mlua_swarm/blueprint.rs
1//! Blueprint runner — glue that executes a flow.ir AST
2//! (`mlua_flow_ir::Node`) through the engine. Each `Step.ref` is run as a
3//! single task via `start_task` + `dispatch_attempt_with_run_ctx`, and
4//! the resulting `Pass` `Value` is written back to `Step.out`.
5//!
6//! **Fully-async chain.** Uses `mlua_flow_ir::eval_async` and
7//! `AsyncDispatcher`; `block_on` and `spawn_blocking` are never mixed in,
8//! so the whole stack stays consistent with the engine's tokio async
9//! world.
10//!
11//! # Usage
12//!
13//! ```ignore
14//! let dispatcher = EngineDispatcher::with_spawner(engine.clone(), op_token, spawner);
15//! let bp: mlua_flow_ir::Node = serde_json::from_str(BP_JSON)?;
16//! let final_ctx = mlua_flow_ir::eval_async(&bp, init_ctx, &dispatcher).await?;
17//! ```
18//!
19//! # Schema types (the IF crate)
20//!
21//! `Blueprint` / `AgentDef` / `AgentKind` and friends live in the
22//! `mlua_swarm_schema` crate and are re-exported from here.
23//! The `struct`/`enum` set that used to live directly in `src/blueprint.rs`
24//! has been moved into the IF crate to support extension discipline,
25//! versioning, and external consumers.
26
27use crate::core::config::CheckPolicy;
28use crate::core::engine::Engine;
29use crate::core::projection_placement::ProjectionPlacement;
30use crate::core::state::{DispatchOutcome, TaskSpec};
31use crate::core::step_naming::StepNaming;
32use crate::store::run::{RunContext, StepEntry};
33use crate::types::{now_unix, CapToken};
34use crate::worker::adapter::SpawnerAdapter;
35use async_trait::async_trait;
36pub mod compiler;
37pub mod loader;
38pub mod store;
39
40use mlua_flow_ir::{AsyncDispatcher, EvalError};
41use serde_json::{Map, Value};
42use std::collections::HashMap;
43use std::sync::Arc;
44
45// The schema types are owned by the IF crate (mlua-swarm-schema); we re-export them here.
46/// The schema-side `OperatorKind` (see `crate::core::ctx::OperatorKind` for the
47/// runtime duplicate consumed by `Engine`). Re-exported under an explicit
48/// alias so callers reading `Blueprint.operators[].kind` /
49/// `Blueprint.default_operator_kind` do not have to reach into
50/// `mlua_swarm_schema` directly.
51pub use mlua_swarm_schema::OperatorKind as SchemaOperatorKind;
52pub use mlua_swarm_schema::{
53 current_schema_version, default_global_agent_kind, resolve_bound_agents,
54 resolve_bound_agents_strict, resolve_runner, AgentDef, AgentKind, AgentMeta, AgentProfile,
55 AgentProviderCapability, AgentProviderManifest, AuditDef, AuditMode, BindOutcome, BindReceipt,
56 BindRequest, BindingAttestation, BindingBackend, BindingDigest, BindingDigestParseError,
57 Blueprint, BlueprintMetadata, BlueprintOrigin, BoundAgent, BoundAgentResolveError,
58 CompilerHints, CompilerStrategy, MetaDef, OperatorDef, ProjectionPlacementSpec, Runner,
59 RunnerDef, RunnerResolutionSource, RunnerResolveError, SpawnerHints, WorkerModel,
60 CURRENT_SCHEMA_VERSION,
61};
62
63/// Bridges `mlua_flow_ir::AsyncDispatcher` to the engine's
64/// `start_task` + `dispatch_attempt_with_run_ctx` pair. Holds one
65/// Operator session token and one `spawner`, and spins up a fresh task
66/// per `Step.ref`, using it as the agent name.
67///
68/// Constructed via `with_spawner`; each dispatch goes through
69/// `engine.dispatch_attempt_with_run_ctx(token, tid, spawner, run_ctx)`
70/// so that when the enclosing `RunContext` carries a `replay_store` /
71/// `replay_cursor`, replay-hit skip and Ctx-snapshot append happen
72/// transparently. Nothing is stashed on engine-global state, so
73/// multiple dispatchers can drive different Blueprints against the same
74/// `Engine` in parallel without racing.
