shep_core/paths.rs
1//! On-disk layout of `$SHEP_HOME`
2//!
3//! One resolver, no hidden `std::env` reads — the environment comes in as a
4//! closure so tests and the daemon share one code path.
5
6use std::path::{Path, PathBuf};
7
8/// Drops the `\\?\` extended-length prefix Windows' `canonicalize` adds
9///
10/// `std::fs::canonicalize` returns a verbatim path on Windows, so a binary at
11/// `C:\tools\dog.exe` comes back as `\\?\C:\tools\dog.exe`. That form is
12/// correct and every Win32 call accepts it, which is exactly why it leaks
13/// quietly: nothing inside shep breaks, and it surfaces only once the path
14/// reaches something that is not Win32. Two such places are already known.
15/// Node's `require` reads the leading `\\` as a UNC share and fails on `C:`.
16/// And `shep adopt` records the vetted binary in `shep.toml`, where the prefix
17/// is simply noise in a file an operator edits by hand.
18///
19/// So this is for paths that LEAVE shep: written to config, shown to an
20/// operator, or handed to another program. Paths that stay inside and are
21/// compared against each other must not use it. `serve`'s docroot containment
22/// check is the case that matters, where both sides being canonical is the
23/// security property, and rewriting one side would weaken it.
24///
25/// Only `\\?\C:\` is unwrapped, because that is the one shape `canonicalize`
26/// produces for a local file. A verbatim UNC path (`\\?\UNC\server\share`)
27/// is left alone: no host here can mount a share to test that branch, and an
28/// unexercised guess is worth less than a documented gap.
29///
30/// **A path long enough to need the prefix is out of scope.** Above `MAX_PATH`
31/// the prefix is load-bearing rather than decorative, and stripping it can
32/// produce a path that no longer opens. Nothing in shep's own layout comes
33/// close, and the alternative is a conditional rule whose behavior changes at
34/// a length nobody can see, so the simple rule is the one kept.
35#[cfg(windows)]
36#[must_use]
37pub fn strip_verbatim_prefix(path: &Path) -> std::borrow::Cow<'_, Path> {
38 use std::path::{Component, Prefix};
39
40 let mut components = path.components();
41 let Some(Component::Prefix(prefix)) = components.next() else {
42 return std::borrow::Cow::Borrowed(path);
43 };
44 let Prefix::VerbatimDisk(letter) = prefix.kind() else {
45 return std::borrow::Cow::Borrowed(path);
46 };
47
48 let mut rebuilt = PathBuf::from(format!("{}:\\", char::from(letter)));
49 rebuilt.extend(components.filter(|part| !matches!(part, Component::RootDir)));
50 std::borrow::Cow::Owned(rebuilt)
51}
52
53/// Passes the path through: only Windows' `canonicalize` prefixes its output
54///
55/// See the Windows sibling for what this exists to undo.
56#[cfg(not(windows))]
57#[must_use]
58pub fn strip_verbatim_prefix(path: &Path) -> std::borrow::Cow<'_, Path> {
59 std::borrow::Cow::Borrowed(path)
60}
61
62/// Resolved filesystem layout for one shep home
63///
64/// All paths are derived from `$SHEP_HOME` (default `<home>/.shep`); nothing
65/// here touches the filesystem. The root itself is created by the CLI's own
66/// `ensure_home`, for the commands that need it before any daemon exists
67/// (`startup` above all), and everything under it by
68/// `shep_daemon::boot::init_dirs` on each boot.
69#[derive(Debug, Clone, PartialEq, Eq)]
70pub struct ShepPaths {
71 /// Root: `$SHEP_HOME`
72 pub home: PathBuf,
73 /// Daemon config: `shep.toml`
74 pub daemon_config: PathBuf,
75 /// A dog's own settings: `dogs.toml`
76 ///
77 /// Separate from [`Self::daemon_config`] rather than a section inside
78 /// it, so lookout can write a dog's config without writing into the
79 /// daemon's own hand-authored file.
80 pub dogs_config: PathBuf,
81 /// Flock snapshot (muster roll): `flock.json`
82 pub snapshot: PathBuf,
83 /// Log directory
84 pub logs: PathBuf,
85 /// Pid-file directory
86 pub pids: PathBuf,
87 /// Runtime dir (sockets; created 0700)
88 pub run: PathBuf,
89 /// The control address the client dials and the daemon answers on.
