magi/queue.rs
1//! The task queue: what magi should do next, and who asked for it.
2//!
3//! The queue is what lets magi run unattended. `magi serve` takes the next
4//! task, runs the graph on it, records the outcome, and takes the next one.
5//!
6//! It is also the reason an agent can ask for work. `magi task add` is the
7//! whole interface, and it is the same command whether a human types it at a
8//! prompt, a phone posts it through the web UI, or an implementer inside a run
9//! shells out to it because it noticed something worth doing but out of scope.
10//! magi's CLI is the operating surface for both kinds of user; the queue is
11//! where their intentions meet.
12//!
13//! One task is one JSON file under [`Queue`]'s root. Files rather than a
14//! database because the operator has to be able to read, edit, and delete the
15//! backlog with the tools already on the machine, and because a crashed daemon
16//! must leave a queue the next one can pick up without recovery ceremony.
17//!
18//! # Shape
19//!
20//! [`Task`] is data plus *pure* state transitions - [`Task::fail`] decides
21//! whether an attempt was the last one, and touches no disk. [`Queue`] owns all
22//! I/O and is constructed with its root, so a test drives a real queue in a
23//! temp directory without setting a process-global home. Splitting them this
24//! way is why the retry policy below can be asserted directly.
25//!
26//! # Bounded by construction
27//!
28//! An autonomous loop that retries forever is a way to spend money on a task
29//! that cannot succeed. Every claim increments [`Task::attempts`]; a task that
30//! has burned its attempts becomes [`TaskStatus::Held`] and waits for a human
31//! rather than for another agent.
32
33use std::collections::HashMap;
34use std::path::{Path, PathBuf};
35
36use anyhow::{Context, Result, bail};
37use jiff::Timestamp;
38use serde::{Deserialize, Serialize};
39
40use crate::ask::Questions;
41
42/// On-disk format for a queued task. Bumped when a field's meaning changes.
43///
44/// 6: added [`Task::resume_override`] (a field only; `#[serde(default)]`, so
45/// an older record reads as `None` and [`read_path`] still accepts it).
46///
47/// 5: added [`Task::triage_applied`], the ids of triage questions whose
48/// answer has already been applied to this task. A "resume" answer used to
49/// leave no trace ([`Task::release`] clears [`Task::hold_reason`], which was
50/// the only place the applied marker lived), so when the released task failed
51/// its attempts and went back to `held`, the next idle pass found the same
52/// answered question "not applied" and released it again with `attempts` reset
53/// to 0 - the `max_attempts` bound never held. `#[serde(default)]` so an older
54/// record reads as empty. A task already looping when this build arrives has
55/// no record, so it is released once more, recorded, and then stays held.
56///
57/// 4: added [`Task::blocked_from`], the status a task had the moment it
58/// became [`TaskStatus::Blocked`], so [`Task::unblock`] restores it instead
59/// of always landing on [`TaskStatus::Queued`]. Without it, a task a human
60/// or `crate::triage` had deliberately left [`TaskStatus::Held`] — machine
61/// or manual — would lose that the instant `crate::conduct` blocked it on a
62/// follow-up question, and come back `Queued` the moment the question was
63/// answered, regardless of what the answer said: exactly the loop where a
64/// task the operator told to stay held instead re-enters the competition
65/// queue every time someone answers a question about it. `#[serde(default)]`
66/// so an older record reads as `None`; [`Task::unblock`] then falls back to
67/// inferring `Held` from surviving hold evidence ([`Task::hold_reason`] /
68/// [`Task::hold_source`], never cleared by [`Task::block`]) rather than
69/// guessing `Queued` outright — see [`Task::unblock`]'s own doc.
70///
71/// 3: added [`HoldSource`] so conductor recovery cannot release a hold an
72/// operator deliberately placed. Old records default to `None` and are
73/// protected as operator-held until an explicit release; the safe direction
74/// when their author was never recorded.
75///
76/// 2: added [`TaskStatus::Blocked`], [`Task::blocked_by`] and
77/// [`Task::block_reason`] (`crate::conduct`'s decisions) and
78/// [`Task::answers`] (operator answers carried forward to the next
79/// conductor prompt and the next run's instruction). All three are
80/// `#[serde(default)]`, so [`read_path`] accepts anything up to and
81/// including this schema rather than only an exact match — a task written
82/// by a build that only knew about schema 1 has nothing to say about
83/// blocking or answers, and defaulting those fields is exactly as good a
84/// reading as a value that build never had a chance to write.
85pub const SCHEMA: u32 = 6;
86
87/// Who placed the current hold.
88#[derive(Debug, Clone, Copy, PartialEq, Eq, Serialize, Deserialize)]
89#[serde(rename_all = "lowercase")]
90pub enum HoldSource {
91 /// An operator used the CLI or web UI.
92 Manual,
93 /// The daemon or conductor placed the hold as part of its own recovery.
94 Machine,
95}
96
97impl HoldSource {
98 /// Short human-facing label for reports and the CLI.
99 pub fn label(self) -> &'static str {
100 match self {
101 Self::Manual => "manual",
102 Self::Machine => "machine",
103 }
104 }
105}
106
107/// Where a task came from. Recorded because "who asked for this" is the first
108/// question about an autonomous run, and the answer is not recoverable later.
109#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
110#[serde(tag = "kind", rename_all = "lowercase")]
111pub enum Source {
112 /// A person, at a terminal or through the web UI.
113 Human,
114 /// An agent inside a run, via `magi task add`. Both ids are recorded so a
115 /// task can be traced back to the exact seat that asked for it.
116 Agent {
117 /// Run the asking agent belonged to.
118 run: String,
119 /// Node it was working in, e.g. `implement` or `review`.
120 node: String,
121 },
122 /// A GitHub issue, imported by number.
123 Issue {
124 /// Issue number.
125 number: u64,
126 /// `owner/repo`, as `gh` reports it.
127 repo: String,
128 },
129}
130
131impl Source {
132 /// Short human-facing label, for lists and the web UI.
133 pub fn label(&self) -> String {
134 match self {
135 Self::Human => "human".to_owned(),
136 Self::Agent { run, node } => format!("{node}@{}", short(run)),
137 Self::Issue { number, .. } => format!("issue #{number}"),
138 }
139 }
140}
141
142/// Where a task is in its life.
143#[derive(Debug, Clone, Copy, PartialEq, Eq, Serialize, Deserialize)]
144#[serde(rename_all = "lowercase")]
145pub enum TaskStatus {
146 /// Waiting to be claimed.
147 Queued,
148 /// Claimed by a daemon; a run is in flight.
149 Running,
150 /// A run finished and its gate passed.
151 Done,
152 /// A run finished without passing, and attempts remain.
153 Failed,
154 /// Out of attempts, or held by hand. The loop will not pick it up.
155 Held,
156 /// Waiting on another task or an unanswered question. See
157 /// [`Task::blocked_by`]. Set and cleared by `crate::conduct` and
158 /// `crate::daemon`'s deterministic resolver, never by hand.
159 Blocked,
160}
161
162impl TaskStatus {
163 /// Is this task eligible for a daemon to claim?
164 pub fn runnable(self) -> bool {
165 matches!(self, Self::Queued | Self::Failed)
166 }
167
168 /// Lowercase name, as it appears on disk and in the API.
169 pub fn as_str(self) -> &'static str {
170 match self {
171 Self::Queued => "queued",
172 Self::Running => "running",
173 Self::Done => "done",
174 Self::Failed => "failed",
175 Self::Held => "held",
176 Self::Blocked => "blocked",
177 }
178 }
179}
180
181/// How many tasks sit in each [`TaskStatus`], for a dashboard tile — never a
182/// per-task view, so it carries no ids.
183#[derive(Debug, Clone, Copy, Default, PartialEq, Eq)]
184pub struct TaskCounts {
185 /// Waiting to be claimed.
186 pub queued: usize,
187 /// Claimed; a run is in flight.
188 pub running: usize,
189 /// A run finished and its gate passed.
190 pub done: usize,
191 /// A run finished without passing, and attempts remain.
192 pub failed: usize,
193 /// Out of attempts, or held by hand.
194 pub held: usize,
195 /// Waiting on another task or an unanswered question.
196 pub blocked: usize,
197}
198
199impl TaskCounts {
200 /// Tally `tasks` by status. A pure function over whatever [`Queue::list`]
201 /// already read, so it needs no root of its own and stays trivially
202 /// testable against a hand-built slice.
203 pub fn of(tasks: &[Task]) -> Self {
204 let mut counts = Self::default();
205 for t in tasks {
206 match t.status {
207 TaskStatus::Queued => counts.queued += 1,
208 TaskStatus::Running => counts.running += 1,
209 TaskStatus::Done => counts.done += 1,
210 TaskStatus::Failed => counts.failed += 1,
211 TaskStatus::Held => counts.held += 1,
212 TaskStatus::Blocked => counts.blocked += 1,
213 }
214 }
215 counts
216 }
217}
218
219/// One unit of work.
220#[derive(Debug, Clone, Serialize, Deserialize)]
221#[serde(deny_unknown_fields)]
222pub struct Task {
223 /// On-disk format version.
224 pub schema: u32,
225 /// Task id, e.g. `20260902-140501-a1b2`.
226 pub id: String,
227 /// One line, for lists and notifications.
228 pub title: String,
229 /// The task itself, handed to the graph verbatim.
230 pub instruction: String,
231 /// Repository to work in.
232 pub repo: PathBuf,
233 /// Who asked.
234 pub source: Source,
235 /// Higher runs first; ties break oldest-first so nothing starves.
236 #[serde(default)]
237 pub priority: i32,
238 /// Run this task alone: one implementer, no panel of judges to convince.
239 ///
240 /// `#[serde(default)]` so a queue file written before this field existed
241 /// still reads, as `false` - the ordinary multi-candidate competition,
242 /// unchanged. A task set to `solo` still runs the whole graph; only the
243 /// candidate count the daemon builds it with changes, and
244 /// [`crate::graph::Runner`] already collapses a single-candidate run to
245 /// implement → review → gate → merge on its own (see
246 /// [`crate::graph::Runner::review`]'s doc), so nothing about judging,
247 /// deliberation or voting had to change to support this.
248 #[serde(default)]
249 pub solo: bool,
250 /// Current state.
251 pub status: TaskStatus,
252 /// How many times this task has been claimed.
253 #[serde(default)]
254 pub attempts: usize,
255 /// Runs this task has produced, oldest first.
256 #[serde(default)]
257 pub runs: Vec<String>,
258 /// Why the last attempt did not land.
259 #[serde(default)]
260 pub last_error: Option<String>,
261 /// What a human hold is waiting on.
262 ///
263 /// `None` covers both the ordinary cases: a hold the loop makes itself
264 /// (out of attempts, or the disk gate closed) explains itself through
265 /// [`Task::last_error`] instead, and a human hold nobody bothered to
266 /// explain is still a valid hold. The queue has no way to express a
267 /// dependency between two tasks, so on the occasions a hold really is
268 /// "wait for that other task first", this is the only place that reason
269 /// survives - see [`Task::hold_manual`] and [`Task::release`].
270 ///
271 /// `#[serde(default)]` so a queue file written before this field existed
272 /// still reads, with no reason recorded rather than a parse error.
273 #[serde(default)]
274 pub hold_reason: Option<String>,
275 /// Who placed [`Task::hold_reason`]. `None` is a compatible old record;
276 /// see [`Task::operator_held`] for its deliberately conservative meaning.
277 #[serde(default)]
278 pub hold_source: Option<HoldSource>,
279 /// Diagnostic detail excerpted from the run that led to a hold - what a
280 /// human would have found opening `artifacts/` by hand, not the one-line
281 /// reason in [`Task::last_error`]. Set only when a run's own attempts are
282 /// exhausted and the task becomes [`TaskStatus::Held`]; `daemon` computes
283 /// it from the run's own record, since this module has no notion of a
284 /// run's internals. Bounded in length by the writer - see
285 /// `daemon::diagnostic` - so a verbose run cannot make this file grow
286 /// without limit.
287 ///
288 /// `#[serde(default)]` so a queue file written before this field existed
289 /// still reads, with no diagnostic recorded rather than a parse error.
290 #[serde(default)]
291 pub diagnostic: Option<String>,
292 /// What this task is waiting on: other task ids, unanswered
293 /// `crate::ask::Question` ids, or both. Non-empty exactly when
294 /// [`TaskStatus::Blocked`]; emptying it — see [`Task::unblock`] — is what
295 /// puts the task back at [`TaskStatus::Queued`].
296 ///
297 /// Set by `crate::conduct`'s decisions and cleared deterministically by
298 /// `crate::daemon` as each dependency resolves, never by a person. Never
299 /// `#[serde(default)]` is skipped: a queue file from before this field
300 /// existed has nothing to report here, and an empty list is exactly that.