75///
76/// Optionally carries a [`RunContext`] (via [`Self::with_run`], issue #13
77/// run_id propagation): when present, every dispatched step's `run_id` is
78/// exposed to the worker through `Ctx.meta.runtime["run_id"]`, and a
79/// [`StepEntry`] is appended to `RunRecord.step_entries` once the step's
80/// outcome is known (dispatch is synchronous end-to-end here, so there is
81/// no need for a separate event/notification mechanism — the entry is
82/// written with its final status in one call).
83///
84/// Also carries the GH #21 Phase 2 named `MetaDef` pool (via
85/// [`Self::with_step_metas`]) — the Step tier's dispatch-time resolver;
86/// see [`Self::dispatch`]'s doc for the full envelope contract.
87///
88/// GH #23: optionally carries the Blueprint's [`StepNaming`] table (via
89/// [`Self::with_step_naming`], built once by
90/// `blueprint::compiler::Compiler::compile` — see that type's doc for the
91/// full addressing-space narrative). When present, [`Self::dispatch`]
92/// snapshots the same `Arc` into `EngineState.step_namings` for every
93/// dispatched task, keyed by its freshly-minted `StepId` — the storage
94/// half of the "construct once, read many" contract; `Engine::step_naming_for`
95/// is the read-back accessor later consumers (GH #23 subtask-2/3) pull
96/// from.
97///
98/// GH #27 (follow-up to #23): optionally also carries the Blueprint's
99/// [`ProjectionPlacement`] resolver (via [`Self::with_projection_placement`],
100/// built once by `Compiler::compile`) — the SAME snapshot-then-read-back
101/// contract as [`StepNaming`] above, this time read back via
102/// `Engine::projection_placement_for`.
103pub struct EngineDispatcher {
104 engine: Engine,
105 op_token: CapToken,
106 spawner: Arc<dyn SpawnerAdapter>,
107 run_ctx: Option<RunContext>,
108 step_metas: HashMap<String, Value>,
109 step_naming: Option<Arc<StepNaming>>,
110 projection_placement: Option<Arc<ProjectionPlacement>>,
111 binding_digests: HashMap<String, BindingDigest>,
112 /// The resolved `check_policy` cascade value
113 /// (`launch request > blueprint > server config`, collapsed exactly once
114 /// in `TaskLaunchService::launch`). Threaded into EVERY spawned step's
115 /// `TaskSpec.check_policy` by [`Self::dispatch`]. `None` (the default via
116 /// [`Self::with_spawner`]) preserves pre-cascade behavior byte-for-byte
117 /// — the engine's submit-time sink then falls back to
118 /// `EngineCfg.check_policy` (the server-wide default).
119 check_policy: Option<CheckPolicy>,
120}
121
122impl EngineDispatcher {
123 /// Build a dispatcher with no run-level tracing (`run_ctx = None`),
124 /// no named `MetaDef`s (`step_metas` empty), and no [`StepNaming`]
125 /// table — the pre-existing behavior. Use [`Self::with_run`] /
126 /// [`Self::with_step_metas`] / [`Self::with_step_naming`] to opt into
127 /// any of them.
128 pub fn with_spawner(
129 engine: Engine,
130 op_token: CapToken,
131 spawner: Arc<dyn SpawnerAdapter>,
132 ) -> Self {
133 Self {
134 engine,
135 op_token,
136 spawner,
137 run_ctx: None,
138 step_metas: HashMap::new(),
139 step_naming: None,
140 projection_placement: None,
141 binding_digests: HashMap::new(),
142 check_policy: None,
143 }
144 }
145
146 /// Attach a [`RunContext`] (builder style) so every dispatched step is
147 /// traced into `RunRecord.step_entries` and exposes its `run_id` via
148 /// `Ctx.meta.runtime`.
