    // dropped at the end of `run_server`, after the serve `select!` completes, so
242    // its accept worker stops cleanly on shutdown via the listener's own `Drop`.
243    // #204/#253: rebuild the pause dispatch-hold and settle terminal
244    // workflows' stranded outbox rows BEFORE the dispatcher's first claim.
245    rebuild_outbox_boot_state(&state, &outbox_config).await;
246    let _outbox_worker_listener = maybe_spawn_outbox_dispatcher(
247        &state,
248        &outbox_config,
249        outbox_clustered,
250        backpressure_settings,
251        &shutdown_rx,
252    )?;
253    // SS-5b: a distributed boot whose peers declare owned shards runs the cluster
254    // supervisor — automatic failover detection. A single-node boot spawns
255    // nothing here (the method returns `false`), so default behaviour is
256    // unchanged.
257    #[cfg(feature = "haematite-backend")]
258    maybe_spawn_cluster_supervisor(&state, cluster_config.as_ref(), &shutdown_rx)?;
259    // #176: the worker heartbeat expiry sweeper is ALWAYS commissioned —
260    // dead-worker detection is a liveness correctness property, not an opt-in
261    // feature. It is the production caller of `fail_expired_workers`: a worker
262    // whose stream stays open while its process wedges (stops heartbeating
263    // without disconnecting) is expired, deregistered with the provable Timeout
264    // reason, and its in-flight tasks surface as TRANSPORT losses, re-dispatched
265    // attempt-neutrally rather than charged to the action's retry budget.
266    // Cadence derives from `worker.heartbeat_window` (quarter-window, clamped to
267    // [1s, window]; the default 30s window sweeps every 7.5s) — deliberately no
268    // separate config knob. It drains on the same shutdown watch as the
269    // transports; dropping the JoinHandle only detaches the task.
270    drop(state.spawn_heartbeat_sweeper(shutdown_rx.clone()));
271    commission_worker_supervision(&state, supervision_policy).await;
272    let mut grpc = tokio::spawn(serve_grpc(state.clone(), grpc_address, shutdown_rx.clone()));
273    let mut http = tokio::spawn(serve_http(state.clone(), http_address, shutdown_rx));
274
275    let outcome = tokio::select! {
276        result = &mut grpc => {
277            transport_result("gRPC", result)?;
278            state.shutdown()?;
279            ShutdownOutcome::Clean
280        },
281        result = &mut http => {
282            transport_result("HTTP", result)?;
283            state.shutdown()?;
284            ShutdownOutcome::Clean
285        },
286        result = shutdown_signal() => {
287            result?;
288            let _receiver_count = shutdown_tx.send(true);
289            let outcome = shutdown::drain_after_first_signal(state.clone(), async {
290                let _ = shutdown_signal().await;
291            }).await?;
292            if !matches!(outcome, ShutdownOutcome::Forced) {
293                transport_result("gRPC", grpc.await)?;
294                transport_result("HTTP", http.await)?;
295            }
296            outcome
297        },
298    };
299
300    Ok(outcome.exit_code())
301}
302
303/// Install the operator's supervision policy and converge the fleet.
304///
305/// Uncommissioned is a first-class but never SILENT state: a server with no
306/// `[worker_supervision]` section supervises nothing, and every deployment that
307/// wanted to be running is named in the warning, so the gap between "the
308/// operator deployed a worker" and "nothing is running it" is never quiet.
309async fn commission_worker_supervision(
310    state: &ServerState,
311    policy: Option<crate::worker::SupervisionPolicy>,
312) {
313    let supervisor = state.worker_supervisor();
314    let Some(policy) = policy else {
315        match supervisor.report().await {
316            Ok(report) => {
317                let wanted: Vec<&str> = report
318                    .workers
319                    .iter()
320                    .filter(|worker| worker.desired == aion_store::DesiredState::Running)
321                    .map(|worker| worker.name.as_str())
322                    .collect();
323                if wanted.is_empty() {
324                    info!("managed-worker supervision is not configured; no deployment wants it");
325                } else {
326                    warn!(
327                        deployments = wanted.join(", "),
328                        remedy = crate::worker::supervisor::UNCOMMISSIONED_REMEDY,
329                        "worker deployments want to be running but supervision is not configured"
330                    );
331                }
332            }
333            Err(error) => error!(
334                %error,
335                "managed-worker supervision is not configured and the deployment records \
336                 could not be read to say what that costs"
337            ),
338        }
339        return;
340    };
341    if !supervisor.commission(policy, crate::worker::ManagedExecutable::CurrentServer) {
342        error!("managed-worker supervision was already commissioned before boot completed");
343        return;
344    }
345    match supervisor.reconcile().await {
346        Ok(0) => info!("managed-worker supervision commissioned; no deployment wants to run"),
347        Ok(supervised) => info!(supervised, "managed-worker supervision commissioned"),
348        Err(error) => error!(%error, "managed-worker fleet could not be converged at boot"),
349    }
350}
351
352fn transport_result(
353    transport: &'static str,
354    result: Result<Result<(), ServerError>, tokio::task::JoinError>,
355) -> Result<(), ServerError> {
356    match result {
357        Ok(transport_outcome) => transport_outcome,
358        Err(join_error) => Err(ServerError::Transport {
359            transport,
360            message: join_error.to_string(),
361        }),
362    }
363}
364
365async fn serve_grpc(
366    state: ServerState,
367    address: SocketAddr,
368    shutdown: tokio::sync::watch::Receiver<bool>,
369) -> Result<(), ServerError> {
370    let workflow = api::grpc::workflow_service(state.clone());
371    let worker = api::worker_grpc::worker_service(state.clone());
372    let mut router = TonicServer::builder()
373        .add_service(workflow)
374        .add_service(worker);
375    // Dark by default: the deploy service joins the listener only when the
376    // operator commissioned it; otherwise the surface answers Unimplemented.
377    if state.runtime_config().deploy.enabled {
378        router = router.add_service(api::deploy_grpc::deploy_service(state)?);
379    }
380    router
381        .serve_with_shutdown(address, shutdown_requested(shutdown))
382        .await
383        .map_err(|source| transport_bind("grpc", address, source))?;
384    Ok(())
385}
386
387async fn serve_http(
388    state: ServerState,
389    address: SocketAddr,
390    shutdown: tokio::sync::watch::Receiver<bool>,
391) -> Result<(), ServerError> {
392    let listener = TcpListener::bind(address)
393        .await
394        .map_err(|source| transport_bind("http", address, source))?;
395    axum::serve(listener, api::http::http_router(state)?)
396        .with_graceful_shutdown(shutdown_requested(shutdown))
397        .await
398        .map_err(|source| transport_bind("http", address, source))?;
399    Ok(())
400}
401
402async fn shutdown_requested(mut shutdown: tokio::sync::watch::Receiver<bool>) {
403    while !*shutdown.borrow_and_update() {
404        if shutdown.changed().await.is_err() {
405            break;
406        }
407    }
408}
409
410async fn shutdown_signal() -> Result<(), ServerError> {
411    #[cfg(unix)]
412    {
413        use tokio::signal::unix::{SignalKind, signal};
414
415        let mut terminate = signal(SignalKind::terminate())
416            .map_err(|source| signal_listener("SIGTERM", &source))?;
417        let mut interrupt =
418            signal(SignalKind::interrupt()).map_err(|source| signal_listener("SIGINT", &source))?;
419        tokio::select! {
420            _ = terminate.recv() => Ok(()),
421            _ = interrupt.recv() => Ok(()),
422        }
423    }
424
425    #[cfg(not(unix))]
426    {
427        tokio::signal::ctrl_c()
428            .await
429            .map_err(|source| signal_listener("shutdown signal", &source))
430    }
431}
432
433fn signal_listener(listener: &'static str, source: &std::io::Error) -> ServerError {
434    ServerError::SignalListener {
435        listener,
436        message: source.to_string(),
437    }
438}
439
440fn reject_auth_without_feature(config: &ServerConfig) -> Result<(), ServerError> {
441    if cfg!(not(feature = "auth")) && config.auth.enabled {
442        return Err(ServerError::Config {
443            message: "auth.enabled=true but binary compiled without auth feature".to_owned(),
444        });
445    }
446    Ok(())
447}
448
449/// Rebuild the outbox-related boot state BEFORE the dispatcher's first claim,
450/// when (and only when) the outbox is commissioned:
451///
452/// - #204: repopulate the durable pause dispatch-hold from `list_paused`, so a
453///   run paused before a restart keeps its outbox rows held (never claimed)
454///   after recovery. A run projecting `Paused` is excluded from `list_active`
455///   respawn for free; this repopulates the hold that would otherwise be empty
456///   in memory after a crash.