301 #[serde(default)]
302 pub blocked_by: Vec<String>,
303 /// One line explaining the current [`Task::blocked_by`], written by
304 /// `crate::conduct`. Cleared whenever `blocked_by` empties.
305 #[serde(default)]
306 pub block_reason: Option<String>,
307 /// The status this task had the moment [`Task::block`] most recently
308 /// moved it to [`TaskStatus::Blocked`] — what [`Task::unblock`] restores
309 /// once nothing is left in `blocked_by`, instead of always landing on
310 /// [`TaskStatus::Queued`]. See [`SCHEMA`]'s doc for schema 4 on why this
311 /// exists: an answer to a question `crate::conduct` filed about a
312 /// [`TaskStatus::Held`] task must not itself be what puts the task back
313 /// in the competition queue.
314 ///
315 /// `#[serde(default)]` so a queue file written before this field existed
316 /// reads as `None`; [`Task::unblock`] treats that the same as a task
317 /// blocked straight from `Queued`, unless surviving hold evidence says
318 /// otherwise.
319 #[serde(default)]
320 pub blocked_from: Option<TaskStatus>,
321 /// Questions `crate::conduct` asked about this task that the operator has
322 /// since answered, oldest first — what was asked, and what they said.
323 ///
324 /// A blocking question's id leaves [`Task::blocked_by`] the moment
325 /// [`crate::ask::QuestionStatus::Answered`] is observed, but the id alone
326 /// tells nobody what was decided. This is what carries the answer's
327 /// *content* forward: into the next conductor prompt for this task, and
328 /// into the instruction handed to the next run — see `crate::daemon`'s
329 /// deterministic blocker resolution. Kept for the task's whole life, the
330 /// same as [`Task::runs`]: a release resets attempts, not evidence.
331 #[serde(default)]
332 pub answers: Vec<AnsweredQuestion>,
333 /// Ids of the `crate::triage` questions whose answer has been applied to
334 /// this task. Unlike [`Task::hold_reason`], [`Task::release`] and every
335 /// hold transition leave it alone, so an answer is applied at most once
336 /// however many times the task is held again. See [`SCHEMA`]'s doc for
337 /// schema 5. `#[serde(default)]` so an older record reads as empty.
338 #[serde(default)]
339 pub triage_applied: Vec<String>,
340 /// The operator's "resume" answer to a triage question, kept until the
341 /// task actually runs (or is done) so `crate::conduct` cannot silently
342 /// undo it and `crate::triage` can tell that a hold it sees now came
343 /// *after* the answer. See [`OperatorResume`]. `#[serde(default)]`.
344 #[serde(default)]
345 pub resume_override: Option<OperatorResume>,
346 /// Set by `crate::conduct` when it chooses `Review` recovery for a task
347 /// whose branch survived a blocked run: the branch to reopen with
348 /// `crate::graph::Runner::review` instead of competing from scratch.
349 ///
350 /// Requeues the task the same way [`Task::release`] does, so it is
351 /// picked up by the ordinary loop; `crate::daemon` reads this field once,
352 /// when it actually starts the run, and clears it either way — consumed
353 /// on success, dropped if the branch no longer exists by then. Never set
354 /// from the conductor's own words: `crate::daemon` derives the branch
355 /// name itself from the task's last run, so a hallucinated branch can
356 /// never reach here.
357 #[serde(default)]
358 pub review_branch: Option<String>,
359 /// A release deliberately starts a new competition instead of resuming
360 /// the prior run. History remains as evidence in `runs`.
361 #[serde(default)]
362 pub fresh_start: bool,
363 /// Marked by an operator (`magi task interrupt`) to ask `magi serve` to
364 /// run this one ahead of whatever it already has in flight, once
365 /// `[daemon] pause_for_interrupts` is on - see
366 /// `crate::daemon::advance_interrupt`. Never set by the loop itself, and
367 /// deliberately a different operation from [`Task::set_priority`]: a
368 /// priority only reorders the queue a claim has not reached yet, while
369 /// this asks a run already in flight to park at its next safe boundary
370 /// and step aside. `#[serde(default)]` so a queue file written before
371 /// this field existed still reads, as `false` - no task interrupts
372 /// anything unless asked to, exactly as before.
373 #[serde(default)]
374 pub interrupt: bool,
375 /// Marked by `magi task add --urgent`: `crate::daemon::poll` dispatches
376 /// this task through its own one-slot `urgent_sem` the moment it is
377 /// runnable, in addition to whatever is already running under the
378 /// ordinary `[daemon] max_concurrent_runs` pool - never instead of it,
379 /// and never by pausing or otherwise touching that run. This is the
380 /// opposite direction from [`Task::interrupt`]: that one asks a run
381 /// already in flight to step aside; this one never asks anything to
382 /// step aside, it only spends one additional, temporary concurrency
383 /// slot. The two are independent and may both be set on the same task,
384 /// but this exemption stops at `[daemon] pause_for_interrupts`'s own
385 /// park/resume handoff (75dd): while an interrupt sequence is actively
386 /// parking, running, or resuming - its own, or an unrelated task's -
387 /// `crate::daemon::interrupt_gate` withholds an urgent candidate exactly
388 /// like an ordinary one, never exempted. 75dd's "at most one run, ever,
389 /// at once" guarantee takes precedence, because the alternative is a run
390 /// still genuinely in flight (only *asked* to park, not yet gone) ending
391 /// up alongside a second one this feature let through - the very thing
392 /// that guarantee exists to rule out.
393 ///
394 /// `#[serde(default)]` so a queue file written before this field existed
395 /// still reads, as `false` - no task claims the urgent slot unless asked
396 /// to, exactly as before.
397 #[serde(default)]
398 pub urgent: bool,
399 /// When the task was filed.
400 pub created_at: Timestamp,
401 /// Last change to this file.
402 pub updated_at: Timestamp,
403}
404
405/// A triage "resume" answer and what became of it. See
406/// [`Task::resume_override`].
407#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
408pub struct OperatorResume {
409 /// The triage question the operator answered.
410 pub question_id: String,
411 /// When the answer was applied.
412 pub at: Timestamp,
413 /// The reason `crate::conduct` gave for holding the task again after the
414 /// answer, if it did. The conductor may do this once.
415 #[serde(default)]
416 pub conductor_rehold: Option<String>,
417 /// The operator answered "resume" a second time, to the question about
418 /// that contradiction: the conductor may no longer hold this task.
419 #[serde(default)]
420 pub forced: bool,
421}
422
423/// One question `crate::conduct` asked about a task, and what the operator
424/// said back. See [`Task::answers`].
425#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
426pub struct AnsweredQuestion {
427 /// The question as asked, e.g. [`crate::ask::Question::summary`].
428 pub question: String,
429 /// What the operator answered.
430 pub answer: String,
431}
432
433impl Task {
434 /// File a new task. Persist it with [`Queue::put`].
435 pub fn new(title: String, instruction: String, repo: PathBuf, source: Source) -> Self {
436 let now = Timestamp::now();
437 Self {
438 schema: SCHEMA,
439 id: new_id(),
440 title,
441 instruction,
442 repo,
443 source,
444 priority: 0,
445 solo: false,
446 status: TaskStatus::Queued,
447 attempts: 0,
448 runs: Vec::new(),
449 last_error: None,
450 hold_reason: None,
451 hold_source: None,
452 diagnostic: None,
453 blocked_by: Vec::new(),
454 block_reason: None,
455 blocked_from: None,
456 answers: Vec::new(),
457 triage_applied: Vec::new(),
458 resume_override: None,
459 review_branch: None,
460 fresh_start: false,
461 interrupt: false,
462 urgent: false,
463 created_at: now,
464 updated_at: now,
465 }
466 }
467
468 /// Short form used in reports, matching a run's short id.
469 pub fn short(&self) -> &str {
470 short(&self.id)
471 }
472
473 /// Record that triage question `question_id`'s answer has been applied.
474 pub fn mark_triage_applied(&mut self, question_id: &str) {
475 if !self.triage_applied(question_id) {
476 self.triage_applied.push(question_id.to_owned());
477 }
478 }
479
480 /// Has triage question `question_id`'s answer already been applied?
481 pub fn triage_applied(&self, question_id: &str) -> bool {
482 self.triage_applied.iter().any(|id| id == question_id)
483 }
484
485 /// Record that a run has started for this task.
486 ///
487 /// Clears [`Task::interrupt`]: a mark to run ahead of whatever else is
488 /// in flight is fulfilled the moment this task actually gets its turn,
489 /// dispatched same as any other. Without this, a task whose run fails
490 /// and requeues - still `runnable`, still carrying the mark from its
491 /// first attempt - would keep re-triggering `crate::daemon`'s interrupt
492 /// scheduler and re-parking whatever it interrupted on every later
493 /// boundary, for as long as its attempts hold out, instead of the
494 /// one-shot "let this go next" the mark is meant to be.
495 pub fn start(&mut self, run: String) {
496 self.status = TaskStatus::Running;
497 self.attempts += 1;
498 self.runs.push(run);
499 self.last_error = None;
500 self.fresh_start = false;
501 self.interrupt = false;
502 // The answer has been honoured: the task got its turn.
503 self.resume_override = None;
504 }
505
506 /// Record a successful run.
507 ///
508 /// Both `magi task done` and `POST /api/queue/{id}/done` can close a held
509 /// *or blocked* task directly, with no release in between, so this clears
510 /// `hold_reason` and `blocked_by`/`block_reason` the same way
511 /// [`Task::release`] does. Otherwise a task held for "waiting on 3ed9", or
512 /// blocked on a dependency that never actually finished, and then closed
513 /// as done without ever being released would still read as waiting on
514 /// something in `magi task show` and on its card, after it no longer is.
515 pub fn succeed(&mut self) {
516 self.status = TaskStatus::Done;
517 self.resume_override = None;
518 self.last_error = None;
519 self.hold_reason = None;
520 self.hold_source = None;
521 self.diagnostic = None;
522 self.blocked_by.clear();
523 self.block_reason = None;
524 self.blocked_from = None;
525 }
526
527 /// Earlier attempts at this task that a later one has since made moot —
528 /// empty unless the task is [`TaskStatus::Done`] *and* `last_run_succeeded`
529 /// says `runs.last()` is actually why.
530 ///
531 /// `runs` is oldest first, and [`Task::start`] is the only thing that
532 /// pushes to it, always right before the attempt it names either succeeds
533 /// or fails; `succeed` itself never touches `runs`. So whenever `status`
534 /// is `Done` *because* the loop itself saw that last attempt land
535 /// (`Merged`/`Ready`), everything before it in the same list is a retry
536 /// this task no longer needs. But `succeed` is also reachable directly —
537 /// `magi task done`, the web UI's equivalent, and the conductor's
538 /// `Recovery::Done` all call it on a task in *any* status, including one
539 /// whose last recorded attempt never landed at all (closed by hand after
540 /// a merge magi's own loop never saw). `runs.last()` alone cannot tell
541 /// those two cases apart — that requires the caller to have actually
542 /// looked at that run's own `status`, which this module has no way to
543 /// do — so `last_run_succeeded` is the caller's answer to exactly that
544 /// question, not something this function can derive from `Task` alone.
545 ///
546 /// Deliberately narrower than [`Queue::superseded`]'s "every earlier
547 /// attempt has a later one" walk, which fires the moment a retry starts
548 /// even though the retry itself might still fail: that reading is right
549 /// for the web UI's "a newer attempt exists, go look at that one
550 /// instead" note, but wrong for deciding a run no longer needs a human's
551 /// attention, which is only true once the task's story has actually
552 /// ended well. Two Blocked runs sitting side by side while a third
553 /// attempt is still in flight must not be touched by this — see
554 /// `daemon::supersede_prior_runs`, the caller that turns this list into
555 /// rewritten `run.json` files.
556 pub fn superseded_attempts(&self, last_run_succeeded: bool) -> &[String] {
557 if self.status != TaskStatus::Done || !last_run_succeeded || self.runs.len() < 2 {
558 return &[];
559 }
560 &self.runs[..self.runs.len() - 1]
561 }
562
563 /// Record a failed attempt. Out of attempts means held for a human, rather
564 /// than retried until the money runs out.
565 ///
566 /// Clears [`Task::diagnostic`] unconditionally: it belongs to whatever run
567 /// produced it, and a caller that has one for *this* attempt sets it
568 /// itself right after calling this, once it knows the task actually ended
569 /// up [`TaskStatus::Held`] - see `daemon::diagnostic`. Without the clear, a
570 /// task released after a diagnosed hold and then failed again for an
571 /// unrelated, undiagnosed reason (a config error, say) would go on
572 /// showing the previous run's diagnostic as if it explained the new one.