149 pub fn with_run(mut self, run_ctx: RunContext) -> Self {
150 self.run_ctx = Some(run_ctx);
151 self
152 }
153
154 /// GH #21 Phase 2: attach the named `MetaDef` pool (`Blueprint.metas`,
155 /// resolved by `service::task_launch::derive_step_metas` into a
156 /// `name -> ctx` map) that [`Self::dispatch`] resolves `$step_meta.ref`
157 /// envelopes against. Unconditional to call — an empty map (the
158 /// pre-#21-Phase-2 default) makes every `$step_meta.ref` lookup miss
159 /// loudly, same as a Blueprint that never declares `Blueprint.metas`.
160 pub fn with_step_metas(mut self, step_metas: HashMap<String, Value>) -> Self {
161 self.step_metas = step_metas;
162 self
163 }
164
165 /// Attach the immutable `AgentDef.name -> BoundAgent.binding_digest`
166 /// table used to correlate persisted step traces with launch bindings.
167 pub fn with_binding_digests(mut self, binding_digests: HashMap<String, BindingDigest>) -> Self {
168 self.binding_digests = binding_digests;
169 self
170 }
171
172 /// GH #23: attach the Blueprint's [`StepNaming`] table (built once by
173 /// `blueprint::compiler::Compiler::compile`). `None` (the default via
174 /// [`Self::with_spawner`]) preserves pre-GH-#23 behavior byte-for-byte
175 /// — [`Self::dispatch`] simply skips the `EngineState.step_namings`
176 /// snapshot for every caller that never opts in (e.g. tests that build
177 /// an `EngineDispatcher` directly instead of going through
178 /// `service::task_launch::TaskLaunchService::launch`).
179 pub fn with_step_naming(mut self, step_naming: Arc<StepNaming>) -> Self {
180 self.step_naming = Some(step_naming);
181 self
182 }
183
184 /// GH #27 (follow-up to #23): attach the Blueprint's
185 /// [`ProjectionPlacement`] resolver (built once by
186 /// `blueprint::compiler::Compiler::compile`). `None` (the default via
187 /// [`Self::with_spawner`]) preserves pre-GH-#27 behavior byte-for-byte
188 /// — [`Self::dispatch`] simply skips the
189 /// `EngineState.projection_placements` snapshot for every caller that
190 /// never opts in, mirroring [`Self::with_step_naming`]'s contract.
191 pub fn with_projection_placement(
192 mut self,
193 projection_placement: Arc<ProjectionPlacement>,
194 ) -> Self {
195 self.projection_placement = Some(projection_placement);
196 self
197 }
198
199 /// Attach the resolved `check_policy` cascade value
200 /// (`launch request > blueprint > server config`, collapsed exactly once
201 /// by `TaskLaunchService::launch`). Every step [`Self::dispatch`] spawns
202 /// gets this value stamped onto its `TaskSpec.check_policy`, so a
203 /// Blueprint- or launch-declared policy reaches the engine's submit-time
204 /// sink for ALL steps (not just the first). `None` (the default via
205 /// [`Self::with_spawner`]) is a no-op — the sink then falls back to
206 /// `EngineCfg.check_policy` (server-wide default), byte-for-byte the
207 /// pre-cascade behavior.
208 pub fn with_check_policy(mut self, check_policy: Option<CheckPolicy>) -> Self {
209 self.check_policy = check_policy;
210 self
211 }
212}
213
214/// GH #21 Phase 2: resolve a `$step_meta` envelope embedded in a Step's
215/// evaluated `in` value into `(initial_directive, step_ctx)` — the Step
216/// tier's dispatch-time entry point, called from [`EngineDispatcher::dispatch`]
217/// BEFORE `Engine::start_task` (critical: `start_task` seeds
218/// `EngineState.prompts[(tid, 1)]` from `TaskSpec.initial_directive`, so
219/// stripping the envelope any later would leak `$step_meta` into the
220/// worker prompt AND the WS `Spawn.directive` text).
221///
222/// Contract:
223///
224/// - `input` is not a JSON `Object`, or is an `Object` with no
225/// `"$step_meta"` key → passthrough unchanged, `step_ctx = None`
226/// (pre-#21-Phase-2 Blueprints are byte-identical through this path).