457/// - #253: settle terminal workflows' stranded outbox rows. A workflow that
458///   reached a durable terminal without its rows being settled (a settle-hook
459///   failure, or a crash between the terminal append and the settle) must not
460///   have those rows re-armed and redelivered after restart — that is the
461///   zombie-round incident. A sweep error is loud but non-fatal: the
462///   settle-at-terminal hook and the reconciler's liveness gate remain as
463///   repair paths, and the residual window is one bounded dispatch whose
464///   completion drops unmatched, never a re-arm loop.
465async fn rebuild_outbox_boot_state(state: &ServerState, outbox_config: &OutboxConfig) {
466    if !outbox_config.enabled {
467        return;
468    }
469    let Ok(engine) = state.engine() else {
470        return;
471    };
472    if let Err(error) = engine.rebuild_paused_runs().await {
473        warn!(%error, "failed to rebuild paused-runs dispatch hold at startup");
474    }
475    let Some(outbox_store) = state.outbox_store() else {
476        return;
477    };
478    match crate::worker::settle_terminal_outbox_rows(engine.store().as_ref(), outbox_store.as_ref())
479        .await
480    {
481        Ok(settled) if settled.is_empty() => {}
482        Ok(settled) => {
483            info!(
484                settled = settled.len(),
485                "boot sweep settled stranded outbox rows for terminal workflows"
486            );
487        }
488        Err(error) => {
489            error!(
490                %error,
491                "boot sweep failed to settle terminal workflows' outbox rows; \
492                 the reconciler liveness gate remains the backstop"
493            );
494        }
495    }
496}
497
498/// Spawn the durable-outbox fan-out dispatcher when, and only when, the
499/// operator commissioned it (`outbox.enabled = true`).
500///
501/// This is the single gate that keeps Phase 2 dormant: with the flag off (the
502/// default) the function returns immediately without spawning a task, so
503/// default server behaviour — and the live workflow dispatch path — is entirely
504/// unchanged. When commissioned, the dispatcher claims rows through the engine's
505/// own shared `Arc<LibSqlStore>` (one `libsql::Connection`), so its writes
506/// serialize with the engine's rather than contending across a second
507/// connection. The dispatcher shares the server's shutdown watch, so it drains
508/// on the same signal as the transports.
509///
510/// NOTE (Phase boundary): the spawned dispatcher dispatches claimed rows and
511/// records each row's terminal outbox state (done / retry / failed). Routing the
512/// worker completion back into workflow history through the Recorder is Phase 3
513/// and is not wired here.
514fn maybe_spawn_outbox_dispatcher(
515    state: &ServerState,
516    outbox_config: &OutboxConfig,
517    clustered: bool,
518    backpressure_settings: BackpressureSettings,
519    shutdown_rx: &tokio::sync::watch::Receiver<bool>,
520) -> Result<OutboxWorkerListener, ServerError> {
521    if !outbox_config.enabled {
522        return Ok(OutboxWorkerListener::default());
523    }
524    let dispatcher_config = resolve_outbox_config(outbox_config)?;
525    // Share the engine's already-opened store: one backing connection. The
526    // dispatcher's `claim_outbox_rows` writes then serialize against the engine's
527    // `append_with_outbox` on that single connection instead of contending across
528    // a second one. Both the libSQL and the haematite backends provide an
529    // `OutboxStore` (the haematite leaf is wired as the outbox store at boot); the
530    // in-memory backend has no outbox table, so `outbox_store()` is `None` and
531    // commissioning the dispatcher against it is a configuration error (LSUB-4-2).
532    let outbox_store = state.outbox_store().ok_or_else(|| ServerError::Config {
533        message: "outbox.enabled=true requires store.backend=libsql or store.backend=haematite: \
534                  the durable outbox dispatcher claims rows from the store's outbox table, which \
535                  the in-memory store does not provide"
536            .to_owned(),
537    })?;
538    let dispatcher_builder = OutboxDispatcher::new(Arc::clone(&outbox_store), dispatcher_config);
539    let delivery_gate = dispatcher_builder.delivery_gate();
540    let engine = state.engine()?;
541    let delivery_callback: Arc<dyn OutboxDeliveryCallback> =
542        Arc::new(ServerOutboxDeliveryCallback::new(engine));
543    let (row_dispatch, worker_listener) = select_outbox_row_dispatch(
544        state,
545        outbox_config,
546        shutdown_rx,
547        delivery_gate.clone(),
548        Arc::clone(&delivery_callback),
549    )?;
550    // LSUB-2: share the engine's advisory wake so the stage seam pulses this
551    // dispatcher the instant a fan-out row commits, dispatching in ~RTT instead of
552    // up to one poll interval. The wake is always-on and free; the interval poll is
553    // untouched, so it remains the correctness backstop for any lost wake.
554    // Control-Plane Phase 2 (P2-Q2): attach per-tenant keyed backpressure so each
555    // sweep claims per-namespace, round-robin, capped at each tenant's CLAIMED-only
556    // headroom (`per_node_ceiling − claimed`). The quota cache front-runs a per-sweep
557    // quorum `get_namespace`. With the generous platform default and no tenant
558    // override the ceiling never engages, so a default deployment's claim behaviour is
559    // byte-identical to the pre-Phase-2 single unscoped claim.
560    let quota_cache = crate::worker::QuotaCache::new(
561        Arc::clone(state.namespace_store()),
562        backpressure_settings.platform_default,
563        QUOTA_CACHE_TTL,
564    );
565    let backpressure =
566        crate::worker::Backpressure::new(quota_cache.clone(), backpressure_settings.fraction);
567    let mut dispatcher = dispatcher_builder
568        .with_dispatch(row_dispatch)
569        .with_delivery_callback(delivery_callback)
570        .with_wake(state.outbox_wake())
571        .with_backpressure(backpressure);
572    // #204: attach the engine's durable pause dispatch-hold so a held (paused)
573    // run's rows are never claimed. The hold set is rebuilt from `list_paused`
574    // BEFORE this spawn (see `run_server`), so the dispatcher's first claim
575    // already excludes pre-pause rows after a restart.
576    if let Ok(engine) = state.engine() {
577        dispatcher = dispatcher.with_paused_runs(engine.paused_runs());
578    }
579    tokio::spawn(dispatcher.run(shutdown_rx.clone()));
580    // Control-Plane Phase 2 (P2-Q3): commission the ops-console quota-state
581    // broadcaster on the SAME durable stores + quota cache the dispatcher enforces
582    // against, so the console badge is a faithful window onto the live per-tenant
583    // in-flight/ceiling the backpressure caps. It shares the shutdown watch, so it
584    // drains with the dispatcher. Only spawned alongside the (default-off)
585    // dispatcher: quota state is meaningless without the outbox fan-out path, and
586    // `in_flight` is the durable Claimed outbox count that path produces.
587    let quota_broadcaster = crate::worker::QuotaBroadcaster::new(
588        Arc::clone(state.namespace_store()),
589        Arc::clone(&outbox_store),
590        quota_cache,
591        state.cluster_publisher().clone(),
592        QUOTA_BROADCAST_CADENCE,
593    );
594    tokio::spawn(quota_broadcaster.run(shutdown_rx.clone()));
595    // LSUB-4-1: the single dispatcher task is spawned in both modes. In a
596    // single-node boot it owns all shards by construction; in an active-active
597    // clustered boot it claims ONLY the shards this node owns, enforced by
598    // `claim_outbox_rows`' owned-shard scope (already seeded before this point).
599    info!(
600        clustered,
601        "outbox dispatcher commissioned (active-active per-shard ownership enforced by claim scope \
602         when clustered; single-node owns all shards)"
603    );
604    // LSUB-4-4: the stale-claim reconciler is the in-flight recovery backstop. It
605    // is only configured when BOTH reconcile knobs are set, so on a clustered boot
606    // that left them unset, owner-kill in-flight recovery latency is bounded only
607    // by re-residency replay (a survivor adopting the shard re-residents from
608    // history and re-arms via `rearm_outbox_pending`), NOT by `stale_after`. Warn
609    // so the operator knows the backstop is absent.
610    if let Some(reconciler_config) = resolve_outbox_reconciler_config(outbox_config)? {
611        // #253: the reconciler's liveness gate projects each stale candidate's
612        // workflow status from the engine's event store before any re-arm, so
613        // a terminal workflow's stranded row settles instead of redelivering.
614        let event_store = state.engine()?.store();
615        let reconciler = OutboxReconciler::new(outbox_store, event_store, reconciler_config)
616            .with_delivery_gate(delivery_gate);
617        tokio::spawn(reconciler.run(shutdown_rx.clone()));
618        info!("outbox reconciler commissioned (terminal-workflow liveness gate active)");
619    } else if clustered {
620        warn!(
621            "outbox reconciler is UNCONFIGURED on a clustered boot (outbox.reconcile_interval_ms \
622             and outbox.reconcile_stale_after_ms are both unset): in-flight recovery after an \
623             owner is killed is then bounded only by re-residency replay on the adopting node, \
624             not by a stale-claim backstop; set both knobs to bound stale-claim recovery latency"
625        );
626    }
627    Ok(worker_listener)
628}
629
630/// Spawn the SS-5b cluster supervisor when, and only when, this is a distributed
631/// haematite boot whose `[store.cluster]` declared peers with owned shards.