573 pub fn fail(&mut self, why: impl Into<String>, max_attempts: usize) {
574 self.last_error = Some(why.into());
575 self.diagnostic = None;
576 self.status = if self.attempts >= max_attempts {
577 self.hold_source = Some(HoldSource::Machine);
578 TaskStatus::Held
579 } else {
580 TaskStatus::Failed
581 };
582 }
583
584 /// Record an attempt that failed for a reason the task is not responsible
585 /// for - the agent CLIs ran out of quota and the judging panel collapsed.
586 ///
587 /// This refunds the attempt on purpose. A quota window closing at 4am must
588 /// not spend the backlog's retry budget: the operator would come back to a
589 /// queue of held tasks that were never actually judged, and would have to
590 /// release every one by hand to find out which had a real problem. The task
591 /// goes back to `Failed`, which the loop retries, so a reset quota picks the
592 /// work up where it stopped.
593 pub fn stall(&mut self, why: impl Into<String>) {
594 self.last_error = Some(why.into());
595 self.diagnostic = None;
596 self.attempts = self.attempts.saturating_sub(1);
597 self.status = TaskStatus::Failed;
598 }
599
600 /// Whether this held task may only be released by an operator.
601 ///
602 /// Old files did not record a source. Preserve every such hold rather
603 /// than guessing that it was automatic and risking duplicate work. New
604 /// automatic holds record [`HoldSource::Machine`] and remain recoverable.
605 pub fn operator_held(&self) -> bool {
606 self.status == TaskStatus::Held && !matches!(self.hold_source, Some(HoldSource::Machine))
607 }
608
609 /// Take this task out of the loop's reach by an operator action.
610 ///
611 /// Clears `blocked_by`/`block_reason` unconditionally, the same as
612 /// [`Task::release`] and for the same reason its own comment already
613 /// gives: a human choosing to hold a *blocked* task overrides its wait
614 /// outright, the same as it overrides an ordinary hold. Without this, a
615 /// task held straight out of [`TaskStatus::Blocked`] - the web UI's "Hold"
616 /// button is reachable on a blocked task, same as "Mark done" - kept
617 /// reading as still waiting on a dependency it no longer had any claim on.
618 pub fn hold_manual(&mut self, reason: Option<String>) {
619 self.status = TaskStatus::Held;
620 if reason.is_some() {
621 self.hold_reason = reason;
622 }
623 self.hold_source = Some(HoldSource::Manual);
624 self.blocked_by.clear();
625 self.block_reason = None;
626 self.blocked_from = None;
627 }
628
629 /// Take this task out of the loop's reach during automatic recovery.
630 ///
631 /// Clears `blocked_by`/`block_reason` for the same reason
632 /// [`Task::hold_manual`] does.
633 pub fn hold_machine(&mut self, reason: Option<String>) {
634 self.status = TaskStatus::Held;
635 if reason.is_some() {
636 self.hold_reason = reason;
637 }
638 self.hold_source = Some(HoldSource::Machine);
639 self.blocked_by.clear();
640 self.block_reason = None;
641 self.blocked_from = None;
642 }
643
644 /// Block this task on other task ids and/or open question ids, chosen by
645 /// `crate::conduct`. Pure: the caller still owns writing it back with
646 /// [`Queue::put`].
647 ///
648 /// Records [`Task::blocked_from`] the first time this moves the task into
649 /// [`TaskStatus::Blocked`], and leaves it alone on a later call that adds
650 /// or replaces `blocked_by` while the task is already `Blocked` - a
651 /// second question about an already-blocked task must not overwrite the
652 /// status it should eventually return to with `Blocked` itself.
653 pub fn block(&mut self, blocked_by: Vec<String>, reason: Option<String>) {
654 if self.status != TaskStatus::Blocked {
655 self.blocked_from = Some(self.status);
656 }
657 self.status = TaskStatus::Blocked;
658 self.blocked_by = blocked_by;
659 self.block_reason = reason;
660 }
661
662 /// Remove one resolved dependency (a task id that became [`TaskStatus::Done`],
663 /// or a question id that became [`crate::ask::QuestionStatus::Answered`]).
664 /// Once nothing is left in [`Task::blocked_by`], the task returns to
665 /// whatever [`Task::blocked_from`] recorded - deciding *why* a task was
666 /// blocked was `crate::conduct`'s job, but noticing a dependency resolved
667 /// needs no model at all, and restoring the status it interrupted needs
668 /// nothing more than what `block` already wrote down.
669 ///
670 /// A task blocked while `Running` restores to [`TaskStatus::Queued`]
671 /// instead: whatever process was running it is gone by the time this
672 /// runs, so there is nothing left to resume. A task with no recorded
673 /// `blocked_from` - a pre-schema-4 record, or one blocked before this
674 /// field existed - falls back to [`TaskStatus::Held`] when it still
675 /// carries hold evidence ([`Task::hold_reason`] or [`Task::hold_source`],
676 /// neither ever cleared by `block`), and to `Queued` otherwise: the same
677 /// choice `block` itself would have recorded, reconstructed from what
678 /// survived.
679 ///
680 /// A no-op, on purpose, for a task that is not [`TaskStatus::Blocked`]:
681 /// `crate::daemon`'s deterministic resolver runs over every task on every
682 /// poll, and a task that moved on for some other reason must not be
683 /// dragged back by a stale id it still happens to carry.
684 pub fn unblock(&mut self, resolved_id: &str) {
685 if self.status != TaskStatus::Blocked {
686 return;
687 }
688 self.blocked_by.retain(|id| id != resolved_id);
689 if self.blocked_by.is_empty() {
690 self.status = match self.blocked_from {
691 Some(TaskStatus::Running) => TaskStatus::Queued,
692 Some(other) => other,
693 None if self.hold_reason.is_some() || self.hold_source.is_some() => {
694 TaskStatus::Held
695 }
696 None => TaskStatus::Queued,
697 };
698 self.block_reason = None;
699 self.blocked_from = None;
700 }
701 }
702
703 /// Record that a question `crate::conduct` asked about this task has been
704 /// answered, so the answer's content — not just the fact that the
705 /// question is gone — reaches the next conductor prompt and the next
706 /// run's instruction. See [`Task::answers`].
707 pub fn record_answer(&mut self, question: String, answer: String) {
708 self.answers.push(AnsweredQuestion { question, answer });
709 }
710
711 /// Requeue this task to reopen its last run as a review-only pass against
712 /// `branch` (`crate::graph::Runner::review`) rather than competing from
713 /// scratch. See [`Task::review_branch`].
714 pub fn request_review(&mut self, branch: String) {
715 self.release();
716 self.review_branch = Some(branch);
717 }
718
719 /// Requeue after a conductor chose a new competition. Unlike an ordinary
720 /// operator release, this deliberately does not resume the old run.
721 pub fn requeue(&mut self) {
722 self.release();
723 self.fresh_start = true;
724 }
725
726 /// Change how urgently this task should run next.
727 ///
728 /// Refused once the task is `running`: priority only feeds the sort
729 /// [`Queue::next_runnable`] does over tasks waiting to be claimed, and a
730 /// running task has already left that pool. Accepting the write anyway
731 /// would look like it worked while changing nothing until - and unless -
732 /// this attempt fails and the task becomes runnable again, which is a
733 /// surprise the phone should not hand back as a success.
734 pub fn set_priority(&mut self, priority: i32) -> Result<()> {
735 if self.status == TaskStatus::Running {
736 bail!(
737 "task {} is running; its priority cannot be changed until \
738 this attempt finishes",
739 self.short()
740 );
741 }
742 self.priority = priority;
743 Ok(())
744 }
745
746 /// Mark (or unmark) this task to interrupt whatever `magi serve` already
747 /// has in flight, once `[daemon] pause_for_interrupts` is on. See
748 /// [`Task::interrupt`].
749 ///
750 /// Setting it is restricted to a task the loop could pick up on its own
751 /// right now - [`TaskStatus::runnable`] - for the same reason as
752 /// [`Task::set_priority`]: a task already `running` has been claimed, and
753 /// a task that is `done`, `held`, or `blocked` is not going to compete
754 /// for the daemon's attention regardless of this flag. Unlike priority,
755 /// this is never silently inert while `running` - it is refused outright,
756 /// because the entire feature this flag drives (`crate::daemon`'s
757 /// interrupt scheduler) is scoped to tasks still waiting to be claimed.
758 /// Clearing it back to `false` carries no such risk and is always
759 /// allowed, including on a task that moved on since it was set.
760 pub fn set_interrupt(&mut self, interrupt: bool) -> Result<()> {
761 if interrupt && !self.status.runnable() {
762 bail!(
763 "task {} is {}; only a queued or failed task can be marked \
764 to interrupt",
765 self.short(),
766 self.status.as_str()
767 );
768 }
769 self.interrupt = interrupt;
770 Ok(())
771 }
772
773 /// Replace this task's title and instruction wholesale.
774 ///
775 /// Restricted to `queued` and `held`. A `running` task's instruction has
776 /// already been handed to the graph, so a run in flight and the file on
777 /// disk must not be allowed to disagree about what was asked; a `done` or
778 /// `failed` task is a record of what actually happened and editing it
779 /// after the fact would falsify that record. `id`, `created_at`,
780 /// `source`, and `runs` are left untouched on purpose - an edit stands in
781 /// for "delete and refile", and keeping the id, the timestamp, the
782 /// attribution, and the run history is the entire reason it exists
783 /// instead.
784 pub fn edit(&mut self, title: String, instruction: String) -> Result<()> {
785 if !matches!(self.status, TaskStatus::Queued | TaskStatus::Held) {
786 bail!(
787 "task {} is {}; only a queued or held task's instruction can \
788 be edited",
789 self.short(),
790 self.status.as_str()
791 );
792 }
793 self.title = title;
794 self.instruction = instruction;
795 Ok(())
796 }
797
798 /// Record a run that produced a pull request without merging it.
799 ///
800 /// The task is held rather than retried, and it costs no further attempt
801 /// either way. The work the task asked for exists: it is sitting on a
802 /// branch, in a pull request, waiting for CI or for a person. Retrying
803 /// would spend the whole competition budget a second time and then race a
804 /// second branch against the pull request the first one opened - which is
805 /// exactly what happened to run 01c2, whose finished and green pull request
806 /// was re-competed from scratch four seconds after it opened.
807 ///
808 /// A pull request nobody merged is a request for a person, not a failure.
809 pub fn handed_off(&mut self, why: impl Into<String>) {
810 self.last_error = Some(why.into());
811 self.diagnostic = None;
812 self.status = TaskStatus::Held;
813 self.hold_source = Some(HoldSource::Machine);
814 }
815
816 /// Put a held or finished task back in line, with its attempt count reset
817 /// so a release is a real second chance rather than an instant re-hold.
818 /// The run history is kept: attempts reset, evidence does not.
819 pub fn release(&mut self) {
820 self.status = TaskStatus::Queued;
821 self.attempts = 0;
822 self.last_error = None;
823 // Otherwise the next person who holds this task reads a reason that
824 // belonged to whatever it was waiting on last time.
825 self.hold_reason = None;
826 self.hold_source = None;
827 self.diagnostic = None;
828 // A release also un-blocks: the dependency or question `blocked_by`
829 // named may still be unresolved, but a human (or `crate::conduct`)
830 // choosing to release the task overrides that wait outright, the same
831 // as it overrides an ordinary hold.
832 self.blocked_by.clear();
833 self.block_reason = None;
834 self.blocked_from = None;
835 self.review_branch = None;
836 self.fresh_start = false;
837 }
838}
839
840/// A queue on disk.
841#[derive(Debug, Clone)]
842pub struct Queue {
843 root: PathBuf,
844}
845
846impl Queue {
847 /// The operator's queue, `<home>/queue`.
848 pub fn open() -> Self {
849 Self::at(crate::run::home().join("queue"))
850 }
851
852 /// A queue at an explicit root. Tests use this; so could an operator who
853 /// wants a queue per project.
854 pub fn at(root: PathBuf) -> Self {
855 Self { root }
856 }
857
858 /// Directory holding the task files.
859 pub fn root(&self) -> &Path {
860 &self.root
861 }
862
863 /// Path for one task id.
864 pub fn path_of(&self, id: &str) -> PathBuf {
865 self.root.join(format!("{id}.json"))
866 }
867
868 /// Write a task, atomically, so a daemon killed mid-write leaves the
869 /// previous state readable rather than a truncated file.