227/// - `input` IS an `Object` with a `"$step_meta"` key: the key is always
228/// stripped (never reaches the returned directive). Everything past
229/// this point is loud — an error names the offending step (`ref_`) and,
230/// for an unresolved `ref`, the defined `step_metas` names:
231/// - the envelope itself must be an `Object` shaped
232/// `{"ref": Option<String>, "inline": Option<Object>}`; any other
233/// shape is a malformed-envelope error;
234/// - `ref` (when present and non-null) is looked up in `step_metas`; an
235/// unknown name is an error (no silent skip). The resolved `MetaDef`
236/// ctx must itself be an `Object` (or the lookup is treated as
237/// malformed);
238/// - `inline` (when present and non-null) must be an `Object`;
239/// - the resolved Step-tier ctx = the `ref`-resolved ctx shallow-merged
240/// with `inline`, **`inline` wins** key collisions.
241/// - Directive rule (applied to the remaining `Object`, after
242/// `"$step_meta"` is stripped): if it still contains an `"$in"` key,
243/// that value becomes the returned directive (other sibling keys are
244/// ignored for the directive — envelope-only input, e.g. one final
245/// `$step_meta` key, therefore never becomes an empty directive by
246/// accident just because more keys existed alongside it). Otherwise
247/// the whole remainder becomes the directive; an empty remainder
248/// becomes `Value::String(String::new())`.
249fn resolve_step_envelope(
250 step_metas: &HashMap<String, Value>,
251 ref_: &str,
252 input: Value,
253) -> Result<(Value, Option<Value>), EvalError> {
254 let mut obj = match input {
255 Value::Object(obj) => obj,
256 other => return Ok((other, None)),
257 };
258 let Some(envelope) = obj.remove("$step_meta") else {
259 return Ok((Value::Object(obj), None));
260 };
261 let envelope = match envelope {
262 Value::Object(map) => map,
263 other => {
264 return Err(EvalError::DispatcherError {
265 ref_: ref_.to_string(),
266 msg: format!(
267 "malformed $step_meta envelope for step '{ref_}': expected an object, got {other}"
268 ),
269 });
270 }
271 };
272
273 let ref_ctx: Option<Map<String, Value>> = match envelope.get("ref") {
274 None | Some(Value::Null) => None,
275 Some(Value::String(name)) => {
276 let resolved = step_metas.get(name).cloned().ok_or_else(|| {
277 EvalError::DispatcherError {
278 ref_: ref_.to_string(),
279 msg: format!(
280 "$step_meta.ref '{name}' (step '{ref_}') is not a defined Blueprint.metas entry (defined: {:?})",
281 step_metas.keys().collect::<Vec<_>>()
282 ),
283 }
284 })?;
285 match resolved {
286 Value::Object(map) => Some(map),
287 other => {
288 return Err(EvalError::DispatcherError {
289 ref_: ref_.to_string(),
290 msg: format!(
291 "malformed $step_meta: MetaDef '{name}'.ctx must be an object, got {other}"
292 ),
293 });
294 }
295 }
296 }
297 Some(other) => {
298 return Err(EvalError::DispatcherError {
299 ref_: ref_.to_string(),
300 msg: format!(
301 "malformed $step_meta.ref (step '{ref_}'): expected a string, got {other}"
302 ),
303 });
304 }
305 };
306
307 let inline: Option<Map<String, Value>> = match envelope.get("inline") {
308 None | Some(Value::Null) => None,
309 Some(Value::Object(map)) => Some(map.clone()),
310 Some(other) => {
311 return Err(EvalError::DispatcherError {
312 ref_: ref_.to_string(),
313 msg: format!(
314 "malformed $step_meta.inline (step '{ref_}'): expected an object, got {other}"
315 ),
316 });
317 }
318 };
319
320 let step_ctx = match (ref_ctx, inline) {
321 (None, None) => None,
322 (Some(base), None) => Some(Value::Object(base)),
323 (None, Some(inline)) => Some(Value::Object(inline)),
324 (Some(mut base), Some(inline)) => {
325 for (k, v) in inline {
326 base.insert(k, v);
327 }
328 Some(Value::Object(base))
329 }
330 };
331
332 // Directive rule — only reached once a `$step_meta` envelope was
333 // present in `input`.
