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shep_core/protocol/
request.rs

1//! RPC frames: requests, responses, envelopes, and structured errors
2
3use core::fmt;
4
5use serde::{Deserialize, Deserializer, Serialize};
6
7use crate::config::AppConfig;
8use crate::status::ProcStatus;
9
10/// Client's opening frame
11// wire format: changing this is a breaking change
12#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
13pub struct Hello {
14    /// Client crate version (semver string)
15    pub client_version: String,
16    /// [`crate::protocol::PROTOCOL_VERSION`] the client speaks
17    pub protocol: u32,
18}
19
20/// Daemon's handshake answer
21// wire format: changing this is a breaking change
22#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
23pub struct HelloAck {
24    /// Daemon crate version
25    pub daemon_version: String,
26    /// Protocol version the daemon speaks
27    pub protocol: u32,
28    /// Daemon pid
29    pub pid: u32,
30}
31
32/// Serializable selector (mirror of [`crate::selector::ProcessSelector`];
33/// regex travels as its source string)
34// wire format: changing this is a breaking change
35#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
36#[serde(tag = "kind", content = "value", rename_all = "snake_case")]
37pub enum SelectorSpec {
38    /// Every sheep
39    All,
40    /// By id
41    Id(u32),
42    /// By exact name
43    Name(String),
44    /// By regex source
45    Regex(String),
46    /// By fold name
47    Fold(String),
48}
49
50/// A short marker a dog attaches to a sheep for `shep flock` to paint.
51///
52/// shep stores one and prints it. It does not parse it, has no opinion about
53/// what it means, and never will: `▲ main@a1b2c3` is a deploy tool's
54/// sentence, not shep's, and keeping it that way is what makes this a general
55/// mechanism rather than one feature's field.
56///
57/// # The rule
58///
59/// A smit is non-empty once whitespace is discounted, at most
60/// [`Self::MAX_CHARS`] characters, and carries no [`char::is_control`]
61/// character — `\u{1b}` included, which `is_control` already covers and which
62/// is named separately in this doc anyway, because it is the one an attacker
63/// reaches for and a reader should not have to know the classification to see
64/// that it is handled.
65///
66/// Refused, never repaired. The text is stored exactly as it arrived: shep
67/// does not trim it, strip from it, or otherwise hand back something the
68/// publisher did not send. `crate::kv`'s key grammar and value cap set the
69/// same precedent for the same kind of value, and the publisher here is a
70/// program, so a refusal it can see and fix beats mangling it cannot.
71///
72/// # Why the cap counts characters
73///
74/// [`Self::MAX_CHARS`] is a count of `char`s, not of bytes and not of display
75/// columns. Bytes would refuse a legitimate CJK smit at roughly a third of
76/// its apparent length. Display columns are what a table renderer measures,
77/// but they depend on the terminal and on a width table this parser has no
78/// business carrying. Characters are the honest thing a validator can promise
79/// cheaply. 48 is measured against the reference smit `▲ main@a1b2c3` at
80/// thirteen: room for a long branch name, without letting one column swallow
81/// the table.
82///
83/// # Why validation lives here rather than at the renderer
84///
85/// `shep`'s own `output::width::sanitize_cell` deliberately KEEPS a
86/// well-formed CSI sequence, because shep's colouring is made of them, so it
87/// is not a guard against a third party's string. Refusing here means `shep
88/// flock`, `shep describe`, `--format json`, the lookout, the MCP tool schema
89/// and every bus subscriber are safe by construction instead of six places
90/// each remembering.
91///
92/// `Debug` is derived, and that is the deliberate decision (IR-41): a smit
93/// carries no environment and no secret. It is a string a dog asked to have
94/// painted in public, so redacting it would hide the thing an operator is
95/// debugging.
96///
97/// # Example
98/// ```
99/// use shep_core::protocol::Smit;
100///
101/// assert_eq!("▲ main@a1b2c3".parse::<Smit>()?.as_str(), "▲ main@a1b2c3");
102/// assert!("\u{1b}[2Jgone".parse::<Smit>().is_err()); // no escapes
103/// # Ok::<(), shep_core::protocol::SmitError>(())
104/// ```
105// wire format: changing this is a breaking change
106#[derive(Debug, Clone, PartialEq, Eq, Serialize)]
107pub struct Smit(String);
108
109impl Smit {
110    /// The longest a smit may be, in characters. See the type doc for why
111    /// characters rather than bytes or display columns.
112    pub const MAX_CHARS: usize = 48;
113
114    /// The marker as text, exactly as its publisher sent it.
115    #[must_use]
116    pub fn as_str(&self) -> &str {
117        &self.0
118    }
119}
120
121impl fmt::Display for Smit {
122    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
123        f.write_str(&self.0)
124    }
125}
126
127impl core::str::FromStr for Smit {
128    type Err = SmitError;
129
130    /// # Errors
131    /// - [`SmitError::Empty`] — nothing but whitespace.
132    /// - [`SmitError::TooLong`] — over [`Self::MAX_CHARS`] characters.
133    /// - [`SmitError::Unprintable`] — a control character, `\u{1b}` included.
134    fn from_str(text: &str) -> Result<Self, Self::Err> {
135        if text.trim().is_empty() {
136            return Err(SmitError::Empty);
137        }
138        let chars = text.chars().count();
139        if chars > Self::MAX_CHARS {
140            return Err(SmitError::TooLong { chars });
141        }
142        if text.chars().any(char::is_control) {
143            return Err(SmitError::Unprintable);
144        }
145        Ok(Self(text.to_string()))
146    }
147}
148
149/// Hand-written rather than derived, and that is the whole security property.
150///
151/// A derived impl would accept anything a `String` accepts, so a smit
152/// carrying `\u{1b}[2J` would reach the daemon's memory and every listing
153/// built from it. `docs/dogs.md` tells dog authors to speak this wire
154/// directly, so a dog written in another language never runs
155/// [`core::str::FromStr`] — the daemon has to validate what it decodes, not
156/// trust that it was constructed properly.
157impl<'de> Deserialize<'de> for Smit {
158    fn deserialize<D: Deserializer<'de>>(deserializer: D) -> Result<Self, D::Error> {
159        // String, not &str: a non-borrowing deserializer cannot always borrow
160        let text = String::deserialize(deserializer)?;
161        text.parse().map_err(serde::de::Error::custom)
162    }
163}
164
165/// Why a string is not a [`Smit`].
166///
167/// `#[non_exhaustive]`: shep-core is a published library and a further
168/// refusal — a grapheme-cluster cap, say, or a bidi-override rule — must not
169/// break an out-of-tree consumer's `match` (IR-20).
170#[non_exhaustive]
171#[derive(Debug, Clone, Copy, PartialEq, Eq)]
172pub enum SmitError {
173    /// Over [`Smit::MAX_CHARS`] characters; carries the count that was sent.
174    TooLong {
175        /// How many characters the string held.
176        chars: usize,
177    },
178    /// A control character, `\u{1b}` included — the sequence that would let a
179    /// third party's string drive an operator's terminal.
180    Unprintable,
181    /// Empty, or nothing but whitespace.
182    Empty,
183}
184
185impl fmt::Display for SmitError {
186    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
187        match self {
188            Self::TooLong { chars } => write!(
189                f,
190                "a smit is at most {} characters; this one is {chars}",
191                Smit::MAX_CHARS
192            ),
193            Self::Unprintable => {
194                f.write_str("a smit may not contain a control character, an escape included")
195            }
196            Self::Empty => f.write_str("a smit may not be empty"),
197        }
198    }
199}
200
201impl core::error::Error for SmitError {}
202
203/// One RPC request (Phase 1 verb set; later phases extend)
204// wire format: changing existing variants is a breaking change
205#[derive(Debug, Clone, PartialEq, Serialize, Deserialize)]
206#[serde(tag = "kind", rename_all = "snake_case")]
207#[non_exhaustive]
208pub enum Request {
209    /// Liveness check
210    Ping,
211    /// Full flock listing
212    ListFlock,
213    /// Detailed info for matching sheep
214    Describe {
215        /// Which sheep
216        selector: SelectorSpec,
217    },
218    /// Register + start apps
219    Start {
220        /// App configs — the daemon MUST re-normalize (peer input is
221        /// untrusted); failures return [`RpcErrorCode::InvalidConfig`]
222        apps: Vec<AppConfig>,
223    },
224    /// Stop matching sheep (stay registered)
225    Stop {
226        /// Which sheep
227        selector: SelectorSpec,
228    },
229    /// Restart matching sheep
230    Restart {
231        /// Which sheep
232        selector: SelectorSpec,
233    },
234    /// Replace each matching sheep with a fresh instance of the same app, one
235    /// instance of an app at a time, so the app has a window in which it can
236    /// stay reachable across the swap
237    Reload {
238        /// Which sheep. No default anywhere in the stack — a reload replaces
239        /// running processes, so the operator names the target, exactly as
240        /// `stop`/`restart`/`delete` do (see `shep reload`).
241        selector: SelectorSpec,
242    },
243    /// Stop + deregister matching sheep
244    Delete {
245        /// Which sheep
246        selector: SelectorSpec,
247    },
248    /// Set how many instances one app runs (see `shep stock`).
249    ///
250    /// # Why a name and not a selector
251    ///
252    /// Every other verb here takes a [`SelectorSpec`], and this one
253    /// deliberately does not. `instances` is a per-app number and instance
254    /// slots are allocated against the same-name group
255    /// (`shep_daemon::assemble::instance_slots`), so a selector matching two
256    /// apps would have to mean either "four of each" or "four in total", and
257    /// neither reading is more obviously right than the other. A name has one
258    /// meaning.
259    ///
260    /// # Why absolute and not a delta
261    ///
262    /// There is no `+N`/`-N` form and there will not be one. An absolute count
263    /// is idempotent — run it twice, get the same flock — where two operators
264    /// sending `+2` against the same app get a number neither of them asked
265    /// for. This project's own trace notes also record a crash on pm2's
266    /// relative-remove path, and those notes exist so shep does not reproduce
267    /// what they record.
268    Scale {
269        /// The app's name, exactly as its config spells it. Not a selector: no
270        /// `all`, no regex, no `fold:`.
271        name: String,
272        /// How many instances the app has when this returns. `0` is refused
273        /// with [`RpcErrorCode::InvalidConfig`] — `normalize` rejects
274        /// `instances == 0` for every other path into the daemon, and `shep
275        /// delete` is the verb for removing an app.
276        count: u32,
277    },
278    /// Attach a short marker to `sheep` for `shep flock` to paint, or clear
279    /// it with `None`.
280    ///
281    /// By NAME rather than a selector, for [`Self::Scale`]'s reason (see its
282    /// own doc above): a smit belongs to a sheep, not to one of its
283    /// instances, and every instance of that name shows it — including one
284    /// spawned after the smit was painted.
285    ///
286    /// Held in memory and scoped to the connection that sent it. When that
287    /// connection closes, for any reason, the smits it painted go with it. A
288    /// publisher therefore republishes rather than publishing on change.
289    ///
290    /// shep does not parse it and has no opinion about what it means.
291    SetSmit {
292        /// Which sheep.
293        sheep: String,
294        /// The marker, or `None` to clear it.
295        smit: Option<Smit>,
296    },
297    /// Reopen every matched sheep's log files, for an external rotator that
298    /// has renamed them (`create`-mode rotation)
299    Reopen {
300        /// Which sheep
301        selector: SelectorSpec,
302    },
303    /// Empty every matched sheep's log files: flush what is still pending,
304    /// then truncate the recorded paths
305    Flush {
306        /// Which sheep. No default anywhere in the stack — this destroys
307        /// log data, so the operator names the target (see `shep flush`).
308        selector: SelectorSpec,
309    },
310    /// Send a named action to every matched sheep over its shepherd channel
311    /// and report what each app says back (see `shep trigger`).
312    Trigger {
313        /// Which sheep. No default anywhere in the stack, matching
314        /// `stop`/`restart`/`reload`/`delete`/`flush`: an operator names the
315        /// target rather than trigger an action against the whole flock by
316        /// accident.
317        selector: SelectorSpec,
318        /// The action name. Free-form — the daemon never declares, parses,
319        /// or validates it; an app that does not recognize the name is
320        /// expected to say so in its own reply rather than stay silent.
321        action: String,
322        /// Argument text for the action, passed through to the app
323        /// verbatim. One opaque string, not structured data: the daemon
324        /// holds no schema for it, matching the shepherd channel's own
325        /// `action` message this ultimately becomes.
326        params: Option<String>,
327    },
328    /// Deliver one signal to every matched sheep's OWN process — never its
329    /// process group (see `shep signal`).
330    Signal {
331        /// Which sheep. No default anywhere in the stack, matching every
332        /// other verb that reaches a running process: an operator names the
333        /// target rather than signal the whole flock by accident.
334        selector: SelectorSpec,
335        /// The signal's name, as
336        /// [`OperatorSignal`](crate::signals::OperatorSignal) spells it — the
337        /// `SIG` prefix and the case are both optional.