90 ///
91 /// **Two different kinds of thing behind one field, on purpose.** On
92 /// unix it is a filesystem path, `run/shep.sock`, and a real AF_UNIX
93 /// socket file lives there. On Windows it is [`Self::pipe_name`] — a
94 /// named pipe's `\\.\pipe\...` name, which is path-*shaped* but names an
95 /// object in the kernel's pipe namespace rather than a file on any
96 /// volume.
97 ///
98 /// One field rather than two because every consumer in the workspace
99 /// treats this as an opaque address it hands to `Client::connect`, and a
100 /// second field would make all of them choose. The one place the
101 /// difference is load-bearing is a caller that treats this as a *file* —
102 /// `shep-cli`'s `wait_for_socket_to_disappear` is the only one, and it
103 /// carries its own Windows arm because a pipe has no directory entry to
104 /// watch: it stops existing when its last handle closes, so "has the
105 /// daemon gone" is a connect attempt there, not a `Path::exists`.
106 ///
107 /// A corollary worth stating because it silently breaks otherwise:
108 /// `socket.parent()` is `$SHEP_HOME/run` on unix and the meaningless
109 /// `\\.\pipe` on Windows. Nothing may derive a directory from this field.
110 pub socket: PathBuf,
111 /// Bark history ring: `barks.jsonl`
112 pub barks: PathBuf,
113 /// Key/value store: `kv.json`
114 pub kv: PathBuf,
115 /// Operator override store: `overrides.json`
116 pub overrides: PathBuf,
117}
118
119/// FNV-1a, 64-bit, over `bytes`
120///
121/// Hand-rolled rather than reached for from `std`: [`std::hash::DefaultHasher`]
122/// does not promise a stable value across toolchains, and the daemon and a
123/// client built separately have to derive one pipe name and agree on it.
124fn fnv1a64(bytes: &[u8]) -> u64 {
125 bytes.iter().fold(0xcbf2_9ce4_8422_2325, |hash, &byte| {
126 (hash ^ u64::from(byte)).wrapping_mul(0x0000_0100_0000_01b3)
127 })
128}
129
130impl ShepPaths {
131 /// Windows named-pipe identity for this home:
132 /// `\\.\pipe\shep-<sanitized>-<digest>`
133 ///
134 /// The readable half is the home path with every non-alphanumeric
135 /// character collapsed to `-`, capped, so an operator reading a pipe name
136 /// can tell which home it belongs to. **That half alone does not identify
137 /// a home**: `\`, `:`, `.`, `_` and a literal `-` all become `-`, so
138 /// `C:\a\b` and `C:\a-b` sanitize to one string. The pipe namespace is
139 /// machine-global and [`crate::transport::Listener::bind`] asks for
140 /// `first_pipe_instance`, so a collision does not surface as an error: the
141 /// second home's daemon is refused as already running, and that home's CLI
142 /// then drives the first home's flock. No handshake field carries a home,
143 /// so nothing downstream would catch it.
144 ///
145 /// The appended digest of the full home path is what makes the name
146 /// distinct. Changing this derivation is a breaking change for any
147 /// already-running daemon: it stays bound under a name a client built
148 /// afterward would never dial.
149 #[must_use]
150 pub fn pipe_name(&self) -> String {
151 // Bounds the readable half; a pipe name may be 256 characters.
152 const MAX_STEM: usize = 64;
153
154 let home = self.home.to_string_lossy();
155 let sanitized: String = home
156 .chars()
157 .map(|c| if c.is_ascii_alphanumeric() { c } else { '-' })
158 .collect();
159 let trimmed = sanitized.trim_matches('-');
160 // Every character above is ASCII, so this cut cannot split one.
161 let stem = trimmed[..trimmed.len().min(MAX_STEM)].trim_end_matches('-');
162 let digest = fnv1a64(home.as_bytes());
163 format!(r"\\.\pipe\shep-{stem}-{digest:016x}")
164 }
165
166 /// Resolves the layout from an environment lookup and the user's home dir
167 ///
168 /// [`Self::socket`] resolves per-platform — a socket file under `run/` on
169 /// unix, a `\\.\pipe\...` name on Windows — for the reason that field's
170 /// own doc gives. Everything else is identical on both.
171 #[must_use]
172 pub fn resolve(env: &dyn Fn(&str) -> Option<String>, home_dir: &Path) -> Self {
173 let home = env("SHEP_HOME")
174 .map(PathBuf::from)
175 .unwrap_or_else(|| home_dir.join(".shep"));
176 let run = home.join("run");
177 // `mut` is read only by the `cfg(windows)` block below; on unix the
178 // value is returned exactly as built.