632///
633/// Reads the failover cadence + debounce from the cluster config (or the
634/// documented defaults), then asks the state to spawn the supervisor over its
635/// retained concrete store and live engine. With no `[store.cluster]` section —
636/// or with no peer declaring `owned_shards` — nothing is spawned and behaviour
637/// is unchanged.
638#[cfg(feature = "haematite-backend")]
639fn maybe_spawn_cluster_supervisor(
640    state: &ServerState,
641    cluster_config: Option<&crate::config::ClusterConfig>,
642    shutdown_rx: &tokio::sync::watch::Receiver<bool>,
643) -> Result<(), ServerError> {
644    let Some(cluster) = cluster_config else {
645        return Ok(());
646    };
647    let poll_interval = std::time::Duration::from_millis(
648        cluster
649            .failover_poll_interval_ms
650            .unwrap_or(crate::config::DEFAULT_FAILOVER_POLL_INTERVAL_MS),
651    );
652    let confirmations = cluster
653        .failover_confirmations
654        .unwrap_or(crate::config::DEFAULT_FAILOVER_CONFIRMATIONS);
655    let supervisor_config = crate::cluster::SupervisorConfig {
656        poll_interval,
657        confirmations,
658    };
659    let spawned = state.spawn_cluster_supervisor(supervisor_config, shutdown_rx.clone())?;
660    if spawned {
661        info!(
662            poll_interval_ms = %poll_interval.as_millis(),
663            confirmations,
664            "SS-5b cluster supervisor commissioned (automatic peer-down failover)"
665        );
666    }
667    Ok(())
668}
669
670/// Select the outbox row-dispatch sink by the configured `outbox.transport`,
671/// returning the sink plus the worker listener whose lifetime the caller must
672/// hold.
673///
674/// `grpc` (the default) builds the unchanged [`WorkerOutboxDispatch`] over the
675/// connected-worker registry and carries the empty [`OutboxWorkerListener`], so a
676/// default server is byte-identical. `liminal` builds the cross-node
677/// [`RegistryLiminalDispatch`](crate::worker::RegistryLiminalDispatch) AND stands
678/// up the liminal worker listener the aion-server hosts (returned in the guard);
679/// it is only reachable when the `liminal-transport` feature is compiled in, and
680/// selecting it without that feature is a configuration error rather than a
681/// silent fall-through to gRPC.
682fn select_outbox_row_dispatch(
683    state: &ServerState,
684    outbox_config: &OutboxConfig,
685    shutdown_rx: &tokio::sync::watch::Receiver<bool>,
686    delivery_gate: DeliveryGate,
687    delivery_callback: Arc<dyn OutboxDeliveryCallback>,
688) -> Result<(Arc<dyn OutboxRowDispatch>, OutboxWorkerListener), ServerError> {
689    match outbox_config.transport {
690        OutboxTransport::Grpc => {
691            let push_dispatcher = ActivityDispatcher::new(state.worker_registry().clone())
692                .with_drain_state(state.drain_state().clone())
693                .with_completion_fences(state.pending_activities().completion_fences())
694                // Share the SAME queue-service seams the direct dispatch path
695                // uses, so a row parked on this leg reaches `GET
696                // /queues/unserved` and `describe`'s `unserved` list rather
697                // than being invisible to both.
698                .with_queue_service(
699                    state.queue_declarations().clone(),
700                    state.queue_service_state().clone(),
701                    state.runtime_config().worker.queue_service.clone(),
702                );
703            // Control-Plane Phase 2 (P2-P3): attach the short-TTL placement cache
704            // so an unpinned row in a `Prefer{L}` namespace prefers an L-labelled
705            // worker (spilling to any live worker). The cache front-runs a per-row
706            // quorum `get_namespace` on the hot claim loop; a default-`Unplaced`
707            // deployment is byte-identical (every row falls through to any-worker).
708            let placement_cache = crate::worker::PlacementCache::new(
709                Arc::clone(state.namespace_store()),
710                PLACEMENT_CACHE_TTL,
711            );
712            let dispatch: Arc<dyn OutboxRowDispatch> = Arc::new(
713                WorkerOutboxDispatch::new(push_dispatcher).with_placement_cache(placement_cache),
714            );
715            Ok((dispatch, OutboxWorkerListener::default()))
716        }
717        OutboxTransport::Liminal => build_liminal_row_dispatch(
718            state,
719            outbox_config,
720            shutdown_rx,
721            delivery_gate,
722            delivery_callback,
723        ),
724    }
725}
726
727/// Build the production liminal row-dispatch sink and host the worker listener, or
728/// fail with the missing-feature error.
729///
730/// This lifts the tested cross-node wiring (the `lsub1`/`lsub5` e2e blueprint)
731/// into the production boot. The aion-server HOSTS the liminal listener that
732/// remote workers connect IN to, so its
733/// [`ConnectionSupervisor`](liminal_server::server::connection::ConnectionSupervisor)
734/// owns each worker's connection and can push a dispatch out on it. The
735/// constructor cycle resolves the notifier <-> supervisor dependency:
736///
737/// 1. Reuse the registry already in [`ServerState`] — gRPC and liminal workers
738///    share ONE registry and the same `select_worker`, so routing is identical.
739/// 2. Build the [`LiminalConnectionNotifier`] over that registry (no supervisor
740///    yet).
741/// 3. Build the [`LiminalConnectionServices`] from the liminal listen config.
742/// 4. Build the [`ConnectionSupervisor`] WITH the services + notifier.
743/// 5. Bind the supervisor back into the notifier (must succeed).
744/// 6. Bind the [`ServerListener`] on the configured listen address — workers
745///    connect IN here.
746/// 7. Reuse the SAME completion callback the gRPC completion path installs
747///    ([`ServerOutboxDeliveryCallback`] over the live engine), so a liminal
748///    completion re-enters aion through the identical terminal-recording seam.
749/// 8. Build the [`RegistryLiminalDispatch`] over the registry + callback (it
750///    constructs the [`LiminalCompletionSource`] internally).
751///
752/// The returned listener is held by the caller for the server's lifetime; its
753/// `Drop` stops the accept worker on shutdown.
754///
755/// [`LiminalConnectionServices`]: liminal_server::server::connection::LiminalConnectionServices
756/// [`ServerListener`]: liminal_server::server::listener::ServerListener
757/// [`ServerOutboxDeliveryCallback`]: crate::worker::ServerOutboxDeliveryCallback
758/// [`LiminalCompletionSource`]: crate::worker::LiminalCompletionSource
759/// [`LiminalConnectionNotifier`]: crate::worker::LiminalConnectionNotifier
760#[cfg(feature = "liminal-transport")]
761fn build_liminal_row_dispatch(
762    state: &ServerState,
763    outbox_config: &OutboxConfig,
764    shutdown_rx: &tokio::sync::watch::Receiver<bool>,
765    delivery_gate: DeliveryGate,
766    callback: Arc<dyn OutboxDeliveryCallback>,
767) -> Result<(Arc<dyn OutboxRowDispatch>, OutboxWorkerListener), ServerError> {
768    use liminal_server::config::ServerConfig as LiminalServerConfig;
769    use liminal_server::config::{LimitsConfig, ServicesConfig};
770    use liminal_server::server::connection::{ConnectionSupervisor, LiminalConnectionServices};
771    use liminal_server::server::listener::ServerListener;
772
773    use crate::worker::{LiminalConnectionNotifier, RegistryLiminalDispatch};
774
775    let listen_address = outbox_config
776        .liminal_listen_address
777        .as_ref()
778        .ok_or_else(|| ServerError::Config {
779            message: "outbox.transport=liminal requires outbox.liminal_listen_address \
780                      (host:port the aion-server listens on for inbound liminal worker \
781                      connections)"
782                .to_owned(),
783        })?;
784    let listen_address: SocketAddr =
785        listen_address
786            .parse()
787            .map_err(|error| ServerError::Config {
788                message: format!(
789                    "outbox.liminal_listen_address must be a host:port socket address: {error}"
790                ),
791            })?;
792
793    // The liminal listener is the worker-connection front door only: it binds the
794    // wire listen address and serves the connection supervisor. `from_config` and
795    // `ServerListener::bind` read neither `health_listen_address` nor `channels`
796    // (the health probe is bound only by the standalone liminal server's full
797    // boot, not this embedded path), so no separate health port is bound here;
798    // it is set structurally to the listen address and never used.
799    let liminal_config = LiminalServerConfig {
800        listen_address,
801        health_listen_address: listen_address,
802        drain_timeout_ms: 30_000,
803        channels: Vec::new(),
804        routing_rules: Vec::new(),
805        persistence_path: None,
806        cluster: None,
807        // liminal 0.2.3 (H4) added an optional shared-token Connect gate. `None`
808        // keeps this embedded worker front door open at the liminal layer —
809        // identical to the pre-0.2.3 wire behavior; worker identity/authorization
810        // stays aion's job (x-aion-* registration metadata). Threading an
811        // operator-configured token through aion's outbox config is a separate
812        // feature decision, not part of the dependency alignment.