338        ///
339        /// A `String` rather than the enum, for the reason
340        /// [`AppConfig::kill_signal`](crate::config::AppConfig::kill_signal)
341        /// is one: the wire stays plain text a person can read in a capture,
342        /// and the daemon re-validates regardless, because peer input is
343        /// untrusted. A name outside the grammar answers
344        /// [`RpcErrorCode::InvalidConfig`].
345        signal: String,
346    },
347    /// Write one line to every matched sheep's stdin (see `shep whisper`).
348    SendLine {
349        /// Which sheep. No default, matching every other verb that reaches a
350        /// running process.
351        selector: SelectorSpec,
352        /// The line, WITHOUT its terminator — the shepherd appends exactly one
353        /// `\n` when it writes. Carrying the terminator here would leave "did
354        /// the caller include one" as a question every hop has to re-answer,
355        /// and a caller that included two would send an empty line the app
356        /// never asked for.
357        ///
358        /// A line containing an embedded newline is refused
359        /// ([`RpcErrorCode::InvalidConfig`]): it would deliver two commands
360        /// where the operator typed one.
361        line: String,
362    },
363    /// Write the muster roll now, bypassing the snapshot writer's debounce
364    SaveRoll,
365    /// Assemble the flock from the muster roll on disk: start every app the
366    /// roll recorded running, leaving every app the flock already has exactly
367    /// as it stands
368    Muster,
369    /// Ask for one dog's `[dog.<name>]` section, as the dog itself parses it
370    DogConfig {
371        /// The dog's name — the config key, not a selector
372        name: String,
373    },
374    /// Start one dog now, marking it as coming from `source`
375    EnableDog {
376        /// The dog's name
377        name: String,
378        /// Where its binary comes from
379        source: DogSource,
380    },
381    /// Stop and deregister one dog
382    ///
383    /// Answers [`Response::Deleted`], the same reply `Delete` gives: disabling
384    /// deregisters exactly as `Delete` does, so this is the same fact and not
385    /// a coincidence of shape. A variant of its own (`DogDisabled`, say) would
386    /// carry nothing `Deleted` does not.
387    DisableDog {
388        /// The dog's name
389        name: String,
390    },
391    /// Graceful daemon shutdown
392    KillDaemon,
393    /// Subscribe this connection to bus topics (glob patterns)
394    Subscribe {
395        /// Topic globs, e.g. `process.*`
396        topics: Vec<String>,
397    },
398}
399
400/// Where a dog came from: this binary, or one an operator adopted.
401///
402/// The one thing an operator wants when a dog misbehaves, which is why it
403/// is a column rather than a detail. Carried on [`ProcessInfo::dog`], so a
404/// listing distinguishes the two populations without a second request.
405///
406/// `#[non_exhaustive]`: a future source — a dog fetched from a registry,
407/// say — must not need a protocol version bump (IR-20).
408// wire format: changing existing variants is a breaking change
409#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
410#[serde(tag = "kind", rename_all = "snake_case")]
411#[non_exhaustive]
412pub enum DogSource {
413    /// An argv branch of the shep binary itself (`shep dog <name>`).
414    BuiltIn,
415    /// A binary an operator adopted, run at the daemon's own trust level.
416    Adopted {
417        /// The binary's path, exactly as the operator gave it to `adopt`.
418        path: String,
419    },
420}
421
422/// One process the OS reports as a descendant of a sheep.
423///
424/// # What this is not
425///
426/// It is **not** the set of processes that die with the sheep, and nothing here
427/// should be read as promising that. The list is built by walking the OS's
428/// parent-pid links; the stop ladder acts on the process GROUP, and the two
429/// units diverge in both directions — a lamb that forks and exits leaves its
430/// own children re-parented to init, out of this list and still in the group,
431/// while a `setsid()` grandchild stays in this list and leaves the group.
432/// shep-daemon's `limits` module doc has the full account, and it is the
433/// authority; this is a pointer to it, not a second copy free to drift.
434///
435/// # Why a name and not a command line
436///
437/// `name` is the executable's name as the OS reports it (`node`, `sh`,
438/// `python3`), never its argument vector. A process's argv routinely carries
439/// credentials — a `--password=` flag, a URL with a token in the query string —
440/// and this field rides in `shep describe --format json`, which is output
441/// people paste into bug reports. A pid alone would be safe too, and was
442/// considered; it was rejected because a tree of bare integers sends the
443/// operator to `ps`, which is the work the tree exists to save.
444///
445/// # Why no memory figure
446///
447/// The sheep's own row already reports its whole tree's resident size
448/// ([`ProcessInfo::memory_bytes`]), and a per-lamb breakdown is a profiler's
449/// job. `deferred.md`'s note on this struct's growth asks for exactly this
450/// restraint.
451///
452/// `#[non_exhaustive]`: shep-core is a published library, this type is new, and
453/// the two obvious next fields (a parent pid, so a deep tree can be nested
454/// rather than flattened; a start time) would otherwise be breaking additions
455/// (IR-20). Build one with [`Self::new`].
456// wire format: changing this is a breaking change
457#[non_exhaustive]
458#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
459pub struct Lamb {
460    /// The lamb's own pid.
461    pub pid: u32,
462    /// The executable's name, as the OS reports it. Never its command line.
463    pub name: String,
464}
465
466impl Lamb {
467    /// One lamb.
468    ///
469    /// A plain constructor rather than a builder, unlike [`ProcessInfo`]: both
470    /// fields are required and neither is optional or derived, which is the
471    /// case a builder buys nothing for.
472    #[must_use]
473    pub fn new(pid: u32, name: impl Into<String>) -> Self {
474        Self {
475            pid,
476            name: name.into(),
477        }
478    }
479}
480
481/// Why a sheep's process most recently stopped existing under this daemon.
482///
483/// Not shep-daemon's own `ExitOutcome` reused directly: that type lives
484/// behind the spawn-runner seam (`ProcessRunner::wait`, in shep-daemon's
485/// `runner` module) and is free to grow with whatever the real runner needs
486/// to observe next without dragging a breaking wire change behind it — this
487/// one only ever grows on its own say-so. The two happen to carry the same
488/// two fields today because the runner's own observation IS the honest exit
489/// outcome; shep-daemon converts one into the other at the point it records
490/// it (`Actor::handle_exited`), rather than this crate depending on
491/// shep-daemon's internals to reuse its type.
492///
493/// A struct, not two flat `Option<i32>` fields on [`ProcessInfo`] directly:
494/// with two flat fields, "this sheep has never exited under this daemon"
495/// and "it exited, killed by a signal this daemon did not name" are both
496/// all-`None`, and a reader cannot tell those apart. Nested behind
497/// [`ProcessInfo::last_exit`]'s own `Option`, that ambiguity moves up a
498/// level where it belongs: `None` there means "never exited"; `Some` means
499/// "exited, and here is what this daemon knows about it" — which itself
500/// mirrors the OS's own exited-normally/killed-by-signal split
501/// (`WIFEXITED`/`WIFSIGNALED`): ordinarily exactly one of `code`/`signal` is
502/// `Some`. A reader must not assume both can never be `None` together,
503/// though — that would still mean "this daemon recorded an exit; it could
504/// not characterize how" rather than "this sheep never exited", and this
505/// type does not forbid it.
506///
507/// No `#[non_exhaustive]`, unlike every other struct on this wire: those
508/// grow because a discriminator does (`ProcessInfo`'s own doc lists its
509/// four so far); `code`/`signal` is already the complete
510/// exited-normally/killed-by-signal split the runner exposes, this crate
511/// has no libc to derive a richer wait-status decomposition from even if it
512/// wanted one, and there is no forecast next field. Adding the attribute
513/// back later is a compatible change the day a real need appears (IR-16
514/// style); carrying it now on nothing but "might grow" is the exact
515/// speculative case IR-20 warns against.
516// wire format: changing this is a breaking change
517#[derive(Debug, Clone, Copy, PartialEq, Eq, Serialize, Deserialize)]
518pub struct ExitInfo {
519    /// The process's own exit code, set on a normal exit (`WIFEXITED`).
520    pub code: Option<i32>,
521    /// The raw unix signal number that ended the process, set when it did
522    /// not exit on its own (`WIFSIGNALED`) — an operator's own `shep stop`
523    /// or `shep delete` included: the process still genuinely stopped by a
524    /// signal, and that stays true information even though shep, not a
525    /// crash, is what asked for it. Raw and platform-specific for the same
526    /// reason [`crate::signals::OperatorSignal`] carries no such accessor —
527    /// see that type's own module doc — so rendering this as a name
528    /// (`SIGKILL` rather than `9`) is a job for whichever OS-aware layer
529    /// reads it, never for this crate.
530    pub signal: Option<i32>,
531}
532
533/// Snapshot of one sheep for listings and events
534// wire format: changing this is a breaking change
535//
536// `out_file`/`err_file` are `Option<String>`, and both halves of that are
537// deliberate:
538//
539// String, not PathBuf. Every path already on this wire travels as a string
540// (`AppConfig::script`, `cwd`, `out_file`, `err_file`, all of which ride in
541// `Request::Start`), so this matches the established representation. It is
542// also the safer failure mode: serde's `PathBuf` impl REFUSES a non-UTF-8
543// path, and that refusal is not local — it aborts the whole `Reply`, so one
544// sheep with an odd log path would blank the entire `ListFlock` for every
545// other sheep. Lossy conversion daemon-side degrades exactly one field of
546// one sheep instead.
547//
548// Option, not a bare String. Semantically the daemon always resolves both
549// paths, so a required field is tempting. But the handshake only compares
550// `PROTOCOL_VERSION` (see shep-daemon's `server.rs`), and adding these
551// fields deliberately does NOT bump it — the evolution rule in this
552// module's parent says additive fields keep the version. A daemon built
553// before this field and a client built after it therefore both announce
554// protocol 1 and connect happily, and that daemon's replies carry no
555// `out_file` key at all. A required `String` would fail to deserialize
556// there, so a new client could not list against an old daemon. `None`
557// means precisely "this peer predates the field" — which readers must
558// render as unknown, NOT as "this sheep has no log file".
559//
560// `cpu_percent`/`memory_bytes` are optional for that same skew reason and
561// for one of their own: a sheep that is not running has no resource use to
562// report, and one that has been up for less than a sampling window has no
563// honest CPU figure. All three cases render as unknown, never as zero.
564//
565// No `Eq`, which every other wire struct in this module derives:
566// `cpu_percent` is an `f32` and floats are only partially ordered. Nothing
567// compares a `ProcessInfo` for total equality — `assert_eq!` needs only
568// `PartialEq`, and no listing is keyed on, hashed by, or sorted by a whole
569// row.
570/// `#[non_exhaustive]`: this struct has now grown a field in five separate
571/// phases (`out_file`/`err_file`, then `cpu_percent`/`memory_bytes`, then
572/// `dog`, then `lambs`, then `last_exit`) with no hand-edit sweep across the
573/// workspace for any of them — the attribute is paying for itself exactly
574/// as advertised. Corrected from an earlier version of this comment, which
575/// overstated `deferred.md`'s own `ProcessInfo` entry as a warning against
576/// growing this struct at all: what that entry actually defers is
577/// SPLITTING it into several smaller types, and calls this attribute plus
578/// [`ProcessInfo::builder`] "deliberately the opposite of forcing the split
579/// early" — i.e. exactly what makes a field like `last_exit` cheap to add
580/// for a concrete operator need, not a reason to withhold one. Use
581/// [`ProcessInfo::builder`] to construct one; the fields stay `pub`, so
582/// reading them and assigning to them are both unchanged.
583#[non_exhaustive]
584#[derive(Debug, Clone, PartialEq, Serialize, Deserialize)]
585pub struct ProcessInfo {
586    /// Stable numeric id
587    pub id: u32,
588    /// Sheep name
589    pub name: String,
590    /// Lifecycle status
591    pub status: ProcStatus,
592    /// OS pid while running
593    pub pid: Option<u32>,
594    /// Restart count since registration
595    pub restarts: u32,
596    /// Milliseconds since last successful start
597    pub uptime_ms: u64,
598    /// Fold membership
599    pub fold: Option<String>,
600    /// Resolved stdout log path: the app's explicit
601    /// [`AppConfig::out_file`] when it set one, else the daemon-derived
602    /// default. `None` only when the peer daemon predates this field.
603    pub out_file: Option<String>,
604    /// Resolved stderr log path, resolved exactly as [`Self::out_file`]
605    pub err_file: Option<String>,
606    /// Tree CPU as a percentage of one core, over the window since the
607    /// daemon's last periodic sample. `None` when the sheep is not running,
608    /// when it has been up for less than one sampling window, or when the
609    /// peer daemon predates this field — all three of which a reader
610    /// renders as unknown, never as zero.
611    ///
612    /// A value over 100 is a tree using more than one core, not a bug.
613    pub cpu_percent: Option<f32>,
614    /// Tree resident set size in bytes, current as of the reply. `None`
615    /// under the same three conditions as [`Self::cpu_percent`], minus the
616    /// window one — memory needs no baseline.
617    pub memory_bytes: Option<u64>,
618    /// Set when this entry is a dog, naming where the dog came from;
619    /// `None` for a sheep.
