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mlua_swarm_server/
lib.rs

1//! the server lib: axum Router + handler set. Split out as a library so it can
2//! be used from both `main.rs` (CLI) and integration tests.
3//!
4//! # Endpoints
5//!
6//! - `GET /v1/healthz`
7//! - `POST /v1/sessions` / `DELETE /v1/sessions` (= operator attach / detach, Bearer sid)
8//! - `POST /v1/tasks` (= unified Flow-form entry, Operator inject supported;
9//!   `operator_sid` explicitly pins the task to a registered Operator session, S2).
10//!   Also creates a `TaskRecord` + `RunRecord` (issue #13 ID-hierarchy persistence)
11//!   and echoes their ids in the response; see the `tasks` module doc. Always
12//!   synchronous, guarded against hanging (GH #33) by a readiness precheck
13//!   (`503` when the launch resolves to an operator-delegate path with zero
14//!   attached operators) and a `tokio::time::timeout` ceiling around the
15//!   dispatch await (`504` on expiry) — see `run_flow_form`'s doc comment.
16//! - `GET /v1/tasks` — list every persisted `TaskRecord` (newest first).
17//! - `GET /v1/tasks/:id` — a `TaskRecord` plus every `RunRecord` kicked from it.
18//! - `POST /v1/tasks/:id/runs` — re-kick an existing Task (new `RunId`, same
19//!   `blueprint_ref` / `input_ctx`).
20//! - `GET /v1/tasks/:id/runs/:run/steps` / `.../steps/:step` /
21//!   `.../steps/:step/content` — the metadata + content debug plane over a
22//!   Run's step OUTPUT (`:run` accepts `latest` or an explicit `R-<hex>`,
23//!   `projection::McpQueryAdapter`); see the `projection` module doc. This
24//!   is the operator / human-debug counterpart to the Worker axis's
25//!   `context.steps` pointer list on `GET /v1/worker/prompt`
26//!   (`projection-adapter` ST5 — replaces the ST2/ST4 single-value `GET
27//!   /v1/tasks/:id/ctx`).
28//! - `GET /v1/runs/:id` — a single `RunRecord` (its `step_entries` trace included).
29//! - `GET /v1/runs/:id/bindings` — immutable requested/effective AgentProvider
30//!   binding explain for that Run.
31//! - `POST /v1/runs/:id/resume` — resume an `Interrupted` Run under the same `run_id`.
32//! - `POST /v1/runs/:id/rerun-from` — GH #71 Layer A. Rerun a terminal Run from
33//!   a caller-specified step under the same `run_id` (physically truncates the
34//!   replay log at the cut point). See `tasks::run_rerun_from`.
35//! - `POST /v1/operators` / `GET /v1/operators/:sid` / `DELETE /v1/operators/:sid` /
36//!   `GET /v1/operators/:sid/ws` (WS upgrade) — REST-like Operator login flow,
37//!   Bearer-mandatory; the sole WS Operator session route. See `operator_ws::login`
38//!   module doc.
39//!
40//! The Enhance issue axis (`/issues`) lives in the `issues` module; callers merge
41//! `build_issues_router` to integrate it into the same server.
42//!
43//! # The 3 faces of the Operator role (= registered directly on the engine SoT)
44//!
45//! The engine stateless-executor refactor removed the three
46//! `AppState` registries (former `HookRegistry` / `BridgeRegistry` / `OperatorRegistry`);
47//! all registration now goes directly to the engine SoT via
48//! `engine.register_spawn_hook` / `register_senior_bridge` / `register_operator`.
49//! `WSOperatorSession` (in the `operator_ws` module) registers all three traits
50//! simultaneously under a single sid — one WS connection covers all 3 faces of
51//! the Operator role, the canonical pattern.
52//!
53//! # `build_*` family
54//!
55//! - [`build_router`] — minimal entry (= `default_registry()`)
56//! - [`build_router_with`] — caller provides a `SpawnerRegistry` and optional `BlueprintStore`
57//!
58//! The engine should be started with [`default_layer_registry`] (= `Engine::new_with_layers`);
59//! otherwise `Blueprint.spawner_hints` is ignored.
60
61#![warn(missing_docs)]
62
63pub mod binding;
64/// HTTP surface for inspecting/registering Blueprint state (`/v1/blueprints/*`).
65pub mod blueprints;
66/// Server config file support (`~/.mse/config.toml`, CLI > file > default merge).
67pub mod config;
68/// `/v1/data/*` endpoints (v9 Big Response handling, Store-owner direct path).
69pub mod data;
70/// `GET /v1/doctor` — read-only startup config / Store snapshot.
71pub mod doctor;
72/// HTTP surface for the `/v1/enhance/log` axis.
73pub mod enhance_log;
74/// `EnhanceSetting` HTTP CRUD (`/v1/enhance-settings*`).
75pub mod enhance_settings;
76/// HTTP surface for the Enhance issue axis (`/v1/issues*`).
77pub mod issues;
78/// WebSocket Operator Callback IF (`/v1/operators*`).
79pub mod operator_ws;
80/// `GET /v1/tasks/:id/runs/:run/steps*` (the metadata + content debug
81/// plane over a Run's step OUTPUT — `McpQueryAdapter`, a server-side
82/// `mlua_swarm::core::projection::ProjectionAdapter` impl reading through
83/// the Data-plane `OutputStore` with a persisted `RunRecord.result_ref`
84/// fallback). See the module doc for how this relates to
85/// `operator_ws::session`'s in-flight `FileProjectionAdapter` hook and
86/// `worker`'s Worker-axis `context.steps` pointer assembly.
87pub mod projection;
88/// HTTP surface for the Task/Run persistence axis (issue #13 ID hierarchy;
89/// `GET /v1/tasks`, `GET /v1/tasks/:id`, `POST /v1/tasks/:id/runs`,
90/// `GET /v1/runs/:id`). `POST /v1/tasks` itself stays in this module (it is
91/// the entry point `tasks_start` shares with the flow-eval path) — see the
92/// `tasks` module doc for the split rationale.
93pub mod tasks;
94/// `/v1/worker/*` endpoints (SubAgent self-fetch path).
95pub mod worker;
96pub use blueprints::{
97    build_blueprints_router, build_blueprints_router_with_refs, BindingRequirementsResponse,
98};
99pub use enhance_log::build_enhance_log_router;
100pub use enhance_settings::build_enhance_settings_router;
101pub use issues::{build_issues_router, GetIssueResponse, PostIssueRequest, PostIssueResponse};
102pub use operator_ws::{
103    operators_create, operators_delete, operators_delete_by_role, operators_info, operators_list,
104    operators_ws_connect, ClientMsg, OperatorSessionEntry, OperatorsListEntry, OperatorsListResp,
105    ServerMsg, WSOperatorSession,
106};
107pub use projection::{McpQueryAdapter, ProjectionSource, StepList, StepPathQuery, StepSummary};
108pub use tasks::{
109    RunBindingDifference, RunBindingExplainEntry, RunBindingStatus, RunBindingsExplainResponse,
110    RunKickRequest, RunKickResponse, RunResumeResponse, TaskDetailResponse,
111};
112pub use worker::{
113    worker_artifact, worker_prompt, worker_result, ArtifactQuery, PromptQuery, WorkerResultReq,
114};
115
116use axum::{
117    extract::{DefaultBodyLimit, State},
118    http::{header::AUTHORIZATION, HeaderMap, StatusCode},
119    response::{IntoResponse, Response},
120    routing::{get, post},
121    Json, Router,
122};
123use mlua_swarm::application::{BlueprintRef, TaskApplication, TaskApplicationError};
124use mlua_swarm::blueprint::store::BlueprintStore;
125use mlua_swarm::core::config::CheckPolicy;
126use mlua_swarm::service::{TaskLaunchError, TaskLaunchService};
127use mlua_swarm::store::replay::{InMemoryReplayStore, ReplayStore};
128use mlua_swarm::store::run::{RunContext, RunRecord, RunStatus, RunStore};
129use mlua_swarm::store::task::{TaskRecord, TaskRecordStatus, TaskStore};
130use mlua_swarm::{
131    CapToken, Compiler, Engine, LayerRegistry, LongHoldMiddleware, LuaInProcessSpawnerFactory,
132    MainAIMiddleware, OperatorDelegateMiddleware, OperatorSpawnerFactory, Role, RunId,
133    RustFnInProcessSpawnerFactory, SeniorEscalationMiddleware, SessionId, SpawnerRegistry,
134    SubprocessProcessSpawnerFactory, TaskId,
135};
136use serde::{Deserialize, Serialize};
137use serde_json::{json, Value};
138use std::collections::HashMap;
139use std::sync::Arc;
140use std::time::Duration;
141use tokio::sync::Mutex;
142
143/// In-memory session map backing `/v1/sessions` attach/detach.
144///
145/// The `sid` handed to the client on this REST path is the token nonce
146/// itself (a bearer secret), so the server never uses it as a map key —
147/// entries are keyed by its fingerprint
148/// (`mlua_swarm::types::token_fingerprint`; issue #14).
149#[derive(Default)]
150pub struct SessionStore {
151    /// Live session tokens keyed by the sid's fingerprint.
152    pub map: HashMap<String, CapToken>,
153}
154
155/// Shared axum handler state for the whole router. Cloned per-request (all
156/// fields are `Arc`/cheap-clone), constructed once in [`build_router_with_ws_factory`].
157#[derive(Clone)]
158pub struct AppState {
159    /// The engine SoT (attach/detach, dispatch, registries).
160    pub engine: Engine,
161    /// Live `/v1/sessions` attach records (Operator/Worker/etc session tokens).
162    pub sessions: Arc<Mutex<SessionStore>>,
163    /// Application used at the task entry to resolve `BlueprintRef`. Without a Store, runs in Inline-only mode.
164    pub task_app: Arc<TaskApplication>,
165    /// When `Some`, on WS connect a new `WSOperatorSession` is automatically registered
166    /// with this factory under the sid name (= a `kind=operator` + `operator_ref=<sid>` AgentDef
167    /// binds to the `WSOperatorSession` backend).
168    /// When `None`, no auto-registration happens; the session is only registered on
169    /// `engine.OperatorRegistry` (= only the `OperatorDelegateMiddleware` path is effective;
170    /// the `OperatorSpawnerFactory` path is dead).
171    pub ws_operator_factory: Option<Arc<OperatorSpawnerFactory>>,
172    /// Owner of the Store on the Data path (Big Response handling). Added in v9.
173    /// Independent layer — the Engine core and the Domain path (`/v1/worker/result`)
174    /// are not involved.
175    /// Default = `InMemoryOutputStore` (constructed inside `build_router_with_ws_factory`);
176    /// callers can swap in an sqlite/fs backend later (future carry).
177    pub data_store: Arc<dyn mlua_swarm::store::output::OutputStore>,
178    /// Login-flow session store (`POST /v1/operators` mint records). `sid` →
179    /// `OperatorSessionEntry`. This is the sole session store for the WS
180    /// Operator role. See `operator_ws::login` module doc.
181    pub operator_sessions:
182        Arc<Mutex<HashMap<SessionId, Arc<crate::operator_ws::login::OperatorSessionEntry>>>>,
183    /// S1 login-flow roles-exclusivity map. Role name → owning `sid`. Checked
184    /// (and updated) atomically under a single lock in
185    /// `operator_ws::login::operators_create` — a role already present here
186    /// causes `POST /v1/operators` to return `409 CONFLICT`. Entries are
187    /// released on `DELETE /v1/operators/:sid`.
188    pub roles_to_sid: Arc<Mutex<HashMap<String, SessionId>>>,
189    /// Persistence for `Task` records (issue #13 ID-hierarchy work-item
190    /// identity; see `mlua_swarm::store::task` module doc). Default =
191    /// `InMemoryTaskStore` (constructed inside `build_router_full`); callers
192    /// can swap in a `SqliteTaskStore` via the `task_store` argument.
193    pub task_store: Arc<dyn TaskStore>,
194    /// Persistence for `Run` records (one kick of a Task; see
195    /// `mlua_swarm::store::run` module doc). Default = `InMemoryRunStore`;
196    /// callers can swap in a `SqliteRunStore` via the `run_store` argument.
197    pub run_store: Arc<dyn RunStore>,
198    /// Per-run replay log — the Ctx-snapshot + step-output store the engine
199    /// appends to after every completed step (see `mlua_swarm::store::replay`
200    /// module doc). Threaded into `RunContext` at every dispatch site so a
201    /// later restart-equivalent recovery can reconstruct the run. Default =
202    /// `InMemoryReplayStore` (process-volatile); callers can swap in a
203    /// `SqliteReplayStore` via the `replay_store` argument.
204    pub replay_store: Arc<dyn ReplayStore>,
205    /// Per-Run trace stream (the RunTrace rail — see
206    /// `mlua_swarm::store::trace` module doc). A `TraceHandle` bound to
207    /// this store is threaded into `RunContext` at every dispatch site
208    /// (`core.*` events + middleware/worker insertion) and read back via
209    /// `GET /v1/runs/:id/trace`. Default = `InMemoryRunTraceStore`;
210    /// callers can swap in a `SqliteRunTraceStore` (typically sharing
211    /// the `SqliteRunStore` file) via the terminal builder's
212    /// `run_trace_store` argument.