813        auth: None,
814        // liminal 0.2.4 (D2/§5): service profile + operational bounds. Defaults =
815        // full profile + the certifying-pair-signed caps — byte-equivalent to the
816        // 0.2.3 behaviour this embedded front door always had. A worker-front-door
817        // profile election here is a future feature decision, not this migration.
818        services: ServicesConfig::default(),
819        limits: LimitsConfig::default(),
820        // liminal 0.3.0 (LP-WS-TRANSPORT R1 / LP Part B): optional WebSocket
821        // acceptor and participant lifecycle activation. `None` for both starts
822        // no WebSocket listener and leaves the participant capability disabled —
823        // documented as byte-identical to the pre-0.3.0 build. Electing either
824        // for this embedded worker front door is a feature decision, not part of
825        // the dependency alignment.
826        websocket: None,
827        participant: None,
828    };
829
830    // (1) Reuse the registry already in ServerState: gRPC + liminal workers share
831    // ONE registry and the same `select_worker`.
832    let registry = state.worker_registry().clone();
833    // (2) Notifier over that registry (supervisor bound after it is built), with the
834    // NOI-5b transcript tap: a worker's observability publishes on the reserved
835    // channel drain into the SAME transcript sequencer the transcript socket serves,
836    // so a live agent's transcript is persisted + fanned out. (Captures the current
837    // runtime handle to bridge the sync connection callback onto the async append.)
838    let notifier = Arc::new(
839        LiminalConnectionNotifier::new(registry.clone())
840            .with_contract_catalog(state.engine()?)
841            .with_transcript_publisher(state.transcript_publisher().clone())
842            // The SAME per-task liveness tracker the engine-seam bridge tracks
843            // into: a liminal worker's automatic liveness beats refresh it, so
844            // the #176 expiry sweeper never falsely expires a healthy liminal
845            // worker running an activity longer than the heartbeat window.
846            .with_heartbeat_tracker(state.heartbeat_tracker().clone()),
847    );
848    // (3) Connection services from the liminal listen config.
849    let services = Arc::new(
850        LiminalConnectionServices::from_config(&liminal_config).map_err(|error| {
851            ServerError::Config {
852                message: format!("liminal connection services build failed: {error}"),
853            }
854        })?,
855    );
856    // (4) Supervisor WITH the services + notifier (the cycle's forward edge).
857    let supervisor = ConnectionSupervisor::with_services_and_notifier(services, notifier.clone())
858        .map_err(|error| ServerError::Config {
859        message: format!("liminal connection supervisor build failed: {error}"),
860    })?;
861    // (5) Bind the supervisor back into the notifier (the cycle's back edge); a
862    // failure here is a wiring bug, surfaced rather than silently ignored.
863    if !notifier.bind_supervisor(supervisor.clone()) {
864        return Err(ServerError::Config {
865            message: "liminal notifier supervisor handle was already bound during boot".to_owned(),
866        });
867    }
868    // (5b) Commission the connection dead-man switch over the SAME notifier. It
869    // pings every connected worker on a derived quarter-window cadence: the
870    // answers keep a healthy IDLE connection's lease alive (so the idle expiry
871    // cannot fire on a live worker), and the pings themselves are what a worker
872    // measures silence against (so a wedged half-open socket becomes a declared,
873    // logged death on the worker side instead of an unbounded blind wait). Not
874    // opt-in: liveness detection is a correctness property of this transport.
875    // The handle is detached — dropping a tokio `JoinHandle` never cancels the
876    // task — exactly as the heartbeat sweeper is spawned.
877    drop(state.spawn_liminal_liveness_probe(notifier.clone(), shutdown_rx.clone()));
878    // (6) Bind the listener on the configured address — workers connect IN here.
879    let listener =
880        ServerListener::bind(&liminal_config, supervisor).map_err(|error| ServerError::Config {
881            message: format!("liminal worker listener failed to bind {listen_address}: {error}"),
882        })?;
883    // (7) Reuse the SAME completion callback the gRPC completion path uses, over
884    // the live engine, so a liminal completion re-enters aion through the
885    // identical terminal-recording seam (`record_fan_out_completion`).
886    // (8) The registry-backed dispatch builds its LiminalCompletionSource from the
887    // shared callback internally. Attach the SAME short-TTL placement cache the
888    // gRPC arm installs (Control-Plane Phase 2, P2-P3), so an unpinned row in a
889    // `Prefer{L}` namespace prefers an L-labelled worker (spilling to any live
890    // worker) on the cross-node liminal transport too — the cluster-failover
891    // demo behaviour. A default-`Unplaced` deployment is byte-identical.
892    let placement_cache = crate::worker::PlacementCache::new(
893        Arc::clone(state.namespace_store()),
894        PLACEMENT_CACHE_TTL,
895    );
896    // NOI-6: install the SAME attempt-owner back-index the server's intervention
897    // router resolves through, so each dispatched agent attempt binds its owning
898    // worker and a pushed command reaches the worker this dispatcher sent it to.
899    let dispatch: Arc<dyn OutboxRowDispatch> = Arc::new(
900        RegistryLiminalDispatch::new(registry, callback, delivery_gate)
901            .with_placement_cache(placement_cache)
902            .with_attempt_owners(state.attempt_owners().clone()),
903    );
904
905    info!(
906        listen_address = %listen_address,
907        "liminal outbox worker listener commissioned (remote workers connect in and self-register)"
908    );
909    Ok((
910        dispatch,
911        OutboxWorkerListener {
912            _inner: Some(listener),
913        },
914    ))
915}
916
917/// Feature-off stub: selecting the liminal transport without the
918/// `liminal-transport` feature is a configuration error, never a silent
919/// fall-through to gRPC.
920#[cfg(not(feature = "liminal-transport"))]
921fn build_liminal_row_dispatch(
922    _state: &ServerState,
923    _outbox_config: &OutboxConfig,
924    _shutdown_rx: &tokio::sync::watch::Receiver<bool>,
925    _delivery_gate: DeliveryGate,
926    _delivery_callback: Arc<dyn OutboxDeliveryCallback>,
927) -> Result<(Arc<dyn OutboxRowDispatch>, OutboxWorkerListener), ServerError> {
928    Err(ServerError::Config {
929        message: "outbox.transport=liminal requires the aion-server `liminal-transport` \
930                  Cargo feature, which is not enabled in this build"
931            .to_owned(),
932    })
933}
934
935/// Resolve the validated, all-present outbox knobs into the dispatcher's
936/// non-optional config. Validation already guaranteed each value is set and in
937/// range when `outbox.enabled` is true, so an absent value here is a defensive
938/// configuration error, not a default to invent.