620    ///
621    /// Unlike [`Self::cpu_percent`], `None` here does not need to enumerate
622    /// three cases. A daemon built before dogs existed has none, so "not a
623    /// dog" is the true answer whether this peer predates the field or the
624    /// entry is genuinely a sheep — there is no resource-usage-style claim
625    /// a stale zero could get wrong. Do not "fix" this into three cases.
626    pub dog: Option<DogSource>,
627    /// The processes the OS reports as descendants of this sheep, or `None`
628    /// when this reply did not walk for them.
629    ///
630    /// `None` covers two cases and is deliberately not a third: this reply is
631    /// not a `Describe` (only `Describe` walks — the walk costs a second pass
632    /// over the machine's process table, and a flock listing is the thing an
633    /// operator leaves running in a loop), or the peer daemon predates the
634    /// field. `Some(vec![])` is the third case, and the one that means what it
635    /// looks like: walked, and this sheep has no children.
636    ///
637    /// Read [`Lamb`]'s own doc before rendering this. The list is a parent-pid
638    /// walk and is NOT the set of processes a stop kills; any output built from
639    /// it has to say so where the operator will see it.
640    pub lambs: Option<Vec<Lamb>>,
641    /// How this sheep's process most recently stopped existing under this
642    /// daemon. `None` while it has never exited under this daemon — either
643    /// it has not been started yet, or it is still on its very first run —
644    /// and also when the peer daemon predates this field, the same skew
645    /// rule [`Self::out_file`] documents for itself.
646    ///
647    /// Sticky across a respawn, deliberately: this is the daemon's answer
648    /// to "why did it last stop", not "is it stopped right now" — `status`
649    /// and `pid` already answer that, and a sheep back `Online` after a
650    /// crash still has a true story to tell about the crash that restarted
651    /// it. It updates only on the next exit, never cleared by one starting
652    /// back up.
653    pub last_exit: Option<ExitInfo>,
654    /// The marker a dog has asked to have painted beside this sheep, or
655    /// `None` when no dog has painted one — which also covers a peer daemon
656    /// that predates the field, the same skew rule [`Self::out_file`]
657    /// documents for itself.
658    ///
659    /// A `String` rather than a [`Smit`], deliberately: a client decoding a
660    /// listing from a daemon that already validated the text should not have
661    /// to re-run the parser, and [`ProcessInfo`] is a report rather than an
662    /// input. The validation that makes this safe to print happened at the
663    /// daemon's ingress — see [`Smit`] for why there and not at the renderer.
664    ///
665    /// Every instance of a name shows the same marker: smits are keyed by
666    /// sheep name, not by instance id.
667    pub smit: Option<String>,
668}
669
670impl ProcessInfo {
671    /// Starts a builder for one sheep's row.
672    ///
673    /// The three required arguments are the three fields no row can omit and
674    /// no reader can default: which sheep this is, what it is called, and
675    /// what state it is in. Everything else is optional, derived, or
676    /// meaningfully absent, which is exactly the shape a builder is for —
677    /// a nine-argument `new` would put `Option<String>, Option<String>,
678    /// Option<f32>, Option<u64>` next to each other at every call site and
679    /// invite a silent transposition the type system could not catch.
680    ///
681    /// No `#[must_use]` here: [`ProcessInfoBuilder`] already carries one,
682    /// which clippy's `double_must_use` lint treats as covering this
683    /// function's return too.
684    pub fn builder(id: u32, name: impl Into<String>, status: ProcStatus) -> ProcessInfoBuilder {
685        ProcessInfoBuilder {
686            info: Self {
687                id,
688                name: name.into(),
689                status,
690                pid: None,
691                restarts: 0,
692                uptime_ms: 0,
693                fold: None,
694                out_file: None,
695                err_file: None,
696                cpu_percent: None,
697                memory_bytes: None,
698                dog: None,
699                lambs: None,
700                last_exit: None,
701                smit: None,
702            },
703        }
704    }
705}
706
707/// Builds a [`ProcessInfo`], which is `#[non_exhaustive]` and so cannot be
708/// written as a struct literal outside this crate.
709///
710/// Every setter takes the field's own type, `Option` included, rather than
711/// the unwrapped value. That is deliberate and it is the difference between a
712/// straight port and a rewrite: the daemon already holds `Option<u32>` for a
713/// pid and `Option<f32>` for a CPU reading, so `.pid(entry.pid())` carries
714/// across unchanged where `.pid(u32)` would put an `if let` ladder at every
715/// call site. A setter is skipped, not passed `None`, when a row genuinely
716/// has nothing to say about that field.
717///
718/// Defaults for the skipped fields are the ones a not-yet-running sheep has:
719/// no pid, no uptime, no restarts, no resource reading, not a dog, never
720/// exited.
721#[derive(Debug, Clone)]
722#[must_use = "a builder that is never `build`-ed produces no ProcessInfo"]
723pub struct ProcessInfoBuilder {
724    info: ProcessInfo,
725}
726
727impl ProcessInfoBuilder {
728    /// Sets the OS pid; `None` while the sheep is not running.
729    pub fn pid(mut self, pid: Option<u32>) -> Self {
730        self.info.pid = pid;
731        self
732    }
733
734    /// Sets the restart count since registration.
735    pub fn restarts(mut self, restarts: u32) -> Self {
736        self.info.restarts = restarts;
737        self
738    }
739
740    /// Sets milliseconds since the last successful start.
741    pub fn uptime_ms(mut self, uptime_ms: u64) -> Self {
742        self.info.uptime_ms = uptime_ms;
743        self
744    }
745
746    /// Sets fold membership.
747    pub fn fold(mut self, fold: Option<String>) -> Self {
748        self.info.fold = fold;
749        self
750    }
751
752    /// Sets the resolved stdout log path.
753    pub fn out_file(mut self, out_file: Option<String>) -> Self {
754        self.info.out_file = out_file;
755        self
756    }
757
758    /// Sets the resolved stderr log path.
759    pub fn err_file(mut self, err_file: Option<String>) -> Self {
760        self.info.err_file = err_file;
761        self
762    }
763
764    /// Sets tree CPU as a percentage of one core.
765    pub fn cpu_percent(mut self, cpu_percent: Option<f32>) -> Self {
766        self.info.cpu_percent = cpu_percent;
767        self
768    }
769
770    /// Sets tree resident set size in bytes.
771    pub fn memory_bytes(mut self, memory_bytes: Option<u64>) -> Self {
772        self.info.memory_bytes = memory_bytes;
773        self
774    }
775
776    /// Marks this row a dog and names where the dog came from.
777    pub fn dog(mut self, dog: Option<DogSource>) -> Self {
778        self.info.dog = dog;
779        self
780    }
781
782    /// Sets the sheep's lamb list; `None` when this reply did not walk for one.
783    pub fn lambs(mut self, lambs: Option<Vec<Lamb>>) -> Self {
784        self.info.lambs = lambs;
785        self
786    }
787
788    /// Sets how this sheep's process most recently stopped; `None` while it
789    /// has never exited under this daemon.
790    pub fn last_exit(mut self, last_exit: Option<ExitInfo>) -> Self {
791        self.info.last_exit = last_exit;
792        self
793    }
794
795    /// Sets the marker a dog has painted on this sheep; `None` when none has.
796    pub fn smit(mut self, smit: Option<String>) -> Self {
797        self.info.smit = smit;
798        self
799    }
800
801    /// Finishes the row.
802    #[must_use]
803    pub fn build(self) -> ProcessInfo {
804        self.info
805    }
806}
807
808/// What happened when the daemon tried to deliver one sheep's triggered
809/// action.
810///
811/// `#[non_exhaustive]`: a future outcome — distinguishing a malformed reply
812/// from a well-formed one, say, or a second trigger already in flight for
813/// the same sheep — must not need a protocol version bump (IR-20).
814// wire format: changing existing variants is a breaking change
815#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
816#[serde(tag = "kind", rename_all = "snake_case")]
817#[non_exhaustive]
818pub enum ActionOutcome {
819    /// The app answered on the shepherd channel.
820    Replied {
821        /// The reply body, exactly as the app sent it.
822        body: String,
823    },
824    /// The sheep had no reachable shepherd channel for the daemon to
825    /// deliver the action over.
826    NoChannel,
827    /// The sheep is a reload drainee — mid-swap, on its way out — and the
828    /// daemon skipped it rather than deliver the action to a process
829    /// already being replaced.
830    Skipped,
831    /// The daemon delivered the action, but no reply arrived before the
832    /// app's configured action timeout elapsed.
833    TimedOut,
834}
835
836/// One matched sheep's row in a `Trigger` reply.
837///
838/// `EmptiedFile` (`crates/shep-cli/src/output/rows.rs`) is the precedent for
839/// a non-`ProcessInfo` row: a reply body has nowhere to live on
840/// [`ProcessInfo`], and [`Self::outcome`] is per-row rather than a
841/// whole-request refusal because spec §9's selector grammar (`all`,
842/// `/regex/`, `fold:`) makes a mixed flock the normal case — the same reason
843/// `Reopen`/`Flush` report per-item failure inside a success rather than
844/// failing the whole request.
845// wire format: changing this is a breaking change
846#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
847pub struct ActionReply {
848    /// The sheep's stable id.
849    pub id: u32,
850    /// The sheep's name.
851    pub name: String,
852    /// What happened when the daemon tried to deliver the action.
853    pub outcome: ActionOutcome,
854}
855
856/// What happened when the shepherd tried to deliver one signal.
857///
858/// `#[non_exhaustive]`: a future outcome — a sheep refused because it is a dog,
859/// say, or a delivery held while a stop ladder runs — must not need a protocol
860/// version bump (IR-20).
861// wire format: changing existing variants is a breaking change
862#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
863#[serde(tag = "kind", rename_all = "snake_case")]
864#[non_exhaustive]
865pub enum SignalOutcome {
866    /// The kernel accepted the signal for this sheep's pid.
867    ///
868    /// Says the signal was delivered, not that the app did anything with it.
869    /// A signal the app blocks, ignores, or has no handler for is `Delivered`
870    /// exactly like one it acts on — there is nothing on this path that could
871    /// tell the difference, and pretending otherwise would be the dishonest
872    /// half of an honest report.
873    Delivered,
874    /// The sheep is registered but has no live process to signal — stopped,
875    /// errored, or waiting out a restart backoff.
876    NotRunning,
877    /// The kernel refused the delivery; carries its reason (`ESRCH` for a
878    /// process reaped between the lookup and the syscall, `EPERM` for one this
879    /// daemon may not signal).
880    Failed {
881        /// The refusal, as the OS worded it.
882        reason: String,
883    },
884}
885
886/// One matched sheep's row in a `Signal` reply.
887///
888/// Shaped exactly like [`ActionReply`] and for the same reason: spec §9's
889/// selector grammar (`all`, `/regex/`, `fold:`) makes a mixed flock the normal
890/// case, so a per-row outcome beats a whole-request refusal that would leave
891/// the operator unable to tell which half was taken.
892// wire format: changing this is a breaking change
893#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
894pub struct SignalReply {
895    /// The sheep's stable id.
896    pub id: u32,
897    /// The sheep's name.
898    pub name: String,
899    /// What happened when the shepherd tried to deliver the signal.
900    pub outcome: SignalOutcome,
901}
902
903/// What happened when the shepherd tried to write one line to a sheep's stdin.
904///
905/// `#[non_exhaustive]`: a future outcome — a sheep refused because its pipe is
906/// backed up, say — must not need a protocol version bump (IR-20).
907// wire format: changing existing variants is a breaking change
908#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
909#[serde(tag = "kind", rename_all = "snake_case")]
910#[non_exhaustive]
911pub enum LineOutcome {
912    /// The line was written to the pipe and flushed.
913    ///
914    /// Says the bytes left the shepherd, not that the app read them. A pipe
915    /// holds 64 KiB before it blocks, so a short line to an app that never
916    /// reads its stdin is `Sent` — which is honest, because there is nothing
917    /// on this path that could tell the difference and a supervisor inventing
918    /// one would be guessing.
919    Sent,
920    /// The sheep has no stdin pipe: its config does not set `stdin = true`, or
921    /// it is not running.
922    ///
923    /// One outcome for two causes, deliberately. The row is read to answer
924    /// "why did my line not arrive", and both answers are "there is no pipe
925    /// here"; splitting them would put the operator in front of a distinction
926    /// with the same fix behind it. A sheep that is not running is visible as
927    /// such in `shep flock`, which is where that question belongs.
928    NoStdin,
929    /// The shepherd had a pipe and did not confirm a write to it; carries
930    /// why.
931    ///
932    /// Three shapes reach it: the write failed (the far end is gone —
933    /// normally the app exiting between the lookup and the write), the line
934    /// arrived to find the sheep's queue already full, or the write did not
935    /// finish inside the shepherd's own bound. The reason names which,
936    /// because the operator's next move differs.
937    ///
938    /// # The last shape does not promise the line was never written
939    ///
940    /// "Did not confirm", not "could not write", and the difference is the
941    /// operator's whole decision about retrying. A write that timed out is a
942    /// write the shepherd stopped WAITING for: the bytes may be part-written
943    /// into a pipe the app is not draining, and they land in full the moment
944    /// it does. There is no way to take them back — abandoning a write
945    /// halfway would leave a partial line in the pipe, which is worse than a
946    /// slow one.