870 pub fn put(&self, task: &mut Task) -> Result<()> {
871 task.updated_at = Timestamp::now();
872 std::fs::create_dir_all(&self.root)
873 .with_context(|| format!("create {}", self.root.display()))?;
874 let body = serde_json::to_string_pretty(task).context("serialize task")?;
875 let path = self.path_of(&task.id);
876 let tmp = path.with_extension("json.tmp");
877 std::fs::write(&tmp, &body).with_context(|| format!("write {}", tmp.display()))?;
878 std::fs::rename(&tmp, &path).with_context(|| format!("replace {}", path.display()))?;
879 // A machine hold is news for the notification centre, filed beside
880 // this queue (`<home>/queue` -> `<home>/notifications`) rather than
881 // through a process-global, so a queue in a temp directory notifies
882 // into that directory.
883 if let (Some(notice), Some(home)) = (
884 crate::notices::task_held(task),
885 self.root.parent().filter(|p| !p.as_os_str().is_empty()),
886 ) {
887 crate::notices::raise_in(home, notice);
888 }
889 Ok(())
890 }
891
892 /// Load a task by id or unambiguous id prefix.
893 pub fn get(&self, id: &str) -> Result<Task> {
894 let resolved = self.resolve_id(id)?;
895 read_path(&self.path_of(&resolved))
896 }
897
898 /// Remove a task, and the claim lock that belongs to it.
899 ///
900 /// `in_flight` comes from the caller — a live daemon's heartbeat naming
901 /// this task — because the task's own `running` status cannot answer the
902 /// question. A daemon killed mid-competition leaves the status at
903 /// `running` and an orphaned `.lock` behind, and a guard that trusted
904 /// either would make the task undeletable for good: the phone showed
905 /// exactly that, refusing a task whose daemon had been gone for an hour.
906 ///
907 /// So the lock is removed with the task rather than respected. Any lock
908 /// still there once no live daemon claims the task is by definition stale,
909 /// and leaving it would make a deleted task look claimed to
910 /// [`Queue::claim`] and to whoever reads the directory.
911 ///
912 /// Anything still `blocked` on the id just deleted is quarantined to a
913 /// machine hold in the same call - see [`Removal::quarantined`] - rather
914 /// than left to wait on a dependency that no longer exists. Best-effort:
915 /// a dependent claimed by something else right now, or one whose write
916 /// fails, is simply left for `crate::daemon::resolve_blockers`'s own poll
917 /// (or `crate::triage::run_once`) to catch on its own next pass, and does
918 /// not fail this removal.
919 ///
920 /// `questions` is the store [`missing_blockers`] checks a `blocked_by` id
921 /// against before calling it gone - the same store the caller already
922 /// resolves `id`'s own home from, passed in rather than reopened here so
923 /// a test queue at an explicit root is never quarantined against the
924 /// operator's real questions directory.
925 pub fn remove(&self, id: &str, in_flight: bool, questions: &Questions) -> Result<Removal> {
926 let resolved = self.resolve_id(id)?;
927 if in_flight {
928 bail!("task {resolved} is being run by a live daemon right now");
929 }
930 let path = self.path_of(&resolved);
931 std::fs::remove_file(&path).with_context(|| format!("remove {}", path.display()))?;
932 let lock = self.lock_path(&resolved);
933 if let Err(e) = std::fs::remove_file(&lock) {
934 if e.kind() != std::io::ErrorKind::NotFound {
935 return Err(e).with_context(|| format!("remove {}", lock.display()));
936 }
937 }
938 let quarantined = self.quarantine_dependents_of(&resolved, questions);
939 Ok(Removal {
940 id: resolved,
941 quarantined,
942 })
943 }
944
945 /// Move every `blocked` task naming `dependency` in its own `blocked_by`
946 /// to a machine hold, now that `dependency`'s own file is gone. See
947 /// [`Queue::remove`]'s own doc for why this is best-effort.
948 fn quarantine_dependents_of(&self, dependency: &str, questions: &Questions) -> Vec<String> {
949 let mut quarantined = Vec::new();
950 for listed in self.list() {
951 if listed.status != TaskStatus::Blocked
952 || !listed.blocked_by.iter().any(|b| b == dependency)
953 {
954 continue;
955 }
956 let Ok(_claim) = self.claim(&listed.id) else {
957 continue;
958 };
959 let Ok(mut task) = self.get(&listed.id) else {
960 continue;
961 };
962 if task.status != TaskStatus::Blocked
963 || !task.blocked_by.iter().any(|b| b == dependency)
964 {
965 continue;
966 }
967 let missing = missing_blockers(self, questions, &task.blocked_by);
968 task.hold_machine(Some(missing_blocker_hold_reason(
969 &task.blocked_by,
970 &missing,
971 )));
972 if self.put(&mut task).is_ok() {
973 quarantined.push(task.id.clone());
974 }
975 }
976 quarantined
977 }
978
979 /// Path of the claim lock for a task. One definition, so `claim` and
980 /// `remove` cannot end up naming different files.
981 fn lock_path(&self, id: &str) -> PathBuf {
982 self.root.join(format!("{id}.lock"))
983 }
984
985 /// Every task on disk, highest priority first and newest first within a
986 /// priority. This is what `magi task list` and `GET /api/queue` print, so
987 /// a raised priority has to move a task here the moment it is saved, not
988 /// only in [`Queue::next_runnable`]'s own ordering - the operator reading
989 /// the backlog and the loop about to drain it must agree on what "first"
990 /// means. Every existing task defaults to priority 0, so this is a no-op
991 /// change from the old newest-first order for a queue nobody has
992 /// reprioritised.
993 ///
994 /// Unreadable files are skipped rather than fatal: one corrupt task must
995 /// not take the queue - or the web UI, or an unattended daemon - down
996 /// with it.
997 pub fn list(&self) -> Vec<Task> {
998 let mut tasks: Vec<Task> = std::fs::read_dir(&self.root)
999 .into_iter()
1000 .flatten()
1001 .flatten()
1002 .map(|e| e.path())
1003 .filter(|p| p.extension().is_some_and(|x| x == "json"))
1004 .filter_map(|p| read_path(&p).ok())
1005 .collect();
1006 tasks.sort_unstable_by(|a, b| b.priority.cmp(&a.priority).then_with(|| b.id.cmp(&a.id)));
1007 tasks
1008 }
1009
1010 /// Runs that a later attempt at the same task replaced, mapped to the id
1011 /// of the attempt that replaced them.
1012 ///
1013 /// A task keeps its attempts in order, and the deck showed them as two
1014 /// cards with the same title and no hint which was which: yukimemi asked
1015 /// why `stalled` and `blocked` appeared twice for one task, and the
1016 /// answer - "those are two tries, and the second one exists because of a
1017 /// bug since fixed" - was not on the screen anywhere.
1018 ///
1019 /// Read from the queue rather than stored on the run, because the
1020 /// ordering is the queue's fact: a `RunState` has no idea another attempt
1021 /// happened after it.
1022 pub fn superseded(&self) -> HashMap<String, String> {
1023 let mut by = HashMap::new();
1024 for task in self.list() {
1025 for pair in task.runs.windows(2) {
1026 if let [earlier, later] = pair {
1027 by.insert(earlier.clone(), later.clone());
1028 }
1029 }
1030 }
1031 by
1032 }
1033
1034 /// Whether `run` is an earlier attempt a later one replaced, and if so
1035 /// the id of that later attempt.
1036 ///
1037 /// Same walk as [`Queue::superseded`], narrowed to one run: a run detail
1038 /// page asks about exactly one run at a time, and this keeps that call
1039 /// site from building (and discarding) the whole map's `HashMap` just to
1040 /// read one entry out of it.
1041 pub fn superseded_by(&self, run: &str) -> Option<String> {
1042 for task in self.list() {
1043 if let Some(pos) = task.runs.iter().position(|r| r == run) {
1044 return task.runs.get(pos + 1).cloned();
1045 }
1046 }
1047 None
1048 }
1049
1050 /// The task's own most recent attempt, when `run` belongs to that task
1051 /// but is not already that attempt.
1052 ///
1053 /// Distinct from [`Queue::superseded_by`], which names only the very
1054 /// next attempt: a chain of retries (A superseded by B superseded by C)
1055 /// leaves an older run pointing at an intermediate one that may itself
1056 /// be unresolved, and a run's own detail page needs to know where the
1057 /// task's story currently stands - the chain's current head, C - not an
1058 /// attempt in the middle of it that a client would otherwise have to
1059 /// walk to by hand.
1060 pub fn latest_attempt(&self, run: &str) -> Option<String> {
1061 for task in self.list() {
1062 if task.runs.iter().any(|r| r == run) {
1063 return task.runs.last().filter(|last| **last != run).cloned();
1064 }
1065 }
1066 None
1067 }
1068
1069 /// The task a daemon should run next, or `None` when the queue is idle.
1070 ///
1071 /// Highest priority first, oldest first within a priority, so a burst of
1072 /// agent-filed work cannot starve the task a human filed this morning.
1073 pub fn next_runnable(&self) -> Option<Task> {
1074 let mut runnable: Vec<Task> = self
1075 .list()
1076 .into_iter()
1077 .filter(|t| t.status.runnable())
1078 .collect();
1079 runnable.sort_unstable_by(|a, b| b.priority.cmp(&a.priority).then(a.id.cmp(&b.id)));
1080 runnable.into_iter().next()
1081 }
1082
1083 /// Take exclusive ownership of a task.
1084 ///
1085 /// The lock is a `create_new` file next to the task, which is atomic on
1086 /// every platform magi targets. It exists so two daemons - or a daemon and
1087 /// a human running `magi run` - cannot drive one task into two competing
1088 /// runs. The returned guard releases on drop, including on panic.
1089 pub fn claim(&self, id: &str) -> Result<Claim> {
1090 std::fs::create_dir_all(&self.root)
1091 .with_context(|| format!("create {}", self.root.display()))?;
1092 let path = self.lock_path(id);
1093 match std::fs::OpenOptions::new()
1094 .write(true)
1095 .create_new(true)
1096 .open(&path)
1097 {
1098 Ok(mut f) => {
1099 use std::io::Write as _;
1100 // Best effort: the pid is for the human looking at a stale lock.
1101 let _ = writeln!(f, "{}", std::process::id());
1102 Ok(Claim { path })
1103 }
1104 Err(e) if e.kind() == std::io::ErrorKind::AlreadyExists => {
1105 bail!("task {id} is already claimed ({} exists)", path.display())
1106 }
1107 Err(e) => Err(e).with_context(|| format!("lock {}", path.display())),
1108 }
1109 }
1110
1111 /// Expand an id prefix to exactly one task id.
1112 pub fn resolve_id(&self, prefix: &str) -> Result<String> {
1113 if self.path_of(prefix).is_file() {
1114 return Ok(prefix.to_owned());
1115 }
1116 let hits: Vec<String> = self
1117 .list()
1118 .into_iter()
1119 .map(|t| t.id)
1120 .filter(|id| id.starts_with(prefix) || id.ends_with(prefix))
1121 .collect();
1122 match hits.len() {
1123 1 => Ok(hits.into_iter().next().expect("exactly one hit")),
1124 0 => bail!("no task matches `{prefix}`"),
1125 _ => bail!(
1126 "`{prefix}` matches {} tasks: {}",
1127 hits.len(),
1128 hits.join(", ")
1129 ),
1130 }
1131 }
1132
1133 /// Change detection token for the queue.
1134 ///
1135 /// Combines file names and modification times of all task files in the
1136 /// queue, so adding, modifying, or deleting any task — even an older one —
1137 /// moves the revision and notifies connected clients via the change stream.
1138 /// Returns 0 when the queue is completely empty.
1139 pub fn revision(&self) -> u64 {
1140 use std::hash::{Hash as _, Hasher as _};
1141
1142 let mut entries: Vec<(String, u64)> = std::fs::read_dir(&self.root)
1143 .into_iter()
1144 .flatten()
1145 .flatten()
1146 .filter(|e| e.path().extension().is_some_and(|ext| ext == "json"))
1147 .filter_map(|e| {
1148 let name = e.file_name().to_string_lossy().into_owned();
1149 let mtime = e
1150 .metadata()
1151 .ok()?
1152 .modified()
1153 .ok()?
1154 .duration_since(std::time::UNIX_EPOCH)
1155 .ok()?
1156 .as_millis() as u64;
1157 Some((name, mtime))
1158 })
1159 .collect();
1160
1161 if entries.is_empty() {
1162 return 0;
1163 }
1164
1165 entries.sort_unstable();
1166 let mut hasher = std::hash::DefaultHasher::new();
1167 for (name, mtime) in &entries {
1168 name.hash(&mut hasher);
1169 mtime.hash(&mut hasher);
1170 }
1171 let h = hasher.finish();
1172 if h == 0 { 1 } else { h }
1173 }
1174}
1175
1176/// What [`Queue::remove`] did, beyond deleting the named task's own file.
1177#[derive(Debug, Clone)]
1178pub struct Removal {
1179 /// The id actually removed - `id` expanded from a prefix, if it was one.