939fn resolve_outbox_config(outbox: &OutboxConfig) -> Result<OutboxDispatcherConfig, ServerError> {
940    let poll_interval_ms = outbox.poll_interval_ms.ok_or_else(|| ServerError::Config {
941        message: crate::config::OUTBOX_POLL_INTERVAL_REQUIRED.to_owned(),
942    })?;
943    let batch_size = outbox.batch_size.ok_or_else(|| ServerError::Config {
944        message: crate::config::OUTBOX_BATCH_SIZE_REQUIRED.to_owned(),
945    })?;
946    let max_attempts = outbox.max_attempts.ok_or_else(|| ServerError::Config {
947        message: crate::config::OUTBOX_MAX_ATTEMPTS_REQUIRED.to_owned(),
948    })?;
949    let backoff_base_ms = outbox.backoff_base_ms.ok_or_else(|| ServerError::Config {
950        message: crate::config::OUTBOX_BACKOFF_BASE_REQUIRED.to_owned(),
951    })?;
952    let backoff_multiplier = outbox
953        .backoff_multiplier
954        .ok_or_else(|| ServerError::Config {
955            message: crate::config::OUTBOX_BACKOFF_MULTIPLIER_REQUIRED.to_owned(),
956        })?;
957    let backoff_max_ms = outbox.backoff_max_ms.ok_or_else(|| ServerError::Config {
958        message: crate::config::OUTBOX_BACKOFF_MAX_REQUIRED.to_owned(),
959    })?;
960    Ok(OutboxDispatcherConfig {
961        poll_interval: std::time::Duration::from_millis(poll_interval_ms),
962        batch_size,
963        max_attempts,
964        backoff_base: std::time::Duration::from_millis(backoff_base_ms),
965        backoff_multiplier,
966        backoff_max: std::time::Duration::from_millis(backoff_max_ms),
967    })
968}
969
970fn resolve_outbox_reconciler_config(
971    outbox: &OutboxConfig,
972) -> Result<Option<OutboxReconcilerConfig>, ServerError> {
973    let (Some(interval_ms), Some(stale_after_ms)) = (
974        outbox.reconcile_interval_ms,
975        outbox.reconcile_stale_after_ms,
976    ) else {
977        return Ok(None);
978    };
979    let batch_size = outbox.batch_size.ok_or_else(|| ServerError::Config {
980        message: crate::config::OUTBOX_BATCH_SIZE_REQUIRED.to_owned(),
981    })?;
982    Ok(Some(OutboxReconcilerConfig {
983        interval: std::time::Duration::from_millis(interval_ms),
984        stale_after: std::time::Duration::from_millis(stale_after_ms),
985        batch_size,
986    }))
987}
988
989fn reject_tls_until_supported(state: &ServerState) -> Result<(), ServerError> {
990    if state.runtime_config().tls.is_some() {
991        return Err(ServerError::Config {
992            message: "configured TLS material cannot be served until transport TLS is wired"
993                .to_owned(),
994        });
995    }
996    Ok(())
997}
998
999fn store_backend_label(backend: StoreBackend) -> &'static str {
1000    match backend {
1001        StoreBackend::Memory => "memory",
1002        StoreBackend::LibSql => "libsql",
1003        StoreBackend::Haematite => "haematite",
1004    }
1005}
1006
1007fn namespace_mode_label(mode: &NamespaceMode) -> &'static str {
1008    match mode {
1009        NamespaceMode::SharedEngine => "SharedEngine",
1010        NamespaceMode::SingleTenant { .. } => "SingleTenant",
1011    }
1012}
1013
1014fn transport_bind<E>(transport: &'static str, address: SocketAddr, source: E) -> ServerError
1015where
1016    E: std::error::Error,
1017{
1018    ServerError::TransportBind {
1019        transport,
1020        address,
1021        message: source.to_string(),
1022    }
1023}
1024
1025#[cfg(test)]
1026mod tests {
1027    #![allow(clippy::expect_used)]
1028
1029    use super::{
1030        BackpressureSettings, OutboxConfig, OutboxTransport, maybe_spawn_outbox_dispatcher,
1031        resolve_outbox_reconciler_config,
1032    };
1033    use crate::ServerState;
1034    use crate::config::RuntimeConfig;
1035    use aion_store::InMemoryStore;
1036    use std::net::SocketAddr;
1037    use std::time::Duration;
1038
1039    /// Own-all, generous-default backpressure settings for the gate tests (the
1040    /// single-node default: fraction 1, so the ceiling never engages).
1041    fn test_backpressure_settings() -> BackpressureSettings {
1042        BackpressureSettings {
1043            platform_default: crate::config::DEFAULT_MAX_IN_FLIGHT_ACTIVITIES,
1044            fraction: crate::worker::OwnedShardFraction::own_all(),
1045        }
1046    }
1047
1048    /// A minimal `RuntimeConfig` for building an in-memory `ServerState` in unit
1049    /// tests (mirrors `state.rs`'s test `runtime_config`).
1050    fn runtime_config() -> RuntimeConfig {
1051        use crate::config::{
1052            AuthConfig, AuthoringConfig, DeployConfig, DevConfig, ListenConfig, MetricsConfig,
1053            NamespaceConfig, NamespaceMode, OpsConsoleAssetSource, OpsConsoleConfig,
1054            WebSocketConfig, WorkerConfig,
1055        };
1056        RuntimeConfig {
1057            listen: ListenConfig {
1058                grpc: SocketAddr::from(([127, 0, 0, 1], 50051)),
1059                http: SocketAddr::from(([127, 0, 0, 1], 8080)),
1060            },
1061            tls: None,
1062            auth: AuthConfig {
1063                enabled: false,
1064                jwks_url: None,
1065                jwks_refresh_seconds: 300,
1066            },
1067            ops_console: OpsConsoleConfig {
1068                source: OpsConsoleAssetSource::Embedded,
1069            },
1070            namespace: NamespaceConfig {
1071                mode: NamespaceMode::SharedEngine,
1072            },
1073            worker: WorkerConfig {
1074                heartbeat_window: Duration::from_secs(30),
1075                ..WorkerConfig::default()
1076            },
1077            websocket: WebSocketConfig {
1078                outbound_buffer_bound: 32,
1079                event_broadcast_capacity: Some(64),
1080                cluster_broadcast_capacity: Some(64),
1081            },
1082            workflow_packages: Vec::new(),
1083            deploy: DeployConfig::default(),
1084            authoring: AuthoringConfig::default(),
1085            dev: DevConfig::default(),
1086            outbox: OutboxConfig::default(),
1087            observability: crate::config::ObservabilityConfig::default(),
1088            mcp: crate::config::ResolvedMcpConfig::default(),
1089            scheduler_threads: 1,
1090            query_timeout: Some(Duration::from_secs(10)),
1091            default_namespace: "default".to_owned(),
1092            auto_create: crate::config::AutoCreate::Open,
1093            max_in_flight_activities: crate::config::DEFAULT_MAX_IN_FLIGHT_ACTIVITIES,
1094            drain_timeout: Duration::from_secs(30),
1095            metrics: MetricsConfig { enabled: true },
1096            owned_shards: Vec::new(),
1097            cors_allowed_origins: Vec::new(),
1098        }
1099    }
1100
1101    /// An `OutboxConfig` with `enabled = true` and every required knob present, so
1102    /// the only remaining gate is the store-backend / outbox-table availability.
1103    fn enabled_outbox_config() -> OutboxConfig {
1104        OutboxConfig {
1105            enabled: true,
1106            poll_interval_ms: Some(250),
1107            batch_size: Some(64),
1108            max_attempts: Some(5),
1109            backoff_base_ms: Some(100),
1110            backoff_multiplier: Some(2),
1111            backoff_max_ms: Some(30_000),
1112            reconcile_interval_ms: None,
1113            reconcile_stale_after_ms: None,
1114            transport: OutboxTransport::Grpc,
1115            liminal_listen_address: None,
1116        }
1117    }
1118
1119    /// LSUB-4-2 / LSUB-4-6 (Memory-backend guard): commissioning the outbox
1120    /// dispatcher against the in-memory backend (which has no outbox table, so
1121    /// `outbox_store()` is `None`) is a configuration error, and the message names
1122    /// BOTH supported backends (libsql / haematite), not just libsql.
1123    #[tokio::test]
1124    async fn outbox_enabled_on_memory_backend_is_a_config_error() {
1125        let state = ServerState::build_with_store(InMemoryStore::default(), runtime_config())
1126            .await
1127            .expect("build in-memory state");
1128        let (_tx, rx) = tokio::sync::watch::channel(false);
1129        let error = maybe_spawn_outbox_dispatcher(
1130            &state,
1131            &enabled_outbox_config(),
1132            false,
1133            test_backpressure_settings(),
1134            &rx,
1135        )
1136        .expect_err("outbox.enabled on the memory backend must be a config error");
1137        assert!(
1138            error.is_config(),
1139            "memory-backend outbox error must be Config"
1140        );
1141        let message = error.to_string();
1142        assert!(
1143            message.contains("libsql") && message.contains("haematite"),
1144            "corrected message must name both supported backends, got: {message}"
1145        );
1146    }
1147
1148    /// LSUB-4-1 (Fork-B fast path): with the outbox disabled (the default), the
1149    /// gate is a no-op even on a memory backend — nothing is spawned and no error
1150    /// is produced, so a default single-node boot is unchanged.
1151    #[tokio::test]
1152    async fn disabled_outbox_is_a_noop_on_any_backend() {
1153        let state = ServerState::build_with_store(InMemoryStore::default(), runtime_config())
1154            .await
1155            .expect("build in-memory state");
1156        let (_tx, rx) = tokio::sync::watch::channel(false);
1157        maybe_spawn_outbox_dispatcher(
1158            &state,
1159            &OutboxConfig::default(),
1160            false,
1161            test_backpressure_settings(),
1162            &rx,
1163        )
1164        .expect("disabled outbox gate must be an infallible no-op");
1165    }
1166
1167    /// LSUB-4-4: the reconciler config resolves to `None` unless BOTH knobs are
1168    /// set — the condition under which the clustered-boot WARN fires.
1169    #[test]
1170    fn reconciler_config_absent_unless_both_knobs_set() {
1171        let mut config = enabled_outbox_config();
1172        // Neither knob: absent.
1173        assert!(
1174            resolve_outbox_reconciler_config(&config)
1175                .expect("resolve")
1176                .is_none()
1177        );
1178        // Only interval: still absent (the silent-backstop-absent default).
1179        config.reconcile_interval_ms = Some(1_000);
1180        assert!(
1181            resolve_outbox_reconciler_config(&config)
1182                .expect("resolve")
1183                .is_none()
1184        );
1185        // Both set: present.
1186        config.reconcile_stale_after_ms = Some(60_000);
1187        assert!(
1188            resolve_outbox_reconciler_config(&config)
1189                .expect("resolve")
1190                .is_some()
1191        );
1192    }
1193
1194    /// LSUB-PROD (13-6): the liminal transport requires `liminal_listen_address`.