213    pub run_trace_store: Arc<dyn mlua_swarm::store::trace::RunTraceStore>,
214    /// Public HTTP base URL the server is reachable at (e.g.
215    /// `"http://127.0.0.1:7777"`), sourced from the binary at boot time.
216    /// When `Some`, `WSOperatorSession` renders it literally into the
217    /// Spawn `directive`'s `base_url` line so the receiving operator can
218    /// paste the frame into a SubAgent prompt without a `mse_doctor`
219    /// detour (issue #8). `None` preserves the historical fallback
220    /// (a placeholder that points at `mse_doctor`).
221    pub base_url: Option<Arc<str>>,
222    /// Server-wide fallback ceiling (seconds) for the `POST /v1/tasks`
223    /// synchronous launch await (GH #33 Guard 2; see `run_flow_form`'s doc
224    /// comment). Sourced from `config::ResolvedConfig::sync_timeout_secs`.
225    /// A per-request `TaskLaunchRequest.timeout_secs` override, when
226    /// present, takes priority over this value.
227    pub sync_timeout_secs: u64,
228}
229
230/// Minimal entry point: builds a router with [`default_registry`] and no
231/// `BlueprintStore` (Inline-only mode) or `ws_operator_factory`.
232pub fn build_router(engine: Engine) -> Router {
233    build_router_with(engine, default_registry(), None)
234}
235
236/// Default `LayerRegistry` for the server. Hint keys:
237/// - `"main_ai"` → `MainAIMiddleware` (= fires SpawnHook before/after)
238/// - `"senior_escalation"` → `SeniorEscalationMiddleware` (= on `ok=false`, escalates via `SeniorBridge.ask`)
239/// - `"operator_delegate"` → `OperatorDelegateMiddleware` (= when an operator backend is registered, delegates the entire spawn)
240///
241/// Including any of these keys in `Blueprint.spawner_hints.layers` causes them to
242/// be wrapped into a `SpawnerStack` at `service::linker::link` time (= per-launch;
243/// the old `engine.bind` global-state path is retired).
244/// Callers (the engine builder side) receive it via
245/// `Engine::new_with_layers(cfg, mse_server::default_layer_registry())`.
246pub fn default_layer_registry() -> LayerRegistry {
247    default_layer_registry_with(LayerOptions::default())
248}
249
250/// Optional knobs the terminal `default_layer_registry_with` builder
251/// consumes — the only currently-tunable knob is the LongHold threshold.
252#[derive(Debug, Default, Clone, Copy)]
253pub struct LayerOptions {
254    /// When `Some(ms)`, wire [`LongHoldMiddleware`] as a **base layer**
255    /// (applied to every dispatched step) with `default_hold = ms`.
256    /// The layer stays observational: on threshold breach it broadcasts
257    /// `Event::TaskAttemptCompleted { long_hold_warn: true, .. }` and
258    /// (when the dispatcher registered a `TraceHandle` for the step)
259    /// appends a `mw.long_hold_warn` event to the persistent
260    /// `RunTraceStore`. `None` = the layer is not installed — the same
261    /// no-op default the pre-config shape had.
262    pub long_hold_warn_ms: Option<u64>,
263}
264
265/// Variant of [`default_layer_registry`] that also honours per-server
266/// [`LayerOptions`] (currently: the LongHold threshold). Called by
267/// `mse serve` with the resolved config value; every other caller
268/// (tests, in-tree bins that don't tune the LongHold knob) can keep
269/// using the zero-arg [`default_layer_registry`].
270pub fn default_layer_registry_with(options: LayerOptions) -> LayerRegistry {
271    let mut reg = LayerRegistry::new()
272        .with_hint("main_ai", |_engine| Arc::new(MainAIMiddleware::new()))
273        .with_hint("senior_escalation", |_engine| {
274            Arc::new(SeniorEscalationMiddleware::new())
275        })
276        .with_hint("operator_delegate", |_engine| {
277            Arc::new(OperatorDelegateMiddleware::new())
278        });
279    if let Some(ms) = options.long_hold_warn_ms {
280        // Bake the millisecond threshold into the factory closure so it
281        // rides into every per-launch stack build without any per-BP
282        // state. The `Engine::event_tx()` sender is captured at bind
283        // time (fresh per Engine — the factory takes `&Engine`).
284        reg = reg.with_base(move |engine| {
285            Arc::new(LongHoldMiddleware::new(
286                std::time::Duration::from_millis(ms),
287                engine.event_tx(),
288            ))
289        });
290    }
291    reg
292}
293
294/// Build form where the caller supplies a registry and an optional `BlueprintStore`.
295/// The Operator callback path (= external HTTP / WS callers acting as an Operator)
296/// must be pre-registered via `engine.register_*` (= the engine is the SoT).
297/// See the `operator_ws` module doc and `OperatorInfo` (engine-side `ctx.rs`) for details.
298pub fn build_router_with(
299    engine: Engine,
300    registry: SpawnerRegistry,
301    store: Option<Arc<dyn BlueprintStore>>,
302) -> Router {
303    build_router_with_ws_factory(engine, registry, store, None)
304}
305
306/// 4-argument variant of `build_router_with`. Passing `ws_operator_factory = Some(arc)`
307/// causes each WS connect to auto-register a new `WSOperatorSession` under its sid
308/// name with the factory (= a `kind=operator` AgentDef with `operator_ref: <sid>`
309/// can then bind to the WS client backend). Callers are expected to also install
310/// the same `Arc` into the `SpawnerRegistry` via
311/// `reg.register::<OperatorSpawnerFactory>(arc.clone())`.
312pub fn build_router_with_ws_factory(
313    engine: Engine,
314    registry: SpawnerRegistry,
315    store: Option<Arc<dyn BlueprintStore>>,
316    ws_operator_factory: Option<Arc<OperatorSpawnerFactory>>,
317) -> Router {
318    build_router_with_ws_factory_and_output(engine, registry, store, ws_operator_factory, None)
319}
320
321/// 5-argument variant of [`build_router_with_ws_factory`]. Passing
322/// `output_store = Some(arc)` swaps the default `InMemoryOutputStore` for a
323/// caller-supplied backend (a `SqliteOutputStore`, for instance). `None`
324/// preserves the historical behaviour (fresh in-memory store per call).
325pub fn build_router_with_ws_factory_and_output(
326    engine: Engine,
327    registry: SpawnerRegistry,
328    store: Option<Arc<dyn BlueprintStore>>,
329    ws_operator_factory: Option<Arc<OperatorSpawnerFactory>>,
330    output_store: Option<Arc<dyn mlua_swarm::store::output::OutputStore>>,
331) -> Router {
332    build_router_full(
333        engine,
334        registry,
335        store,
336        ws_operator_factory,
337        output_store,
338        None,
339        None,
340        None,
341        None,
342        crate::config::default_sync_timeout_secs(),
343    )
344}
345
346// Backend-availability note for the trace rail: `build_router_full`
347// keeps its pre-trace signature (every existing caller gets the
348// in-memory default); a persistent `RunTraceStore` is injected via the
349// terminal `build_router_full_with_legacy_worker_binding_policy`'s
350// `run_trace_store` argument (the CLI `serve` path does this, sharing
351// the `SqliteRunStore` file).
352
353/// 8-argument variant of [`build_router_with_ws_factory_and_output`].
354/// Passing `base_url = Some(...)` (e.g. `"http://127.0.0.1:7777"`) makes
355/// `WSOperatorSession` render the actual server bind into the Spawn
356/// directive's `base_url` line, so the receiving operator can copy the
357/// frame straight into a SubAgent prompt (issue #8). `None` preserves
358/// the historical fallback (`<check with mse_doctor>` placeholder).
359/// `task_store` / `run_store` swap the default `InMemoryTaskStore` /
360/// `InMemoryRunStore` (issue #13 ID-hierarchy persistence) for a
361/// caller-supplied backend (`SqliteTaskStore` / `SqliteRunStore`, for
362/// instance); `None` preserves the process-volatile default.
363/// `sync_timeout_secs` is the server-wide fallback ceiling for the `POST
364/// /v1/tasks` synchronous launch await (GH #33 Guard 2) — see
365/// `AppState::sync_timeout_secs` / `run_flow_form`'s doc comment.
366// This is the terminal builder in the `build_router*` delegation chain
367// (each variant adds one more caller-overridable store/factory); the
368// argument count grows with the number of pluggable backends, not with
369// unrelated responsibilities, so a plain allow is preferable to bundling
370// them into a config struct only this one function would consume.
371#[allow(clippy::too_many_arguments)]
372pub fn build_router_full(
373    engine: Engine,
374    registry: SpawnerRegistry,
375    store: Option<Arc<dyn BlueprintStore>>,
376    ws_operator_factory: Option<Arc<OperatorSpawnerFactory>>,
377    output_store: Option<Arc<dyn mlua_swarm::store::output::OutputStore>>,
378    base_url: Option<Arc<str>>,
379    task_store: Option<Arc<dyn TaskStore>>,
380    run_store: Option<Arc<dyn RunStore>>,
381    replay_store: Option<Arc<dyn ReplayStore>>,
382    sync_timeout_secs: u64,
383) -> Router {
384    build_router_full_with_legacy_worker_binding_policy(
385        engine,
386        registry,
387        store,
388        ws_operator_factory,
389        output_store,
390        base_url,
391        task_store,
392        run_store,
393        replay_store,
394        None,
395        sync_timeout_secs,
396        mlua_swarm::LegacyWorkerBindingPolicy::Allow,
397    )
398}
399
400/// Full router builder with an explicit migration gate for deprecated
401/// `AgentProfile.worker_binding` Runner fallback. The existing
402/// [`build_router_full`] remains compatibility-defaulted to `Allow`.
403#[allow(clippy::too_many_arguments)]
404pub fn build_router_full_with_legacy_worker_binding_policy(
405    engine: Engine,
406    registry: SpawnerRegistry,
407    store: Option<Arc<dyn BlueprintStore>>,
408    ws_operator_factory: Option<Arc<OperatorSpawnerFactory>>,
409    output_store: Option<Arc<dyn mlua_swarm::store::output::OutputStore>>,
410    base_url: Option<Arc<str>>,
411    task_store: Option<Arc<dyn TaskStore>>,
412    run_store: Option<Arc<dyn RunStore>>,
413    replay_store: Option<Arc<dyn ReplayStore>>,
414    run_trace_store: Option<Arc<dyn mlua_swarm::store::trace::RunTraceStore>>,
415    sync_timeout_secs: u64,
416    legacy_worker_binding_policy: mlua_swarm::LegacyWorkerBindingPolicy,
417) -> Router {
418    let operator_sessions = Arc::new(Mutex::new(HashMap::new()));
419    let roles_to_sid = Arc::new(Mutex::new(HashMap::new()));
420    let compiler = Compiler::new(registry);
421    let binding_provider = Arc::new(binding::OperatorSessionBindingProvider::new(
422        operator_sessions.clone(),
423        roles_to_sid.clone(),
424    ));
425    let launch = Arc::new(
426        TaskLaunchService::new(engine.clone(), compiler)
427            .with_binding_provider(binding_provider)
428            .with_legacy_worker_binding_policy(legacy_worker_binding_policy),
429    );
430    let task_app = Arc::new(match store {
431        Some(s) => TaskApplication::new(launch, s),
432        None => TaskApplication::new_inline_only(launch),
433    });
434    let data_store: Arc<dyn mlua_swarm::store::output::OutputStore> = match output_store {
435        Some(s) => s,
436        None => Arc::new(mlua_swarm::store::output::InMemoryOutputStore::new()),
437    };
438    // subtask-4 / ST2 rework: wire the SAME `data_store` instance into the
439    // engine's submit-time projection sink (`Engine::submit_output` /
440    // `submit_worker_result_trusted`), so an ordinary worker
441    // `/v1/worker/submit` — not just the explicit `POST /v1/data/emit` —
442    // lands in this store too. `projection::McpQueryAdapter` (`GET
443    // /v1/tasks/:id/runs/:run/steps*`) reads through this same `Arc`,
444    // which is what makes an in-flight run's already-submitted step
445    // OUTPUT queryable.