1180 pub id: String,
1181 /// Every `blocked` task that named [`Removal::id`] in its own
1182 /// `blocked_by` and was moved to a machine hold as a result, rather than
1183 /// left waiting on a dependency this call just erased.
1184 pub quarantined: Vec<String>,
1185}
1186
1187/// Exclusive ownership of a task, released on drop.
1188#[derive(Debug)]
1189pub struct Claim {
1190 path: PathBuf,
1191}
1192
1193impl Drop for Claim {
1194 fn drop(&mut self) {
1195 let _ = std::fs::remove_file(&self.path);
1196 }
1197}
1198
1199/// The first line of a task, trimmed to a title. Used when the caller gives a
1200/// body but no title, which is the normal case for an agent piping a file in.
1201pub fn title_from(instruction: &str, max: usize) -> String {
1202 // The first non-blank line, whatever it is. A markdown heading is the
1203 // task's own summary - agents pipe in `# Rework the config loader` and mean
1204 // exactly that - so it is preferred over the prose beneath it rather than
1205 // skipped as decoration. Leading list and heading markers are stripped
1206 // because they are syntax, not words.
1207 let line = instruction
1208 .lines()
1209 .map(str::trim)
1210 .find(|l| !l.is_empty())
1211 .unwrap_or("(empty task)")
1212 .trim_start_matches(['#', '-', '*', '>', ' '])
1213 .trim();
1214 if line.is_empty() {
1215 return "(empty task)".to_owned();
1216 }
1217 if line.chars().count() <= max {
1218 return line.to_owned();
1219 }
1220 let head: String = line.chars().take(max.saturating_sub(1)).collect();
1221 format!("{head}…")
1222}
1223
1224fn read_path(path: &Path) -> Result<Task> {
1225 let body = std::fs::read_to_string(path).with_context(|| format!("read {}", path.display()))?;
1226 let task: Task =
1227 serde_json::from_str(&body).with_context(|| format!("parse {}", path.display()))?;
1228 // Greater-than, not not-equal: every field added since schema 1 carries
1229 // `#[serde(default)]`, so an older task has nothing to say about it and
1230 // defaulting is exactly as good a reading as a value that build never had
1231 // a chance to write. Only a schema *ahead* of this build - a meaning it
1232 // cannot possibly know - is refused rather than guessed at.
1233 if task.schema > SCHEMA {
1234 bail!(
1235 "task {} was written by a different magi (schema {}, this build \
1236 speaks {SCHEMA})",
1237 task.id,
1238 task.schema
1239 );
1240 }
1241 Ok(task)
1242}
1243
1244/// Ids inside a `blocked_by` list that name neither an existing task file nor
1245/// an existing question file - a dependency deleted (`magi task rm`, or by
1246/// hand) while something was still waiting on it.
1247///
1248/// Existence is decided by [`Queue::path_of`]/[`Questions::path_of`]
1249/// `is_file()` alone, never by [`Queue::get`]/[`Questions::get`] succeeding:
1250/// those also fail on a merely unreadable file - mid-write, corrupt, or from
1251/// a schema ahead of this build (see [`read_path`]) - and misreading "cannot
1252/// read it right now" as "it was deleted" would quarantine a task over a
1253/// transient failure. `blocked_by` always carries a full id, written by
1254/// `crate::conduct` or `crate::triage` from a real task's or question's own
1255/// `id`/`short`, never a prefix a caller typed - so the exact-path check is
1256/// complete on its own, with no [`Queue::resolve_id`] fallback needed.
1257pub fn missing_blockers(
1258 queue: &Queue,
1259 questions: &Questions,
1260 blocked_by: &[String],
1261) -> Vec<String> {
1262 blocked_by
1263 .iter()
1264 .filter(|id| !queue.path_of(id).is_file() && !questions.path_of(id).is_file())
1265 .cloned()
1266 .collect()
1267}
1268
1269/// The `hold_reason` text for a task quarantined because one or more of its
1270/// `blocked_by` ids no longer exist. Shared by `crate::daemon::resolve_blockers`,
1271/// `crate::triage::run_once`, and [`Queue::remove`]'s own dependent
1272/// quarantine, so the three call sites read as the same event to an operator
1273/// looking at `magi task show` rather than three different wordings for it.
1274///
1275/// Names the full original `blocked_by` list, not just `missing` - a task
1276/// quarantined here can also have named a dependency that was still
1277/// perfectly valid, and [`Task::hold_machine`] clears `blocked_by` on the way
1278/// in, so this text is the only place that information survives for an
1279/// operator deciding whether to release the task outright.
1280pub fn missing_blocker_hold_reason(blocked_by: &[String], missing: &[String]) -> String {
1281 format!(
1282 "blocked on {} but {} no longer exist(s) on disk - see `magi task triage`",
1283 blocked_by.join(", "),
1284 missing.join(", "),
1285 )
1286}
1287
1288fn short(id: &str) -> &str {
1289 id.split('-').next_back().unwrap_or(id)
1290}
1291
1292fn new_id() -> String {
1293 let stamp = jiff::Zoned::now().strftime("%Y%m%d-%H%M%S");
1294 let seed = crate::rng::entropy();
1295 format!("{stamp}-{:04x}", (seed ^ (seed >> 32)) & 0xffff)
1296}
1297
1298#[cfg(test)]
1299mod tests {
1300 use super::*;
1301
1302 #[test]
1303 fn triage_applied_survives_release_and_old_records_read_as_empty() {
1304 let mut t = Task::new(
1305 "t".to_owned(),
1306 "i".to_owned(),
1307 PathBuf::from("r"),
1308 Source::Human,
1309 );
1310 t.mark_triage_applied("q1");
1311 t.mark_triage_applied("q1");
1312 t.hold_machine(Some("x".to_owned()));
1313 t.release();
1314 assert_eq!(t.triage_applied, ["q1"]);
1315 assert!(t.triage_applied("q1") && !t.triage_applied("q2"));
1316
1317 let mut v = serde_json::to_value(&t).unwrap();
1318 v.as_object_mut().unwrap().remove("triage_applied");
1319 let old: Task = serde_json::from_value(v).unwrap();
1320 assert!(old.triage_applied.is_empty());
1321 }
1322
1323 #[test]
1324 fn task_counts_of_empty_is_all_zero() {
1325 assert_eq!(TaskCounts::of(&[]), TaskCounts::default());
1326 }
1327
1328 #[test]
1329 fn task_counts_of_tallies_every_status() {
1330 let mut queued = Task::new(
1331 "q".to_owned(),
1332 "i".to_owned(),
1333 PathBuf::from("."),
1334 Source::Human,
1335 );
1336 queued.status = TaskStatus::Queued;
1337 let mut running = queued.clone();
1338 running.status = TaskStatus::Running;
1339 let mut done = queued.clone();
1340 done.status = TaskStatus::Done;
1341 let mut failed = queued.clone();
1342 failed.status = TaskStatus::Failed;
1343 let mut held = queued.clone();
1344 held.status = TaskStatus::Held;
1345 let mut blocked = queued.clone();
1346 blocked.status = TaskStatus::Blocked;
1347
1348 let counts = TaskCounts::of(&[queued, running, done.clone(), done, failed, held, blocked]);
1349 assert_eq!(
1350 counts,
1351 TaskCounts {
1352 queued: 1,
1353 running: 1,
1354 done: 2,
1355 failed: 1,
1356 held: 1,
1357 blocked: 1,
1358 }
1359 );
1360 }
1361
1362 /// A queue of its own, with no process-global state - which is the point of
1363 /// `Queue::at`, and why these can run in parallel.
1364 fn queue() -> (tempfile::TempDir, Queue) {
1365 let dir = tempfile::tempdir().unwrap();
1366 let q = Queue::at(dir.path().join("queue"));
1367 (dir, q)
1368 }
1369
1370 #[test]
1371 fn putting_a_machine_held_task_files_a_notification_beside_the_queue() {
1372 let dir = tempfile::tempdir().unwrap();
1373 let q = Queue::at(dir.path().join("queue"));
1374 let mut t = task("held");
1375 q.put(&mut t).unwrap();
1376 assert_eq!(
1377 crate::notices::Notices::at(dir.path().join("notifications"))
1378 .list()
1379 .len(),
1380 0
1381 );
1382 t.hold_machine(Some("out of attempts".to_owned()));
1383 q.put(&mut t).unwrap();
1384 let listed = crate::notices::Notices::at(dir.path().join("notifications")).list();
1385 assert_eq!(listed.len(), 1);
1386 assert!(listed[0].message.contains("out of attempts"));
1387 }
1388
1389 fn task(title: &str) -> Task {
1390 Task::new(
1391 title.to_owned(),
1392 format!("do {title}"),
1393 PathBuf::from("."),
1394 Source::Human,
1395 )
1396 }
1397
1398 #[test]
1399 fn superseded_by_names_the_next_attempt_and_none_for_the_last() {
1400 let (_dir, q) = queue();
1401 let mut t = task("retried");
1402 t.runs = vec!["aaaa".to_owned(), "bbbb".to_owned(), "cccc".to_owned()];
1403 q.put(&mut t).unwrap();
1404
1405 assert_eq!(q.superseded_by("aaaa"), Some("bbbb".to_owned()));
1406 assert_eq!(q.superseded_by("bbbb"), Some("cccc".to_owned()));
1407 assert_eq!(
1408 q.superseded_by("cccc"),
1409 None,
1410 "the latest attempt replaces nothing"
1411 );
1412 assert_eq!(
1413 q.superseded_by("never-heard-of-it"),
1414 None,
1415 "a run belonging to no task on this queue is not superseded"
1416 );
1417
1418 let mut by = HashMap::new();
1419 by.insert("aaaa".to_owned(), "bbbb".to_owned());
1420 by.insert("bbbb".to_owned(), "cccc".to_owned());
1421 assert_eq!(
1422 q.superseded(),
1423 by,
1424 "the whole-map and single-run forms must agree"
1425 );
1426 }
1427
1428 #[test]
1429 fn superseded_attempts_is_empty_until_the_task_is_done() {
1430 let mut t = task("retried");
1431 t.runs = vec!["aaaa".to_owned(), "bbbb".to_owned()];
1432 t.status = TaskStatus::Failed;
1433 assert_eq!(
1434 t.superseded_attempts(true),
1435 &[] as &[String],
1436 "a task still retrying has no attempt yet that a later one made moot"
1437 );
1438
1439 t.status = TaskStatus::Running;
1440 assert_eq!(t.superseded_attempts(true), &[] as &[String]);
1441 }
1442
1443 #[test]
1444 fn superseded_attempts_names_every_run_before_the_one_that_succeeded() {
1445 let mut t = task("retried");
1446 t.runs = vec!["aaaa".to_owned(), "bbbb".to_owned(), "cccc".to_owned()];
1447 t.status = TaskStatus::Done;
1448 assert_eq!(
1449 t.superseded_attempts(true),
1450 &["aaaa".to_owned(), "bbbb".to_owned()],
1451 "cccc is the attempt whose success made the task done, and stays out"
1452 );
1453 }
1454
1455 #[test]
1456 fn superseded_attempts_is_empty_for_a_done_task_with_only_one_attempt() {
1457 let mut t = task("first try landed");
1458 t.runs = vec!["aaaa".to_owned()];
1459 t.status = TaskStatus::Done;
1460 assert_eq!(t.superseded_attempts(true), &[] as &[String]);
1461 }
1462
1463 #[test]
1464 fn superseded_attempts_is_empty_when_the_last_run_never_actually_succeeded() {
1465 // `succeed` is reachable directly - `magi task done`, its web
1466 // equivalent, and the conductor's `Recovery::Done` - on a task in
1467 // any status, including one whose last recorded attempt is itself
1468 // `Blocked`/`Failed`/anything but `Merged`/`Ready`. `runs.last()`
1469 // alone cannot tell that apart from the loop's own settle path, so
1470 // the caller's own read of that run's status is what decides this.
1471 let mut t = task("closed by hand after a manual merge");
1472 t.runs = vec!["aaaa".to_owned(), "bbbb".to_owned()];
1473 t.status = TaskStatus::Done;
1474 assert_eq!(
1475 t.superseded_attempts(false),
1476 &[] as &[String],
1477 "nothing here is provably why the task is done, so nothing is superseded"
1478 );
1479 }
1480
1481 #[test]
1482 fn latest_attempt_names_the_chain_s_current_head_not_just_the_next_one() {
1483 let (_dir, q) = queue();
1484 let mut t = task("retried twice");
1485 t.runs = vec!["aaaa".to_owned(), "bbbb".to_owned(), "cccc".to_owned()];
1486 q.put(&mut t).unwrap();
1487
1488 assert_eq!(
1489 q.latest_attempt("aaaa"),
1490 Some("cccc".to_owned()),
1491 "an old attempt points straight at the chain's current head, not the \
1492 next attempt in the middle of it"
1493 );
1494 assert_eq!(q.latest_attempt("bbbb"), Some("cccc".to_owned()));
1495 assert_eq!(
1496 q.latest_attempt("cccc"),
1497 None,
1498 "the latest attempt is not superseded by anything"
1499 );
1500 assert_eq!(
1501 q.latest_attempt("never-heard-of-it"),
1502 None,
1503 "a run belonging to no task on this queue is not superseded"
1504 );
1505 }
1506
1507 #[test]
1508 fn a_markdown_heading_is_the_title_not_decoration() {
1509 // A task file's heading is the summary its author already wrote, so it
1510 // beats the prose underneath. Getting this backwards was visible in the
1511 // first smoke test: a task titled "# Rework the config loader" listed
1512 // as "It re-reads the file on every lookup".