1195    /// Commissioning the dispatcher with `transport = liminal` but no listen
1196    /// address is a configuration error naming the missing knob, rather than a
1197    /// panic or a silent fall-through to gRPC. Built over the libSQL backend (so
1198    /// the outbox-store gate passes and the missing-address check is actually
1199    /// reached). (Feature-gated: the liminal arm of `build_liminal_row_dispatch`
1200    /// only exists with `liminal-transport` on; in a feature-off build the same
1201    /// selection is the missing-feature error instead, covered by the type system
1202    /// rather than this test.)
1203    // Also gated on `libsql-backend`: it boots a real libSQL-backed `ServerState`
1204    // to obtain an outbox-bearing store, and the libSQL connect path is now an
1205    // opt-in feature. The listen-address guard itself is backend-agnostic.
1206    #[cfg(all(feature = "liminal-transport", feature = "libsql-backend"))]
1207    #[tokio::test]
1208    async fn liminal_transport_requires_listen_address() {
1209        use crate::config::{
1210            RuntimeSection, ServerConfig, StoreBackend, StoreConfig, WebSocketConfig,
1211        };
1212
1213        let db_path = std::env::temp_dir().join(format!(
1214            "aion-lsub-prod-listen-guard-{}-{}.db",
1215            std::process::id(),
1216            std::time::SystemTime::now()
1217                .duration_since(std::time::UNIX_EPOCH)
1218                .map(|elapsed| elapsed.as_nanos())
1219                .unwrap_or_default()
1220        ));
1221        let mut outbox = enabled_outbox_config();
1222        outbox.transport = OutboxTransport::Liminal;
1223        outbox.liminal_listen_address = None;
1224        let config = ServerConfig {
1225            store: StoreConfig {
1226                backend: StoreBackend::LibSql,
1227                url: Some(db_path.to_string_lossy().into_owned()),
1228                ..StoreConfig::default()
1229            },
1230            runtime: RuntimeSection {
1231                scheduler_threads: 1,
1232                query_timeout_ms: Some(10_000),
1233            },
1234            websocket: WebSocketConfig {
1235                outbound_buffer_bound: 32,
1236                event_broadcast_capacity: Some(64),
1237                cluster_broadcast_capacity: Some(64),
1238            },
1239            outbox: outbox.clone(),
1240            ..ServerConfig::default()
1241        };
1242        let state = ServerState::build(config)
1243            .await
1244            .expect("build libsql state");
1245        let (_tx, rx) = tokio::sync::watch::channel(false);
1246
1247        let error = maybe_spawn_outbox_dispatcher(
1248            &state,
1249            &outbox,
1250            false,
1251            test_backpressure_settings(),
1252            &rx,
1253        )
1254        .expect_err("liminal transport without a listen address must be a config error");
1255        assert!(
1256            error.is_config(),
1257            "missing-listen-address error must be Config"
1258        );
1259        assert!(
1260            error.to_string().contains("liminal_listen_address"),
1261            "error must name the missing knob, got: {error}"
1262        );
1263    }
1264}
1265
1266/// LSUB-PROD (13-6): production-boot cross-node round-trip over the REAL wiring.
1267///
1268/// This is the proof that the production boot now does the full round-trip the
1269/// retired stub could not. It drives the EXACT production commissioning function
1270/// `run_server` calls — [`maybe_spawn_outbox_dispatcher`] — over a real
1271/// [`ServerState`] built with `outbox.enabled`, `transport = liminal`, and a
1272/// `liminal_listen_address`. That function lifts the full push wiring
1273/// (`build_liminal_row_dispatch`): it hosts the liminal worker listener, builds
1274/// [`RegistryLiminalDispatch`](crate::worker::RegistryLiminalDispatch) over the
1275/// SAME registry the gRPC path uses and the SAME
1276/// [`ServerOutboxDeliveryCallback`](crate::worker::ServerOutboxDeliveryCallback)
1277/// (over the live engine), and spawns the real [`OutboxDispatcher`].
1278///
1279/// A REAL remote [`LiminalActivityWorker`](aion_worker::LiminalActivityWorker)
1280/// connects IN to the listener and self-registers in-band. A `collect_four`
1281/// fan-out is started over the REAL HTTP transport, which stages four pending
1282/// outbox rows; the production-wired dispatcher claims and pushes each to the
1283/// worker, the worker executes it, and its completion re-enters aion through the
1284/// production engine callback — `record_fan_out_completion` — driving the
1285/// workflow to a recorded terminal. The proof asserts BOTH: the worker observably
1286/// executed the activities, AND the terminals were recorded in history (four
1287/// `ActivityCompleted` + one `WorkflowCompleted`), which the stub's
1288/// publish-and-mark-done path never achieved.
1289// Also gated on `libsql-backend`: this production-boot round-trip stands up a
1290// real libSQL-backed server (the durable outbox path it exercises), and the
1291// libSQL connect path is now an opt-in feature.
1292#[cfg(all(test, feature = "liminal-transport", feature = "libsql-backend"))]
1293mod lsub_prod_xnode_e2e {
1294    #![allow(clippy::expect_used)]
1295
1296    use std::net::SocketAddr;
1297    use std::path::PathBuf;
1298    use std::sync::Arc;
1299    use std::sync::atomic::{AtomicUsize, Ordering};
1300    use std::time::{Duration, Instant};
1301
1302    use aion_core::Event;
1303    use aion_package::{
1304        ActionContract, BeamModule, BeamSet, CURRENT_FORMAT_VERSION, DeclaredActivity, Manifest,
1305        ManifestVersion, PackageBuilder, PackageContract, WorkerContract,
1306    };
1307    use aion_store::ReadableEventStore;
1308    use aion_store_libsql::LibSqlStore;
1309    use aion_worker::{ActivityRegistry, LiminalActivityWorker, WorkerConfig};
1310    use axum::body;
1311    use axum::http::{Request, StatusCode};
1312    use serde_json::json;
1313    use tower::ServiceExt;
1314
1315    use super::{BackpressureSettings, maybe_spawn_outbox_dispatcher};
1316    use crate::ServerState;
1317    use crate::api::http::http_router;
1318    use crate::config::{
1319        OutboxConfig, OutboxTransport, RuntimeSection, ServerConfig, StoreBackend, StoreConfig,
1320        WebSocketConfig,
1321    };
1322
1323    type TestError = Box<dyn std::error::Error + Send + Sync>;
1324
1325    /// The `collect_four` fixture passes each member the JSON string `"in"` as
1326    /// activity input, so the worker handler decodes a [`String`], not a struct.
1327    type FanInput = String;
1328
1329    const NAMESPACE: &str = "default";
1330    const TASK_QUEUE: &str = "default";
1331    const OUTBOX_MODULE: &str = "aion_outbox_fixture";
1332    const OUTBOX_BEAM: &[u8] = include_bytes!("../tests/fixtures/aion_outbox_fixture.beam");
1333    const OUTBOX_SOURCE: &[u8] = include_bytes!("../tests/fixtures/aion_outbox_fixture.erl");
1334    const FAN_OUT: usize = 4;
1335    const FAN_ACTIVITY_TYPES: [&str; FAN_OUT] = ["fan:0", "fan:1", "fan:2", "fan:3"];
1336    const POLL_DEADLINE: Duration = Duration::from_secs(20);
1337
1338    fn test_error(message: impl std::fmt::Display) -> TestError {
1339        message.to_string().into()
1340    }
1341
1342    /// Reserve a loopback port and return it: the liminal listener binds this exact
1343    /// address (the production path binds the configured `liminal_listen_address`,
1344    /// so the test must commit to a concrete port the worker can also dial).
1345    fn reserve_loopback_port() -> Result<SocketAddr, TestError> {
1346        let listener = std::net::TcpListener::bind("127.0.0.1:0").map_err(test_error)?;
1347        let address = listener.local_addr().map_err(test_error)?;
1348        drop(listener);
1349        Ok(address)
1350    }
1351
1352    /// The fixture's queue-scoped `.v4` contract: the four `fan:N` activities
1353    /// `collect_four` schedules, declared on the queue its worker actually polls.
1354    ///
1355    /// Why the archive cannot just carry the manifest-derived record: by design
1356    /// `PackageContract::from_manifest` "never invents a queue", so a manifest's
1357    /// bare activity names land in `unscoped_activities` — and this server boots
1358    /// queue-routed, where an unscoped catalog is a terminal
1359    /// `NO_QUEUE_DECLARATION` at start admission
1360    /// (`aion::lifecycle::start_admission`). That refusal is EARNED: an unserved
1361    /// queue would otherwise wait silently forever. So the derived record is
1362    /// amended rather than bypassed — the same four names move out of
1363    /// `unscoped_activities` and onto the queue that serves them — and the
1364    /// package still loads through the production boot path with the `.v4`
1365    /// identity `PackageBuilder` stamps over this exact contract.