334 let initial_directive = if let Some(in_value) = obj.remove("$in") {
335 in_value
336 } else if obj.is_empty() {
337 Value::String(String::new())
338 } else {
339 Value::Object(obj)
340 };
341
342 Ok((initial_directive, step_ctx))
343}
344
345#[async_trait]
346impl AsyncDispatcher for EngineDispatcher {
347 async fn dispatch(&self, ref_: &str, input: Value) -> Result<Value, EvalError> {
348 // issue #18: the evaluated Step.in value passes straight through
349 // as `TaskSpec.initial_directive` — no premature `Value → String`
350 // coercion here. Consumers that need a rendered `String` do so at
351 // their own late boundary: `Engine::start_task` /
352 // `Engine::dispatch_attempt_with_run_ctx` render it into the
353 // `EngineState.prompts` table for the Worker HTTP path
354 // (`/v1/worker/prompt`), and
355 // `operator_ws::session::default_spawn_directive_with_task_directive`
356 // renders it into the WS `Spawn.directive` reminder text.
357 //
358 // GH #21 Phase 2: BEFORE that pass-through, resolve_step_envelope
359 // strips + resolves any `$step_meta` envelope — see its doc for
360 // the full contract. Inputs without one flow through unchanged.
361 let (initial_directive, step_ctx) = resolve_step_envelope(&self.step_metas, ref_, input)?;
362 let tid = self
363 .engine
364 .start_task(
365 &self.op_token,
366 TaskSpec {
367 agent: ref_.to_string(),
368 initial_directive,
369 step_ctx,
370 // The resolved cascade value (collapsed
371 // once in `TaskLaunchService::launch`), threaded onto
372 // every spawned step's spec. `None` falls back to
373 // `EngineCfg.check_policy` at the submit-time sink.
374 check_policy: self.check_policy,
375 },
376 )
377 .await
378 .map_err(|e| EvalError::DispatcherError {
379 ref_: ref_.to_string(),
380 msg: format!("start_task: {e}"),
381 })?;
382
383 // GH #23: snapshot the (already-built, Blueprint-wide) StepNaming
384 // table into `EngineState.step_namings` keyed by this dispatch's
385 // freshly-minted `tid` — the storage half of the "construct once
386 // (`Compiler::compile`), read many (`Engine::step_naming_for`)"
387 // contract. `None` (no `with_step_naming` call) is a no-op, same
388 // fail-open convention as the `run_ctx` step_entry append below:
389 // a secondary-persistence failure here must never mask the
390 // primary dispatch outcome.
391 if let Some(step_naming) = self.step_naming.clone() {
392 let tid_for_naming = tid.clone();
393 if let Err(e) = self
394 .engine
395 .with_state("EngineDispatcher::dispatch.step_naming", move |s| {
396 s.step_namings.insert(tid_for_naming, step_naming);
397 })
398 .await
399 {
400 tracing::warn!(
401 task_id = %tid,
402 error = %e,
403 "EngineDispatcher::dispatch: failed to snapshot StepNaming into EngineState"
404 );
405 }
406 }
407
408 // GH #27 (follow-up to #23): same snapshot pattern as StepNaming
409 // above — stash the (already-built, Blueprint-wide)
410 // ProjectionPlacement resolver into `EngineState.projection_placements`
411 // keyed by this dispatch's `tid`. `None` (no
412 // `with_projection_placement` call) is a no-op, same fail-open
413 // convention as the `step_naming` snapshot: a secondary-persistence
414 // failure here must never mask the primary dispatch outcome.