1513 assert_eq!(
1514 title_from("# Rework the config loader\n\nIt re-reads it.\n", 40),
1515 "Rework the config loader"
1516 );
1517 assert_eq!(title_from("- fix the thing", 40), "fix the thing");
1518 assert_eq!(title_from("> quoted task", 40), "quoted task");
1519 // Nothing usable at all still has to produce something printable.
1520 assert_eq!(title_from(" \n\n", 40), "(empty task)");
1521 assert_eq!(title_from("###\n", 40), "(empty task)");
1522 }
1523
1524 #[test]
1525 fn a_long_title_is_elided_by_characters_not_bytes() {
1526 // Byte truncation would split a multi-byte character and panic.
1527 let long = "課題".repeat(30);
1528 let title = title_from(&long, 10);
1529 assert_eq!(title.chars().count(), 10);
1530 assert!(title.ends_with('…'));
1531 }
1532
1533 #[test]
1534 fn priority_wins_and_ties_break_oldest_first() {
1535 let (_dir, q) = queue();
1536 let mut a = task("first");
1537 let mut b = task("second");
1538 let mut c = task("urgent");
1539 // Ids carry a timestamp, so force a known order.
1540 a.id = "20260101-000001-aaaa".to_owned();
1541 b.id = "20260101-000002-bbbb".to_owned();
1542 c.id = "20260101-000003-cccc".to_owned();
1543 c.priority = 5;
1544 for t in [&mut a, &mut b, &mut c] {
1545 q.put(t).unwrap();
1546 }
1547
1548 // Priority first...
1549 assert_eq!(q.next_runnable().unwrap().id, c.id);
1550 c.hold_machine(None);
1551 q.put(&mut c).unwrap();
1552 // ...then oldest, so a burst of new work cannot starve older work.
1553 assert_eq!(q.next_runnable().unwrap().id, a.id);
1554 assert_eq!(q.list().len(), 3, "b is still waiting its turn");
1555 }
1556
1557 #[test]
1558 fn a_blocked_task_never_starves_another_runnable_one() {
1559 let (_dir, q) = queue();
1560 let mut blocked = task("blocked");
1561 blocked.block(vec!["something".to_owned()], None);
1562 q.put(&mut blocked).unwrap();
1563
1564 let mut runnable = task("free to go");
1565 q.put(&mut runnable).unwrap();
1566
1567 let next = q.next_runnable().expect("a runnable task is still offered");
1568 assert_eq!(next.id, runnable.id);
1569 }
1570
1571 #[test]
1572 fn a_held_task_is_never_offered_to_the_loop() {
1573 let (_dir, q) = queue();
1574 let mut t = task("held");
1575 q.put(&mut t).unwrap();
1576 assert!(q.next_runnable().is_some());
1577
1578 t.hold_machine(None);
1579 q.put(&mut t).unwrap();
1580 assert!(
1581 q.next_runnable().is_none(),
1582 "a held task must wait for a human"
1583 );
1584
1585 // A failed task, by contrast, is exactly what the loop should retry.
1586 t.status = TaskStatus::Failed;
1587 q.put(&mut t).unwrap();
1588 assert!(q.next_runnable().is_some());
1589 }
1590
1591 #[test]
1592 fn attempts_are_capped_and_then_the_task_is_held() {
1593 let mut t = task("doomed");
1594
1595 t.start("run-1".to_owned());
1596 t.fail("gate red", 2);
1597 assert_eq!(t.status, TaskStatus::Failed, "one attempt of two: retry");
1598
1599 t.start("run-2".to_owned());
1600 t.fail("gate red", 2);
1601 assert_eq!(
1602 t.status,
1603 TaskStatus::Held,
1604 "out of attempts: stop spending money on it"
1605 );
1606 assert_eq!(t.runs, ["run-1", "run-2"]);
1607 assert_eq!(t.last_error.as_deref(), Some("gate red"));
1608 }
1609
1610 #[test]
1611 fn a_quota_stall_is_refunded_so_the_backlog_survives_the_night() {
1612 let mut t = task("stalled by quota");
1613
1614 t.start("run-1".to_owned());
1615 assert_eq!(t.attempts, 1);
1616 t.stall("judge-1, judge-2 out of quota");
1617 assert_eq!(
1618 t.attempts, 0,
1619 "a closed quota window must not spend the task's retry budget"
1620 );
1621 assert_eq!(t.status, TaskStatus::Failed, "the loop should retry it");
1622 assert_eq!(
1623 t.last_error.as_deref(),
1624 Some("judge-1, judge-2 out of quota")
1625 );
1626
1627 // A task can therefore stall all night and still get its real attempts
1628 // once the quota resets - which is the whole point.
1629 for _ in 0..20 {
1630 t.start("run-n".to_owned());
1631 t.stall("still out of quota");
1632 }
1633 t.start("run-real".to_owned());
1634 t.fail("gate red", 2);
1635 assert_eq!(
1636 t.status,
1637 TaskStatus::Failed,
1638 "the first attempt that was really judged is attempt one"
1639 );
1640 }
1641
1642 #[test]
1643 fn releasing_a_held_task_gives_it_a_real_second_chance() {
1644 let mut t = task("retry me");
1645 t.start("run-1".to_owned());
1646 t.fail("gate red", 1);
1647 assert_eq!(t.status, TaskStatus::Held);
1648
1649 t.release();
1650 assert_eq!(t.status, TaskStatus::Queued);
1651 // Without resetting attempts the next failure would re-hold at once,
1652 // and a release would be a no-op the operator cannot see.
1653 assert_eq!(t.attempts, 0);
1654 assert!(t.last_error.is_none());
1655 assert_eq!(
1656 t.runs.len(),
1657 1,
1658 "history is kept: attempts reset, evidence does not"
1659 );
1660 }
1661
1662 #[test]
1663 fn a_hold_reason_survives_and_a_release_clears_it() {
1664 let mut t = task("waiting on something else");
1665 t.hold_manual(Some(
1666 "waiting for 20260101-000000-aaaa to land first".to_owned(),
1667 ));
1668 assert_eq!(t.status, TaskStatus::Held);
1669 assert_eq!(
1670 t.hold_reason.as_deref(),
1671 Some("waiting for 20260101-000000-aaaa to land first")
1672 );
1673
1674 // Holding again with no reason must not erase the one already there.
1675 t.hold_manual(None);
1676 assert_eq!(
1677 t.hold_reason.as_deref(),
1678 Some("waiting for 20260101-000000-aaaa to land first"),
1679 "a bare re-hold keeps whatever a human already wrote down"
1680 );
1681
1682 // A hold with no reason at all is still an ordinary, allowed hold.
1683 let mut plain = task("no reason given");
1684 plain.hold_manual(None);
1685 assert_eq!(plain.status, TaskStatus::Held);
1686 assert!(plain.hold_reason.is_none());
1687
1688 t.release();
1689 assert_eq!(t.status, TaskStatus::Queued);
1690 assert!(
1691 t.hold_reason.is_none(),
1692 "a stale reason must not greet the next person who holds this task"
1693 );
1694 }
1695
1696 #[test]
1697 fn closing_a_held_task_as_done_clears_its_hold_reason_too() {
1698 // `done` can close a held task directly - neither `magi task done`
1699 // nor `POST /api/queue/{id}/done` requires a release first - so a
1700 // task held for "waiting on 3ed9" and then closed without ever being
1701 // released must not still read as waiting on it afterwards.
1702 let mut t = task("landed by hand while held");
1703 t.hold_manual(Some("waiting on 3ed9".to_owned()));
1704 assert_eq!(t.hold_reason.as_deref(), Some("waiting on 3ed9"));
1705
1706 t.succeed();
1707 assert_eq!(t.status, TaskStatus::Done);
1708 assert!(
1709 t.hold_reason.is_none(),
1710 "a done task cannot still be waiting on something"
1711 );
1712 }
1713
1714 #[test]
1715 fn holding_or_closing_a_blocked_task_clears_its_dependency_too() {
1716 // The web UI's "Hold" and "Mark done" buttons are both reachable on a
1717 // `blocked` task, not just on `queued`/`held` ones - neither requires
1718 // a release first. A task moved off `Blocked` that way must not still
1719 // carry the dependency it was waiting on: a dependency graph built
1720 // from `blocked_by` would otherwise keep drawing an edge for a task
1721 // that is not blocked on anything any more.
1722 let mut held = task("held straight out of blocked");
1723 held.block(
1724 vec!["20260101-000000-dead".to_owned()],
1725 Some("waiting on the migration script".to_owned()),
1726 );
1727 assert_eq!(held.status, TaskStatus::Blocked);
1728
1729 held.hold_manual(None);
1730 assert_eq!(held.status, TaskStatus::Held);
1731 assert!(
1732 held.blocked_by.is_empty(),
1733 "hold overrides the wait, same as release"
1734 );
1735 assert!(held.block_reason.is_none());
1736
1737 let mut done = task("closed straight out of blocked");
1738 done.block(
1739 vec!["20260101-000000-dead".to_owned()],
1740 Some("waiting on the migration script".to_owned()),
1741 );
1742 done.succeed();
1743 assert_eq!(done.status, TaskStatus::Done);
1744 assert!(
1745 done.blocked_by.is_empty(),
1746 "a done task cannot still be waiting on a dependency"
1747 );
1748 assert!(done.block_reason.is_none());
1749 }
1750
1751 #[test]
1752 fn a_blocked_task_is_never_offered_to_the_loop() {
1753 let mut t = task("blocked");
1754 assert!(t.status.runnable());
1755 t.block(
1756 vec!["dep-id".to_owned()],
1757 Some("waits on dep-id".to_owned()),
1758 );
1759 assert_eq!(t.status, TaskStatus::Blocked);
1760 assert!(!t.status.runnable());
1761 assert_eq!(TaskStatus::Blocked.as_str(), "blocked");
1762 }
1763
1764 #[test]
1765 fn unblocking_the_last_dependency_returns_the_task_to_queued() {
1766 let mut t = task("blocked on two");
1767 t.block(
1768 vec!["a".to_owned(), "b".to_owned()],
1769 Some("waits on a and b".to_owned()),
1770 );
1771
1772 t.unblock("a");
1773 assert_eq!(t.status, TaskStatus::Blocked, "b is still outstanding");
1774 assert_eq!(t.blocked_by, ["b"]);
1775
1776 t.unblock("b");
1777 assert_eq!(t.status, TaskStatus::Queued);
1778 assert!(t.blocked_by.is_empty());
1779 assert!(t.block_reason.is_none());
1780 }
1781
1782 #[test]
1783 fn unblocking_an_id_on_a_task_that_is_not_blocked_is_a_no_op() {
1784 let mut t = task("never blocked");
1785 t.unblock("whatever");
1786 assert_eq!(t.status, TaskStatus::Queued);
1787 }
1788
1789 #[test]
1790 fn a_held_task_blocked_on_a_question_returns_to_held_not_queued() {
1791 // The bug this guards: a task an operator (or `crate::triage`) has
1792 // deliberately held, once `crate::conduct` blocks it on a follow-up
1793 // question, must not silently re-enter the competition queue the
1794 // moment that question is answered - whatever the answer said.
1795 let mut t = task("held, then asked about");
1796 t.hold_machine(Some("out of attempts".to_owned()));
1797 assert_eq!(t.status, TaskStatus::Held);
1798
1799 t.block(vec!["q1".to_owned()], Some("what now?".to_owned()));
1800 assert_eq!(t.status, TaskStatus::Blocked);
1801
1802 t.record_answer("what now?".to_owned(), "leave it held".to_owned());
1803 t.unblock("q1");
1804 assert_eq!(t.status, TaskStatus::Held, "must restore, not requeue");
1805 assert_eq!(t.hold_reason.as_deref(), Some("out of attempts"));
1806 assert_eq!(t.hold_source, Some(HoldSource::Machine));
1807 assert!(t.blocked_from.is_none(), "consumed once restored");
1808 }
1809
1810 #[test]
1811 fn a_manually_held_task_blocked_on_a_question_returns_to_held() {
1812 let mut t = task("manually held, then asked about");
1813 t.hold_manual(Some("waiting on a dependency".to_owned()));
1814
1815 t.block(vec!["q1".to_owned()], None);
1816 t.unblock("q1");
1817
1818 assert_eq!(t.status, TaskStatus::Held);
1819 assert_eq!(t.hold_source, Some(HoldSource::Manual));
1820 }
1821
1822 #[test]
1823 fn re_blocking_an_already_blocked_task_keeps_the_original_blocked_from() {
1824 // A second `Task::block` call - `crate::conduct` adding a question on
1825 // top of an existing block - must not overwrite `blocked_from` with
1826 // `Blocked` itself, or the task would restore into itself.