446    engine.set_output_store(data_store.clone());
447    let task_store: Arc<dyn TaskStore> = match task_store {
448        Some(s) => s,
449        None => Arc::new(mlua_swarm::store::task::InMemoryTaskStore::new()),
450    };
451    let run_store: Arc<dyn RunStore> = match run_store {
452        Some(s) => s,
453        None => Arc::new(mlua_swarm::store::run::InMemoryRunStore::new()),
454    };
455    let replay_store: Arc<dyn ReplayStore> = match replay_store {
456        Some(s) => s,
457        None => Arc::new(InMemoryReplayStore::new()),
458    };
459    let run_trace_store: Arc<dyn mlua_swarm::store::trace::RunTraceStore> = match run_trace_store {
460        Some(s) => s,
461        None => Arc::new(mlua_swarm::store::trace::InMemoryRunTraceStore::new()),
462    };
463    let state = AppState {
464        engine,
465        sessions: Arc::new(Mutex::new(SessionStore::default())),
466        task_app,
467        ws_operator_factory,
468        data_store,
469        operator_sessions,
470        roles_to_sid,
471        task_store,
472        run_store,
473        replay_store,
474        run_trace_store,
475        base_url,
476        sync_timeout_secs,
477    };
478    Router::new()
479        .route("/v1/healthz", get(healthz))
480        .route("/v1/status", get(status_get))
481        // session = collection (POST = attach, DELETE = detach, sid via Authorization)
482        .route(
483            "/v1/sessions",
484            post(sessions_attach).delete(sessions_detach),
485        )
486        // task = flat, single level; authz resolved via Authorization: Bearer <sid>
487        .route("/v1/tasks", post(tasks_start).get(tasks::tasks_list))
488        .route("/v1/tasks/:id", get(tasks::task_get))
489        .route("/v1/tasks/:id/runs", post(tasks::task_rekick))
490        .route("/v1/tasks/:id/runs/:run/steps", get(projection::steps_list))
491        .route(
492            "/v1/tasks/:id/runs/:run/steps/:step",
493            get(projection::step_get),
494        )
495        .route(
496            "/v1/tasks/:id/runs/:run/steps/:step/content",
497            get(projection::step_content),
498        )
499        // Run collection + sub-resources (per-step run stats / trace rail):
500        // `GET /v1/runs` = filtered list, `DELETE /v1/runs/:id` = retention
501        // prune (run row + trace stream together), `:id/steps` = the
502        // terminal per-step stats, `:id/trace` = the TraceEvent stream.
503        .route("/v1/runs", get(tasks::runs_list))
504        .route(
505            "/v1/runs/:id",
506            get(tasks::run_get).delete(tasks::run_delete),
507        )
508        .route("/v1/runs/:id/cancel", post(tasks::run_cancel))
509        .route("/v1/runs/:id/steps", get(tasks::run_steps))
510        .route("/v1/runs/:id/trace", get(tasks::run_trace))
511        .route("/v1/runs/:id/bindings", get(tasks::run_bindings_explain))
512        // Resume an Interrupted Run under the SAME run_id (replay cursor +
513        // stored launch-input snapshot); see `tasks::run_resume`.
514        .route("/v1/runs/:id/resume", post(tasks::run_resume))
515        // Rerun-from-step on a terminal Run under the SAME run_id (physically
516        // truncates the replay log at the cut point); see
517        // `tasks::run_rerun_from` for the full contract (GH #71 Layer A).
518        .route("/v1/runs/:id/rerun-from", post(tasks::run_rerun_from))
519        // REST-like Operator login flow (Bearer-mandatory, roles exclusivity).
520        // Sole WS Operator session route; see `operator_ws::login` module doc.
521        // GH #81 Layer 2: `GET /v1/operators` (list, read-only observability
522        // — no Bearer, same trust tier as `GET /v1/status`) and
523        // `DELETE /v1/operators/by-role/:role` (stale-session recovery
524        // without knowing the sid — same trust tier as
525        // `mlua_swarm_server_shutdown`) close the pre-#81 recovery gap
526        // where a stale session was only clearable via a full server
527        // restart. Order matters: the `by-role` route is declared BEFORE
528        // the `:sid` route so `axum` matches `by-role/:role` as its own
529        // path, not as a `:sid` extract of literal `by-role`.
530        .route("/v1/operators", post(operators_create).get(operators_list))
531        .route("/v1/operators/:sid/ws", get(operators_ws_connect))
532        .route(
533            "/v1/operators/by-role/:role",
534            axum::routing::delete(operators_delete_by_role),
535        )
536        .route(
537            "/v1/operators/:sid",
538            get(operators_info).delete(operators_delete),
539        )
540        // SubAgent self-fetch path (the SubAgent self-fetch design). The SubAgent puts the
541        // CapToken handed over via WS Spawn into Bearer and hits the prompt / result
542        // endpoints directly over HTTP. See the `worker` module doc for details.
543        .route("/v1/worker/prompt", get(worker::worker_prompt))
544        .route("/v1/worker/result", post(worker::worker_result))
545        // Simplified endpoint (= worker POSTs with just token + raw body; task_id is auto-looked-up).
546        // `DefaultBodyLimit::max` is applied explicitly here (and on the sibling
547        // `/v1/worker/artifact` below) — same 2MB axum ships as its implicit
548        // global default, made visible rather than relied on silently.
549        .route(
550            "/v1/worker/submit",
551            post(worker::worker_submit).layer(DefaultBodyLimit::max(2 * 1024 * 1024)),
552        )
553        // GH #36 ST1: named multi-part worker output. A worker stages one
554        // named part per POST here, then completes the attempt with the
555        // ordinary `/v1/worker/submit` above — see the `worker` module doc.
556        .route(
557            "/v1/worker/artifact",
558            post(worker::worker_artifact).layer(DefaultBodyLimit::max(2 * 1024 * 1024)),
559        )
560        // GH #31: `Http`-mode fetch target for `system_ref.uri` (raw baked system
561        // bytes, same Bearer flow as `/v1/worker/prompt`) + live per-agent render-size
562        // lookup for `bp_doctor` (no Bearer, same trust tier as blueprints `get_head`).
563        .route(
564            "/v1/worker/prompt/system",
565            get(worker::worker_prompt_system),
566        )
567        .route(
568            "/v1/agents/:name/render-size",
569            get(worker::agent_render_size),
570        )
571        // GH #32: structured worker degradation reporting — independent channel,
572        // never touches OutputStore / the fold path. See the `worker` module doc.
573        .route("/v1/worker/degradation", post(worker::worker_degradation))
574        .route("/v1/worker/stats", post(worker::worker_stats))
575        // Data path (v9 Big Response handling, independent from Domain / verdict flow)
576        .route("/v1/data/emit", post(data::data_emit))
577        .route(
578            "/v1/data/:key",
579            get(data::data_get).post(data::data_emit_named),
580        )
581        .with_state(state)
582}
583
584/// Default registry = Subprocess + RustFn (baseline `identity` worker pre-baked) + empty Operator factory.
585///
586/// `RustFnInProcessSpawnerFactory` gets one baseline entry (`fn_id = "identity"`)
587/// baked in via [`mlua_swarm::worker::baseline::extend_with_baseline`]. This
588/// is the shared bootstrap / smoke worker SoT across each binary (the server / MCP adapter /
589/// one-shot runner) — it structurally replaces the old per-binary inline echo injection.
590///
591/// Usage: default Task path at server startup. If production needs additional
592/// backends, callers bring in a different registry via
593/// `build_router_with(engine, custom_registry)`. The enhance flow
594/// (= patch-spawner / patch-applier / verifier-router / committer axes) uses
595/// [`default_registry_with_enhance_flow`].
596///
597/// The Operator factory is an empty shell with zero registrations (= sids are
598/// dynamically registered per WS connect; see the `operator_ws` module).
599pub fn default_registry() -> SpawnerRegistry {
600    let rustfn_factory =
601        mlua_swarm::worker::baseline::extend_with_baseline(RustFnInProcessSpawnerFactory::new());
602
603    let mut reg = SpawnerRegistry::new();
604    reg.register::<SubprocessProcessSpawnerFactory>(Arc::new(SubprocessProcessSpawnerFactory));
605    reg.register::<RustFnInProcessSpawnerFactory>(Arc::new(rustfn_factory));
606    // Empty `LuaInProcessSpawnerFactory`: no `fn_id` is pre-registered here,
607    // but BP agents can still declare `kind: lua` by carrying an inline
608    // `spec.source` (or a `$file`-expanded Lua chunk). This lets a BP ship
609    // deterministic Lua gates on the vanilla registry, without opting into
610    // the enhance flow. See `LuaInProcessSpawnerFactory` docs for the spec
611    // shape.
612    reg.register::<LuaInProcessSpawnerFactory>(Arc::new(LuaInProcessSpawnerFactory::new()));
613    reg.register::<OperatorSpawnerFactory>(Arc::new(OperatorSpawnerFactory::new()));
614    reg
615}
616
617/// Opt-in registry that merges [`default_registry`] with the enhance flow
618/// (Lua factory + AgentBlock factory).
619///
620/// Selected via the `the server` CLI flag `--enable-enhance-flow`. The enhance
621/// flow is a separate-axis wrapper: the Lua factory (= 3 Lua workers + 3 primitive
622/// bridges) and the AgentBlock factory (= patch-spawner path, expects
623/// `assets/operator_scripts/blueprint_patch_spawner.lua` + `ANTHROPIC_API_KEY`)
624/// are baked in as pipeline defaults. The baseline RustFn (`identity`) is pre-baked
625/// the same way as in `default_registry`.
626pub fn default_registry_with_enhance_flow() -> SpawnerRegistry {
627    let lua_factory =
628        mlua_swarm::enhance::blueprint::extend_factory(LuaInProcessSpawnerFactory::new());
629    // The Factory is stateless (= 1 process → 1 factory shared by all AgentDefs).
630    // Per-agent specialization (script_path / project_root, etc.) goes through AgentDef.spec.
631    // The enhance-flow patch-spawner is declared literally in agents[].spec of `default_blueprint.yaml`.
632    let agent_block_factory =
633        mlua_swarm::worker::agent_block::AgentBlockInProcessSpawnerFactory::new();
634    let rustfn_factory =
635        mlua_swarm::worker::baseline::extend_with_baseline(RustFnInProcessSpawnerFactory::new());
636
637    let mut reg = SpawnerRegistry::new();
638    reg.register::<SubprocessProcessSpawnerFactory>(Arc::new(SubprocessProcessSpawnerFactory));
639    reg.register::<RustFnInProcessSpawnerFactory>(Arc::new(rustfn_factory));
640    reg.register::<LuaInProcessSpawnerFactory>(Arc::new(lua_factory));
641    reg.register::<mlua_swarm::worker::agent_block::AgentBlockInProcessSpawnerFactory>(Arc::new(
642        agent_block_factory,
643    ));
644    reg.register::<OperatorSpawnerFactory>(Arc::new(OperatorSpawnerFactory::new()));
645    reg
646}
647
648// ─── handlers ────────────────────────────────────────────────────────────
649
650async fn healthz() -> &'static str {
651    "ok"
652}
653
654/// Response body for `GET /v1/status` (issue #35 ST4 — lifecycle
655/// occupancy guard). Cheap-to-poll summary of "is it safe to kill this
656/// server right now".
657#[derive(Debug, Clone, Serialize, schemars::JsonSchema)]
658pub struct StatusResponse {
659    /// Count of `Run`s currently `Running` (`RunStore::list_running`).
660    /// Degrades to `0` on a store error rather than 500ing — see
661    /// module doc rationale.
662    pub running_runs: usize,
663    /// Count of attached Operator ids (`engine.list_operator_ids()`,
664    /// same idiom as `run_flow_form`'s Guard 1).
665    pub attached_operators: usize,
666}
667
668/// `GET /v1/status`. Infallible summary for the ST4 occupancy guard —
669/// store/engine query failures degrade the corresponding count to `0`
670/// (logged via `tracing::warn!`) rather than 500ing, since this
671/// endpoint may be polled frequently by a lifecycle-check caller that
672/// should not itself become a hang/error surface.
673async fn status_get(State(state): State<AppState>) -> Json<StatusResponse> {
674    let running_runs = state
675        .run_store
676        .list_running()
677        .await
678        .map(|v| v.len())
679        .unwrap_or_else(|e| {
680            tracing::warn!(error = %e, "status_get: list_running failed");
681            0
682        });
683    let attached_operators = state.engine.list_operator_ids().await.len();
684    Json(StatusResponse {
685        running_runs,
686        attached_operators,
687    })
688}
689
690#[derive(Deserialize)]
691struct AttachReq {
692    agent_id: String,
693    role: String,
694    ttl_secs: u64,
695}
696
697#[derive(Serialize)]
698struct AttachResp {
699    session_id: String,
700    role: String,
701}
702
703async fn sessions_attach(
704    State(state): State<AppState>,
705    Json(req): Json<AttachReq>,
706) -> Result<Json<AttachResp>, ApiError> {
707    let role = parse_role(&req.role)?;
708    let token = state
709        .engine
710        .attach(req.agent_id, role, Duration::from_secs(req.ttl_secs))
711        .await
712        .map_err(ApiError::engine)?;
713    // The wire `session_id` stays the nonce (Bearer credential contract);
714    // the server-side map key is its fingerprint (issue #14).
715    let sid = token.nonce.clone();
716    let key = token.fingerprint();
717    state.sessions.lock().await.map.insert(key, token);
718    Ok(Json(AttachResp {
719        session_id: sid,
720        role: req.role,
721    }))
722}
723
724async fn sessions_detach(
725    State(state): State<AppState>,
726    headers: HeaderMap,
727) -> Result<StatusCode, ApiError> {
728    let sid = extract_bearer(&headers)?;
729    let token = take_session_token(&state, &sid).await?;
730    state
731        .engine
732        .detach(&token)
733        .await
734        .map_err(ApiError::engine)?;
735    Ok(StatusCode::NO_CONTENT)
736}
737
738// ─── Unified /v1/tasks schema (= flow-eval path, Operator inject supported) ───────
739
740/// `/v1/tasks` POST schema. Uses the flow-eval path and supports Operator inject
741/// (kind / spawn_hook / senior_bridge). Expressing a one-shot task as a 1-Step
742/// Blueprint is the only correct model.