415 if let Some(projection_placement) = self.projection_placement.clone() {
416 let tid_for_placement = tid.clone();
417 if let Err(e) = self
418 .engine
419 .with_state(
420 "EngineDispatcher::dispatch.projection_placement",
421 move |s| {
422 s.projection_placements
423 .insert(tid_for_placement, projection_placement);
424 },
425 )
426 .await
427 {
428 tracing::warn!(
429 task_id = %tid,
430 error = %e,
431 "EngineDispatcher::dispatch: failed to snapshot ProjectionPlacement into EngineState"
432 );
433 }
434 }
435
436 // Route dispatch through the replay-aware sibling. When
437 // `run_ctx` carries a `replay_cursor` populated by the caller
438 // (`POST /v1/runs/:id/resume`), a matching row short-circuits
439 // to `DispatchOutcome::Pass` without touching the spawner; when
440 // `run_ctx.replay_store` is `Some`, every fresh Pass appends
441 // one Ctx-snapshot row so a later resume can replay it. With
442 // `run_ctx = None` this collapses to the same behavior as the
443 // legacy `dispatch_attempt_with(..., None)` call.
444 let outcome = self
445 .engine
446 .dispatch_attempt_with_run_ctx(
447 &self.op_token,
448 &tid,
449 &self.spawner,
450 self.run_ctx.as_ref(),
451 )
452 .await;
453
454 // issue #13 run_id propagation: append one step_entry per dispatched
455 // step (`RunStore.append_step_entry` is append-only — there is no
456 // in-place update — so the entry is written once here, after the
457 // outcome is known, carrying its final status). Secondary
458 // persistence failures are logged and swallowed, matching
459 // `mse-server`'s `finalize_run` convention: they must not mask the
460 // primary dispatch outcome the flow eval already has in hand.
461 if let Some(rc) = &self.run_ctx {
462 let status = match &outcome {
463 Ok(DispatchOutcome::Pass(_)) => "passed",
464 Ok(DispatchOutcome::Blocked(_)) => "blocked",
465 Ok(DispatchOutcome::Suspended(_)) => "suspended",
466 Ok(DispatchOutcome::Cancelled) => "cancelled",
467 Ok(DispatchOutcome::Timeout) => "timeout",
468 Err(_) => "failed",
469 };
470 let entry = StepEntry {
471 step_id: tid.clone(),
472 step_ref: Some(ref_.to_string()),
473 status: Some(status.to_string()),
474 binding_digest: self.binding_digests.get(ref_).cloned(),
475 at: now_unix(),
476 };
477 if let Err(e) = rc.run_store.append_step_entry(&rc.run_id, entry).await {
478 tracing::warn!(
479 run_id = %rc.run_id,
480 step_id = %tid,
481 error = %e,
482 "EngineDispatcher::dispatch: append_step_entry failed"
483 );
484 }
485 }
486
487 match outcome {
488 Ok(DispatchOutcome::Pass(v)) => Ok(v),
489 Ok(DispatchOutcome::Blocked(v)) => Err(EvalError::DispatcherError {
490 ref_: ref_.to_string(),
491 msg: format!("blocked: {v}"),
492 }),
493 Ok(other) => Err(EvalError::DispatcherError {
494 ref_: ref_.to_string(),
495 msg: format!("non-terminal outcome: {:?}", other),
496 }),
497 Err(e) => Err(EvalError::DispatcherError {
498 ref_: ref_.to_string(),
499 msg: format!("dispatch_attempt: {e}"),
500 }),
501 }
502 }
503}
504
505// ──────────────────────────────────────────────────────────────────────────
506// issue #21 Phase 2: `resolve_step_envelope` unit tests + a dispatch-level
507// end-to-end leak-proof test
508// ──────────────────────────────────────────────────────────────────────────
509
510#[cfg(test)]
511mod tests {
512 use super::*;
513 use serde_json::json;
514
515 fn metas(pairs: &[(&str, Value)]) -> HashMap<String, Value> {
516 pairs
517 .iter()
518 .map(|(k, v)| (k.to_string(), v.clone()))
519 .collect()
520 }
521
522 #[test]
523 fn no_envelope_string_input_passes_through_unchanged() {
524 let (directive, step_ctx) =
525 resolve_step_envelope(&HashMap::new(), "scout", json!("plain string")).unwrap();