947    ///
948    /// What the shepherd does do is drop a line still QUEUED behind that one
949    /// once its caller has given up, so retrying a `sendline` cannot pile
950    /// duplicates up behind a wedged pipe and deliver them together later.
951    /// The first line of a retry sequence is the one that can still arrive
952    /// late; treat a retry as a second command, not a repeat of the first.
953    NotWritten {
954        /// What went wrong, in plain English.
955        reason: String,
956    },
957}
958
959/// One matched sheep's row in a `SendLine` reply.
960///
961/// Same shape and same argument as [`ActionReply`] and [`SignalReply`]: spec
962/// §9's selector grammar makes a mixed flock the normal case, so an outcome
963/// per row beats a whole-request refusal.
964// wire format: changing this is a breaking change
965#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
966pub struct LineReply {
967    /// The sheep's stable id.
968    pub id: u32,
969    /// The sheep's name.
970    pub name: String,
971    /// What happened.
972    pub outcome: LineOutcome,
973}
974
975/// A dog's `[dog.<name>]` config section, carried as TOML text.
976///
977/// This travels over the socket rather than the child's environment for
978/// exactly one reason: a dog's section routinely holds webhook credentials
979/// (a Discord or Slack URL with a bearer token embedded), and the socket
980/// path keeps that out of the process table and out of crash dumps. A
981/// derived `Debug` on [`Response`] would undo that the moment something
982/// logs a reply — see the manual `Debug` below, which prints only a length.
983///
984/// `#[serde(transparent)]` makes the wire representation identical to a
985/// bare `String`: this newtype changes nothing about
986/// [`crate::protocol::PROTOCOL_VERSION`] or the pinned snapshot fixtures.
987#[derive(Clone, PartialEq, Eq, Serialize, Deserialize)]
988#[serde(transparent)]
989pub struct DogSectionToml(String);
990
991impl DogSectionToml {
992    /// The TOML text, empty when the file has no such section.
993    #[must_use]
994    pub fn as_str(&self) -> &str {
995        &self.0
996    }
997}
998
999impl From<String> for DogSectionToml {
1000    fn from(toml: String) -> Self {
1001        Self(toml)
1002    }
1003}
1004
1005impl core::ops::Deref for DogSectionToml {
1006    type Target = str;
1007
1008    fn deref(&self) -> &str {
1009        &self.0
1010    }
1011}
1012
1013/// Debug does not print the section body (IR-41) — see the type doc for why.
1014/// Exact-string-tested below (`dog_section_toml_debug_does_not_leak`) so a
1015/// future `#[derive(Debug)]` fails that test instead of silently reopening
1016/// the leak.
1017impl fmt::Debug for DogSectionToml {
1018    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
1019        write!(f, "DogSectionToml(<{} bytes>)", self.0.len())
1020    }
1021}
1022
1023/// One RPC response (pairs with [`Request`] variants)
1024///
1025/// Ten variants carry a bare `Vec<ProcessInfo>` (`Flock`, `Described`,
1026/// `Started`, `Stopped`, `Restarted`, `Reloading`, `Scaled`, `Reopened`,
1027/// `Flushed`, `Mustered`), and that repetition is intentional — do not
1028/// collapse them into one. Each names which request it answers, which is what
1029/// lets a variant diverge later without a protocol bump: `Reloading` already
1030/// means an acceptance rather than a result, `Scaled` already means only the
1031/// survivors on a scale-down rather than every matched row, and `Mustered`
1032/// already means "every sheep of every restored app" rather than "what this
1033/// call started". A single `Listing(Vec<ProcessInfo>)` would have to
1034/// relitigate all three as a breaking change.
1035// wire format: changing existing variants is a breaking change
1036//
1037// `large_enum_variant` allowed, not fixed: `DogStarted` holds a whole
1038// `ProcessInfo` inline where every other variant holds a `Vec` of them, and
1039// adding `smit` to that struct is what pushed the spread past the lint's
1040// threshold. Clippy's remedy is to box the payload, which would be a source
1041// break for every `Response::DogStarted(info)` in and out of this workspace
1042// — for nothing: a `Response` is built once per reply and serialized
1043// immediately, so the size it occupies on one stack frame in between is not
1044// a cost anybody pays. The wire shape is identical either way.
1045#[allow(clippy::large_enum_variant)]
1046#[derive(Debug, Clone, PartialEq, Serialize, Deserialize)]
1047#[serde(tag = "kind", content = "data", rename_all = "snake_case")]
1048#[non_exhaustive]
1049pub enum Response {
1050    /// Answer to `Ping`
1051    Pong,
1052    /// Answer to `ListFlock`
1053    Flock(Vec<ProcessInfo>),
1054    /// Answer to `Describe`
1055    Described(Vec<ProcessInfo>),
1056    /// Answer to `Start`
1057    Started(Vec<ProcessInfo>),
1058    /// Answer to `Stop`
1059    Stopped(Vec<ProcessInfo>),
1060    /// Answer to `Restart`
1061    Restarted(Vec<ProcessInfo>),
1062    /// Answer to `Reload` — an ACCEPTANCE, not a result, and the only reply
1063    /// in this enum carrying a flock listing that names one rather than
1064    /// finished work. [`Self::ShuttingDown`] is an acceptance too, sent
1065    /// before the daemon actually goes down, but it carries nothing.
1066    ///
1067    /// One instance costs a readiness wait plus a drain in the worst case, so
1068    /// a clustered app outlasts any deadline a client is allowed to ask for.
1069    /// The daemon therefore answers as soon as the reload is accepted, with
1070    /// the matched sheep as they stood at that moment, and the swaps report
1071    /// themselves on the bus — `process.reload`, `process.reloaded`,
1072    /// `process.reload_abandoned`. A matched sheep with nothing to replace is
1073    /// listed here as the no-op success it is, so this carries the same
1074    /// matches `Describe` would.
1075    Reloading(Vec<ProcessInfo>),
1076    /// Answer to `Scale` — the app's instances that will REMAIN, one row each,
1077    /// in instance-slot order.
1078    ///
1079    /// Scaling up, these are the instances that exist, the new ones included,
1080    /// and the answer is complete.
1081    ///
1082    /// Scaling down, these are the survivors and the departing instances are
1083    /// deliberately absent, even though they are still running their kill
1084    /// ladders as this reply is written. The operator asked for a number; this
1085    /// is that number of rows. Listing the departing ones as well would answer
1086    /// a `scale web 2` with four rows, which is the one thing the reply must
1087    /// not do. The departures report themselves on the bus as `process.delete`
1088    /// — the same split `Reloading` already makes between an acceptance and
1089    /// the swaps that follow it.
1090    Scaled(Vec<ProcessInfo>),
1091    /// Answer to `SetSmit` — every instance of the named sheep, one row
1092    /// each, each carrying the smit as it now stands.
1093    ///
1094    /// Its own variant rather than one of the ten above, on this enum's own
1095    /// stated terms: each of them names which request it answers so that one
1096    /// can diverge later without a protocol bump. A future `SetSmit` reply
1097    /// that also reported which connection holds the mark would have nowhere
1098    /// to go if this shared `Scaled`.
1099    SmitPainted(Vec<ProcessInfo>),
1100    /// Answer to `Delete` — ids removed
1101    Deleted(Vec<u32>),
1102    /// Answer to `Reopen` — every matched sheep, running or not. A sheep with
1103    /// no live log pump has nothing to reopen and is reported as a success,
1104    /// so this carries the same matches `Describe` would.
1105    Reopened(Vec<ProcessInfo>),
1106    /// Answer to `Flush` — one row per matched sheep, running or not, exactly
1107    /// as [`Self::Reopened`].
1108    ///
1109    /// One row per SHEEP, not per file emptied. Several sheep can share one
1110    /// log path (`merge_logs`, or an explicit `out_file` on a multi-instance
1111    /// app), and the daemon truncates each distinct path once — but the
1112    /// selector names sheep, so the answer names sheep, and the count here
1113    /// matches what `Describe` would return for the same selector.
1114    Flushed(Vec<ProcessInfo>),
1115    /// Answer to `Trigger` — one [`ActionReply`] row per matched sheep,
1116    /// carrying what each one answered rather than a flock listing:
1117    /// `ProcessInfo` has nowhere to hold a reply body.
1118    Triggered(Vec<ActionReply>),
1119    /// Answer to `Signal` — one [`SignalReply`] row per matched sheep.
1120    ///
1121    /// Not a flock listing: what a caller wants back is per-instance delivery,
1122    /// and [`ProcessInfo`] has nowhere to hold it. Same reasoning, and the
1123    /// same row-shaped answer, as [`Self::Triggered`].
1124    Signalled(Vec<SignalReply>),
1125    /// Answer to `SendLine` — one [`LineReply`] row per matched sheep.
1126    SentLine(Vec<LineReply>),
1127    /// Answer to `SaveRoll`
1128    RollSaved {
1129        /// Absolute path of the roll the daemon wrote
1130        path: String,
1131        /// How many apps that roll records
1132        apps: u32,
1133    },
1134    /// Answer to `Muster` — every sheep of every app the roll restored, not
1135    /// only the ones this call spawned.
1136    ///
1137    /// The distinction is the whole point of the reply. Assembling a flock
1138    /// that is already assembled starts nothing, so a listing of what this
1139    /// call spawned would be empty there — indistinguishable from an empty
1140    /// roll, which is the one outcome an operator needs to tell apart.
1141    Mustered(Vec<ProcessInfo>),
1142    /// Answer to `DogConfig` — the dog's own section, rendered back to TOML.
1143    ///
1144    /// `toml` is [`DogSectionToml`], not a bare `String`: this text
1145    /// routinely carries webhook credentials, and the newtype's manual
1146    /// `Debug` keeps them out of a `{:?}`-formatted `Response` — see that
1147    /// type's docs for why the section travels over the socket at all.
1148    DogSection {
1149        /// The `[dog.<name>]` table as TOML text, empty when the file has
1150        /// no such section
1151        toml: DogSectionToml,
1152    },
1153    /// Answer to `EnableDog` — the dog as it stands now
1154    DogStarted(ProcessInfo),
1155    /// Answer to `Subscribe`
1156    Subscribed,
1157    /// Answer to `KillDaemon`
1158    ShuttingDown,
1159}
1160
1161/// A request frame
1162// wire format: changing this is a breaking change
1163#[derive(Debug, Clone, PartialEq, Serialize, Deserialize)]
1164pub struct Envelope {
1165    /// Per-connection request id
1166    pub id: u64,
1167    /// Client-imposed deadline (daemon aborts work past it)
1168    pub deadline_ms: Option<u64>,
1169    /// The request
1170    pub body: Request,
1171}
1172
1173/// A reply frame
1174///
1175/// `result` uses serde's stock `Result` representation — the wire carries
1176/// `{"Ok": ...}` / `{"Err": ...}` (capitalized keys). Deliberate, pinned by
1177/// snapshot: stock serde beats a custom enum the client would convert anyway.
1178// wire format: changing this is a breaking change
1179#[derive(Debug, Clone, PartialEq, Serialize, Deserialize)]
1180pub struct Reply {
1181    /// Echoes [`Envelope::id`]
1182    pub id: u64,
1183    /// The outcome
1184    pub result: Result<Response, RpcError>,
1185}
1186
1187/// Handshake outcome: `HelloAck` or a typed refusal (spec §6 —
1188/// version skew is an error, not silence). Same `Ok`/`Err` wire shape
1189/// as [`Reply::result`]; refusals use [`RpcErrorCode::ProtocolMismatch`].
1190pub type HelloReply = Result<HelloAck, RpcError>;
1191
1192/// Structured RPC failure
1193// wire format: changing this is a breaking change
1194#[derive(Debug, Clone, PartialEq, Eq, Serialize, Deserialize)]
1195pub struct RpcError {
1196    /// Machine-readable code
1197    pub code: RpcErrorCode,
1198    /// Human-readable message (plain English, no theme)
1199    pub message: String,
1200}
1201
1202/// Machine-readable RPC error codes
1203// wire format: changing existing variants is a breaking change
1204#[derive(Debug, Clone, Copy, PartialEq, Eq, Serialize, Deserialize)]
1205#[serde(rename_all = "snake_case")]
1206#[non_exhaustive]
1207pub enum RpcErrorCode {
1208    /// Selector matched nothing
1209    NotFound,
1210    /// Config failed validation daemon-side
1211    InvalidConfig,
1212    /// Spawn failed (exec error, permissions)
1213    SpawnFailed,
1214    /// Handshake protocol version mismatch
1215    ProtocolMismatch,
1216    /// Unexpected daemon-side failure
1217    Internal,
1218    /// The request's deadline expired before the daemon finished it
1219    DeadlineExceeded,
1220}
1221
1222impl RpcErrorCode {
1223    /// Every variant, for code that needs to iterate them all.
1224    ///
1225    /// `#[non_exhaustive]` forces a `_` arm on any match written outside
1226    /// this crate, which would silently swallow a variant added here and
1227    /// never updated there (shep-cli's exit-code mapping test is the
1228    /// motivating case — see `crates/shep-cli/src/exit.rs`). Downstream
1229    /// crates should iterate `ALL` instead of hand-writing their own list
1230    /// that the compiler can't check.