179 #[cfg_attr(not(windows), allow(unused_mut))]
180 let mut paths = Self {
181 daemon_config: home.join("shep.toml"),
182 dogs_config: home.join("dogs.toml"),
183 snapshot: home.join("flock.json"),
184 logs: home.join("logs"),
185 pids: home.join("pids"),
186 socket: run.join("shep.sock"),
187 barks: home.join("barks.jsonl"),
188 kv: home.join("kv.json"),
189 overrides: home.join("overrides.json"),
190 run,
191 home,
192 };
193 // Computed from the already-built value rather than inline above,
194 // because `pipe_name` reads `self.home` and the struct is what owns
195 // that derivation — duplicating the sanitizer here is exactly how
196 // the two would drift.
197 #[cfg(windows)]
198 {
199 paths.socket = PathBuf::from(paths.pipe_name());
200 }
201 paths
202 }
203}
204
205#[cfg(test)]
206mod tests {
207 /// Pins the strip directly, because no end-to-end case can. Node resolves
208 /// a `\\?\` path on some versions and not others, so the `.js` flockfile
209 /// cases passed on the development machine both before this existed and
210 /// after, while failing on the CI runner both times. Asserting on the
211 /// rewritten path is the part that holds either way.
212 #[cfg(windows)]
213 #[test]
214 fn a_verbatim_prefix_is_stripped() {
215 let rewritten = super::strip_verbatim_prefix(std::path::Path::new(r"\\?\C:\tmp\flock.js"));
216 assert_eq!(
217 rewritten.as_os_str(),
218 std::ffi::OsStr::new(r"C:\tmp\flock.js"),
219 "node reads the leading `\\\\` as a UNC share and lstats `C:`, so \
220 the verbatim prefix must not reach it"
221 );
222
223 let plain = std::path::Path::new(r"C:\tmp\flock.js");
224 assert_eq!(
225 super::strip_verbatim_prefix(plain).as_os_str(),
226 plain.as_os_str(),
227 "a path with no verbatim prefix must pass through untouched"
228 );
229 }
230
231 /// Guards the assumption the strip rests on: that `canonicalize` really
232 /// does hand back a prefixed path, and that the rewrite clears it without
233 /// breaking what it points at. If a future Windows or std stops adding
234 /// the prefix, this stays green and the strip becomes a no-op rather
235 /// than a wrong answer.
236 #[cfg(windows)]
237 #[test]
238 fn a_real_canonicalized_path_comes_back_free_of_the_prefix() {
239 let dir = tempfile::tempdir().expect("temp dir");
240 let file = dir.path().join("dog.exe");
241 std::fs::write(&file, b"not really an exe").expect("write file");
242
243 let canonical = std::fs::canonicalize(&file).expect("canonicalize");
244 let rewritten = super::strip_verbatim_prefix(&canonical);
245 let shown = rewritten.display().to_string();
246
247 assert!(
248 !shown.starts_with(r"\\?\"),
249 "the path an operator will read still carries a verbatim prefix: {shown}"
250 );
251 assert!(
252 std::path::Path::new(&shown).is_file(),
253 "stripping the prefix must not break the path: {shown}"
254 );
255 }
256
257 /// The unix build has nothing to strip, and the helper exists there only
258 /// so call sites do not each carry a `cfg`. Pinned so it stays that way.
259 #[cfg(not(windows))]
260 #[test]
261 fn a_unix_path_passes_through_untouched() {
262 let plain = std::path::Path::new("/tmp/flock.js");
263 assert_eq!(
264 super::strip_verbatim_prefix(plain).as_os_str(),
265 plain.as_os_str(),
266 "the non-Windows arm must be an identity"
267 );
268 }
269
270 use super::*;
271 use std::path::Path;
272
273 fn no_env(_: &str) -> Option<String> {
274 None
275 }
276
277 #[test]
278 fn default_layout_under_home_dir() {
279 let p = ShepPaths::resolve(&no_env, Path::new("/home/ada"));
280 assert_eq!(p.home, Path::new("/home/ada/.shep"));
281 assert_eq!(p.daemon_config, Path::new("/home/ada/.shep/shep.toml"));
282 assert_eq!(p.dogs_config, Path::new("/home/ada/.shep/dogs.toml"));
283 assert_eq!(p.snapshot, Path::new("/home/ada/.shep/flock.json"));
284 assert_eq!(p.logs, Path::new("/home/ada/.shep/logs"));
285 assert_eq!(p.pids, Path::new("/home/ada/.shep/pids"));
286 assert_eq!(p.run, Path::new("/home/ada/.shep/run"));
287 assert_eq!(p.barks, Path::new("/home/ada/.shep/barks.jsonl"));
288 assert_eq!(p.kv, Path::new("/home/ada/.shep/kv.json"));
289 assert_eq!(p.overrides, Path::new("/home/ada/.shep/overrides.json"));
290 }
291
292 /// The one field that is not the same kind of thing on both platforms —
293 /// see [`ShepPaths::socket`]'s own doc. Asserted per-platform rather
294 /// than skipped on Windows, because "the socket resolves to the pipe
295 /// name" IS the Windows transport's identity and a silent fallback to
296 /// `run/shep.sock` there would produce a daemon that binds a pipe and a
297 /// client that dials a file that does not exist.