526 assert_eq!(directive, json!("plain string"));
527 assert_eq!(step_ctx, None);
528 }
529
530 #[test]
531 fn no_envelope_plain_object_input_passes_through_unchanged() {
532 let input = json!({ "foo": "bar" });
533 let (directive, step_ctx) =
534 resolve_step_envelope(&HashMap::new(), "scout", input.clone()).unwrap();
535 assert_eq!(directive, input);
536 assert_eq!(step_ctx, None);
537 }
538
539 #[test]
540 fn envelope_with_only_ref_resolves_that_metadef_ctx() {
541 let step_metas = metas(&[("heavy-scan", json!({ "work_dir": "/x" }))]);
542 let input = json!({ "$step_meta": { "ref": "heavy-scan" }, "$in": "go" });
543 let (directive, step_ctx) = resolve_step_envelope(&step_metas, "scout", input).unwrap();
544 assert_eq!(directive, json!("go"));
545 assert_eq!(step_ctx, Some(json!({ "work_dir": "/x" })));
546 }
547
548 #[test]
549 fn envelope_with_only_inline_uses_inline_verbatim() {
550 let input = json!({
551 "$step_meta": { "inline": { "work_dir": "/inline-only" } },
552 "$in": "go"
553 });
554 let (directive, step_ctx) = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap();
555 assert_eq!(directive, json!("go"));
556 assert_eq!(step_ctx, Some(json!({ "work_dir": "/inline-only" })));
557 }
558
559 #[test]
560 fn inline_wins_over_ref_on_key_collision() {
561 let step_metas = metas(&[(
562 "heavy-scan",
563 json!({ "work_dir": "/ref", "extra": "from-ref" }),
564 )]);
565 let input = json!({
566 "$step_meta": {
567 "ref": "heavy-scan",
568 "inline": { "work_dir": "/inline-wins" }
569 },
570 "$in": "go"
571 });
572 let (_, step_ctx) = resolve_step_envelope(&step_metas, "scout", input).unwrap();
573 assert_eq!(
574 step_ctx,
575 Some(json!({ "work_dir": "/inline-wins", "extra": "from-ref" })),
576 "inline must win the collided key while ref-only keys survive the merge"
577 );
578 }
579
580 #[test]
581 fn dollar_in_rule_extracts_directive_and_ignores_other_sibling_keys() {
582 let input = json!({
583 "$step_meta": { "inline": { "k": "v" } },
584 "$in": "the real directive",
585 "unrelated_sibling": "ignored"
586 });
587 let (directive, step_ctx) = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap();
588 assert_eq!(directive, json!("the real directive"));
589 assert_eq!(step_ctx, Some(json!({ "k": "v" })));
590 }
591
592 #[test]
593 fn no_dollar_in_remainder_becomes_the_directive() {
594 let input = json!({
595 "$step_meta": { "inline": { "k": "v" } },
596 "other_key": "other_value"
597 });
598 let (directive, _) = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap();
599 assert_eq!(directive, json!({ "other_key": "other_value" }));
600 }
601
602 #[test]
603 fn empty_remainder_becomes_empty_string_directive() {
604 let input = json!({ "$step_meta": { "ref": "heavy-scan" } });
605 let step_metas = metas(&[("heavy-scan", json!({ "work_dir": "/x" }))]);
606 let (directive, step_ctx) = resolve_step_envelope(&step_metas, "scout", input).unwrap();
607 assert_eq!(directive, Value::String(String::new()));
608 assert_eq!(step_ctx, Some(json!({ "work_dir": "/x" })));
609 }
610
611 #[test]
612 fn unresolved_ref_is_a_loud_dispatcher_error_naming_ref_and_defined() {
613 let step_metas = metas(&[("known", json!({}))]);
614 let input = json!({ "$step_meta": { "ref": "unknown" }, "$in": "go" });
615 let err = resolve_step_envelope(&step_metas, "scout", input).unwrap_err();
616 match err {
617 EvalError::DispatcherError { ref_, msg } => {
618 assert_eq!(ref_, "scout");
619 assert!(
620 msg.contains("unknown"),
621 "message must name the unresolved ref: {msg}"
622 );
623 assert!(
624 msg.contains("known"),
625 "message must list defined names: {msg}"
626 );
627 }