1231    ///
1232    /// Kept honest by a private `assert_all_lists_every_variant` fn right
1233    /// below: read that doc for how a forgotten variant is caught here,
1234    /// where `#[non_exhaustive]` has no effect.
1235    pub const ALL: [Self; 6] = [
1236        Self::NotFound,
1237        Self::InvalidConfig,
1238        Self::SpawnFailed,
1239        Self::ProtocolMismatch,
1240        Self::Internal,
1241        Self::DeadlineExceeded,
1242    ];
1243
1244    /// Never called; exists purely so this crate fails to build if a
1245    /// variant is added to [`RpcErrorCode`] without also adding it to
1246    /// [`Self::ALL`].
1247    ///
1248    /// `#[non_exhaustive]` only forces a wildcard arm on matches written
1249    /// *outside* this crate — inside the crate that defines the enum, a
1250    /// match with no `_` arm is still checked for exhaustiveness (E0004),
1251    /// so a new variant breaks this build until it gets an arm here. Each
1252    /// arm indexes a fixed literal position into [`Self::ALL`], so growing
1253    /// the enum without growing the array is caught too: rustc denies an
1254    /// out-of-bounds constant array index by default.
1255    #[allow(dead_code)]
1256    const fn assert_all_lists_every_variant(code: Self) -> Self {
1257        match code {
1258            Self::NotFound => Self::ALL[0],
1259            Self::InvalidConfig => Self::ALL[1],
1260            Self::SpawnFailed => Self::ALL[2],
1261            Self::ProtocolMismatch => Self::ALL[3],
1262            Self::Internal => Self::ALL[4],
1263            Self::DeadlineExceeded => Self::ALL[5],
1264        }
1265    }
1266}
1267
1268#[cfg(test)]
1269mod tests {
1270    use super::*;
1271    use crate::config::AppConfig;
1272    use crate::protocol::PROTOCOL_VERSION;
1273    use crate::status::ProcStatus;
1274
1275    fn sample_info() -> ProcessInfo {
1276        ProcessInfo {
1277            id: 3,
1278            name: "web".to_string(),
1279            status: ProcStatus::Online,
1280            pid: Some(4242),
1281            restarts: 1,
1282            uptime_ms: 60_000,
1283            fold: Some("backend".to_string()),
1284            out_file: Some("/home/rin/.shep/logs/web-0-out.log".to_string()),
1285            err_file: Some("/home/rin/.shep/logs/web-0-err.log".to_string()),
1286            // 12.5 rather than a rounder-looking 12.3: an insta JSON
1287            // snapshot is only stable across platforms for a float the
1288            // binary representation holds exactly.
1289            cpu_percent: Some(12.5),
1290            memory_bytes: Some(48 * 1024 * 1024),
1291            dog: None,
1292            lambs: None,
1293            // `restarts: 1` above already says this sheep crashed once and
1294            // came back; a code rather than `None` is the honest exit that
1295            // caused it, not a fact this fixture invents.
1296            last_exit: Some(ExitInfo {
1297                code: Some(1),
1298                signal: None,
1299            }),
1300            smit: None,
1301        }
1302    }
1303
1304    /// fails if the builder's defaults drift from what a registered-but-not-yet
1305    /// running sheep actually looks like. A builder that quietly defaulted
1306    /// `uptime_ms` to something non-zero, or `restarts` to 1, would put a wrong
1307    /// number in front of an operator with nothing to compare it against.
1308    #[test]
1309    fn a_builder_with_nothing_set_is_a_sheep_that_has_not_run() {
1310        let info = ProcessInfo::builder(3, "web", ProcStatus::Stopped).build();
1311
1312        assert_eq!(info.id, 3);
1313        assert_eq!(info.name, "web");
1314        assert_eq!(info.status, ProcStatus::Stopped);
1315        assert_eq!(info.pid, None);
1316        assert_eq!(info.restarts, 0);
1317        assert_eq!(info.uptime_ms, 0);
1318        assert_eq!(info.fold, None);
1319        assert_eq!(info.out_file, None);
1320        assert_eq!(info.err_file, None);
1321        assert_eq!(info.cpu_percent, None);
1322        assert_eq!(info.memory_bytes, None);
1323        assert_eq!(info.dog, None);
1324        assert_eq!(info.lambs, None);
1325        assert_eq!(info.last_exit, None);
1326    }
1327
1328    /// fails if any setter writes a field other than its own — the failure a
1329    /// twelve-field builder is most likely to ship, and one no individual
1330    /// round-trip test would catch. Every field is given a value distinct from
1331    /// every other field's default, so a copy-pasted setter body shows up as a
1332    /// mismatch rather than as a coincidence.
1333    #[test]
1334    fn every_setter_writes_its_own_field_and_no_other() {
1335        let built = ProcessInfo::builder(3, "web", ProcStatus::Online)
1336            .pid(Some(4242))
1337            .restarts(1)
1338            .uptime_ms(60_000)
1339            .fold(Some("backend".to_string()))
1340            .out_file(Some("/home/rin/.shep/logs/web-0-out.log".to_string()))
1341            .err_file(Some("/home/rin/.shep/logs/web-0-err.log".to_string()))
1342            .cpu_percent(Some(12.5))
1343            .memory_bytes(Some(48 * 1024 * 1024))
1344            .dog(None)
1345            .last_exit(Some(ExitInfo {
1346                code: Some(1),
1347                signal: None,
1348            }))
1349            .build();
1350
1351        // `sample_info()` is still a struct literal, on purpose: it is the one
1352        // place in the workspace that names every field by hand, so this
1353        // comparison fails the day the struct grows a field the builder cannot
1354        // set. That is the point of comparing against it rather than against
1355        // another builder call.
1356        assert_eq!(built, sample_info());
1357
1358        // `dog` is the one field the comparison above cannot speak for, and it
1359        // is the field the whole dogs subsystem reads. `sample_info()`'s `dog`
1360        // is `None`, which is also the builder's default, so a `dog` setter with
1361        // an EMPTY BODY passes the assert_eq! above and passes it for the wrong
1362        // reason. `sample_info()` cannot be changed to `Some(..)` to fix that —
1363        // it feeds `reply_wire_snapshots` and `bus_event_wire_snapshots`, so
1364        // altering it moves pinned bytes. So the field gets its own line, with a
1365        // value nothing defaults to.
1366        assert_eq!(
1367            ProcessInfo::builder(1, "metrics", ProcStatus::Online)
1368                .dog(Some(DogSource::BuiltIn))
1369                .build()
1370                .dog,
1371            Some(DogSource::BuiltIn),
1372            "an empty `dog` setter body is invisible to the comparison above"
1373        );
1374
1375        // `lambs` is the second field the comparison above cannot speak for,
1376        // for the identical reason `dog` is the first: `sample_info()`'s value
1377        // is `None`, which is also the builder's default, so an EMPTY `lambs`
1378        // setter body passes the `assert_eq!` above. And `sample_info()` still
1379        // cannot be changed to a `Some(..)` — it feeds `reply_wire_snapshots`
1380        // and `bus_event_wire_snapshots`, so altering it moves pinned bytes.
1381        assert_eq!(
1382            ProcessInfo::builder(1, "web", ProcStatus::Online)
1383                .lambs(Some(vec![Lamb::new(4243, "node")]))
1384                .build()
1385                .lambs,
1386            Some(vec![Lamb::new(4243, "node")]),
1387            "an empty `lambs` setter body is invisible to the comparison above"
1388        );
1389
1390        // `smit` is the third, on the same terms, and it is the field a
1391        // third party writes — so an empty setter body here would silently
1392        // drop every dog's mark rather than merely lose a decoration.
1393        assert_eq!(
1394            ProcessInfo::builder(1, "web", ProcStatus::Online)
1395                .smit(Some("\u{25b2} main@a1b2c3".to_string()))
1396                .build()
1397                .smit
1398                .as_deref(),
1399            Some("\u{25b2} main@a1b2c3"),
1400            "an empty `smit` setter body is invisible to the comparison above"
1401        );
1402    }
1403
1404    /// fails if `lambs` collapses to a bare `Vec`. The three states are the point:
1405    /// a peer that predates the field and a reply that did not walk the tree are
1406    /// both `None`, and a sheep that really has no children is `Some(vec![])`. A
1407    /// `Vec` would render the first two as "this sheep has no lambs", which is a
1408    /// claim neither of them makes.
1409    #[test]
1410    fn lambs_distinguishes_not_walked_from_walked_and_empty() {
1411        let not_walked = ProcessInfo::builder(1, "web", ProcStatus::Online).build();
1412        assert_eq!(not_walked.lambs, None);
1413
1414        let walked_empty = ProcessInfo::builder(1, "web", ProcStatus::Online)
1415            .lambs(Some(Vec::new()))
1416            .build();
1417        assert_eq!(walked_empty.lambs, Some(Vec::new()));
1418    }
1419
1420    /// fails if a `ProcessInfo` from a daemon that predates the field stops
1421    /// deserializing. That is the whole reason the field is optional and the reason
1422    /// `PROTOCOL_VERSION` does not move for it — an old daemon's reply carries no
1423    /// `lambs` key at all, and a required field there would mean a new client could
1424    /// not list against an old daemon.
1425    #[test]
1426    fn a_process_info_without_a_lambs_key_still_deserializes() {
1427        let fixture = r#"{
1428            "id": 3, "name": "web", "status": "online", "pid": 4242,
1429            "restarts": 0, "uptime_ms": 100, "fold": null,
1430            "out_file": null, "err_file": null,
1431            "cpu_percent": null, "memory_bytes": null, "dog": null
1432        }"#;
1433        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
1434        assert_eq!(info.lambs, None);
1435    }
1436
1437    /// fails if a lamb stops carrying its name, or starts carrying a command line.
1438    /// The name is `sysinfo`'s executable name, never argv — argv routinely holds
1439    /// credentials (`--password=`, `?token=`) and `shep describe --format json` is
1440    /// output people paste into issues.
1441    #[test]
1442    fn a_lamb_is_a_pid_and_an_executable_name() {
1443        let lamb = Lamb::new(4243, "node");
1444        let json = serde_json::to_string(&lamb).unwrap();
1445        assert_eq!(json, r#"{"pid":4243,"name":"node"}"#);
1446        assert_eq!(serde_json::from_str::<Lamb>(&json).unwrap(), lamb);
1447    }
1448
1449    /// fails if `DogSource` loses its `tag = "kind"` or its snake_case
1450    /// rename, and fails if `Adopted`'s `path` is renamed — any of the three
1451    /// changes one of these two strings while every type-level test in this
1452    /// module keeps passing. The marker is what the CLI splits two tables on
1453    /// and what the metrics dog reports a health gauge from, so a silent
1454    /// rename here is a silently empty dogs table.
1455    #[test]
1456    fn a_dog_source_serializes_snake_case_under_its_kind() {
1457        assert_eq!(
1458            serde_json::to_string(&DogSource::BuiltIn).unwrap(),
1459            r#"{"kind":"built_in"}"#
1460        );
1461        let adopted = DogSource::Adopted {
1462            path: "/usr/local/bin/shep-otel".to_string(),
1463        };
1464        let wire = r#"{"kind":"adopted","path":"/usr/local/bin/shep-otel"}"#;
1465        assert_eq!(serde_json::to_string(&adopted).unwrap(), wire);
1466        assert_eq!(serde_json::from_str::<DogSource>(wire).unwrap(), adopted);
1467    }
1468
1469    /// fails if `dog` stops being optional. A daemon built before dogs
1470    /// sends a reply with no such key and still announces protocol 1, so a
1471    /// required field would make a current client unable to list against it
1472    /// at all — the same skew rule `out_file` and `cpu_percent` are pinned
1473    /// under, and the same committed-byte-fixture proof.
1474    #[test]
1475    fn v1_process_info_without_a_dog_marker_still_deserializes() {
1476        let fixture = r#"{"id":3,"name":"web","status":"online","pid":4242,"restarts":1,"uptime_ms":60000,"fold":"backend","out_file":"/l/o.log","err_file":"/l/e.log","cpu_percent":12.5,"memory_bytes":50331648}"#;
1477        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
1478        assert_eq!(info.dog, None);
1479    }
1480
1481    /// fails if `last_exit` stops being optional. A daemon built before this
1482    /// field sends a reply with no such key and still announces protocol 1 —
1483    /// the same skew rule every other field added after `Hello`/`HelloAck`
1484    /// were fixed is pinned under.
1485    ///
1486    /// This is also the empirical proof behind task 49's own open question:
1487    /// none of `ProcessInfo`'s fields carry `#[serde(default)]`, and there is
1488    /// no container-level one either, yet the doc comments on `out_file` and
1489    /// `cpu_percent` both claim "`None` only when the peer daemon predates
1490    /// this field" as though one existed. Serde's `Deserialize` derive
1491    /// special-cases a field whose type is syntactically `Option<...>`: a
1492    /// missing key resolves to `None` without `#[serde(default)]` doing
1493    /// anything, because the derive macro recognizes the `Option` wrapper
1494    /// itself and generates that fallback for it. Those doc comments were
1495    /// right; they just named the wrong mechanism, or none. This test pins
1496    /// the real one for `last_exit` specifically — with `dog` and `lambs`
1497    /// present but `last_exit` genuinely absent from the JSON below — rather
1498    /// than leaving it as an inference from `v1_process_info_without_a_dog_
1499    /// marker_still_deserializes` above.