1366    ///
1367    /// The action schemas come from the SAME generator the worker's typed
1368    /// registry uses, for the SAME Rust types: `collect_four` passes each member
1369    /// the JSON string `"in"` and the handler returns a [`String`]. Deriving both
1370    /// sides from `activity_descriptor::<FanInput, String>` means the package's
1371    /// declaration and the worker's advertisement cannot drift apart, so
1372    /// registration admission (`WORKER_CONTRACT_MISMATCH`) compares two schemas
1373    /// with one source.
1374    fn fixture_contract(manifest: &Manifest) -> Result<PackageContract, TestError> {
1375        let mut actions = Vec::with_capacity(FAN_ACTIVITY_TYPES.len());
1376        for activity_type in FAN_ACTIVITY_TYPES {
1377            let descriptor = aion_worker::activity_descriptor::<FanInput, String>(activity_type)
1378                .map_err(test_error)?;
1379            actions.push(ActionContract {
1380                name: descriptor.name,
1381                input_schema: descriptor.input_schema,
1382                output_schema: descriptor.output_schema,
1383                node: None,
1384                timeout: None,
1385                retry: None,
1386                advisory: false,
1387                // A typed `String -> String` handler serves these, not an agent
1388                // harness — the fan fixture's shape merely coincides with an
1389                // agent seam's, and marking it would route it somewhere no
1390                // handler is.
1391                agent: false,
1392                // A connected worker serves this fixture's queue, so the
1393                // declaration carries no body of its own.
1394                body: None,
1395            });
1396        }
1397        let mut contract = PackageContract::from_manifest(manifest);
1398        contract.workers = vec![WorkerContract {
1399            task_queue: TASK_QUEUE.to_owned(),
1400            actions,
1401        }];
1402        contract.unscoped_activities.clear();
1403        Ok(contract)
1404    }
1405
1406    /// Build the `collect_four` package on disk so the production state-build path
1407    /// loads it exactly as it loads operator-supplied `workflow_packages`.
1408    fn write_package_archive(dir: &std::path::Path) -> Result<PathBuf, TestError> {
1409        let beams =
1410            BeamSet::new(vec![BeamModule::new(OUTBOX_MODULE, OUTBOX_BEAM)]).map_err(test_error)?;
1411        let manifest = Manifest {
1412            entry_module: OUTBOX_MODULE.to_owned(),
1413            entry_function: "collect_four".to_owned(),
1414            input_schema: json!({ "type": "object" }),
1415            output_schema: json!({}),
1416            timeout: Some(Duration::from_secs(30)),
1417            // The four ordinals `collect_four` actually fans out. This manifest
1418            // used to name one invented activity, `fixture_activity`, that the
1419            // fixture never schedules and no worker ever served.
1420            activities: FAN_ACTIVITY_TYPES
1421                .iter()
1422                .map(|activity_type| DeclaredActivity {
1423                    activity_type: (*activity_type).to_owned(),
1424                })
1425                .collect(),
1426            version: ManifestVersion::new("stamped-by-builder"),
1427            format_version: CURRENT_FORMAT_VERSION,
1428            additional_workflows: Vec::new(),
1429        };
1430        let contract = fixture_contract(&manifest)?;
1431        let archive =
1432            PackageBuilder::with_source(manifest, beams, [(OUTBOX_MODULE, OUTBOX_SOURCE.to_vec())])
1433                .with_contract(contract)
1434                .write_to_bytes()
1435                .map_err(test_error)?;
1436        let path = dir.join("collect_four.aion");
1437        std::fs::write(&path, archive).map_err(test_error)?;
1438        Ok(path)
1439    }
1440
1441    /// A production-shaped `ServerConfig`: the libSQL backend (so the boot store
1442    /// path shares the leaf as the dispatcher's outbox store, exactly as
1443    /// `ServerState::build` does in production), `outbox.enabled`,
1444    /// `transport = liminal`, the reserved `liminal_listen_address`, and the
1445    /// `collect_four` package. Built through `ServerState::build` (not
1446    /// `build_with_store`), so this is the real boot store seam, not a test stand-in.
1447    fn server_config(
1448        db_path: &std::path::Path,
1449        package_path: PathBuf,
1450        listen_address: SocketAddr,
1451    ) -> ServerConfig {
1452        ServerConfig {
1453            store: StoreConfig {
1454                backend: StoreBackend::LibSql,
1455                url: Some(db_path.to_string_lossy().into_owned()),
1456                ..StoreConfig::default()
1457            },
1458            runtime: RuntimeSection {
1459                scheduler_threads: 1,
1460                query_timeout_ms: Some(10_000),
1461            },
1462            websocket: WebSocketConfig {
1463                outbound_buffer_bound: 32,
1464                event_broadcast_capacity: Some(64),
1465                cluster_broadcast_capacity: Some(64),
1466            },
1467            workflow_packages: vec![package_path],
1468            outbox: OutboxConfig {
1469                enabled: true,
1470                poll_interval_ms: Some(20),
1471                batch_size: Some(16),
1472                max_attempts: Some(5),
1473                backoff_base_ms: Some(50),
1474                backoff_multiplier: Some(2),
1475                backoff_max_ms: Some(1_000),
1476                reconcile_interval_ms: None,
1477                reconcile_stale_after_ms: None,
1478                transport: OutboxTransport::Liminal,
1479                liminal_listen_address: Some(listen_address.to_string()),
1480            },
1481            ..ServerConfig::default()
1482        }
1483    }
1484
1485    /// The remote worker self-describes for the fixture's pool `(default, default)`
1486    /// and registers a handler for every `fan:N` activity type, counting executions
1487    /// so the test proves it genuinely ran the pushed dispatches.
1488    fn worker_config() -> Result<WorkerConfig, TestError> {
1489        WorkerConfig::builder()
1490            .endpoint("unused-direct-address")
1491            .namespace(NAMESPACE)
1492            .task_queue(TASK_QUEUE)
1493            .identity("lsub-prod-worker")
1494            .max_concurrency(4)
1495            .reconnect_initial_backoff(Duration::from_millis(5))
1496            .reconnect_max_backoff(Duration::from_millis(20))
1497            .reconnect_max_attempts(3)
1498            .build()
1499            .map_err(test_error)
1500    }
1501
1502    fn worker_registry(executions: &Arc<AtomicUsize>) -> Result<Arc<ActivityRegistry>, TestError> {
1503        let mut registry = ActivityRegistry::new();
1504        for activity_type in FAN_ACTIVITY_TYPES {
1505            let executions = Arc::clone(executions);
1506            // `register_activity_with_contract`, not `register_activity`: the
1507            // bare form registers a handler with NO descriptor, so the worker
1508            // advertises four names and zero typed contracts, and admission —
1509            // which compares CONTRACTS — refuses the registration outright
1510            // (`WORKER_CONTRACT_MISMATCH`). Deriving the advertisement from
1511            // `<FanInput, String>` is what makes it the same source the
1512            // package's `fixture_contract` declares from, so the two sides
1513            // cannot drift.
1514            registry = registry
1515                .register_activity_with_contract(
1516                    activity_type,
1517                    move |_input: FanInput, _context| {
1518                        let executions = Arc::clone(&executions);
1519                        Box::pin(async move {
1520                            executions.fetch_add(1, Ordering::SeqCst);
1521                            Ok(activity_type.to_owned())
1522                        })
1523                    },
1524                )
1525                .map_err(test_error)?;
1526        }
1527        Ok(Arc::new(registry))
1528    }
1529
1530    /// Spawns the remote worker on its own OS thread with a current-thread runtime
1531    /// (the push receive is blocking), connecting IN to the production listener.