743///
744/// `pub` (issue #19 ST5) so its `schemars`-derived JSON Schema can be
745/// generated cross-crate by `mlua-swarm-cli`'s `mse://api/http-endpoints`
746/// MCP resource; fields stay module-private (no public field-level API
747/// surface is intended).
748#[derive(Deserialize, schemars::JsonSchema)]
749pub struct TaskLaunchRequest {
750    /// `BlueprintRef` selects Inline (a full Blueprint value) or Id (a
751    /// store lookup). Left opaque here — its own schema nests the full
752    /// `Blueprint` schema (owned by `mse://api/blueprint-schema`), and
753    /// mixing the two into this HTTP-endpoint resource would violate
754    /// their separation of concerns (see the resource's module doc).
755    #[schemars(with = "Value")]
756    blueprint: BlueprintRef,
757    /// flow.ir's initial `ctx` — every `Step.in` `$.<path>` reads from
758    /// here. This field's role is limited to the flow-ir eval seed
759    /// (issue #19); the Task-level execution context lives in the
760    /// sibling top-level fields below (`project_root` / `work_dir` /
761    /// `task_metadata`), promoted out of `init_ctx` to remove the
762    /// prior "free bag nested in free JSON" duplication.
763    ///
764    /// Backward compat: the pre-#19 shape — the same three keys nested
765    /// directly inside this object — is still honored as a fallback
766    /// when the sibling field is absent; see `run_flow_form`'s 2-stage
767    /// resolution and `TaskInputMiddleware::from_init_ctx`.
768    #[schemars(with = "Value")]
769    init_ctx: Value,
770    /// Task-level project root (issue #19 canonical Task IF field —
771    /// promoted out of `init_ctx`). Takes priority over a same-named
772    /// key nested inside `init_ctx` (backward-compat fallback).
773    #[serde(default)]
774    project_root: Option<String>,
775    /// Task-level working directory (issue #19), same priority rule as
776    /// `project_root`.
777    #[serde(default)]
778    work_dir: Option<String>,
779    /// Task-level arbitrary metadata bag (issue #19), same priority
780    /// rule as `project_root`.
781    #[serde(default)]
782    #[schemars(with = "Option<Value>")]
783    task_metadata: Option<Value>,
784    /// TTL in seconds. When unspecified (`None`), falls back in this order:
785    /// (1) `metadata.default_run_ttl_secs` from the resolved BP,
786    /// (2) if absent, the server global `default_run_ttl()` (1800s).
787    #[serde(default)]
788    ttl_secs: Option<u64>,
789    #[serde(default)]
790    operator: Option<OperatorReq>,
791    /// Explicit Operator session sid (or role alias) this task's entire Spawn
792    /// stream should be routed to (runtime Operator match stage 1).
793    ///
794    /// When `Some`, it is validated at request time against
795    /// `state.engine.list_operator_ids()` (the live `engine.operators`
796    /// registry key set): an unknown/never-registered id returns `400`
797    /// immediately — this is a deliberate hard-fail, in contrast to
798    /// `OperatorDelegateWrapped::spawn`, which silently falls through to
799    /// `inner.spawn` on a registry miss. A sid that *was* registered but has
800    /// since disconnected (WS `tx` cleared, session entry retained for
801    /// reconnect) passes this check and surfaces as an explicit dispatch-time
802    /// error instead (`WSOperatorSession::send_and_await` returns `Err` when
803    /// `tx` is `None`), which also propagates as a request failure rather
804    /// than a silent fallback.
805    ///
806    /// On success this value **overrides** `operator.operator_backend_id`
807    /// (last-write-wins, `operator_sid` takes priority) before the flow is
808    /// dispatched — see `run_flow_form`. Dispatch still only delegates if the
809    /// Blueprint opts into `spawner_hints.layers = ["operator_delegate"]`
810    /// (unchanged precondition, same as the existing `operator_backend_id`
811    /// field).
812    ///
813    /// When unset, behavior is unchanged: whatever
814    /// `operator.operator_backend_id` / BP-level `operator_ref` alias
815    /// resolution already does still applies.
816    #[serde(default)]
817    operator_sid: Option<String>,
818    /// Per-request override for the sync launch's timeout ceiling (GH #33
819    /// Guard 2, see `run_flow_form`'s doc comment). `None` (the default;
820    /// existing clients are unaffected) falls back to
821    /// `AppState::sync_timeout_secs` (server config), then the built-in
822    /// default (300s). `Some(0)` is rejected with `400` — omit the field
823    /// to defer to the server default rather than sending an explicit
824    /// zero.
825    #[serde(default)]
826    timeout_secs: Option<u64>,
827    /// Human-facing description of the work item (e.g. "resolve issue #10"),
828    /// stashed verbatim into the minted `TaskRecord.goal`. Omitted / `None`
829    /// stores an empty string — the flow-eval path itself never reads it.
830    #[serde(default)]
831    goal: Option<String>,
832    /// The "launch request" tier (tier 1, highest
833    /// priority) of the `check_policy` cascade
834    /// (`launch request > blueprint > server config`). `None` (the default;
835    /// existing clients are unaffected) leaves the tier unspecified so the
836    /// Blueprint-declared `check_policy` and, failing that, the server-wide
837    /// `EngineCfg.check_policy` default decide. Wire form is snake_case
838    /// (`"silent"` / `"warn"` / `"strict"`). Threaded verbatim into
839    /// `TaskApplicationInput.check_policy`.
840    #[serde(default)]
841    check_policy: Option<CheckPolicy>,
842    /// GH #37: opt into the detached (asynchronous) launch. `false` (the
843    /// default; existing clients are unaffected) keeps the synchronous
844    /// launch: the handler drives the flow eval inline and returns the
845    /// `final_ctx` on completion. `true` spawns the flow eval as a
846    /// detached background task and returns `202 Accepted` immediately
847    /// with `{task_id, run_id, status: "running"}` (`final_ctx` is
848    /// `null`) — the run's only lifetime bound is `ttl_secs`, and its
849    /// outcome is observed via `GET /v1/runs/:id` (or the `swarm_status`
850    /// MCP tool). Mutually exclusive with `timeout_secs` (the sync-launch
851    /// ceiling has no meaning for a detached run; combining them is a
852    /// `400`).
853    #[serde(default)]
854    detach: bool,
855}
856
857/// Operator inject sub-schema of [`TaskLaunchRequest`] (`kind` / `id` /
858/// `spawn_hook_id` / `senior_bridge_id` / `operator_backend_id` /
859/// `per_agent_kinds`). `pub` for the same cross-crate schema-generation
860/// reason as `TaskLaunchRequest`.
861#[derive(Deserialize, Default, schemars::JsonSchema)]
862pub struct OperatorReq {
863    /// `main_ai` / `automate` / `composite`. This is the "Runtime Global"
864    /// tier of the 4-tier `OperatorKind` cascade (see `mlua_swarm
865    /// ::ctx::collapse_operator_kind`); when unspecified, falls through to
866    /// the BP-level tiers (`OperatorDef.kind` / `Blueprint
867    /// .default_operator_kind`) instead of eagerly defaulting to `automate`.
868    #[serde(default)]
869    kind: Option<String>,
870    /// Operator id at attach time (= sessions tracking key in the EventLog); unspecified defaults to `"http-run"`.
871    #[serde(default)]
872    id: Option<String>,
873    /// Name of a hook pre-registered via `engine.register_spawn_hook`; `None` if unspecified.
874    #[serde(default)]
875    spawn_hook_id: Option<String>,
876    /// Name of a bridge pre-registered via `engine.register_senior_bridge`; `None` if unspecified.
877    #[serde(default)]
878    senior_bridge_id: Option<String>,
879    /// Name of an Operator backend pre-registered via `engine.register_operator`
880    /// (= the path that delegates the entire spawn to an external Operator);
881    /// `None` if unspecified. When `kind == MainAi/Composite` and this id is `Some`,
882    /// `OperatorDelegateMiddleware` bypasses `inner.spawn` and calls `operator.execute` instead.
883    /// This is a different axis from `operator.id` (= session tracking label);
884    /// `operator_backend_id` is the registry lookup key.
885    #[serde(default)]
886    operator_backend_id: Option<String>,
887    /// "Runtime Agent-level" tier (highest priority) of the `OperatorKind`
888    /// cascade — per-agent override, keyed by `AgentDef.name`, value is
889    /// `main_ai` / `automate` / `composite` (same parsing as `kind`).
890    /// `None` / absent means no per-agent override.
891    #[serde(default)]
892    per_agent_kinds: Option<HashMap<String, String>>,
893}
894
895/// Parse a wire-level kind string (`"main_ai"` / `"automate"` / `"composite"`)
896/// into `OperatorKind`. Shared by `OperatorReq.kind` and
897/// `OperatorReq.per_agent_kinds` values.
898fn parse_operator_kind_str(s: &str) -> Result<mlua_swarm::OperatorKind, ApiError> {
899    use mlua_swarm::OperatorKind;
900    match s {
901        "main_ai" => Ok(OperatorKind::MainAi),
902        "composite" => Ok(OperatorKind::Composite),
903        "automate" => Ok(OperatorKind::Automate),
904        other => Err(ApiError::bad_request(format!(
905            "operator kind: unknown value '{other}' (expected main_ai|automate|composite)"
906        ))),
907    }
908}
909
910/// `/v1/tasks` POST response body. `pub` for the same cross-crate
911/// schema-generation reason as [`TaskLaunchRequest`].
912#[derive(Serialize, schemars::JsonSchema)]
913pub struct TaskLaunchResponse {
914    /// The final flow.ir `ctx` after every `Step.out` has been written.
915    #[schemars(with = "Value")]
916    final_ctx: Value,
917    /// Debug-formatted `BlueprintVersion` the run resolved against, when
918    /// the Blueprint came from a store lookup (`None` for `Inline` refs).
919    bound_version: Option<String>,
920    /// Resolved TTL (seconds) actually applied to the run. Exposes the
921    /// 3-layer cascade (request body → BP metadata → server default) so
922    /// clients can verify which value took effect without re-deriving it.
923    effective_ttl_secs: u64,
924    /// Which layer of the TTL cascade won.
925    ttl_source: TtlSource,
926    /// The `TaskRecord` minted for this request (issue #13 ID-hierarchy
927    /// persistence). `GET /v1/tasks/:id` re-fetches it; `POST
928    /// /v1/tasks/:id/runs` re-kicks it under a fresh `RunId`.
929    #[schemars(with = "String")]
930    task_id: TaskId,
931    /// The `RunRecord` minted for this specific kick. `GET /v1/runs/:id`
932    /// re-fetches it (`step_entries` included).
933    #[schemars(with = "String")]
934    run_id: RunId,
935    /// Launch outcome at response time (GH #37). The synchronous path
936    /// (default) reports `done` — the flow eval completed before this
937    /// response was built. A detached launch (`detach: true`) reports
938    /// `running` — the eval continues in the background; poll `GET
939    /// /v1/runs/:id` for the terminal status and result.
940    status: RunStatus,
941}
942
943/// `tasks_start`'s reply — a [`TaskLaunchResponse`] plus the HTTP status
944/// it rides out on (`200 OK` for the synchronous path, `202 Accepted` for
945/// a detached launch, GH #37). A tuple struct with the body first so
946/// handler-level tests keep their established `.0` access to the response
947/// body regardless of which path produced it.
948pub struct TaskLaunchReply(pub TaskLaunchResponse, pub StatusCode);
949
950impl IntoResponse for TaskLaunchReply {
951    fn into_response(self) -> Response {
952        (self.1, Json(self.0)).into_response()
953    }
954}
955
956/// Which layer of the TTL cascade (request body → BP metadata → server
957/// default) resolved [`TaskLaunchResponse::effective_ttl_secs`]. `pub` for
958/// the same cross-crate schema-generation reason as `TaskLaunchRequest`.
959#[derive(Serialize, Clone, Copy, Debug, PartialEq, Eq, schemars::JsonSchema)]
960#[serde(rename_all = "snake_case")]
961pub enum TtlSource {
962    /// The request body's `ttl_secs` was set explicitly.
963    RequestBody,
964    /// The request body omitted `ttl_secs`; the resolved Blueprint's
965    /// `metadata.default_run_ttl_secs` was set.
966    BpMetadata,
967    /// Both the request body and the Blueprint metadata omitted a TTL;
968    /// the server-global `default_run_ttl()` (1800s) applied.
969    ServerDefault,
970}
971
972/// Unified `/v1/tasks` POST entry (= Flow form only).
973/// Runs `Blueprint.flow` to completion via flow eval in a single round-trip.
974/// One-shot tasks are also expressed as a 1-Step Blueprint. Operator
975/// (kind / spawn_hook / senior_bridge) can be injected per request body.
976/// `operator_sid` (S2, runtime Operator match stage 1) additionally
977/// lets the caller pin the task to a specific already-registered Operator
978/// session sid, bypassing BP-level alias lookup — see `TaskLaunchRequest` doc.
979async fn tasks_start(
980    State(state): State<AppState>,
981    Json(req): Json<TaskLaunchRequest>,
982) -> Result<TaskLaunchReply, ApiError> {
983    run_flow_form(&state, req).await
984}
985
986/// Flow-form path (= via `TaskApplication::handle_with_run`).