1500    #[test]
1501    fn a_process_info_without_a_last_exit_key_still_deserializes() {
1502        let fixture = r#"{"id":3,"name":"web","status":"online","pid":4242,"restarts":1,"uptime_ms":60000,"fold":"backend","out_file":"/l/o.log","err_file":"/l/e.log","cpu_percent":12.5,"memory_bytes":50331648,"dog":null,"lambs":null}"#;
1503        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
1504        assert_eq!(info.last_exit, None);
1505    }
1506
1507    /// fails if a `Signal` frame stops carrying the signal name as plain text, or
1508    /// if the outcome rows stop distinguishing their three cases. The name travels
1509    /// as a `String` on purpose (`AppConfig::kill_signal` does the same): the wire
1510    /// stays readable and the daemon re-validates, which it has to do anyway
1511    /// because peer input is untrusted.
1512    #[test]
1513    fn a_signal_request_and_its_reply_round_trip() {
1514        let request = Request::Signal {
1515            selector: SelectorSpec::Name("web".to_string()),
1516            signal: "SIGHUP".to_string(),
1517        };
1518        let json = serde_json::to_string(&request).unwrap();
1519        assert_eq!(serde_json::from_str::<Request>(&json).unwrap(), request);
1520
1521        let reply = Response::Signalled(vec![
1522            SignalReply {
1523                id: 1,
1524                name: "web".to_string(),
1525                outcome: SignalOutcome::Delivered,
1526            },
1527            SignalReply {
1528                id: 2,
1529                name: "web".to_string(),
1530                outcome: SignalOutcome::NotRunning,
1531            },
1532            SignalReply {
1533                id: 3,
1534                name: "api".to_string(),
1535                outcome: SignalOutcome::Failed {
1536                    reason: "no such process".to_string(),
1537                },
1538            },
1539        ]);
1540        let json = serde_json::to_string(&reply).unwrap();
1541        assert_eq!(serde_json::from_str::<Response>(&json).unwrap(), reply);
1542        // The three tags, spelled out: a variant renamed in Rust changes these
1543        // strings mechanically, compiles clean, and breaks a client matching on
1544        // them with nothing to say why.
1545        assert!(json.contains(r#""kind":"delivered""#), "{json}");
1546        assert!(json.contains(r#""kind":"not_running""#), "{json}");
1547        assert!(json.contains(r#""kind":"failed""#), "{json}");
1548    }
1549
1550    /// fails if `Scale` grows a selector. It takes an app NAME, and that is the
1551    /// design: `instances` is a per-app number and instance slots are allocated
1552    /// per name-group, so `shep stock /web.*/ 4` would have to mean either four
1553    /// each or four total and there is no reading of it that is not a guess.
1554    #[test]
1555    fn a_scale_request_names_one_app_and_a_count() {
1556        let request = Request::Scale {
1557            name: "web".to_string(),
1558            count: 4,
1559        };
1560        let json = serde_json::to_string(&request).unwrap();
1561        assert_eq!(serde_json::from_str::<Request>(&json).unwrap(), request);
1562        assert!(json.contains(r#""kind":"scale""#), "{json}");
1563        assert!(json.contains(r#""name":"web""#), "{json}");
1564        // No `selector` key at all — the shape that says this verb is not one of
1565        // the selector-taking family.
1566        assert!(!json.contains("selector"), "{json}");
1567    }
1568
1569    /// fails if `Scaled` stops being distinguishable from the eight other replies
1570    /// carrying a bare `Vec<ProcessInfo>`. Each of those names which request it
1571    /// answers precisely so it can diverge later without a protocol bump — the
1572    /// enum's own doc says not to collapse them, and this is the test that notices.
1573    #[test]
1574    fn a_scaled_reply_carries_its_own_tag() {
1575        let json = serde_json::to_string(&Response::Scaled(vec![])).unwrap();
1576        assert_eq!(json, r#"{"kind":"scaled","data":[]}"#);
1577    }
1578
1579    /// fails if the three outcomes stop being tellable apart on the wire, or if
1580    /// `NotWritten` stops carrying its reason. That reason is the only thing that
1581    /// distinguishes "the app is not reading its stdin" from "the pipe broke", and
1582    /// the operator's next move differs between them.
1583    #[test]
1584    fn a_send_line_request_and_its_reply_round_trip() {
1585        let request = Request::SendLine {
1586            selector: SelectorSpec::Name("repl".to_string()),
1587            line: "reload-config".to_string(),
1588        };
1589        let json = serde_json::to_string(&request).unwrap();
1590        assert_eq!(serde_json::from_str::<Request>(&json).unwrap(), request);
1591
1592        let reply = Response::SentLine(vec![
1593            LineReply {
1594                id: 1,
1595                name: "repl".to_string(),
1596                outcome: LineOutcome::Sent,
1597            },
1598            LineReply {
1599                id: 2,
1600                name: "web".to_string(),
1601                outcome: LineOutcome::NoStdin,
1602            },
1603            LineReply {
1604                id: 3,
1605                name: "stuck".to_string(),
1606                outcome: LineOutcome::NotWritten {
1607                    reason: "the app did not read its stdin within 2s".to_string(),
1608                },
1609            },
1610        ]);
1611        let json = serde_json::to_string(&reply).unwrap();
1612        assert_eq!(serde_json::from_str::<Response>(&json).unwrap(), reply);
1613        assert!(json.contains(r#""kind":"sent""#), "{json}");
1614        assert!(json.contains(r#""kind":"no_stdin""#), "{json}");
1615        assert!(json.contains("did not read its stdin"), "{json}");
1616    }
1617
1618    /// fails if a newline can ride inside the line. The wire carries ONE line and
1619    /// the writer appends the terminator, so an embedded newline would deliver two
1620    /// commands where the operator typed one — the shape that turns a typo into an
1621    /// unintended second instruction to a REPL.
1622    #[test]
1623    fn a_line_carrying_a_newline_is_still_one_field_on_the_wire() {
1624        let request = Request::SendLine {
1625            selector: SelectorSpec::All,
1626            line: "a\nb".to_string(),
1627        };
1628        let json = serde_json::to_string(&request).unwrap();
1629        // Escaped, not literal: the frame stays one JSON object. Rejecting it is
1630        // the daemon's job (see `shep whisper`), not serde's, and this pins that
1631        // the wire itself does not quietly split it.
1632        assert!(json.contains(r#""line":"a\nb""#), "{json}");
1633        assert_eq!(serde_json::from_str::<Request>(&json).unwrap(), request);
1634    }
1635
1636    #[test]
1637    fn request_wire_snapshots() {
1638        let requests = vec![
1639            Envelope {
1640                id: 1,
1641                deadline_ms: Some(5000),
1642                body: Request::Ping,
1643            },
1644            Envelope {
1645                id: 2,
1646                deadline_ms: None,
1647                body: Request::ListFlock,
1648            },
1649            Envelope {
1650                id: 3,
1651                deadline_ms: None,
1652                body: Request::Stop {
1653                    selector: SelectorSpec::Name("web".to_string()),
1654                },
1655            },
1656            Envelope {
1657                id: 4,
1658                deadline_ms: None,
1659                body: Request::Start {
1660                    apps: vec![AppConfig::minimal("web", "./srv")],
1661                },
1662            },
1663            // `All` rather than a named sheep: it is the selector `shep
1664            // reopen` sends when given no argument, and the one a signal can
1665            // ever mean, so it is the row worth pinning.
1666            Envelope {
1667                id: 5,
1668                deadline_ms: None,
1669                body: Request::Reopen {
1670                    selector: SelectorSpec::All,
1671                },
1672            },
1673            // Deliberately the same selector as the row above, so the two
1674            // log-plane rows differ by their `kind` and by nothing else: a
1675            // `Flush` that serialized under `reopen`'s tag — the shape a
1676            // copy-pasted variant takes — shows up here as two identical
1677            // objects rather than as a diff a reader has to compare field by
1678            // field. `shep flush` demands an explicit selector, so `all` is
1679            // not a default here the way it is for `reopen`; it is simply the
1680            // widest thing an operator can type.
1681            Envelope {
1682                id: 6,
1683                deadline_ms: None,
1684                body: Request::Flush {
1685                    selector: SelectorSpec::All,
1686                },
1687            },
1688            // The same selector as the `stop` row above, for the reason the
1689            // pair above share theirs: `reload` is the third verb that
1690            // demands an explicit selector and replaces what it matches, so
1691            // the variant it would be copy-pasted from is `stop`. Serialized
1692            // under `stop`'s tag it shows up here as two identical objects
1693            // rather than as a diff a reader has to compare field by field.
1694            Envelope {
1695                id: 7,
1696                deadline_ms: None,
1697                body: Request::Reload {
1698                    selector: SelectorSpec::Name("web".to_string()),
1699                },
1700            },
1701            // `action`/`params` here match the spec's own §9 example
1702            // (`trigger web set-log-level debug`) and channel.rs's
1703            // with-params fixture verbatim, so a reader tracing a trigger
1704            // from the CLI through the client↔daemon wire to the fd-3 wire
1705            // sees the same two strings at every hop rather than three
1706            // unrelated examples.
1707            Envelope {
1708                id: 8,
1709                deadline_ms: None,
1710                body: Request::Trigger {
1711                    selector: SelectorSpec::Name("web".to_string()),
1712                    action: "set-log-level".to_string(),
1713                    params: Some("debug".to_string()),
1714                },
1715            },
1716            // The first fieldless verb added since `Ping`/`ListFlock`, and
1717            // pinned for that reason: a fieldless variant serializes as a
1718            // bare `{"kind":"..."}` with no `selector` key at all, so a
1719            // reader comparing this row against `stop`'s sees the whole
1720            // difference between the two shapes in one place.
1721            Envelope {
1722                id: 9,
1723                deadline_ms: None,
1724                body: Request::SaveRoll,
1725            },
1726            // Paired with the `save_roll` row above so the two halves of the
1727            // roll — the direction that writes it and the direction that
1728            // assembles from it — sit next to each other, differing by their
1729            // `kind` and by nothing else.
1730            Envelope {
1731                id: 10,
1732                deadline_ms: None,
1733                body: Request::Muster,
1734            },
1735            // The three dog verbs together, in the order an operator meets
1736            // them: ask for a section, start a dog, stop one. Adjacent on
1737            // purpose — `enable_dog` and `disable_dog` differ by their
1738            // `kind` and by `source`, so a `DisableDog` accidentally given
1739            // `EnableDog`'s tag shows up here as two near-identical objects
1740            // rather than as a diff a reader has to compare field by field.
1741            Envelope {
1742                id: 11,
1743                deadline_ms: None,
1744                body: Request::DogConfig {
1745                    name: "bark".to_string(),
1746                },
1747            },
1748            Envelope {
1749                id: 12,
1750                deadline_ms: None,
1751                body: Request::EnableDog {
1752                    name: "metrics".to_string(),
1753                    source: DogSource::BuiltIn,
1754                },
1755            },
1756            Envelope {
1757                id: 13,
1758                deadline_ms: None,
1759                body: Request::DisableDog {
1760                    name: "metrics".to_string(),
1761                },
1762            },
1763            // The three selector shapes no fixture reached before Phase 10.
1764            // Grouped and adjacent on purpose: `Id`, `Regex` and `Fold` are
1765            // three newtypes over three different inner types, and the wire
1766            // tells them apart only by their own `kind` tag — a `Fold` that
1767            // serialized under `regex`'s tag is a `shep restart fold:api`
1768            // that silently becomes a regex match, which is a wrong set of
1769            // sheep restarted and not an error anyone sees.
1770            Envelope {
1771                id: 14,
1772                deadline_ms: None,
1773                body: Request::Describe {
1774                    selector: SelectorSpec::Id(7),
1775                },
1776            },
1777            Envelope {
1778                id: 15,
1779                deadline_ms: None,
1780                body: Request::Describe {
1781                    selector: SelectorSpec::Regex("^web-".to_string()),
1782                },
1783            },
1784            Envelope {
1785                id: 16,
1786                deadline_ms: None,
1787                body: Request::Describe {
1788                    selector: SelectorSpec::Fold("api".to_string()),
1789                },
1790            },
1791            // `SIGHUP` rather than `SIGTERM`: TERM is what the stop ladder
1792            // already sends, so a fixture using it could not tell a `signal`
1793            // frame from a stop's. HUP is the signal this verb exists for.
1794            Envelope {
1795                id: 17,
1796                deadline_ms: None,
1797                body: Request::Signal {
1798                    selector: SelectorSpec::Name("web".to_string()),
1799                    signal: "SIGHUP".to_string(),
1800                },
1801            },
1802            // The one verb in this enum whose body has no `selector` key at
1803            // all — a reader comparing this row against `stop`'s sees the
1804            // whole difference in one place.