628 other => panic!("expected DispatcherError, got {other:?}"),
629 }
630 }
631
632 #[test]
633 fn malformed_step_meta_not_an_object_is_a_loud_error() {
634 let input = json!({ "$step_meta": "not-an-object" });
635 let err = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap_err();
636 assert!(matches!(err, EvalError::DispatcherError { .. }));
637 }
638
639 #[test]
640 fn malformed_ref_non_string_is_a_loud_error() {
641 let input = json!({ "$step_meta": { "ref": 42 } });
642 let err = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap_err();
643 assert!(matches!(err, EvalError::DispatcherError { .. }));
644 }
645
646 #[test]
647 fn malformed_inline_non_object_is_a_loud_error() {
648 let input = json!({ "$step_meta": { "inline": "not-an-object" } });
649 let err = resolve_step_envelope(&HashMap::new(), "scout", input).unwrap_err();
650 assert!(matches!(err, EvalError::DispatcherError { .. }));
651 }
652
653 #[test]
654 fn ref_resolved_metadef_ctx_non_object_is_a_loud_error() {
655 let step_metas = metas(&[("bad", json!("not-an-object"))]);
656 let input = json!({ "$step_meta": { "ref": "bad" } });
657 let err = resolve_step_envelope(&step_metas, "scout", input).unwrap_err();
658 assert!(matches!(err, EvalError::DispatcherError { .. }));
659 }
660
661 /// End-to-end proof (issue #21 Phase 2 Done Criteria #5): a `$step_meta`
662 /// envelope must never reach `EngineState.prompts[(tid, 1)]` — the
663 /// resolve step runs BEFORE `start_task` seeds that table.
664 #[tokio::test]
665 async fn dispatch_step_meta_envelope_never_leaks_into_stored_prompt() {
666 use crate::blueprint::compiler::{RustFnInProcessSpawnerFactory, SpawnerFactory};
667 use crate::core::config::EngineCfg;
668 use crate::types::{Role, StepId};
669 use crate::worker::adapter::WorkerResult;
670 use std::sync::Mutex as StdMutex;
671 use std::time::Duration;
672
673 let captured_tid: Arc<StdMutex<Option<StepId>>> = Arc::new(StdMutex::new(None));
674 let captured_tid_for_fn = captured_tid.clone();
675 let factory = RustFnInProcessSpawnerFactory::new().register_fn("echo", move |inv| {
676 let captured_tid = captured_tid_for_fn.clone();
677 async move {
678 *captured_tid.lock().unwrap() = Some(inv.task_id.clone());
679 Ok(WorkerResult {
680 value: json!({ "ok": true }),
681 ok: true,
682 })
683 }
684 });
685 let def = AgentDef {
686 name: "scout".into(),
687 kind: AgentKind::RustFn,
688 spec: json!({ "fn_id": "echo" }),
689 profile: None,
690 meta: None,
691 runner: None,
692 runner_ref: None,
693 verdict: None,
694 };
695 let spawner = factory.build(&def, None).expect("build");
696
697 let engine = Engine::new(EngineCfg::default());
698 let token = engine
699 .attach("ut-op", Role::Operator, Duration::from_secs(30))
700 .await
701 .expect("attach");
702 let step_metas = metas(&[("heavy-scan", json!({ "work_dir": "/x" }))]);
703 let dispatcher = EngineDispatcher::with_spawner(engine.clone(), token, spawner)
704 .with_step_metas(step_metas);
705
706 let input = json!({
707 "$step_meta": { "ref": "heavy-scan" },
708 "$in": "do the thing"
709 });
710 let out = dispatcher
711 .dispatch("scout", input)
712 .await
713 .expect("dispatch ok");
714 assert_eq!(out, json!({ "ok": true }));
715
716 let tid = captured_tid
717 .lock()
718 .unwrap()
719 .clone()
720 .expect("task_id captured");
721 let stored_prompt = engine
722 .with_state("test.read_prompt", move |s| {
723 s.prompts.get(&(tid, 1)).cloned()
724 })
725 .await
726 .expect("with_state")
727 .expect("prompt recorded for attempt 1");
728 assert_eq!(
729 stored_prompt,
730 json!("do the thing"),
731 "the stored prompt must be the post-envelope directive, with no $step_meta leakage"
732 );
733 }
734}