987/// Core handler behind the `/v1/tasks` entry (`tasks_start`).
988///
989/// Engine stateless-executor refactor: the per-request
990/// sub_engine + 3-registry propagate loop is retired; the startup-built
991/// `state.task_app` (= a `TaskLaunchService` wrap around `state.engine`) is
992/// used directly. The Operator callback IF (`spawn_hook_id` /
993/// `senior_bridge_id` / `operator_backend_id`) is registered on
994/// `state.engine.register_*` at WS connect time — the engine is the SoT.
995/// See the `operator_ws` module doc for details.
996///
997/// # GH #33 — sync-hang guards
998///
999/// This handler is always synchronous end-to-end (no sync/async branch);
1000/// two fail-loud guards keep a bad launch from hanging the HTTP request
1001/// forever:
1002///
1003/// - **Guard 1 (readiness precheck, `503`)**: when the request/BP
1004///   references an operator backend (`operator.operator_backend_id`, set
1005///   directly or via `operator_sid`) and `state.engine.list_operator_ids()`
1006///   is empty, the request fails immediately rather than dispatching into
1007///   a session with nothing attached to serve it. Coarse by design — a
1008///   launch that cannot be cheaply determined to route through an operator
1009///   is never rejected here (Guard 2 still covers the hang in that case).
1010/// - **Guard 2 (sync timeout, `504`)**: the single
1011///   `state.task_app.handle_with_run` await is wrapped in
1012///   `tokio::time::timeout`. Ceiling cascade, highest priority first:
1013///   request `timeout_secs` (rejecting `Some(0)` with `400`), then
1014///   `AppState::sync_timeout_secs` (server config), then the built-in
1015///   default (300s). On expiry the timed-out future is dropped — this
1016///   cancels the in-process flow eval (the flow is abandoned, not
1017///   resumed; intended v1 semantics) — and the Task/Run records are
1018///   best-effort marked `Failed` so they do not stay `Running` forever.
1019///
1020/// # GH #37 — detached launch (`detach: true`)
1021///
1022/// The sync semantics above tie the flow-eval driver's lifetime to this
1023/// request's future — a long-running detached worker that outlives the
1024/// ceiling gets its (individually successful) `/v1/worker/*` submits
1025/// orphaned when the driver is cancelled. `detach: true` decouples them:
1026/// the eval (plus `finalize_run`) runs in a `tokio::spawn`ed background
1027/// task whose only lifetime bound is the resolved `ttl_secs` (marked
1028/// `Failed` on expiry, same best-effort persistence as Guard 2), and the
1029/// handler returns `202 Accepted` with `status: "running"` immediately.
1030/// Guard 1 still applies (checked before any store write); Guard 2's
1031/// ceiling does not (`timeout_secs` + `detach` together is a `400`).
1032/// Client disconnect after the `202` cannot cancel the run.
1033async fn run_flow_form(
1034    state: &AppState,
1035    req: TaskLaunchRequest,
1036) -> Result<TaskLaunchReply, ApiError> {
1037    use mlua_swarm::application::{BlueprintRef as AppBlueprintRef, TaskApplicationInput};
1038    use mlua_swarm::OperatorKind;
1039
1040    // Snapshot everything the TaskRecord needs before `req.blueprint` /
1041    // `req.init_ctx` are moved into the dispatch path below.
1042    let blueprint_ref_json = serde_json::to_value(&req.blueprint)
1043        .map_err(|e| ApiError::bad_request(format!("blueprint snapshot: {e}")))?;
1044    let input_ctx_snapshot = req.init_ctx.clone();
1045    let goal = req.goal.clone().unwrap_or_default();
1046
1047    // issue #19 ST2: resolve the Task-level canonical fields
1048    // (`project_root` / `work_dir` / `task_metadata`) once, at the wire
1049    // boundary. Sibling top-level fields on the request body take
1050    // priority; the pre-#19 shape (same key nested inside `init_ctx`) is
1051    // only a fallback for legacy callers. The result is threaded straight
1052    // through as `TaskApplicationInput.task_input` — `init_ctx` itself is
1053    // NOT mutated, so it stays a pure flow-ir eval seed identical to
1054    // whatever the caller sent.
1055    let task_input_spec = build_task_input_spec_from_request(&req);
1056    // Issue #19 ST4: snapshot the resolved spec into the `TaskRecord` (JSON,
1057    // same "bare `Value`" rationale as `blueprint_ref_json` /
1058    // `input_ctx_snapshot` above) so `POST /v1/tasks/:id/runs` can resolve
1059    // it back out on rekick without re-deriving it from a since-stale
1060    // request body. Cloned rather than computed from `task_input_spec`
1061    // after the fact — the original is still moved into
1062    // `TaskApplicationInput.task_input` below.
1063    let task_input_spec_snapshot = task_input_spec
1064        .clone()
1065        .map(|spec| serde_json::to_value(&spec))
1066        .transpose()
1067        .map_err(|e| ApiError::bad_request(format!("task_input_spec snapshot: {e}")))?;
1068    let init_ctx = req.init_ctx.clone();
1069
1070    let mut op_req = req.operator.unwrap_or_default();
1071
1072    // S2: explicit `operator_sid` override (runtime Operator match stage 1).
1073    // Resolved *before* building `operator_kind` / dispatching so an
1074    // unknown sid fails fast with a 400, never silently falling back to the
1075    // BP-level alias lookup. See `TaskLaunchRequest::operator_sid` doc for the
1076    // disconnected-vs-unknown distinction.
1077    if let Some(sid) = &req.operator_sid {
1078        let known_ids = state.engine.list_operator_ids().await;
1079        if !known_ids.iter().any(|id| id == sid) {
1080            return Err(ApiError::bad_request(format!(
1081                "operator_sid: no such registered operator session '{sid}'"
1082            )));
1083        }
1084        op_req.operator_backend_id = Some(sid.clone());
1085    }
1086
1087    // GH #33 Guard 2 ceiling resolution: request field > server config >
1088    // built-in default (300s, `config::default_sync_timeout_secs`).
1089    // Validated up front — before any TaskRecord/RunRecord side effects —
1090    // so a caller-supplied `Some(0)` fails fast with `400` rather than
1091    // minting records for a launch that was never going to dispatch.
1092    // GH #37: `detach: true` makes the sync ceiling meaningless (the
1093    // detached run is bounded by `ttl_secs` alone) — combining the two
1094    // is rejected here, same fail-fast-before-side-effects ordering.
1095    let detach = req.detach;
1096    let sync_timeout_secs = match (detach, req.timeout_secs) {
1097        (true, Some(_)) => {
1098            return Err(ApiError::bad_request(
1099                "timeout_secs is the synchronous launch ceiling and does not apply to a \
1100                 detached launch (detach: true), whose lifetime bound is ttl_secs — omit \
1101                 timeout_secs"
1102                    .into(),
1103            ));
1104        }
1105        (false, Some(0)) => {
1106            return Err(ApiError::bad_request(
1107                "timeout_secs: 0 is invalid; omit the field to use the server default".into(),
1108            ));
1109        }
1110        (false, Some(v)) => v,
1111        (_, None) => state.sync_timeout_secs,
1112    };
1113
1114    // GH #33 Guard 1: operator readiness precheck. Coarse signal — this
1115    // handler can cheaply see whether the request/BP references an
1116    // operator backend (`operator.operator_backend_id`, set directly or
1117    // resolved above from `operator_sid`), but not the full
1118    // `OperatorDelegateMiddleware` routing decision (that also considers
1119    // BP-level `kind` tiers, resolved only at dispatch time). When a
1120    // backend is referenced and *zero* operators are attached at all,
1121    // fail fast rather than dispatching into a session nothing can serve.
1122    // A launch this coarse check cannot positively identify as
1123    // operator-delegate is never rejected here — Guard 2 (the timeout
1124    // wrap below) still covers the hang in that case.
1125    if let Some(backend_id) = op_req.operator_backend_id.as_deref() {
1126        let attached = state.engine.list_operator_ids().await;
1127        if attached.is_empty() {
1128            return Err(ApiError::unavailable(format!(
1129                "no operator attached to serve this launch (operator backend '{backend_id}' \
1130                 requested): attach an operator via POST /v1/operators + WS, or use the \
1131                 poll-style flow (GET /v1/worker/prompt + POST /v1/worker/submit)"
1132            )));
1133        }
1134    }
1135
1136    // "Runtime Global" tier: `Some(_)` — including `Some(Automate)` — is
1137    // always an explicit request that outranks the BP-level tiers; an
1138    // absent/unset `kind` in the request body stays `None`, leaving the
1139    // BP-level tiers (`OperatorDef.kind` / `Blueprint.default_operator_kind`)
1140    // to decide instead of eagerly defaulting to `Automate`.
1141    let operator_kind = op_req
1142        .kind
1143        .as_deref()
1144        .map(parse_operator_kind_str)
1145        .transpose()?;
1146    let operator_id = op_req.id.unwrap_or_else(|| "http-run".to_string());
1147    // "Runtime Agent-level" tier: per-agent overrides. Absent/empty = no
1148    // override for any agent, letting the BP-level tiers decide per agent.
1149    let mut operator_kind_overrides: HashMap<String, OperatorKind> = HashMap::new();
1150    for (agent, kind_str) in op_req.per_agent_kinds.take().unwrap_or_default() {
1151        operator_kind_overrides.insert(agent, parse_operator_kind_str(&kind_str)?);
1152    }
1153
1154    let blueprint: AppBlueprintRef = match req.blueprint {
1155        AppBlueprintRef::Inline { value } => AppBlueprintRef::Inline { value },
1156        AppBlueprintRef::Id { id, version } => AppBlueprintRef::Id { id, version },
1157    };
1158
1159    // TTL resolution cascade: (1) request body value, (2) BP metadata `default_run_ttl_secs`,
1160    // (3) server global default (`default_run_ttl()`, 1800s).
1161    let (ttl_secs, ttl_source) = match req.ttl_secs {
1162        Some(v) => (v, TtlSource::RequestBody),
1163        None => {
1164            let (resolved_bp, _ver) = state
1165                .task_app
1166                .resolve(&blueprint)
1167                .await
1168                .map_err(|e| ApiError::from_task_resolve(&e, "bp resolve"))?;
1169            match resolved_bp.metadata.default_run_ttl_secs {
1170                Some(v) => (v, TtlSource::BpMetadata),
1171                None => (default_run_ttl(), TtlSource::ServerDefault),
1172            }
1173        }
1174    };
1175
1176    // Build the launch input up front so a snapshot of it can be persisted
1177    // into the RunRecord below — an Interrupted Run is resumed from that
1178    // snapshot (`POST /v1/runs/:id/resume`) under the same run_id.
1179    let input = TaskApplicationInput {
1180        blueprint,
1181        operator_id: operator_id.clone(),
1182        role: Role::Operator,
1183        ttl: Duration::from_secs(ttl_secs),
1184        init_ctx,
1185        operator_kind,
1186        bridge_id: op_req.senior_bridge_id,
1187        hook_id: op_req.spawn_hook_id,
1188        operator_backend_id: op_req.operator_backend_id,
1189        operator_kind_overrides,
1190        task_input: task_input_spec,
1191        // The request-body top-level `check_policy` (tier 1)
1192        // flows straight into the cascade resolved once in
1193        // `TaskLaunchService::launch`.
1194        check_policy: req.check_policy,
1195    };
1196    let input_json = Some(tasks::snapshot_launch_input(&input)?);
1197
1198    // issue #13 ID-hierarchy persistence: mint the work-item identity (Task)
1199    // and this kick's identity (Run) *before* dispatching, so a Task/Run
1200    // pair always exists even if the flow itself fails mid-way (the
1201    // Failed-status paths below still have a row to update).
1202    let task_id = TaskId::new();
1203    let run_id = RunId::new();
1204    let now = tasks::now_secs();
1205    state
1206        .task_store
1207        .create(TaskRecord {
1208            id: task_id.clone(),
1209            goal,
1210            blueprint_ref: blueprint_ref_json,
1211            input_ctx: input_ctx_snapshot,
1212            task_input_spec: task_input_spec_snapshot,
1213            status: TaskRecordStatus::Running,
1214            created_at: now,
1215            updated_at: now,
1216        })
1217        .await
1218        .map_err(ApiError::engine)?;
1219    state
1220        .run_store
1221        .create(RunRecord {
1222            id: run_id.clone(),
1223            task_id: task_id.clone(),
1224            status: RunStatus::Running,
1225            step_entries: Vec::new(),
1226            degradations: Vec::new(),
1227            operator_sid: req.operator_sid.clone(),
1228            result_ref: None,
1229            input_json,
1230            created_at: now,
1231            updated_at: now,
1232        })
1233        .await
1234        .map_err(ApiError::engine)?;
1235
1236    let trace =
1237        mlua_swarm::store::trace::TraceHandle::new(run_id.clone(), state.run_trace_store.clone());
1238    trace
1239        .append(
1240            mlua_swarm::store::trace::kind::RUN_STARTED,
1241            None,
1242            None,
1243            json!({"mode": "launch"}),
1244        )
1245        .await;
1246    let run_ctx = RunContext::new(run_id.clone(), state.run_store.clone())
1247        .with_replay_store(state.replay_store.clone())
1248        .with_trace(trace);
1249
1250    // GH #37 detached launch: the eval driver runs in its own spawned
1251    // task — its lifetime is bound to `ttl_secs`, not to this request's
1252    // future (client disconnect / handler completion cannot cancel it).