1827 let mut t = task("held, blocked twice");
1828 t.hold_machine(None);
1829 t.block(vec!["q1".to_owned()], Some("first".to_owned()));
1830 t.block(
1831 vec!["q1".to_owned(), "q2".to_owned()],
1832 Some("second".to_owned()),
1833 );
1834
1835 t.unblock("q1");
1836 assert_eq!(t.status, TaskStatus::Blocked, "q2 still outstanding");
1837 t.unblock("q2");
1838 assert_eq!(t.status, TaskStatus::Held);
1839 }
1840
1841 #[test]
1842 fn unblocking_a_task_blocked_while_running_lands_on_queued_not_running() {
1843 // Whatever process was driving the run is gone by the time a
1844 // conductor's question about it gets answered - there is nothing left
1845 // to resume into.
1846 let mut t = task("blocked mid-run");
1847 t.start("run-1".to_owned());
1848 assert_eq!(t.status, TaskStatus::Running);
1849
1850 t.block(vec!["q1".to_owned()], None);
1851 t.unblock("q1");
1852 assert_eq!(t.status, TaskStatus::Queued);
1853 }
1854
1855 #[test]
1856 fn a_pre_schema_4_blocked_record_with_hold_evidence_restores_to_held() {
1857 // `blocked_from` is `None` for a record written before schema 4 (or,
1858 // equivalently, deserialized straight from an on-disk file that never
1859 // had the field). Held evidence surviving on the task - never cleared
1860 // by `block` - is the only way left to tell such a record apart from
1861 // one blocked straight out of `Queued`.
1862 let mut t = task("legacy record, held before it was blocked");
1863 t.hold_source = Some(HoldSource::Machine);
1864 t.hold_reason = Some("legacy hold reason".to_owned());
1865 t.status = TaskStatus::Blocked;
1866 t.blocked_by = vec!["q1".to_owned()];
1867 t.blocked_from = None;
1868
1869 t.unblock("q1");
1870 assert_eq!(t.status, TaskStatus::Held);
1871 }
1872
1873 #[test]
1874 fn a_pre_schema_4_blocked_record_with_no_hold_evidence_restores_to_queued() {
1875 let mut t = task("legacy record, ordinary dependency block");
1876 t.status = TaskStatus::Blocked;
1877 t.blocked_by = vec!["dep".to_owned()];
1878 t.blocked_from = None;
1879
1880 t.unblock("dep");
1881 assert_eq!(t.status, TaskStatus::Queued);
1882 }
1883
1884 #[test]
1885 fn answering_a_question_is_recorded_and_survives_a_release() {
1886 let mut t = task("asked something");
1887 t.block(vec!["q1".to_owned()], Some("which backend?".to_owned()));
1888 t.record_answer("Which backend?".to_owned(), "SQLite".to_owned());
1889 t.unblock("q1");
1890 assert_eq!(t.status, TaskStatus::Queued);
1891 assert_eq!(t.answers.len(), 1);
1892 assert_eq!(t.answers[0].answer, "SQLite");
1893
1894 // A release resets attempts, not evidence - the same rule
1895 // `releasing_a_held_task_gives_it_a_real_second_chance` asserts for
1896 // `runs`.
1897 t.release();
1898 assert_eq!(t.answers.len(), 1, "the answer is not lost on release");
1899 }
1900
1901 #[test]
1902 fn requesting_review_requeues_the_task_and_remembers_the_branch() {
1903 let mut t = task("blocked run with a surviving branch");
1904 t.start("run-1".to_owned());
1905 t.fail("blocked with major findings", 5);
1906 assert_eq!(t.status, TaskStatus::Failed);
1907
1908 t.request_review("magi/eba2/A".to_owned());
1909 assert_eq!(t.status, TaskStatus::Queued);
1910 assert_eq!(t.attempts, 0);
1911 assert_eq!(t.review_branch.as_deref(), Some("magi/eba2/A"));
1912
1913 // An ordinary release (a human overriding the choice) drops it again.
1914 t.release();
1915 assert!(t.review_branch.is_none());
1916 }
1917
1918 #[test]
1919 fn conductor_requeue_but_not_an_ordinary_release_forces_a_fresh_start() {
1920 let mut t = task("retry");
1921 t.start("run-1".to_owned());
1922 t.requeue();
1923 assert!(t.fresh_start);
1924
1925 t.release();
1926 assert!(!t.fresh_start);
1927 }
1928
1929 #[test]
1930 fn priority_can_be_changed_while_queued_but_not_while_running() {
1931 let mut t = task("reprioritise me");
1932 t.set_priority(5).unwrap();
1933 assert_eq!(t.priority, 5);
1934
1935 t.start("run-1".to_owned());
1936 let err = t.set_priority(9).unwrap_err().to_string();
1937 assert!(err.contains("running"), "{err}");
1938 assert_eq!(t.priority, 5, "the rejected write must not partially apply");
1939 }
1940
1941 #[test]
1942 fn interrupt_can_be_marked_while_queued_but_not_while_running() {
1943 let mut t = task("interrupt me");
1944 assert!(!t.interrupt, "off unless asked, same as any other task");
1945
1946 t.set_interrupt(true).unwrap();
1947 assert!(t.interrupt);
1948
1949 t.start("run-1".to_owned());
1950 assert!(
1951 !t.interrupt,
1952 "the mark is one-shot: dispatching the task fulfils it, \
1953 whatever the run that follows ends up doing"
1954 );
1955 let err = t.set_interrupt(true).unwrap_err().to_string();
1956 assert!(err.contains("running"), "{err}");
1957 // Clearing is always allowed, even on a running task - there is
1958 // nothing left for it to interrupt once it has been claimed.
1959 t.set_interrupt(false).unwrap();
1960 assert!(!t.interrupt);
1961 }
1962
1963 /// R2-1-1: a task whose run fails and requeues must not go on
1964 /// re-triggering `crate::daemon`'s interrupt scheduler on every later
1965 /// boundary, attempt after attempt, until it exhausts its budget.
1966 #[test]
1967 fn a_failed_run_does_not_leave_the_task_still_marked_to_interrupt() {
1968 let mut t = task("interrupt me");
1969 t.set_interrupt(true).unwrap();
1970 t.start("run-1".to_owned());
1971 t.fail("mock failure", 5);
1972 assert_eq!(t.status, TaskStatus::Failed);
1973 assert!(
1974 !t.interrupt,
1975 "one attempt already spent the mark; a retry is an ordinary \
1976 requeue, not a fresh interrupt request"
1977 );
1978 }
1979
1980 #[test]
1981 fn changing_priority_moves_a_task_ahead_in_the_real_queue_order() {
1982 let (_dir, q) = queue();
1983 let mut a = task("first filed");
1984 let mut b = task("second filed");
1985 a.id = "20260101-000001-aaaa".to_owned();
1986 b.id = "20260101-000002-bbbb".to_owned();
1987 q.put(&mut a).unwrap();
1988 q.put(&mut b).unwrap();
1989
1990 assert_eq!(
1991 q.next_runnable().unwrap().id,
1992 a.id,
1993 "with equal priority the older task goes first, so a burst of \
1994 new work cannot starve it"
1995 );
1996 assert_eq!(
1997 q.list()[0].id,
1998 b.id,
1999 "but the list an operator reads is newest first, the same as \
2000 before priority existed - a's turn to run does not make it the \
2001 newest task"
2002 );
2003
2004 let mut a = q.get(&a.id).unwrap();
2005 a.set_priority(10).unwrap();
2006 q.put(&mut a).unwrap();
2007
2008 assert_eq!(
2009 q.next_runnable().unwrap().id,
2010 a.id,
2011 "a raised priority must be reflected the moment it is saved"
2012 );
2013 // `magi task list` and `GET /api/queue` both print `Queue::list()`
2014 // directly, so the raised task has to lead there too - not only in
2015 // what the loop would claim next.
2016 assert_eq!(
2017 q.list()[0].id,
2018 a.id,
2019 "the raised task must sort first in the list an operator reads, \
2020 not only in next_runnable's own ordering"
2021 );
2022 }
2023
2024 #[test]
2025 fn editing_replaces_title_and_instruction_but_keeps_identity_and_history() {
2026 let mut t = Task::new(
2027 "old title".to_owned(),
2028 "old instruction".to_owned(),
2029 PathBuf::from("/repo"),
2030 Source::Agent {
2031 run: "20260101-000000-beef".to_owned(),
2032 node: "implement".to_owned(),
2033 },
2034 );
2035 let id = t.id.clone();
2036 let created_at = t.created_at;
2037 t.runs.push("20260101-000000-beef".to_owned());
2038
2039 t.edit("new title".to_owned(), "new instruction".to_owned())
2040 .unwrap();
2041
2042 assert_eq!(t.title, "new title");
2043 assert_eq!(t.instruction, "new instruction");
2044 assert_eq!(t.id, id, "editing must not mint a new id");
2045 assert_eq!(t.created_at, created_at);
2046 assert_eq!(
2047 t.source,
2048 Source::Agent {
2049 run: "20260101-000000-beef".to_owned(),
2050 node: "implement".to_owned(),
2051 },
2052 "editing must not turn agent attribution into human"
2053 );
2054 assert_eq!(t.runs, ["20260101-000000-beef"]);
2055 }
2056
2057 #[test]
2058 fn editing_is_refused_once_a_task_is_running_or_finished() {
2059 let mut running = task("in flight");
2060 running.start("run-1".to_owned());
2061 let err = running
2062 .edit("x".to_owned(), "y".to_owned())
2063 .unwrap_err()
2064 .to_string();
2065 assert!(err.contains("running"), "{err}");
2066
2067 let mut done = task("finished");
2068 done.succeed();
2069 let err = done
2070 .edit("x".to_owned(), "y".to_owned())
2071 .unwrap_err()
2072 .to_string();
2073 assert!(err.contains("done"), "{err}");
2074
2075 // Both queued and held are the point of the feature and must work.
2076 let mut queued = task("waiting");
2077 queued.edit("x".to_owned(), "y".to_owned()).unwrap();
2078 let mut held = task("parked");
2079 held.hold_machine(None);
2080 held.edit("x".to_owned(), "y".to_owned()).unwrap();
2081 }
2082
2083 #[test]
2084 fn a_task_recorded_without_a_hold_reason_still_reads_as_none() {
2085 let (_dir, q) = queue();
2086 let path = q.path_of("20260101-000000-aaaa");
2087 std::fs::create_dir_all(q.root()).unwrap();
2088 std::fs::write(
2089 &path,
2090 serde_json::json!({
2091 "schema": SCHEMA,
2092 "id": "20260101-000000-aaaa",
2093 "title": "from before hold reasons existed",
2094 "instruction": "from before hold reasons existed",
2095 "repo": ".",
2096 "source": { "kind": "human" },
2097 "status": "held",
2098 "created_at": Timestamp::now().to_string(),
2099 "updated_at": Timestamp::now().to_string(),
2100 })
2101 .to_string(),
2102 )
2103 .unwrap();
2104
2105 let task = q.get("20260101-000000-aaaa").expect("must still read");
2106 assert!(task.hold_reason.is_none());
2107 assert!(task.operator_held());
2108 }
2109
2110 #[test]
2111 fn a_legacy_reasoned_hold_defaults_to_operator_protection() {
2112 let (_dir, q) = queue();
2113 let path = q.path_of("20260101-000000-bbbb");
2114 std::fs::create_dir_all(q.root()).unwrap();
2115 std::fs::write(
2116 &path,
2117 serde_json::json!({
2118 "schema": 2,
2119 "id": "20260101-000000-bbbb",
2120 "title": "old manual recovery",
2121 "instruction": "old manual recovery",
2122 "repo": ".",
2123 "source": { "kind": "human" },
2124 "status": "held",
2125 "hold_reason": "active manual recovery run20260912-224242-daf5",
2126 "created_at": Timestamp::now().to_string(),
2127 "updated_at": Timestamp::now().to_string(),
2128 })
2129 .to_string(),
2130 )
2131 .unwrap();
2132
2133 let task = q.get("20260101-000000-bbbb").expect("must still read");
2134 assert_eq!(task.hold_source, None);
2135 assert!(task.operator_held());
2136 }
2137
2138 #[test]
2139 fn a_task_recorded_without_a_diagnostic_still_reads_as_none() {
2140 let (_dir, q) = queue();
2141 let path = q.path_of("20260101-000000-aaaa");
2142 std::fs::create_dir_all(q.root()).unwrap();
2143 std::fs::write(
2144 &path,
2145 serde_json::json!({
2146 "schema": SCHEMA,
2147 "id": "20260101-000000-aaaa",
2148 "title": "from before diagnostics existed",
2149 "instruction": "from before diagnostics existed",
2150 "repo": ".",
2151 "source": { "kind": "human" },
2152 "status": "held",
2153 "created_at": Timestamp::now().to_string(),
2154 "updated_at": Timestamp::now().to_string(),
2155 })
2156 .to_string(),
2157 )
2158 .unwrap();
2159
2160 let task = q.get("20260101-000000-aaaa").expect("must still read");
2161 assert!(task.diagnostic.is_none());
2162 }
2163
2164 #[test]
2165 fn a_schema_1_task_with_no_blocking_fields_still_reads() {
2166 // Written by a build that predates `blocked_by`, `block_reason`,
2167 // `answers` and `review_branch` entirely - literal `"schema": 1`,
2168 // not `SCHEMA`, since the whole point is a build older than this one.