1805            Envelope {
1806                id: 18,
1807                deadline_ms: None,
1808                body: Request::Scale {
1809                    name: "web".to_string(),
1810                    count: 4,
1811                },
1812            },
1813            // `SelectorSpec::All` rather than a named sheep, mirroring the
1814            // `reopen`/`flush` rows above: it is the widest thing an operator
1815            // can type, and the line carries no terminator on the wire — the
1816            // shepherd appends it — so a fixture with one proves that half of
1817            // the contract too.
1818            Envelope {
1819                id: 19,
1820                deadline_ms: None,
1821                body: Request::SendLine {
1822                    selector: SelectorSpec::All,
1823                    line: "reload-config".to_string(),
1824                },
1825            },
1826            // The second verb here with no `selector` key, and the only one
1827            // whose payload a third party writes. Both halves of its
1828            // `Option` are pinned — a paint and a clear — because a dog
1829            // author reading this fixture needs the clear frame's exact
1830            // shape and would otherwise have to guess `null`.
1831            Envelope {
1832                id: 20,
1833                deadline_ms: None,
1834                body: Request::SetSmit {
1835                    sheep: "web".to_string(),
1836                    smit: Some(
1837                        "\u{25b2} main@a1b2c3"
1838                            .parse()
1839                            .expect("the reference smit is valid"),
1840                    ),
1841                },
1842            },
1843            Envelope {
1844                id: 21,
1845                deadline_ms: None,
1846                body: Request::SetSmit {
1847                    sheep: "web".to_string(),
1848                    smit: None,
1849                },
1850            },
1851        ];
1852        insta::assert_json_snapshot!("request_wire_v1", requests);
1853    }
1854
1855    #[test]
1856    fn reply_wire_snapshots() {
1857        let replies = vec![
1858            Reply {
1859                id: 1,
1860                result: Ok(Response::Pong),
1861            },
1862            Reply {
1863                id: 2,
1864                result: Ok(Response::Flock(vec![sample_info()])),
1865            },
1866            Reply {
1867                id: 3,
1868                result: Err(RpcError {
1869                    code: RpcErrorCode::NotFound,
1870                    message: "no sheep matches `web`".to_string(),
1871                }),
1872            },
1873            // Unlike `Reopened`/`Flushed`/`Reloading` above (all wire-identical
1874            // to `Flock`, just under a different `kind` tag, so pinning `Flock`
1875            // once already covers their shape), `Triggered` carries a genuinely
1876            // different row — `ActionReply` is not a `ProcessInfo` — so it earns
1877            // its own entry. `Replied` is the struct-shaped variant of
1878            // `ActionOutcome`, and so the one worth pinning here: the three
1879            // unit variants serialize as bare `{"kind":"..."}`, a shape already
1880            // proven by every fieldless variant elsewhere on this wire.
1881            Reply {
1882                id: 4,
1883                result: Ok(Response::Triggered(vec![ActionReply {
1884                    id: 3,
1885                    name: "web".to_string(),
1886                    outcome: ActionOutcome::Replied {
1887                        body: "ok".to_string(),
1888                    },
1889                }])),
1890            },
1891            // The only struct-shaped `Response` variant, so the one worth
1892            // pinning here: every other variant on this wire is a newtype
1893            // over a Vec or a unit, both shapes already proven above.
1894            Reply {
1895                id: 5,
1896                result: Ok(Response::RollSaved {
1897                    path: "/home/rin/.shep/flock.json".to_string(),
1898                    apps: 2,
1899                }),
1900            },
1901            // `sample_info()` above pins the absent marker (a sheep's
1902            // `"dog": null`); this row is the only place the present one is
1903            // pinned, and `Adopted` rather than `BuiltIn` because it is the
1904            // variant carrying a payload — the unit variant's shape is
1905            // already proven by every fieldless variant on this wire.
1906            Reply {
1907                id: 6,
1908                result: Ok(Response::Flock(vec![ProcessInfo {
1909                    id: 7,
1910                    name: "otel".to_string(),
1911                    dog: Some(DogSource::Adopted {
1912                        path: "/usr/local/bin/shep-otel".to_string(),
1913                    }),
1914                    ..sample_info()
1915                }])),
1916            },
1917            // The opaque blob, pinned as a blob: the daemon renders a TOML
1918            // table into a string and never a typed structure, so what this
1919            // row proves is that the section crosses the wire as text.
1920            Reply {
1921                id: 7,
1922                result: Ok(Response::DogSection {
1923                    toml: "port = 9615\n".to_string().into(),
1924                }),
1925            },
1926            // The only `Response` variant carrying a BARE `ProcessInfo`
1927            // rather than a `Vec` of them: `enable` starts exactly one dog,
1928            // and a one-element list would invite a reader to wonder when it
1929            // holds two.
1930            Reply {
1931                id: 8,
1932                result: Ok(Response::DogStarted(ProcessInfo {
1933                    id: 4,
1934                    name: "metrics".to_string(),
1935                    dog: Some(DogSource::BuiltIn),
1936                    ..sample_info()
1937                })),
1938            },
1939            // The eleven variants no fixture reached before Phase 10. The
1940            // existing comment on the `Triggered` row is right that pinning
1941            // `Flock` once already proves the `Vec<ProcessInfo>` SHAPE — but
1942            // it does not prove any of these variants' own `kind` tags, and
1943            // three of them are not `Vec<ProcessInfo>`-shaped at all
1944            // (`Deleted` is a `Vec<u32>`, `Subscribed` and `ShuttingDown`
1945            // carry nothing). Each row below therefore carries the emptiest
1946            // legal body: what is being pinned here is the tag, and a body
1947            // repeated eight times would bury it.
1948            Reply {
1949                id: 9,
1950                result: Ok(Response::Described(vec![])),
1951            },
1952            Reply {
1953                id: 10,
1954                result: Ok(Response::Started(vec![])),
1955            },
1956            Reply {
1957                id: 11,
1958                result: Ok(Response::Stopped(vec![])),
1959            },
1960            Reply {
1961                id: 12,
1962                result: Ok(Response::Restarted(vec![])),
1963            },
1964            Reply {
1965                id: 13,
1966                result: Ok(Response::Reloading(vec![])),
1967            },
1968            Reply {
1969                id: 14,
1970                result: Ok(Response::Deleted(vec![7, 8])),
1971            },
1972            Reply {
1973                id: 15,
1974                result: Ok(Response::Reopened(vec![])),
1975            },
1976            Reply {
1977                id: 16,
1978                result: Ok(Response::Flushed(vec![])),
1979            },
1980            Reply {
1981                id: 17,
1982                result: Ok(Response::Mustered(vec![])),
1983            },
1984            Reply {
1985                id: 18,
1986                result: Ok(Response::Subscribed),
1987            },
1988            Reply {
1989                id: 19,
1990                result: Ok(Response::ShuttingDown),
1991            },
1992            // `Signalled`, mirroring the `Triggered` row above: three rows,
1993            // one per `SignalOutcome` variant, so a reader sees the whole
1994            // shape of the reply in one pinned fixture rather than one row
1995            // that happens to hit `Delivered` and leaves the other two tags
1996            // unproven.
1997            Reply {
1998                id: 20,
1999                result: Ok(Response::Signalled(vec![
2000                    SignalReply {
2001                        id: 1,
2002                        name: "web".to_string(),
2003                        outcome: SignalOutcome::Delivered,
2004                    },
2005                    SignalReply {
2006                        id: 2,
2007                        name: "web".to_string(),
2008                        outcome: SignalOutcome::NotRunning,
2009                    },
2010                    SignalReply {
2011                        id: 3,
2012                        name: "api".to_string(),
2013                        outcome: SignalOutcome::Failed {
2014                            reason: "no such process".to_string(),
2015                        },
2016                    },
2017                ])),
2018            },
2019            Reply {
2020                id: 21,
2021                result: Ok(Response::Scaled(vec![sample_info()])),
2022            },
2023            // `SentLine`, mirroring the `Signalled` row above: three rows, one
2024            // per `LineOutcome` variant, so a reader sees the whole shape of
2025            // the reply in one pinned fixture rather than one row that
2026            // happens to hit `Sent` and leaves the other two tags unproven.
2027            Reply {
2028                id: 22,
2029                result: Ok(Response::SentLine(vec![
2030                    LineReply {
2031                        id: 1,
2032                        name: "repl".to_string(),
2033                        outcome: LineOutcome::Sent,
2034                    },
2035                    LineReply {
2036                        id: 2,
2037                        name: "web".to_string(),
2038                        outcome: LineOutcome::NoStdin,
2039                    },
2040                    LineReply {
2041                        id: 3,
2042                        name: "stuck".to_string(),
2043                        outcome: LineOutcome::NotWritten {
2044                            reason: "the app did not read its stdin within 2s".to_string(),
2045                        },
2046                    },
2047                ])),
2048            },
2049            // A `Described` row with a real lamb tree. The `null` shape is pinned
2050            // on every other row here; this is the one that pins what a walked
2051            // sheep serializes as, which is the shape a `describe` consumer
2052            // actually parses.
2053            Reply {
2054                id: 23,
2055                result: Ok(Response::Described(vec![
2056                    ProcessInfo::builder(3, "web", ProcStatus::Online)
2057                        .pid(Some(4242))
2058                        .lambs(Some(vec![Lamb::new(4243, "node"), Lamb::new(4244, "sh")]))
2059                        .build(),
2060                ])),
2061            },
2062            // `sample_info()` pins `last_exit`'s "exited normally" shape
2063            // (`code` set, `signal` absent) on every row above; this is the
2064            // only place the other one — killed by a signal, `code` absent
2065            // — is pinned. `SIGTERM`'s raw number (15) rather than a
2066            // symbolic one, because [`ExitInfo::signal`]'s own doc says this
2067            // crate carries no name for it; naming one is a job for
2068            // whichever OS-aware layer renders this field.
2069            Reply {
2070                id: 24,
2071                result: Ok(Response::Flock(vec![
2072                    ProcessInfo::builder(5, "worker", ProcStatus::Stopped)
2073                        .restarts(1)
2074                        .last_exit(Some(ExitInfo {
2075                            code: None,
2076                            signal: Some(15),
2077                        }))
2078                        .build(),
2079                ])),
2080            },
2081            // The one row that pins a smit on the wire. `sample_info()`
2082            // carries none, deliberately (see `every_setter_writes_its_own_
2083            // field_and_no_other` for why it cannot), so without this row
2084            // the field is pinned only in its absent shape — and the absent
2085            // shape is not the one a dog's reader has to parse.
2086            Reply {
2087                id: 25,
2088                result: Ok(Response::SmitPainted(vec![
2089                    ProcessInfo::builder(3, "web", ProcStatus::Online)
2090                        .pid(Some(4242))
2091                        .smit(Some("\u{25b2} main@a1b2c3".to_string()))
2092                        .build(),
2093                ])),
2094            },
2095        ];
2096        insta::assert_json_snapshot!("reply_wire_v1", replies);
2097    }
2098
2099    /// fails if the new field breaks an older peer, on the same terms as
2100    /// `last_exit` and `lambs` before it. A daemon that predates smits sends
2101    /// no `smit` key, and this decoding to `None` rather than erroring is
2102    /// what keeps `PROTOCOL_VERSION` at 1.
2103    #[test]
2104    fn a_process_info_without_a_smit_key_still_deserializes() {
2105        let fixture = r#"{"id":1,"name":"web","status":"online","pid":42,"restarts":0,"uptime_ms":10,"fold":null,"out_file":null,"err_file":null,"cpu_percent":null,"memory_bytes":null,"dog":null,"lambs":null,"last_exit":null}"#;
2106        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
2107        assert_eq!(info.smit, None);
2108    }
2109
2110    /// fails if the daemon accepts a smit it should refuse. [`Smit`] must
2111    /// validate on the way IN, not only in `FromStr`: `docs/dogs.md` tells
2112    /// dog authors to speak this wire directly, so a dog written in another
2113    /// language never runs our parser.
2114    #[test]
2115    fn a_smit_is_validated_when_it_is_deserialized_not_only_when_parsed() {
2116        for bad in [
2117            r#""\u001b[2Jgone""#.to_string(),                    // an escape
2118            r#""a\nb""#.to_string(),                             // a newline
2119            r#""""#.to_string(),                                 // empty
2120            r#""   ""#.to_string(),                              // whitespace
2121            format!(r#""{}""#, "x".repeat(Smit::MAX_CHARS + 1)), // too long
2122        ] {
2123            assert!(
2124                serde_json::from_str::<Smit>(&bad).is_err(),
2125                "a daemon must refuse this on the wire: {bad}"
2126            );
2127        }
2128        assert!(serde_json::from_str::<Smit>(r#""\u25b2 main@a1b2c3""#).is_ok());
2129    }
2130
2131    /// fails if a smit stops travelling as a bare JSON string. It is a
2132    /// newtype with a hand-written `Deserialize`, and the pair only agrees
2133    /// with itself if the serialize side stays transparent — a `Smit` that
2134    /// serialized as `{"0":"..."}` would round-trip through nothing.
