mcpmesh_local_api/client.rs
1//! A no-iroh mcpmesh-local/1 client: connect the UDS, read the server's `Hello`
2//! first frame, assert the api name, then issue typed request/response frames. Distinct
3//! from the CLI crate (`cli/`)'s ControlClient (which uses mcpmesh_net::framing) — this one links no
4//! iroh, so kb and the host shell can use it. kb calls this to self-register
5//! its `[services.kb]` socket backend with the running mcpmesh daemon.
6use std::path::Path;
7
8use serde_json::Value;
9
10use crate::codec::{FrameReader, Inbound, MAX_FRAME_BYTES, write_frame};
11use crate::protocol::{
12 AuditSummaryResult, BackendSpec, BlobFetchCancelParams, BlobFetchCancelResult, BlobFetchParams,
13 BlobFetchResult, BlobGrantParams, BlobPublishParams, BlobPublishResult, BlobScopeList, Hello,
14 InviteParams, InviteResult, OpenSessionParams, OrgJoinParams, OrgJoinResult, PairParams,
15 PairResult, PeerEndorseParams, PeerEndorseResult, PeerIntroduceParams, PeerRemoveParams,
16 PeerRenameParams, PeerServicesParams, PeerServicesResult, RegisterServiceParams, Request,
17 RosterInstallParams, RosterInstallResult, ServiceAllowParams, SetAppMetadataParams,
18 SetNicknameParams, SetRelaysParams, SetRelaysResult, SetRosterUrlParams, StatusResult,
19 StreamFrame, UnregisterServiceParams,
20};
21use crate::transport::{connect_local, split_local};
22
23/// The client's read half — boxed so ONE `ControlClient` serves every transport (the
24/// platform socket/pipe via [`connect_control`], or an embedder's in-memory duplex via
25/// [`connect_control_io`]).
26pub type ControlRead = Box<dyn tokio::io::AsyncRead + Send + Unpin>;
27/// The client's write half — see [`ControlRead`].
28pub type ControlWrite = Box<dyn tokio::io::AsyncWrite + Send + Unpin>;
29
30/// A connected mcpmesh-local/1 client: the framed stream + the server's `Hello`.
31pub struct ControlClient {
32 hello: Hello,
33 reader: FrameReader<ControlRead>,
34 writer: ControlWrite,
35}
36
37/// Hand-rolled (the boxed transport halves are not `Debug`): the `Hello` is the one
38/// diagnostic a `{:?}` needs — tests format `Result<ControlClient, _>` this way.
39impl std::fmt::Debug for ControlClient {
40 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
41 f.debug_struct("ControlClient")
42 .field("hello", &self.hello)
43 .finish_non_exhaustive()
44 }
45}
46
47/// The error surface of the client — thin, so callers can `anyhow`-wrap it.
48///
49/// The `Display`/`Error`/`From` impls below are hand-rolled rather than derived: the
50/// `client` feature deliberately pulls ONLY tokio (no `thiserror`), and the hand-rolled
51/// impls are behavior-identical (same messages, same `?`-conversion from `io::Error`)
52/// with zero extra dependencies.
53#[derive(Debug)]
54pub enum ClientError {
55 Io(std::io::Error),
56 Closed(&'static str),
57 Malformed(&'static str),
58 WrongApi { got: String, want: &'static str },
59 Api(Value),
60}
61
62impl std::fmt::Display for ClientError {
63 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
64 match self {
65 ClientError::Io(err) => write!(f, "io: {err}"),
66 ClientError::Closed(what) => write!(f, "connection closed before {what}"),
67 ClientError::Malformed(what) => write!(f, "malformed {what} frame"),
68 ClientError::WrongApi { got, want } => {
69 write!(f, "unexpected api: got {got:?}, want {want:?}")
70 }
71 ClientError::Api(err) => write!(f, "control API error: {err}"),
72 }
73 }
74}
75
76impl std::error::Error for ClientError {}
77
78impl From<std::io::Error> for ClientError {
79 fn from(err: std::io::Error) -> Self {
80 ClientError::Io(err)
81 }
82}
83
84impl ControlClient {
85 pub fn hello(&self) -> &Hello {
86 &self.hello
87 }
88
89 /// Issue a typed request; return the JSON-RPC `result` (or `ClientError::Api` on a
90 /// JSON-RPC `error`).