1253    // The spawned task owns the run to its terminal status: `finalize_run`
1254    // on completion, or the same best-effort `Failed` marking as Guard 2
1255    // if the ttl ceiling expires first.
1256    if detach {
1257        let bg_state = state.clone();
1258        let bg_task_id = task_id.clone();
1259        let bg_run_id = run_id.clone();
1260        tokio::spawn(async move {
1261            let outcome = match tokio::time::timeout(
1262                Duration::from_secs(ttl_secs),
1263                bg_state.task_app.handle_with_run(input, Some(run_ctx)),
1264            )
1265            .await
1266            {
1267                Ok(outcome) => outcome,
1268                Err(_elapsed) => {
1269                    let reason = json!({
1270                        "error": format!("detached run exceeded {ttl_secs}s ttl ceiling"),
1271                    });
1272                    if let Err(e) = bg_state.run_store.set_result(&bg_run_id, reason).await {
1273                        tracing::warn!(%bg_run_id, error = %e, "run_flow_form: detached ttl set_result failed");
1274                    }
1275                    if let Err(e) = bg_state
1276                        .run_store
1277                        .update_status(&bg_run_id, RunStatus::Failed)
1278                        .await
1279                    {
1280                        tracing::warn!(%bg_run_id, error = %e, "run_flow_form: detached ttl run update_status(Failed) failed");
1281                    }
1282                    if let Err(e) = bg_state
1283                        .task_store
1284                        .update_status(&bg_task_id, TaskRecordStatus::Failed)
1285                        .await
1286                    {
1287                        tracing::warn!(%bg_task_id, error = %e, "run_flow_form: detached ttl task update_status(Failed) failed");
1288                    }
1289                    // This arm never reaches `finalize_run`, so the trace
1290                    // stream gets its terminal marker here.
1291                    mlua_swarm::store::trace::TraceHandle::new(
1292                        bg_run_id.clone(),
1293                        bg_state.run_trace_store.clone(),
1294                    )
1295                    .append(
1296                        mlua_swarm::store::trace::kind::RUN_FINISHED,
1297                        None,
1298                        None,
1299                        json!({ "status": "failed", "reason": format!("ttl {ttl_secs}s exceeded") }),
1300                    )
1301                    .await;
1302                    return;
1303                }
1304            };
1305            // `finalize_run` persists both the Ok and Err outcomes itself;
1306            // the passthrough return value has no consumer here.
1307            let _ = tasks::finalize_run(&bg_state, &bg_task_id, &bg_run_id, outcome).await;
1308        });
1309        return Ok(TaskLaunchReply(
1310            TaskLaunchResponse {
1311                final_ctx: Value::Null,
1312                bound_version: None,
1313                effective_ttl_secs: ttl_secs,
1314                ttl_source,
1315                task_id,
1316                run_id,
1317                status: RunStatus::Running,
1318            },
1319            StatusCode::ACCEPTED,
1320        ));
1321    }
1322
1323    // GH #33 Guard 2: the single await point this handler blocks on. On
1324    // expiry the timed-out future is dropped, cancelling the in-process
1325    // flow eval — the flow is abandoned, not resumed (intended v1
1326    // semantics; stage-granularity resume is a coarser guarantee than
1327    // this handler makes, out of scope here).
1328    let outcome = match tokio::time::timeout(
1329        Duration::from_secs(sync_timeout_secs),
1330        state.task_app.handle_with_run(input, Some(run_ctx)),
1331    )
1332    .await
1333    {
1334        Ok(outcome) => outcome,
1335        Err(_elapsed) => {
1336            // Best effort: mark the Task/Run so they do not stay `Running`
1337            // forever. Reuses the existing `Failed` variant (no new
1338            // schema-crate enum additions) and stashes a reason string
1339            // into `RunRecord.result_ref` — the only free-form field the
1340            // Run schema carries; secondary persistence failures here are
1341            // logged and swallowed, mirroring `tasks::finalize_run`'s
1342            // error-path convention.
1343            let reason = json!({
1344                "error": format!("sync launch exceeded {sync_timeout_secs}s timeout ceiling"),
1345            });
1346            if let Err(e) = state.run_store.set_result(&run_id, reason).await {
1347                tracing::warn!(%run_id, error = %e, "run_flow_form: timeout run set_result failed");
1348            }
1349            if let Err(e) = state
1350                .run_store
1351                .update_status(&run_id, RunStatus::Failed)
1352                .await
1353            {
1354                tracing::warn!(%run_id, error = %e, "run_flow_form: timeout run update_status(Failed) failed");
1355            }
1356            if let Err(e) = state
1357                .task_store
1358                .update_status(&task_id, TaskRecordStatus::Failed)
1359                .await
1360            {
1361                tracing::warn!(%task_id, error = %e, "run_flow_form: timeout task update_status(Failed) failed");
1362            }
1363            return Err(ApiError::timeout(format!(
1364                "sync launch exceeded {sync_timeout_secs}s timeout ceiling: the in-process flow \
1365                 eval was abandoned (dropping the future cancels it); attach an operator that \
1366                 acks promptly (POST /v1/operators + WS), or raise timeout_secs / sync_timeout_secs"
1367            )));
1368        }
1369    };
1370
1371    let out = tasks::finalize_run(state, &task_id, &run_id, outcome)
1372        .await
1373        .map_err(flow_eval_error_to_api_error)?;
1374
1375    Ok(TaskLaunchReply(
1376        TaskLaunchResponse {
1377            final_ctx: out.final_ctx,
1378            bound_version: out.bound_version.map(|v| format!("{:?}", v)),
1379            effective_ttl_secs: ttl_secs,
1380            ttl_source,
1381            task_id,
1382            run_id,
1383            status: RunStatus::Done,
1384        },
1385        StatusCode::OK,
1386    ))
1387}
1388
1389/// issue #19 ST2 direct sibling-field resolver — extracts the three
1390/// Task-level canonical fields (`project_root` / `work_dir` /
1391/// `task_metadata`) once at the wire boundary. Sibling top-level body
1392/// fields take priority; the pre-#19 shape (same key nested inside
1393/// `init_ctx`) is only a fallback for legacy callers. Unlike the ST1
1394/// `resolve_task_level_init_ctx` bridge this replaced, `init_ctx` is
1395/// NOT mutated — the resolved values are handed straight to
1396/// [`mlua_swarm::service::TaskLaunchInput::task_input`], keeping
1397/// `init_ctx` a pure flow-ir eval seed.
1398///
1399/// Returns `None` when all three fields resolve to `None` (no
1400/// middleware is layered onto the spawner stack downstream — the
1401/// [`mlua_swarm::middleware::task_input::TaskInputMiddleware::new_from_fields`]
1402/// contract).
1403fn build_task_input_spec_from_request(
1404    req: &TaskLaunchRequest,
1405) -> Option<mlua_swarm::service::TaskInputSpec> {
1406    let project_root = req.project_root.clone().or_else(|| {
1407        req.init_ctx
1408            .get("project_root")
1409            .and_then(Value::as_str)
1410            .map(String::from)
1411    });
1412    let work_dir = req.work_dir.clone().or_else(|| {
1413        req.init_ctx
1414            .get("work_dir")
1415            .and_then(Value::as_str)
1416            .map(String::from)
1417    });
1418    let task_metadata = req.task_metadata.clone().or_else(|| {
1419        req.init_ctx
1420            .get("task_metadata")
1421            .filter(|v| v.is_object())
1422            .cloned()
1423    });
1424
1425    if project_root.is_none() && work_dir.is_none() && task_metadata.is_none() {
1426        None
1427    } else {
1428        Some(mlua_swarm::service::TaskInputSpec {
1429            project_root,
1430            work_dir,
1431            task_metadata,
1432        })
1433    }
1434}
1435
1436// ─── helpers ─────────────────────────────────────────────────────────────
1437
1438async fn take_session_token(state: &AppState, sid: &str) -> Result<CapToken, ApiError> {
1439    // `sid` on this path is the token nonce itself (a bearer secret), so
1440    // both the map key and the not-found diagnostic use its fingerprint
1441    // (issue #14 — never echo the nonce back in an error body).
1442    let key = mlua_swarm::types::token_fingerprint(sid);
1443    state
1444        .sessions
1445        .lock()
1446        .await
1447        .map
1448        .remove(&key)
1449        .ok_or_else(|| ApiError::not_found(format!("session: fp={key}")))
1450}
1451
1452/// Extracts sid from `Authorization: Bearer <sid>`. Strict — does not accept any other scheme prefix.
1453fn extract_bearer(headers: &HeaderMap) -> Result<String, ApiError> {
1454    let v = headers
1455        .get(AUTHORIZATION)
1456        .ok_or_else(|| ApiError::bad_request("missing Authorization header".into()))?
1457        .to_str()
1458        .map_err(|_| ApiError::bad_request("invalid Authorization header encoding".into()))?;
1459    let sid = v
1460        .strip_prefix("Bearer ")
1461        .ok_or_else(|| ApiError::bad_request("Authorization must be 'Bearer <sid>'".into()))?
1462        .trim();
1463    if sid.is_empty() {
1464        return Err(ApiError::bad_request("Bearer sid is empty".into()));
1465    }
1466    Ok(sid.to_string())
1467}
1468
1469fn parse_role(s: &str) -> Result<Role, ApiError> {
1470    match s.to_ascii_lowercase().as_str() {
1471        "operator" => Ok(Role::Operator),
1472        "worker" => Ok(Role::Worker),
1473        "observer" => Ok(Role::Observer),
1474        "senior" => Ok(Role::Senior),
1475        other => Err(ApiError::bad_request(format!("unknown role: {other}"))),
1476    }
1477}
1478
1479// ─── error type ──────────────────────────────────────────────────────────
1480
1481/// GH #76 error surface: adapter that lifts a [`TaskApplicationError`] into an
1482/// [`ApiError`], surfacing the structured
1483/// [`TaskLaunchError::FlowEval`] fields
1484/// (`failed_step` / `verdict_value` / `partial_ctx`) into the response
1485/// body's `details` object when the abort originated from a Blueprint
1486/// step. Every other error variant collapses to the pre-#76
1487/// `bad_request(format!("run: {e}"))` shape byte-for-byte, so callers
1488/// that only match on the `{"error": message}` message keep working.
1489fn flow_eval_error_to_api_error(e: TaskApplicationError) -> ApiError {
1490    if let TaskApplicationError::Launch(TaskLaunchError::FlowEval {
1491        message,
1492        failed_step,
1493        verdict_value,
1494        partial_ctx,
1495    }) = &e
1496    {
1497        let details = json!({
1498            "failed_step": failed_step,
1499            "verdict_value": verdict_value,
1500            "partial_ctx": partial_ctx,
1501        });
1502        return ApiError::bad_request(format!("run: flow eval: {message}")).with_details(details);
1503    }
1504    ApiError::bad_request(format!("run: {e}"))
1505}
1506
1507/// Uniform error response type for the handlers in this module. Converts to
1508/// a JSON `{"error": message}` body with the given status via [`IntoResponse`].
1509///
1510/// GH #76 error surface: an optional `details` field carries the structured
1511/// [`mlua_swarm::service::TaskLaunchError::FlowEval`] envelope
1512/// (`failed_step` / `verdict_value` / `partial_ctx`) when the abort
1513/// originated from a Blueprint step. When present, the JSON body becomes
1514/// `{"error": message, "details": {...}}` — a pure ADDITIVE schema change
1515/// for consumers that already ignore unknown keys. Absent (the default)
1516/// preserves the pre-#76 `{"error": message}` shape byte-for-byte for
1517/// every other error site.
1518#[derive(Debug)]
1519pub struct ApiError {
1520    status: StatusCode,
1521    message: String,
1522    details: Option<Value>,
1523}
1524
1525impl ApiError {
1526    /// Wraps an engine-side error as `500 Internal Server Error`.
1527    pub fn engine(e: impl std::fmt::Display) -> Self {
1528        Self {
1529            status: StatusCode::INTERNAL_SERVER_ERROR,
1530            message: format!("engine: {e}"),
1531            details: None,
1532        }
1533    }
1534    /// Builds a `404 Not Found` with the given message.
1535    pub fn not_found(m: String) -> Self {
1536        Self {
1537            status: StatusCode::NOT_FOUND,
1538            message: m,
1539            details: None,
1540        }
1541    }
1542    /// Builds a `400 Bad Request` with the given message.
1543    pub fn bad_request(m: String) -> Self {
1544        Self {
1545            status: StatusCode::BAD_REQUEST,
1546            message: m,
1547            details: None,
1548        }
1549    }
1550    /// Builds a `409 Conflict` with the given message (`POST
1551    /// /v1/runs/:id/resume` — the Run is not `Interrupted`, or a concurrent
1552    /// resume already won the `Interrupted -> Running` compare-and-set).