2135    #[test]
2136    fn a_smit_travels_as_a_bare_string() {
2137        let smit: Smit = "\u{25b2} main@a1b2c3".parse().expect("valid");
2138        let json = serde_json::to_string(&smit).unwrap();
2139        assert_eq!(json, "\"\u{25b2} main@a1b2c3\"");
2140        assert_eq!(serde_json::from_str::<Smit>(&json).unwrap(), smit);
2141    }
2142
2143    /// fails if the cap starts counting bytes or display columns. Forty-eight
2144    /// CJK characters are 144 bytes and roughly 96 columns, and all three
2145    /// numbers disagree — a byte cap would refuse this legitimate smit at a
2146    /// third of its apparent length.
2147    #[test]
2148    fn a_smit_is_capped_in_characters_not_bytes() {
2149        let cjk = "\u{7f8a}".repeat(Smit::MAX_CHARS);
2150        assert_eq!(cjk.len(), Smit::MAX_CHARS * 3);
2151        assert!(cjk.parse::<Smit>().is_ok(), "{cjk}");
2152        assert_eq!(
2153            "x".repeat(Smit::MAX_CHARS + 1).parse::<Smit>(),
2154            Err(SmitError::TooLong {
2155                chars: Smit::MAX_CHARS + 1
2156            })
2157        );
2158    }
2159
2160    /// fails if a smit is repaired rather than refused. Trimming or stripping
2161    /// would hand an operator a mark its publisher never sent, and would put
2162    /// shep in the business of editing a string it has agreed not to
2163    /// understand.
2164    #[test]
2165    fn a_smit_is_stored_exactly_as_it_arrived() {
2166        let padded: Smit = "  main@a1b2c3  ".parse().expect("valid");
2167        assert_eq!(padded.as_str(), "  main@a1b2c3  ");
2168        assert_eq!(padded.to_string(), "  main@a1b2c3  ");
2169    }
2170
2171    #[test]
2172    fn v1_fixture_still_deserializes() {
2173        // Committed byte fixture from protocol v1 — if this breaks, bump
2174        // PROTOCOL_VERSION and record it in the CHANGELOG (IR-35).
2175        let fixture = r#"{"id":7,"deadline_ms":null,"body":{"kind":"stop","selector":{"kind":"name","value":"web"}}}"#;
2176        let env: Envelope = serde_json::from_str(fixture).unwrap();
2177        assert_eq!(env.id, 7);
2178        assert!(matches!(
2179            env.body,
2180            Request::Stop { selector: SelectorSpec::Name(ref n) } if n == "web"
2181        ));
2182    }
2183
2184    #[test]
2185    fn hello_handshake_shape() {
2186        let hello = Hello {
2187            client_version: "0.1.0".to_string(),
2188            protocol: PROTOCOL_VERSION,
2189        };
2190        let json = serde_json::to_string(&hello).unwrap();
2191        assert_eq!(json, r#"{"client_version":"0.1.0","protocol":1}"#);
2192    }
2193
2194    #[test]
2195    fn hello_reply_carries_typed_skew_error() {
2196        let refusal: HelloReply = Err(RpcError {
2197            code: RpcErrorCode::ProtocolMismatch,
2198            message: "daemon speaks protocol 1, client sent 2".to_string(),
2199        });
2200        let json = serde_json::to_string(&refusal).unwrap();
2201        assert_eq!(
2202            json,
2203            r#"{"Err":{"code":"protocol_mismatch","message":"daemon speaks protocol 1, client sent 2"}}"#
2204        );
2205        let back: HelloReply = serde_json::from_str(&json).unwrap();
2206        assert_eq!(back, refusal);
2207    }
2208
2209    #[test]
2210    fn v1_reply_fixture_still_deserializes() {
2211        // Committed byte fixture, protocol v1 (IR-35).
2212        let ok = r#"{"id":1,"result":{"Ok":{"kind":"pong"}}}"#;
2213        let reply: Reply = serde_json::from_str(ok).unwrap();
2214        assert!(matches!(reply.result, Ok(Response::Pong)));
2215        let err = r#"{"id":2,"result":{"Err":{"code":"not_found","message":"no sheep"}}}"#;
2216        let reply: Reply = serde_json::from_str(err).unwrap();
2217        assert_eq!(reply.result.unwrap_err().code, RpcErrorCode::NotFound);
2218    }
2219
2220    #[test]
2221    fn v1_hello_ack_fixture_still_deserializes() {
2222        let fixture = r#"{"Ok":{"daemon_version":"0.1.0","protocol":1,"pid":4242}}"#;
2223        let ack: HelloReply = serde_json::from_str(fixture).unwrap();
2224        assert_eq!(ack.unwrap().pid, 4242);
2225    }
2226
2227    /// fails if the two fields stop being optional. A daemon built before
2228    /// them sends a reply with no such keys, and both peers still announce
2229    /// protocol 1 — a required field would make a current client unable to
2230    /// list against that daemon at all.
2231    #[test]
2232    fn v1_process_info_without_stats_still_deserializes() {
2233        let fixture = r#"{"id":3,"name":"web","status":"online","pid":4242,"restarts":1,"uptime_ms":60000,"fold":"backend","out_file":"/l/o.log","err_file":"/l/e.log"}"#;
2234        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
2235        assert_eq!(info.cpu_percent, None);
2236        assert_eq!(info.memory_bytes, None);
2237    }
2238
2239    #[test]
2240    fn v1_process_info_without_log_paths_still_deserializes() {
2241        // Committed byte fixture from before `out_file`/`err_file` existed
2242        // (IR-35). The handshake only compares PROTOCOL_VERSION, which this
2243        // addition deliberately did not bump, so a daemon built at this
2244        // vintage still connects to a current client and sends exactly these
2245        // bytes. Absent keys must land as `None`, not as a decode error.
2246        let fixture = r#"{"id":3,"name":"web","status":"online","pid":4242,"restarts":1,"uptime_ms":60000,"fold":"backend"}"#;
2247        let info: ProcessInfo = serde_json::from_str(fixture).unwrap();
2248        assert_eq!(info.id, 3);
2249        assert_eq!(info.out_file, None);
2250        assert_eq!(info.err_file, None);
2251    }
2252
2253    #[test]
2254    fn an_old_client_still_decodes_a_new_process_info() {
2255        // The other skew direction: a client built before the fields reads a
2256        // current daemon's reply. `ProcessInfo` carries no
2257        // `deny_unknown_fields` (unlike the config types in
2258        // `crate::config`), so the two extra keys are ignored rather than
2259        // refused — which is what makes this addition version-preserving.
2260        #[derive(Deserialize)]
2261        struct V1ProcessInfo {
2262            id: u32,
2263            fold: Option<String>,
2264        }
2265
2266        let current = serde_json::to_string(&sample_info()).unwrap();
2267        let old: V1ProcessInfo = serde_json::from_str(&current).unwrap();
2268        assert_eq!(old.id, 3);
2269        assert_eq!(old.fold.as_deref(), Some("backend"));
2270    }
2271
2272    #[test]
2273    fn deadline_exceeded_code_serializes_snake_case() {
2274        // Additive variant (evolution rule): the existing codes keep their
2275        // strings, so v1 byte fixtures above still deserialize unchanged.
2276        assert_eq!(
2277            serde_json::to_string(&RpcErrorCode::DeadlineExceeded).unwrap(),
2278            "\"deadline_exceeded\""
2279        );
2280        assert_eq!(
2281            serde_json::from_str::<RpcErrorCode>("\"deadline_exceeded\"").unwrap(),
2282            RpcErrorCode::DeadlineExceeded
2283        );
2284    }
2285
2286    #[test]
2287    fn action_outcome_kinds_serialize_snake_case_and_round_trip() {
2288        // The shared snapshots above exercise exactly one `ActionOutcome`
2289        // variant (`Replied`, the only struct-shaped one, in
2290        // `reply_wire_snapshots`) — nothing else there would catch a rename
2291        // of `no_channel`, `skipped`, or `timed_out`. Pinned here instead,
2292        // the same way `deadline_exceeded_code_serializes_snake_case` pins a
2293        // lone `RpcErrorCode` variant above.
2294        let cases = [
2295            (
2296                ActionOutcome::Replied {
2297                    body: "pong".to_string(),
2298                },
2299                r#"{"kind":"replied","body":"pong"}"#,
2300            ),
2301            (ActionOutcome::NoChannel, r#"{"kind":"no_channel"}"#),
2302            (ActionOutcome::Skipped, r#"{"kind":"skipped"}"#),
2303            (ActionOutcome::TimedOut, r#"{"kind":"timed_out"}"#),
2304        ];
2305        for (outcome, wire) in cases {
2306            assert_eq!(
2307                serde_json::to_string(&outcome).unwrap(),
2308                wire,
2309                "{outcome:?}"
2310            );
2311            assert_eq!(
2312                serde_json::from_str::<ActionOutcome>(wire).unwrap(),
2313                outcome
2314            );
2315        }
2316    }
2317
2318    /// fails if `SaveRoll` or `RollSaved` is given a `rename`, or if
2319    /// `Response`'s `content = "data"` is dropped — either changes these two
2320    /// strings while every type-level test in this module keeps passing.
2321    #[test]
2322    fn save_roll_serializes_snake_case_with_its_payload_under_data() {
2323        assert_eq!(
2324            serde_json::to_string(&Request::SaveRoll).unwrap(),
2325            r#"{"kind":"save_roll"}"#
2326        );
2327        let reply = Response::RollSaved {
2328            path: "/tmp/flock.json".to_string(),
2329            apps: 3,
2330        };
2331        let wire = r#"{"kind":"roll_saved","data":{"path":"/tmp/flock.json","apps":3}}"#;
2332        assert_eq!(serde_json::to_string(&reply).unwrap(), wire);
2333        assert_eq!(serde_json::from_str::<Response>(wire).unwrap(), reply);
2334    }
2335
2336    /// fails if `Muster` or `Mustered` is given a `rename`, or if `Mustered`
2337    /// is declared fieldless — any of the three changes one of these two
2338    /// strings while every type-level test in this module keeps passing.
2339    ///
2340    /// The listing is empty on purpose. `Mustered` carries the same
2341    /// `Vec<ProcessInfo>` `Flock` does, and `reply_wire_snapshots` already
2342    /// pins that row field by field; what is unpinned until here is this
2343    /// variant's own tag and whether its payload lands under `data` at all.
2344    #[test]
2345    fn muster_serializes_snake_case_with_its_listing_under_data() {
2346        assert_eq!(
2347            serde_json::to_string(&Request::Muster).unwrap(),
2348            r#"{"kind":"muster"}"#
2349        );
2350        let reply = Response::Mustered(Vec::new());
2351        let wire = r#"{"kind":"mustered","data":[]}"#;
2352        assert_eq!(serde_json::to_string(&reply).unwrap(), wire);
2353        assert_eq!(serde_json::from_str::<Response>(wire).unwrap(), reply);
2354    }
2355
2356    /// fails if any of the three verbs or either reply is given a `rename`,
2357    /// or if `Response`'s `content = "data"` is dropped. `disable_dog`'s
2358    /// answer is `Deleted`, which no other test in this module pairs with
2359    /// this verb — a handler wired to answer `Deleted` for `EnableDog` would
2360    /// still round-trip, and this is where the pairing is written down.
2361    #[test]
2362    fn the_dog_verbs_serialize_snake_case_with_their_payloads_under_data() {
2363        assert_eq!(
2364            serde_json::to_string(&Request::DogConfig {
2365                name: "bark".to_string()
2366            })
2367            .unwrap(),
2368            r#"{"kind":"dog_config","name":"bark"}"#
2369        );
2370        assert_eq!(
2371            serde_json::to_string(&Request::DisableDog {
2372                name: "bark".to_string()
2373            })
2374            .unwrap(),
2375            r#"{"kind":"disable_dog","name":"bark"}"#
2376        );
2377        let section = Response::DogSection {
2378            toml: "port = 9615\n".to_string().into(),
2379        };
2380        let wire = r#"{"kind":"dog_section","data":{"toml":"port = 9615\n"}}"#;
2381        assert_eq!(serde_json::to_string(&section).unwrap(), wire);
2382        assert_eq!(serde_json::from_str::<Response>(wire).unwrap(), section);
2383    }
2384
2385    #[test]
2386    fn dog_section_toml_debug_does_not_leak() {
2387        // IR-41: a dog's `[dog.<name>]` section routinely holds webhook
2388        // credentials (a Discord/Slack URL with a bearer token embedded).
2389        // `Response` derives `Debug`, so this is the one thing standing
2390        // between that token and any future `tracing::debug!("{:?}", reply)`.
2391        // Exact string pinned so a lazy `#[derive(Debug)]` refactor on
2392        // `DogSectionToml` fails this test instead of silently reopening
2393        // the leak.
2394        let toml: DogSectionToml =
2395            "webhook_url = \"https://discord.com/api/webhooks/1/super-secret-token\"\n"
2396                .to_string()
2397                .into();
2398        assert_eq!(format!("{toml:?}"), "DogSectionToml(<70 bytes>)");
2399
2400        let response = Response::DogSection { toml };
2401        assert_eq!(
2402            format!("{response:?}"),
2403            "DogSection { toml: DogSectionToml(<70 bytes>) }"
2404        );
2405    }
2406}