298 #[test]
299 fn the_control_address_is_a_socket_file_on_unix_and_a_pipe_name_on_windows() {
300 let p = ShepPaths::resolve(&no_env, Path::new("/home/ada"));
301 #[cfg(unix)]
302 assert_eq!(p.socket, Path::new("/home/ada/.shep/run/shep.sock"));
303 #[cfg(windows)]
304 assert_eq!(
305 p.socket,
306 Path::new(r"\\.\pipe\shep-home-ada--shep-fd394cfc5c93ad12")
307 );
308 #[cfg(windows)]
309 assert_eq!(
310 p.socket,
311 Path::new(&p.pipe_name()),
312 "the resolved address and `pipe_name` must not drift"
313 );
314 }
315
316 #[test]
317 fn shep_home_env_overrides_root() {
318 let env = |key: &str| (key == "SHEP_HOME").then(|| "/srv/shep".to_string());
319 let p = ShepPaths::resolve(&env, Path::new("/home/ada"));
320 assert_eq!(p.home, Path::new("/srv/shep"));
321 #[cfg(unix)]
322 assert_eq!(p.socket, Path::new("/srv/shep/run/shep.sock"));
323 #[cfg(windows)]
324 assert_eq!(
325 p.socket,
326 Path::new(r"\\.\pipe\shep-srv-shep-23b467803966a71a")
327 );
328 }
329
330 #[test]
331 fn pipe_name_is_per_home_and_sanitized() {
332 // Windows transport identity (spec §6): derived from SHEP_HOME so
333 // two homes never share a pipe; non-alphanumerics collapse to '-',
334 // then a digest of the whole home path. Both homes come from the env
335 // rather than the default join, whose separator is the host's and
336 // would give the digest a different value per platform.
337 let env = |key: &str| (key == "SHEP_HOME").then(|| "/home/ada/.shep".to_string());
338 let p = ShepPaths::resolve(&env, Path::new("/home/ada"));
339 assert_eq!(
340 p.pipe_name(),
341 r"\\.\pipe\shep-home-ada--shep-626b4d544f86fe95"
342 );
343 let env = |key: &str| (key == "SHEP_HOME").then(|| "/srv/shep".to_string());
344 let q = ShepPaths::resolve(&env, Path::new("/home/ada"));
345 assert_eq!(q.pipe_name(), r"\\.\pipe\shep-srv-shep-23b467803966a71a");
346 }
347
348 /// The sanitizer is not injective (`\`, `:` and a literal `-` all become
349 /// `-`), and a shared name is the one failure that reaches nobody: the
350 /// second daemon is refused as already running and its CLI then drives the
351 /// first home's flock in silence.
352 #[test]
353 fn two_homes_that_sanitize_alike_get_distinct_pipe_names() {
354 let nested = |key: &str| (key == "SHEP_HOME").then(|| r"C:\a\b".to_string());
355 let dashed = |key: &str| (key == "SHEP_HOME").then(|| r"C:\a-b".to_string());
356 let n = ShepPaths::resolve(&nested, Path::new("/home/ada"));
357 let d = ShepPaths::resolve(&dashed, Path::new("/home/ada"));
358 assert!(
359 n.pipe_name().starts_with(r"\\.\pipe\shep-C--a-b-")
360 && d.pipe_name().starts_with(r"\\.\pipe\shep-C--a-b-"),
361 "the readable stem is what collides, and it stays readable: {} vs {}",
362 n.pipe_name(),
363 d.pipe_name()
364 );
365 assert_ne!(
366 n.pipe_name(),
367 d.pipe_name(),
368 "only the digest keeps two homes that sanitize alike off one pipe"
369 );
370 }
371}