1553    pub fn conflict(m: String) -> Self {
1554        Self {
1555            status: StatusCode::CONFLICT,
1556            message: m,
1557            details: None,
1558        }
1559    }
1560    /// GH #81 Layer 1: map a `TaskApplication::resolve` failure into the
1561    /// same recovery wording the register path already emits when the
1562    /// underlying condition is that the Blueprint is archived. On the
1563    /// archived branch the caller gets a `409 CONFLICT` with the exact
1564    /// hint `blueprint {id} is archived; POST /v1/blueprints/{id}/unarchive
1565    /// first` — byte-identical to `blueprints::seed_blueprint`'s message
1566    /// so downstream tooling can grep either surface. Every other
1567    /// `TaskApplicationError` falls through to the pre-#81 `400 bad
1568    /// request` shape, preserving the launch / rekick error surface for
1569    /// callers that don't distinguish store errors from other resolve
1570    /// failures.
1571    pub fn from_task_resolve(err: &mlua_swarm::TaskApplicationError, prefix: &str) -> Self {
1572        use mlua_swarm::blueprint::store::BlueprintStoreError;
1573        use mlua_swarm::TaskApplicationError as E;
1574        if let E::Store(BlueprintStoreError::Archived(bp_id)) = err {
1575            return Self {
1576                status: StatusCode::CONFLICT,
1577                message: format!(
1578                    "{prefix}: blueprint {bp_id} is archived; \
1579                     POST /v1/blueprints/{bp_id}/unarchive first"
1580                ),
1581                details: None,
1582            };
1583        }
1584        Self::bad_request(format!("{prefix}: {err}"))
1585    }
1586    /// Builds a `503 Service Unavailable` with the given message (GH #33
1587    /// Guard 1 — operator readiness precheck).
1588    pub fn unavailable(m: String) -> Self {
1589        Self {
1590            status: StatusCode::SERVICE_UNAVAILABLE,
1591            message: m,
1592            details: None,
1593        }
1594    }
1595    /// Builds a `504 Gateway Timeout` with the given message (GH #33
1596    /// Guard 2 — sync launch timeout ceiling).
1597    pub fn timeout(m: String) -> Self {
1598        Self {
1599            status: StatusCode::GATEWAY_TIMEOUT,
1600            message: m,
1601            details: None,
1602        }
1603    }
1604    /// Builds a `410 Gone` with the given message (GH #37 — worker
1605    /// submit/artifact addressed at a Run that already reached a terminal
1606    /// status; the silent-`204`-then-orphan alternative is the failure
1607    /// shape this replaces).
1608    pub fn gone(m: String) -> Self {
1609        Self {
1610            status: StatusCode::GONE,
1611            message: m,
1612            details: None,
1613        }
1614    }
1615    /// Builds a `413 Payload Too Large` with the given message (GH #42 —
1616    /// `@file:` sentinel resolves to a file larger than the shared
1617    /// `DefaultBodyLimit`; same size ceiling as the inline body path).
1618    pub fn payload_too_large(m: String) -> Self {
1619        Self {
1620            status: StatusCode::PAYLOAD_TOO_LARGE,
1621            message: m,
1622            details: None,
1623        }
1624    }
1625    /// Builds a `422 Unprocessable Entity` with the given message (GH #50
1626    /// — a `worker_submit` / `worker_artifact` value violates the
1627    /// dispatching agent's declared `VerdictContract`: rejected before it
1628    /// reaches `submit_worker_result_trusted` / `stage_worker_artifact_trusted`,
1629    /// i.e. before it can land in the flow ctx).
1630    pub fn unprocessable(m: impl Into<String>) -> Self {
1631        Self {
1632            status: StatusCode::UNPROCESSABLE_ENTITY,
1633            message: m.into(),
1634            details: None,
1635        }
1636    }
1637    /// GH #76 error surface: attach a structured details payload alongside the
1638    /// string message. Consumed by [`IntoResponse`] to emit
1639    /// `{"error": message, "details": {...}}`. The current sole caller
1640    /// is `run_flow_form`'s `TaskApplicationError::Launch(FlowEval)` arm,
1641    /// which lifts `failed_step` / `verdict_value` / `partial_ctx` out of
1642    /// the structured [`mlua_swarm::service::TaskLaunchError::FlowEval`]
1643    /// variant into this field.
1644    pub fn with_details(mut self, details: Value) -> Self {
1645        self.details = Some(details);
1646        self
1647    }
1648}
1649
1650impl IntoResponse for ApiError {
1651    fn into_response(self) -> Response {
1652        let body = match self.details {
1653            Some(details) => json!({"error": self.message, "details": details}),
1654            None => json!({"error": self.message}),
1655        };
1656        (self.status, Json(body)).into_response()
1657    }
1658}
1659
1660fn default_run_ttl() -> u64 {
1661    // 1800s (= 30 min). Prevents op_token expiry across a flow.ir multi-step chain
1662    // (= 5+ SubAgent dispatches at 30–60s each). Origin: the observed fvloop smoke
1663    // where a post-gate mock-commit dispatch blew past 300s and expired — sibling of worker_token TTL.
1664    1800
1665}
1666
1667/// TTL cascade resolve helper (Blueprint metadata → server default fallback).
1668/// Second-stage fallback, called when the POST `/v1/tasks` body does not set `ttl_secs`.
1669/// (1) If BP metadata `default_run_ttl_secs` is `Some`, use it.
1670/// (2) If `None`, fall back to the server global `default_run_ttl()` (1800s).
1671///
1672/// # Full cascade (combined in `run_flow_form`)
1673///
1674/// - request body `ttl_secs=Some(v)` → v (this helper is not called)
1675/// - request body `None` + metadata `Some(v)` → v
1676/// - request body `None` + metadata `None` → `default_run_ttl()` = 1800s
1677#[cfg(test)]
1678fn resolve_ttl_from_metadata(metadata_ttl: Option<u64>) -> u64 {
1679    metadata_ttl.unwrap_or_else(default_run_ttl)
1680}
1681
1682#[cfg(test)]
1683mod tests {
1684    use super::*;
1685
1686    /// TTL cascade case 1: when the request body sets it, that value is used as-is
1687    /// (upper branch that does not go through the helper; semantic verify of the
1688    /// `Some(v) => v` direct-return path in `run_flow_form`).
1689    #[test]
1690    fn ttl_cascade_request_body_wins_over_metadata() {
1691        let req_ttl: Option<u64> = Some(100);
1692        let metadata_ttl: Option<u64> = Some(3600);
1693        let effective = match req_ttl {
1694            Some(v) => v,
1695            None => resolve_ttl_from_metadata(metadata_ttl),
1696        };
1697        assert_eq!(
1698            effective, 100,
1699            "request body ttl_secs=100 must win over metadata=3600 (cascade priority (1) > (2))"
1700        );
1701    }
1702
1703    /// TTL cascade case 2: request body omitted + BP metadata `Some(N)` → `N` is effective.
1704    #[test]
1705    fn ttl_cascade_metadata_used_when_body_missing() {
1706        let req_ttl: Option<u64> = None;
1707        let metadata_ttl: Option<u64> = Some(3600);
1708        let effective = match req_ttl {
1709            Some(v) => v,
1710            None => resolve_ttl_from_metadata(metadata_ttl),
1711        };
1712        assert_eq!(
1713            effective, 3600,
1714            "body None + metadata=3600 must resolve to 3600 (cascade (2))"
1715        );
1716    }
1717
1718    /// TTL cascade case 3: request body omitted + BP metadata `None` → server default (1800s).
1719    #[test]
1720    fn ttl_cascade_server_default_when_both_missing() {
1721        let req_ttl: Option<u64> = None;
1722        let metadata_ttl: Option<u64> = None;
1723        let effective = match req_ttl {
1724            Some(v) => v,
1725            None => resolve_ttl_from_metadata(metadata_ttl),
1726        };
1727        assert_eq!(
1728            effective,
1729            default_run_ttl(),
1730            "body None + metadata None must fall back to default_run_ttl() = 1800s"
1731        );
1732        assert_eq!(effective, 1800, "default_run_ttl() literal = 1800s");
1733    }
1734
1735    /// Helper unit: metadata `None` → 1800 (server default expansion).
1736    #[test]
1737    fn resolve_ttl_from_metadata_none_returns_server_default() {
1738        assert_eq!(resolve_ttl_from_metadata(None), 1800);
1739    }
1740
1741    /// Helper unit: metadata `Some(N)` → `N` (server default ignored).
1742    #[test]
1743    fn resolve_ttl_from_metadata_some_returns_value() {
1744        assert_eq!(resolve_ttl_from_metadata(Some(7200)), 7200);
1745        assert_eq!(resolve_ttl_from_metadata(Some(60)), 60);
1746    }
1747
1748    // ──────────────────────────────────────────────────────────────────
1749    // `TaskLaunchRequest.check_policy` wire field (T5)
1750    // ──────────────────────────────────────────────────────────────────
1751
1752    /// T5: a `POST /v1/tasks` body carrying a top-level `check_policy`
1753    /// deserializes into `TaskLaunchRequest.check_policy` using the
1754    /// snake_case wire form.
1755    #[test]
1756    fn task_launch_request_parses_check_policy_wire_field() {
1757        let body = json!({
1758            "blueprint": { "kind": "id", "id": "some-bp" },
1759            "init_ctx": {},
1760            "check_policy": "silent",
1761        });
1762        let req: TaskLaunchRequest =
1763            serde_json::from_value(body).expect("request must deserialize");
1764        assert_eq!(req.check_policy, Some(CheckPolicy::Silent));
1765    }
1766
1767    /// A body that omits `check_policy` leaves the field `None` (existing
1768    /// clients are unaffected — `#[serde(default)]`).
1769    #[test]
1770    fn task_launch_request_check_policy_defaults_to_none_when_omitted() {
1771        let body = json!({
1772            "blueprint": { "kind": "id", "id": "some-bp" },
1773            "init_ctx": {},
1774        });
1775        let req: TaskLaunchRequest =
1776            serde_json::from_value(body).expect("request must deserialize");
1777        assert_eq!(req.check_policy, None);
1778    }
1779
1780    // ──────────────────────────────────────────────────────────────────
1781    // issue #19 ST2: `build_task_input_spec_from_request` direct resolver
1782    // ──────────────────────────────────────────────────────────────────
1783
1784    fn task_req(
1785        init_ctx: Value,
1786        project_root: Option<&str>,
1787        work_dir: Option<&str>,
1788        task_metadata: Option<Value>,
1789    ) -> TaskLaunchRequest {
1790        TaskLaunchRequest {
1791            blueprint: BlueprintRef::Id {
1792                id: mlua_swarm::blueprint::store::BlueprintId::new("ut"),
1793                version: Default::default(),
1794            },
1795            init_ctx,
1796            project_root: project_root.map(String::from),
1797            work_dir: work_dir.map(String::from),
1798            task_metadata,
1799            ttl_secs: None,
1800            operator: None,
1801            operator_sid: None,
1802            timeout_secs: None,
1803            goal: None,
1804            detach: false,
1805            check_policy: None,
1806        }
1807    }
1808
1809    /// (a) Sibling fields only — no legacy keys in `init_ctx` — are
1810    /// returned in the `TaskInputSpec` unchanged. `init_ctx` itself is
1811    /// untouched by this resolver (checked separately at the call site).
1812    #[test]
1813    fn build_task_input_spec_from_request_returns_sibling_fields_when_present() {
1814        let req = task_req(
1815            json!({"free": "form"}),
1816            Some("/repo/sibling"),
1817            Some("/repo/sibling/work"),
1818            Some(json!({"issue": 19})),
1819        );
1820        let spec = build_task_input_spec_from_request(&req).expect("spec must be Some");
1821        assert_eq!(spec.project_root.as_deref(), Some("/repo/sibling"));
1822        assert_eq!(spec.work_dir.as_deref(), Some("/repo/sibling/work"));
1823        assert_eq!(spec.task_metadata, Some(json!({"issue": 19})));
1824    }
1825
1826    /// (b) No sibling fields — the pre-#19 shape (same 3 keys nested
1827    /// inside `init_ctx`) is used as the fallback source.
1828    #[test]
1829    fn build_task_input_spec_from_request_falls_back_to_legacy_init_ctx_shape() {
1830        let req = task_req(
1831            json!({
1832                "project_root": "/repo/legacy",
1833                "work_dir": "/repo/legacy/work",
1834                "task_metadata": {"issue": 17},
1835            }),
1836            None,
1837            None,
1838            None,
1839        );
1840        let spec = build_task_input_spec_from_request(&req).expect("spec must be Some");
1841        assert_eq!(spec.project_root.as_deref(), Some("/repo/legacy"));
1842        assert_eq!(spec.work_dir.as_deref(), Some("/repo/legacy/work"));
1843        assert_eq!(spec.task_metadata, Some(json!({"issue": 17})));
1844    }
1845
1846    /// (c) Both present — the sibling field must win over the legacy
1847    /// `init_ctx`-nested value.