2169 let (_dir, q) = queue();
2170 let path = q.path_of("20260101-000000-aaaa");
2171 std::fs::create_dir_all(q.root()).unwrap();
2172 std::fs::write(
2173 &path,
2174 serde_json::json!({
2175 "schema": 1,
2176 "id": "20260101-000000-aaaa",
2177 "title": "from before blocking existed",
2178 "instruction": "from before blocking existed",
2179 "repo": ".",
2180 "source": { "kind": "human" },
2181 "status": "queued",
2182 "created_at": Timestamp::now().to_string(),
2183 "updated_at": Timestamp::now().to_string(),
2184 })
2185 .to_string(),
2186 )
2187 .unwrap();
2188
2189 let task = q.get("20260101-000000-aaaa").expect("must still read");
2190 assert!(task.blocked_by.is_empty());
2191 assert!(task.block_reason.is_none());
2192 assert!(task.answers.is_empty());
2193 assert!(task.review_branch.is_none());
2194 }
2195
2196 #[test]
2197 fn releasing_or_finishing_a_task_clears_its_stale_diagnostic() {
2198 // A diagnostic belongs to the run that produced it. Left in place
2199 // across a release, an unrelated later failure - a config error, say -
2200 // would go on showing evidence for a problem that is no longer why the
2201 // task is stuck.
2202 let mut held = task("diagnosed");
2203 held.start("run-1".to_owned());
2204 held.fail("gate red", 1);
2205 held.diagnostic = Some("cargo test failed: ...".to_owned());
2206 assert_eq!(held.status, TaskStatus::Held);
2207
2208 held.release();
2209 assert!(held.diagnostic.is_none());
2210
2211 held.diagnostic = Some("cargo test failed: ...".to_owned());
2212 held.succeed();
2213 assert!(held.diagnostic.is_none());
2214 }
2215
2216 #[test]
2217 fn failing_a_task_always_clears_whatever_diagnostic_it_carried() {
2218 let mut t = task("retried");
2219 t.start("run-1".to_owned());
2220 t.diagnostic = Some("stale evidence from a previous hold".to_owned());
2221 t.fail("unrelated config error", 5);
2222 assert_eq!(t.status, TaskStatus::Failed);
2223 assert!(
2224 t.diagnostic.is_none(),
2225 "fail() must not let an old diagnostic outlive the run that produced it"
2226 );
2227 }
2228
2229 #[test]
2230 fn a_claim_is_exclusive_and_releases_on_drop() {
2231 let (_dir, q) = queue();
2232 let mut t = task("contended");
2233 q.put(&mut t).unwrap();
2234
2235 let held = q.claim(&t.id).unwrap();
2236 assert!(
2237 q.claim(&t.id).is_err(),
2238 "two daemons must not drive one task into two runs"
2239 );
2240 drop(held);
2241 assert!(q.claim(&t.id).is_ok(), "a released claim is reclaimable");
2242 }
2243
2244 #[test]
2245 fn a_round_trip_survives_disk() {
2246 let (_dir, q) = queue();
2247 let mut t = Task::new(
2248 "titled".to_owned(),
2249 "body".to_owned(),
2250 PathBuf::from("/repo"),
2251 Source::Agent {
2252 run: "20260101-000000-beef".to_owned(),
2253 node: "implement".to_owned(),
2254 },
2255 );
2256 t.priority = 3;
2257 q.put(&mut t).unwrap();
2258
2259 let back = q.get(&t.id).unwrap();
2260 assert_eq!(back.id, t.id);
2261 assert_eq!(back.priority, 3);
2262 assert_eq!(back.source.label(), "implement@beef");
2263 // A prefix is enough, the way run ids work everywhere else.
2264 assert_eq!(q.get(t.short()).unwrap().id, t.id);
2265 }
2266
2267 #[test]
2268 fn an_unreadable_task_does_not_take_the_queue_down() {
2269 let (_dir, q) = queue();
2270 let mut t = task("fine");
2271 q.put(&mut t).unwrap();
2272 std::fs::write(q.root().join("broken.json"), "{ not json").unwrap();
2273
2274 let listed = q.list();
2275 assert_eq!(listed.len(), 1, "the readable task still lists");
2276 assert_eq!(listed[0].id, t.id);
2277 }
2278
2279 #[test]
2280 fn a_task_recorded_without_a_solo_field_still_reads_as_not_solo() {
2281 let (_dir, q) = queue();
2282 let path = q.path_of("20260101-000000-aaaa");
2283 std::fs::create_dir_all(q.root()).unwrap();
2284 std::fs::write(
2285 &path,
2286 serde_json::json!({
2287 "schema": SCHEMA,
2288 "id": "20260101-000000-aaaa",
2289 "title": "from before solo existed",
2290 "instruction": "from before solo existed",
2291 "repo": ".",
2292 "source": { "kind": "human" },
2293 "status": "queued",
2294 "created_at": Timestamp::now().to_string(),
2295 "updated_at": Timestamp::now().to_string(),
2296 })
2297 .to_string(),
2298 )
2299 .unwrap();
2300
2301 let task = q.get("20260101-000000-aaaa").expect("must still read");
2302 assert!(!task.solo, "a queue file with no `solo` field means false");
2303 }
2304
2305 #[test]
2306 fn a_task_recorded_without_an_urgent_field_still_reads_as_not_urgent() {
2307 let (_dir, q) = queue();
2308 let path = q.path_of("20260101-000000-bbbb");
2309 std::fs::create_dir_all(q.root()).unwrap();
2310 std::fs::write(
2311 &path,
2312 serde_json::json!({
2313 "schema": SCHEMA,
2314 "id": "20260101-000000-bbbb",
2315 "title": "from before urgent existed",
2316 "instruction": "from before urgent existed",
2317 "repo": ".",
2318 "source": { "kind": "human" },
2319 "status": "queued",
2320 "created_at": Timestamp::now().to_string(),
2321 "updated_at": Timestamp::now().to_string(),
2322 })
2323 .to_string(),
2324 )
2325 .unwrap();
2326
2327 let task = q.get("20260101-000000-bbbb").expect("must still read");
2328 assert!(
2329 !task.urgent,
2330 "a queue file with no `urgent` field means false, same as `solo`"
2331 );
2332 }
2333
2334 #[test]
2335 fn a_task_from_a_future_schema_is_refused_rather_than_guessed_at() {
2336 let (_dir, q) = queue();
2337 let mut t = task("from the future");
2338 q.put(&mut t).unwrap();
2339 let path = q.path_of(&t.id);
2340 let body = std::fs::read_to_string(&path)
2341 .unwrap()
2342 .replace(&format!("\"schema\": {SCHEMA}"), "\"schema\": 99");
2343 std::fs::write(&path, body).unwrap();
2344
2345 let err = q.get(&t.id).unwrap_err().to_string();
2346 assert!(err.contains("schema 99"), "{err}");
2347 }
2348
2349 #[test]
2350 fn revision_moves_when_the_queue_changes() {
2351 let (_dir, q) = queue();
2352 assert_eq!(q.revision(), 0, "an empty queue has no revision");
2353 let mut t = task("first");
2354 q.put(&mut t).unwrap();
2355 assert!(q.revision() > 0, "a written task moves the revision");
2356 }
2357
2358 #[test]
2359 fn revision_moves_when_deleting_an_older_task() {
2360 let (dir, q) = queue();
2361 let questions = Questions::at(dir.path().join("questions"));
2362 let mut t1 = task("older");
2363 q.put(&mut t1).unwrap();
2364 // Ensure mtime ticks forward.
2365 std::thread::sleep(std::time::Duration::from_millis(10));
2366 let mut t2 = task("newer");
2367 q.put(&mut t2).unwrap();
2368
2369 let rev_before = q.revision();
2370 q.remove(&t1.id, false, &questions).unwrap();
2371 let rev_after = q.revision();
2372
2373 assert_ne!(
2374 rev_before, rev_after,
2375 "deleting an older task must change the revision so other clients see the deletion"
2376 );
2377 }
2378
2379 #[test]
2380 fn removing_a_task_takes_it_out_of_the_listing() {
2381 let (dir, q) = queue();
2382 let questions = Questions::at(dir.path().join("questions"));
2383 let mut t = task("delete me");
2384 q.put(&mut t).unwrap();
2385 let removed = q.remove(t.short(), false, &questions).unwrap();
2386 assert_eq!(removed.id, t.id, "a prefix resolves before deleting");
2387 assert!(removed.quarantined.is_empty(), "nothing was blocked on it");
2388 assert!(q.list().is_empty());
2389 assert!(
2390 q.remove(&t.id, false, &questions).is_err(),
2391 "removing twice is an error"
2392 );
2393 }
2394
2395 #[test]
2396 fn removing_a_task_takes_its_stale_lock_with_it() {
2397 let (dir, q) = queue();
2398 let questions = Questions::at(dir.path().join("questions"));
2399 let mut t = task("interrupted");
2400 q.put(&mut t).unwrap();
2401
2402 // A daemon killed mid-run leaves this behind. Nothing holds it: the
2403 // process that would have dropped the guard is gone.
2404 let claim = q.claim(&t.id).unwrap();
2405 std::mem::forget(claim);
2406 assert!(
2407 q.claim(&t.id).is_err(),
2408 "the orphaned lock is what makes the task look claimed"
2409 );
2410
2411 // A live daemon on this task is refused, whatever the lock says.
2412 let err = q.remove(&t.id, true, &questions).unwrap_err().to_string();
2413 assert!(err.contains("live daemon"), "{err}");
2414 assert!(q.get(&t.id).is_ok(), "a refused delete keeps the task");
2415
2416 // With no daemon behind it, the lock is stale and goes with the task.
2417 q.remove(&t.id, false, &questions).unwrap();
2418 assert!(q.list().is_empty());
2419 let mut again = task("interrupted");
2420 again.id = t.id.clone();
2421 q.put(&mut again).unwrap();
2422 assert!(
2423 q.claim(&t.id).is_ok(),
2424 "a task that comes back must be claimable, which a left-behind lock would prevent"
2425 );
2426 }
2427
2428 #[test]
2429 fn removing_a_task_quarantines_what_was_blocked_on_it() {
2430 let (dir, q) = queue();
2431 let questions = Questions::at(dir.path().join("questions"));
2432
2433 let mut dep = task("dependency");
2434 q.put(&mut dep).unwrap();
2435
2436 let mut still_valid = task("still valid");
2437 q.put(&mut still_valid).unwrap();
2438
2439 let mut blocked = task("waiting");
2440 blocked.block(
2441 vec![dep.id.clone(), still_valid.id.clone()],
2442 Some("waits on both".to_owned()),
2443 );
2444 q.put(&mut blocked).unwrap();
2445
2446 let removed = q.remove(&dep.id, false, &questions).unwrap();
2447 assert_eq!(removed.quarantined, [blocked.id.clone()]);
2448
2449 let after = q.get(&blocked.id).unwrap();
2450 assert_eq!(after.status, TaskStatus::Held);
2451 assert_eq!(after.hold_source, Some(HoldSource::Machine));
2452 assert!(after.blocked_by.is_empty());
2453 let reason = after.hold_reason.as_deref().unwrap_or_default();
2454 assert!(reason.contains(&dep.id), "{reason}");
2455 assert!(
2456 reason.contains(&still_valid.id),
2457 "the still-valid dependency must survive in the reason text: {reason}"
2458 );
2459 }
2460}