1532    struct WorkerThread {
1533        stop: Arc<std::sync::atomic::AtomicBool>,
1534        handle: Option<std::thread::JoinHandle<()>>,
1535    }
1536
1537    impl WorkerThread {
1538        fn spawn(address: String, config: WorkerConfig, registry: Arc<ActivityRegistry>) -> Self {
1539            let stop = Arc::new(std::sync::atomic::AtomicBool::new(false));
1540            let thread_stop = Arc::clone(&stop);
1541            let handle = std::thread::spawn(move || {
1542                let runtime = match tokio::runtime::Builder::new_current_thread()
1543                    .enable_all()
1544                    .build()
1545                {
1546                    Ok(runtime) => runtime,
1547                    Err(error) => {
1548                        eprintln!("worker runtime build failed: {error}");
1549                        return;
1550                    }
1551                };
1552                runtime.block_on(async move {
1553                    let worker = match LiminalActivityWorker::connect(&address, &config, registry) {
1554                        Ok(worker) => worker,
1555                        Err(error) => {
1556                            eprintln!("worker connect failed: {error}");
1557                            return;
1558                        }
1559                    };
1560                    if let Err(error) = worker
1561                        .serve_until(|| thread_stop.load(Ordering::SeqCst))
1562                        .await
1563                    {
1564                        eprintln!("worker serve loop ended with error: {error}");
1565                    }
1566                });
1567            });
1568            Self {
1569                stop,
1570                handle: Some(handle),
1571            }
1572        }
1573
1574        fn stop(mut self) {
1575            self.stop.store(true, Ordering::SeqCst);
1576            if let Some(handle) = self.handle.take() {
1577                handle.join().ok();
1578            }
1579        }
1580    }
1581
1582    fn count_completed(history: &[Event]) -> usize {
1583        history
1584            .iter()
1585            .filter(|event| matches!(event, Event::ActivityCompleted { .. }))
1586            .count()
1587    }
1588
1589    fn count_workflow_completed(history: &[Event]) -> usize {
1590        history
1591            .iter()
1592            .filter(|event| matches!(event, Event::WorkflowCompleted { .. }))
1593            .count()
1594    }
1595
1596    async fn wait_for_history<F>(
1597        store: &LibSqlStore,
1598        workflow_id: &aion_core::WorkflowId,
1599        description: &str,
1600        predicate: F,
1601    ) -> Result<Vec<Event>, TestError>
1602    where
1603        F: Fn(&[Event]) -> bool,
1604    {
1605        let deadline = Instant::now() + POLL_DEADLINE;
1606        loop {
1607            let history = store.read_history(workflow_id).await.map_err(test_error)?;
1608            if predicate(&history) {
1609                return Ok(history);
1610            }
1611            if Instant::now() > deadline {
1612                return Err(test_error(format!(
1613                    "timed out waiting for {description}: {history:#?}"
1614                )));
1615            }
1616            tokio::time::sleep(Duration::from_millis(25)).await;
1617        }
1618    }
1619
1620    /// Start the loaded `collect_four` workflow over the REAL HTTP transport.
1621    async fn start_over_http(router: &axum::Router) -> Result<aion_core::WorkflowId, TestError> {
1622        let build_request = || -> Result<Request<body::Body>, TestError> {
1623            Request::builder()
1624                .uri("/workflows/start")
1625                .method("POST")
1626                .header("content-type", "application/json")
1627                .header("x-aion-subject", "ci")
1628                .header("x-aion-namespaces", NAMESPACE)
1629                .body(body::Body::from(
1630                    serde_json::to_vec(&json!({
1631                        "namespace": NAMESPACE,
1632                        "workflow_type": OUTBOX_MODULE,
1633                        "input": { "fixture": "input" },
1634                    }))
1635                    .map_err(test_error)?,
1636                ))
1637                .map_err(test_error)
1638        };
1639        let response = router
1640            .clone()
1641            .oneshot(build_request()?)
1642            .await
1643            .map_err(test_error)?;
1644        let status = response.status();
1645        let bytes = body::to_bytes(response.into_body(), usize::MAX)
1646            .await
1647            .map_err(test_error)?
1648            .to_vec();
1649        if status != StatusCode::OK {
1650            return Err(test_error(format!(
1651                "workflow start over HTTP must succeed, got {status}: {}",
1652                String::from_utf8_lossy(&bytes)
1653            )));
1654        }
1655        let body: serde_json::Value = serde_json::from_slice(&bytes).map_err(test_error)?;
1656        // The HTTP wire contract (`clean_dtos::StartWorkflowResponse`) serializes
1657        // `workflow_id` as a plain UUID string, not a nested `{ uuid }` object.
1658        let workflow_id = body["workflow_id"]
1659            .as_str()
1660            .ok_or_else(|| test_error("start response missing workflow id"))?
1661            .parse::<uuid::Uuid>()
1662            .map_err(test_error)?;
1663        Ok(aion_core::WorkflowId::new(workflow_id))
1664    }
1665
1666    #[tokio::test(flavor = "multi_thread", worker_threads = 4)]
1667    async fn production_boot_dispatches_executes_and_records_over_liminal() -> Result<(), TestError>
1668    {
1669        let dir = crate::test_support::private_tempdir().map_err(test_error)?;
1670        let db_path = dir.path().join("aion.db");
1671        let package_path = write_package_archive(dir.path())?;
1672        // The production path binds the CONFIGURED listen address, so commit to a
1673        // concrete reserved loopback port the worker can also dial.
1674        let listen_address = reserve_loopback_port()?;
1675
1676        // (A) Build a real ServerState through the production boot path
1677        // (ServerState::build over a libSQL ServerConfig): outbox enabled,
1678        // transport = liminal, the listen address set, collect_four loaded. This
1679        // shares the libSQL leaf as the dispatcher's outbox store (the real boot
1680        // store seam) and installs the production ServerOutboxDeliveryCallback over
1681        // the live engine (gated on outbox.enabled).
1682        let config = server_config(&db_path, package_path, listen_address);
1683        let outbox_config = config.outbox.clone();
1684        let state = ServerState::build(config).await.map_err(test_error)?;
1685
1686        // (B) Drive the EXACT production commissioning function run_server calls:
1687        // it hosts the liminal listener, builds RegistryLiminalDispatch over the
1688        // shared registry + engine callback, and spawns the real OutboxDispatcher.
1689        // Hold the returned listener guard for the test's lifetime, exactly as
1690        // run_server holds it.
1691        let (shutdown_tx, shutdown_rx) = tokio::sync::watch::channel(false);
1692        // Own-all, generous-default backpressure (single-node e2e): fraction 1 and
1693        // the platform default, so the ceiling never engages — the claim behaves
1694        // exactly as before, proving the production path is byte-identical on default.
1695        let backpressure_settings = BackpressureSettings {
1696            platform_default: crate::config::DEFAULT_MAX_IN_FLIGHT_ACTIVITIES,
1697            fraction: crate::worker::OwnedShardFraction::own_all(),
1698        };
1699        let listener_guard = maybe_spawn_outbox_dispatcher(
1700            &state,
1701            &outbox_config,
1702            false,
1703            backpressure_settings,
1704            &shutdown_rx,
1705        )
1706        .map_err(test_error)?;
1707
1708        // (C) A REAL remote worker connects IN to the production listener and
1709        // self-registers in-band for the fixture's pool.
1710        let executions = Arc::new(AtomicUsize::new(0));
1711        let worker = WorkerThread::spawn(
1712            listen_address.to_string(),
1713            worker_config()?,
1714            worker_registry(&executions)?,
1715        );
1716
1717        // Wait until the in-band registration landed in the SAME registry the
1718        // dispatch path selects from (every fan-out activity type is eligible).
1719        let registry = state.worker_registry().clone();
1720        let deadline = Instant::now() + Duration::from_secs(5);
1721        loop {
1722            let ready = FAN_ACTIVITY_TYPES.iter().all(|activity_type| {
1723                registry
1724                    .select_worker(NAMESPACE, TASK_QUEUE, activity_type, None)
1725                    .ok()
1726                    .flatten()
1727                    .is_some()
1728            });
1729            if ready {
1730                break;
1731            }
1732            if Instant::now() > deadline {
1733                worker.stop();
1734                return Err(test_error("worker never registered in-band for the pool"));
1735            }
1736            tokio::time::sleep(Duration::from_millis(10)).await;
1737        }
1738
1739        // (D) Start collect_four over the REAL HTTP transport: the engine stages
1740        // four pending outbox rows; the production-wired dispatcher claims and
1741        // pushes each to the worker.
1742        let router = http_router(state.clone()).map_err(test_error)?;
1743        let workflow_id = start_over_http(&router).await?;
1744
1745        // (E) THE PROOF: the worker executed all four activities AND every terminal
1746        // was recorded through the production engine callback (record_fan_out_completion)
1747        // — four ActivityCompleted + one WorkflowCompleted in durable history. This
1748        // is the full round-trip the retired stub never achieved.
1749        let reader = LibSqlStore::open(db_path.clone())
1750            .await
1751            .map_err(test_error)?;
1752        let settled = wait_for_history(&reader, &workflow_id, "fan-out settled", |events| {
1753            count_completed(events) == FAN_OUT && count_workflow_completed(events) == 1
1754        })
1755        .await?;
1756        assert_eq!(
1757            count_completed(&settled),
1758            FAN_OUT,
1759            "every fan-out member must record a terminal through the production callback"
1760        );
1761        assert_eq!(
1762            count_workflow_completed(&settled),
1763            1,
1764            "the workflow must complete exactly once"
1765        );
1766        assert_eq!(
1767            executions.load(Ordering::SeqCst),
1768            FAN_OUT,
1769            "the remote worker must have executed every pushed dispatch exactly once"
1770        );
1771
1772        // Teardown: stop the dispatcher + worker, drop the listener guard (its Drop
1773        // stops the accept worker), shut the engine down so durable appends finish.
1774        shutdown_tx.send(true).ok();
1775        worker.stop();
1776        drop(listener_guard);
1777        state.shutdown().map_err(test_error)?;
1778        Ok(())
1779    }
1780}