1848    #[test]
1849    fn build_task_input_spec_from_request_sibling_wins_over_legacy_shape() {
1850        let req = task_req(
1851            json!({
1852                "project_root": "/repo/legacy",
1853                "work_dir": "/repo/legacy/work",
1854                "task_metadata": {"issue": 17},
1855            }),
1856            Some("/repo/sibling"),
1857            Some("/repo/sibling/work"),
1858            Some(json!({"issue": 19})),
1859        );
1860        let spec = build_task_input_spec_from_request(&req).expect("spec must be Some");
1861        assert_eq!(
1862            spec.project_root.as_deref(),
1863            Some("/repo/sibling"),
1864            "sibling field must win over the legacy init_ctx-nested value"
1865        );
1866        assert_eq!(spec.work_dir.as_deref(), Some("/repo/sibling/work"));
1867        assert_eq!(spec.task_metadata, Some(json!({"issue": 19})));
1868    }
1869
1870    /// (d) All three fields absent from both sibling and legacy shapes —
1871    /// resolver returns `None`, and no middleware is layered downstream.
1872    #[test]
1873    fn build_task_input_spec_from_request_returns_none_when_no_fields_present() {
1874        let req = task_req(json!({"unrelated": "value"}), None, None, None);
1875        assert!(build_task_input_spec_from_request(&req).is_none());
1876    }
1877
1878    /// Minimal `AppState` for the `status_get` handler-fn-direct-call test
1879    /// below — same construction shape as `tasks.rs::test_state()`
1880    /// (mirrors what `build_router_full` does internally, skipping the
1881    /// `Router` wrapper).
1882    fn status_test_state() -> AppState {
1883        let engine = Engine::new(mlua_swarm::EngineCfg::default());
1884        let compiler = mlua_swarm::Compiler::new(default_registry());
1885        let launch = Arc::new(mlua_swarm::TaskLaunchService::new(engine.clone(), compiler));
1886        AppState {
1887            engine,
1888            sessions: Arc::new(Mutex::new(SessionStore::default())),
1889            task_app: Arc::new(mlua_swarm::TaskApplication::new_inline_only(launch)),
1890            ws_operator_factory: None,
1891            data_store: Arc::new(mlua_swarm::store::output::InMemoryOutputStore::new()),
1892            operator_sessions: Arc::new(Mutex::new(HashMap::new())),
1893            roles_to_sid: Arc::new(Mutex::new(HashMap::new())),
1894            task_store: Arc::new(mlua_swarm::store::task::InMemoryTaskStore::new()),
1895            run_store: Arc::new(mlua_swarm::store::run::InMemoryRunStore::new()),
1896            replay_store: Arc::new(mlua_swarm::store::replay::InMemoryReplayStore::new()),
1897            run_trace_store: Arc::new(mlua_swarm::store::trace::InMemoryRunTraceStore::new()),
1898            base_url: None,
1899            sync_timeout_secs: 300,
1900        }
1901    }
1902
1903    /// issue #35 ST4 Acceptance Criteria: `GET /v1/status` reports the
1904    /// count of `Running` `Run`s (`RunStore::list_running`) and attached
1905    /// Operator ids (`engine.list_operator_ids()`), called directly as a
1906    /// handler fn (no `Router` wrapper — this crate's established
1907    /// unit-test convention).
1908    #[tokio::test]
1909    async fn status_get_reports_running_runs_and_operators() {
1910        let state = status_test_state();
1911
1912        let now = std::time::SystemTime::now()
1913            .duration_since(std::time::UNIX_EPOCH)
1914            .map(|d| d.as_secs())
1915            .unwrap_or(0);
1916        state
1917            .run_store
1918            .create(RunRecord {
1919                id: RunId::new(),
1920                task_id: TaskId::new(),
1921                status: RunStatus::Running,
1922                step_entries: Vec::new(),
1923                degradations: Vec::new(),
1924                operator_sid: None,
1925                result_ref: None,
1926                input_json: None,
1927                created_at: now,
1928                updated_at: now,
1929            })
1930            .await
1931            .expect("seed running RunRecord");
1932
1933        // Throwaway `Operator` impl — only registration/list-count matters
1934        // for this test, `execute` is never dispatched (same idiom as
1935        // `tasks.rs::StallingOperator`).
1936        struct NoopOperator;
1937        #[async_trait::async_trait]
1938        impl mlua_swarm::Operator for NoopOperator {
1939            async fn execute(
1940                &self,
1941                _ctx: &mlua_swarm::Ctx,
1942                _system: Option<String>,
1943                _prompt: Value,
1944                _worker: Option<mlua_swarm::WorkerBinding>,
1945                _worker_token: mlua_swarm::CapToken,
1946            ) -> Result<mlua_swarm::WorkerResult, mlua_swarm::WorkerError> {
1947                unimplemented!("not exercised by this test — only registration/list matters")
1948            }
1949        }
1950        state
1951            .engine
1952            .register_operator("test-op", Arc::new(NoopOperator))
1953            .await;
1954
1955        let Json(resp) = status_get(State(state)).await;
1956        assert_eq!(resp.running_runs, 1);
1957        assert_eq!(resp.attached_operators, 1);
1958    }
1959
1960    // ──────────────────────────────────────────────────────────────────
1961    // GH #76 error surface: ApiError.details + flow_eval_error_to_api_error mapper
1962    // ──────────────────────────────────────────────────────────────────
1963
1964    /// `ApiError::with_details` populates the optional `details` field, and
1965    /// [`IntoResponse`] renders it into the JSON body as a sibling of
1966    /// `error`. Pre-#76 shape (no details) stays byte-for-byte
1967    /// `{"error": message}`.
1968    #[tokio::test]
1969    async fn api_error_details_render_into_response_body() {
1970        use axum::body::to_bytes;
1971        use axum::response::IntoResponse;
1972
1973        // Baseline: no details → pre-#76 shape.
1974        let bare = ApiError::bad_request("something".to_string()).into_response();
1975        let (parts, body) = bare.into_parts();
1976        assert_eq!(parts.status, StatusCode::BAD_REQUEST);
1977        let bytes = to_bytes(body, 1024).await.expect("bare body");
1978        let parsed: serde_json::Value = serde_json::from_slice(&bytes).expect("parse bare");
1979        assert_eq!(parsed, json!({"error": "something"}));
1980
1981        // With details → additive `details` key.
1982        let with_details = ApiError::bad_request("run: flow eval: blocked".to_string())
1983            .with_details(json!({
1984                "failed_step": "gate",
1985                "verdict_value": {"verdict": "BLOCKED"},
1986                "partial_ctx": {"steps": {}},
1987            }));
1988        let resp = with_details.into_response();
1989        let (parts, body) = resp.into_parts();
1990        assert_eq!(parts.status, StatusCode::BAD_REQUEST);
1991        let bytes = to_bytes(body, 4096).await.expect("details body");
1992        let parsed: serde_json::Value = serde_json::from_slice(&bytes).expect("parse details");
1993        assert_eq!(parsed["error"], "run: flow eval: blocked");
1994        assert_eq!(parsed["details"]["failed_step"], "gate");
1995        assert_eq!(parsed["details"]["verdict_value"]["verdict"], "BLOCKED");
1996        assert!(parsed["details"]["partial_ctx"].is_object());
1997    }
1998
1999    /// The mapper lifts the structured `TaskLaunchError::FlowEval` fields
2000    /// into `ApiError.details` while preserving the pre-#76 message prefix
2001    /// (`"run: flow eval: <msg>"`). Regression: every other
2002    /// `TaskApplicationError` variant collapses to the pre-#76 shape (no
2003    /// `details`).
2004    #[test]
2005    fn flow_eval_error_to_api_error_lifts_structural_fields_into_details() {
2006        let err = TaskApplicationError::Launch(TaskLaunchError::FlowEval {
2007            message: "blocked: {\"verdict\":\"BLOCKED\"}".to_string(),
2008            failed_step: Some("gate".to_string()),
2009            verdict_value: Some(json!({"verdict": "BLOCKED"})),
2010            partial_ctx: Some(json!({"steps": {}})),
2011        });
2012        let api_err = flow_eval_error_to_api_error(err);
2013        assert_eq!(api_err.status, StatusCode::BAD_REQUEST);
2014        assert!(
2015            api_err.message.starts_with("run: flow eval: "),
2016            "message must preserve pre-#76 `run: flow eval: <msg>` prefix, got: {}",
2017            api_err.message
2018        );
2019        let details = api_err.details.expect("details must be Some for FlowEval");
2020        assert_eq!(details["failed_step"], "gate");
2021        assert_eq!(details["verdict_value"]["verdict"], "BLOCKED");
2022        assert!(details["partial_ctx"].is_object());
2023    }
2024
2025    /// Regression: a non-`FlowEval` error must still map to a `bad_request`
2026    /// without a `details` field — the pre-#76 shape for e.g.
2027    /// `TaskApplicationError::NoStore`.
2028    #[test]
2029    fn flow_eval_error_to_api_error_non_flow_eval_falls_back_to_message_only() {
2030        let api_err = flow_eval_error_to_api_error(TaskApplicationError::NoStore);
2031        assert_eq!(api_err.status, StatusCode::BAD_REQUEST);
2032        assert!(api_err.message.starts_with("run: "));
2033        assert!(
2034            api_err.details.is_none(),
2035            "non-FlowEval errors must not carry a details field (pre-#76 shape)"
2036        );
2037    }
2038
2039    /// A `FlowEval` with every optional field `None` (upstream flow-ir
2040    /// error path — no dispatcher breadcrumb, no run_ctx snapshot) still
2041    /// lifts into `details` — the shape is `null` per key, which serialize
2042    /// as JSON `null`. Consumers must treat missing / `null` as "not
2043    /// available", both are legitimate.
2044    #[test]
2045    fn flow_eval_error_to_api_error_with_all_none_still_populates_details_with_nulls() {
2046        let err = TaskApplicationError::Launch(TaskLaunchError::FlowEval {
2047            message: "unresolved extern".to_string(),
2048            failed_step: None,
2049            verdict_value: None,
2050            partial_ctx: None,
2051        });
2052        let api_err = flow_eval_error_to_api_error(err);
2053        let details = api_err
2054            .details
2055            .expect("details Some even when fields are None");
2056        assert_eq!(details["failed_step"], Value::Null);
2057        assert_eq!(details["verdict_value"], Value::Null);
2058        assert_eq!(details["partial_ctx"], Value::Null);
2059    }
2060
2061    // ─── GH #81 Layer 1: archived-BP guidance on run paths ──────────
2062
2063    #[test]
2064    fn from_task_resolve_archived_maps_to_409_with_unarchive_hint() {
2065        use mlua_swarm::blueprint::store::{BlueprintId, BlueprintStoreError};
2066        use mlua_swarm::TaskApplicationError;
2067        let bp_id = BlueprintId::new("greeter".to_string());
2068        let err = TaskApplicationError::Store(BlueprintStoreError::Archived(bp_id));
2069        let api = ApiError::from_task_resolve(&err, "bp resolve");
2070        assert_eq!(api.status, StatusCode::CONFLICT);
2071        // The wording is byte-identical to the register path
2072        // (`blueprints::seed_blueprint`) so downstream tooling can grep
2073        // either surface.
2074        assert_eq!(
2075            api.message,
2076            "bp resolve: blueprint greeter is archived; \
2077             POST /v1/blueprints/greeter/unarchive first"
2078        );
2079    }
2080
2081    #[test]
2082    fn from_task_resolve_archived_honours_the_caller_supplied_prefix() {
2083        use mlua_swarm::blueprint::store::{BlueprintId, BlueprintStoreError};
2084        use mlua_swarm::TaskApplicationError;
2085        // The rekick site prepends `task {task_id}: ` to distinguish
2086        // rekick failures from launch failures in logs.
2087        let bp_id = BlueprintId::new("scout".to_string());
2088        let err = TaskApplicationError::Store(BlueprintStoreError::Archived(bp_id));
2089        let api = ApiError::from_task_resolve(&err, "task T-abc: bp resolve");
2090        assert_eq!(api.status, StatusCode::CONFLICT);
2091        assert!(api.message.starts_with("task T-abc: bp resolve:"));
2092        assert!(api
2093            .message
2094            .contains("blueprint scout is archived; POST /v1/blueprints/scout/unarchive first"));
2095    }
2096
2097    #[test]
2098    fn from_task_resolve_non_archived_store_error_stays_400() {
2099        // A store IdNotFound → resolve() surfaces
2100        // `TaskApplicationError::Store(BlueprintStoreError::IdNotFound(...))`
2101        // which must remain the pre-#81 400 shape.
2102        use mlua_swarm::blueprint::store::{BlueprintId, BlueprintStoreError};
2103        use mlua_swarm::TaskApplicationError;
2104        let bp_id = BlueprintId::new("no-such".to_string());
2105        let err = TaskApplicationError::Store(BlueprintStoreError::IdNotFound(bp_id));
2106        let api = ApiError::from_task_resolve(&err, "bp resolve");
2107        assert_eq!(api.status, StatusCode::BAD_REQUEST);
2108        assert!(api.message.starts_with("bp resolve:"));
2109    }
2110
2111    #[test]
2112    fn from_task_resolve_no_store_error_stays_400() {
2113        // A non-Store variant (NoStore fires when `BlueprintRef::Id` is
2114        // used against an inline-only TaskApplication) also stays 400.
2115        use mlua_swarm::TaskApplicationError;
2116        let err = TaskApplicationError::NoStore;
2117        let api = ApiError::from_task_resolve(&err, "bp resolve");
2118        assert_eq!(api.status, StatusCode::BAD_REQUEST);
2119    }
2120}