91 pub async fn request(&mut self, request: Request) -> Result<Value, ClientError> {
92 let frame = serde_json::to_value(&request).expect("Request serializes");
93 self.request_value(&frame).await
94 }
95
96 /// Issue a RAW request frame — the escape hatch for methods outside the typed
97 /// [`Request`] surface (the daemon-internal `shutdown`, third-party
98 /// `{"method":..,"params":{}}` shapes the dispatcher tolerates). Returns the JSON-RPC
99 /// `result` value (or `ClientError::Api` on a JSON-RPC `error`).
100 pub async fn request_value(&mut self, request: &Value) -> Result<Value, ClientError> {
101 write_frame(&mut self.writer, request).await?;
102 match self.reader.next().await? {
103 Some(Inbound::Frame(resp)) => {
104 if let Some(err) = resp.get("error") {
105 return Err(ClientError::Api(err.clone()));
106 }
107 Ok(resp.get("result").cloned().unwrap_or(Value::Null))
108 }
109 Some(Inbound::Violation(_)) => Err(ClientError::Malformed("response")),
110 None => Err(ClientError::Closed("response")),
111 }
112 }
113
114 /// Send a request WITHOUT reading a response — for `OpenSession`, after which the
115 /// socket stops being JSON-RPC and becomes a raw MCP byte pipe (protocol.rs). Returns
116 /// the framed halves so the caller can pump the session — the SAME `FrameReader` that
117 /// read the Hello, so bytes the daemon pipelined behind it are never lost. A caller
118 /// that must re-box the read half calls `FrameReader::into_inner`, which returns the
119 /// BUFFERED reader (its read-ahead travels with it — see the pipelining test below).
120 pub async fn open_session(
121 mut self,
122 peer: String,
123 service: String,
124 ) -> Result<(FrameReader<ControlRead>, ControlWrite), ClientError> {
125 let frame = serde_json::to_value(Request::OpenSession(OpenSessionParams { peer, service }))
126 .expect("Request serializes");
127 write_frame(&mut self.writer, &frame).await?;
128 Ok((self.reader, self.writer))
129 }
130
131 /// Send a parameterless stream-upgrade request WITHOUT reading a response — like
132 /// [`open_session`](Self::open_session), but generic on the `method`: after this call the
133 /// socket stops being request/response and becomes a one-way push stream of frames the caller
134 /// READS (the `subscribe` telemetry surface). Returns the framed halves — the SAME
135 /// `FrameReader` that read the Hello, so any frame the daemon pipelined behind it is never
136 /// lost. The write half is handed back so the caller can hold the connection open (a watcher
137 /// only reads, but dropping the writer would half-close the socket).
138 pub async fn open_stream(
139 mut self,
140 method: &str,
141 ) -> Result<(FrameReader<ControlRead>, ControlWrite), ClientError> {
142 let frame = serde_json::json!({ "method": method });
143 write_frame(&mut self.writer, &frame).await?;
144 Ok((self.reader, self.writer))
145 }
146
147 /// Issue `request` and deserialize the JSON-RPC `result` into `T` — the shared core of every
148 /// typed helper below. `what` names the result in the [`ClientError::Malformed`] surface. The
149 /// wrong-type hazard the raw [`request`](Self::request) leaves to the caller is closed here:
150 /// each helper pairs its Request variant with its result type once, in this crate.
151 async fn request_typed<T: serde::de::DeserializeOwned>(
152 &mut self,
153 request: Request,
154 what: &'static str,
155 ) -> Result<T, ClientError> {
156 let v = self.request(request).await?;
157 serde_json::from_value(v).map_err(|_| ClientError::Malformed(what))
158 }
159
160 /// Issue `request` and discard the ack body (the daemon answers `{}` for verbs with no result
161 /// vocabulary). A JSON-RPC error still surfaces as [`ClientError::Api`].
162 async fn request_ack(&mut self, request: Request) -> Result<(), ClientError> {
163 self.request(request).await.map(|_| ())
164 }
165
166 /// The daemon's `status` picture: services served, known peers, roster/presence state,
167 /// self identity, recent pairings, and advisory reachability.
168 pub async fn status(&mut self) -> Result<StatusResult, ClientError> {
169 self.request_typed(Request::Status, "status result").await
170 }
171
172 /// Register/update a `[services.*]` entry idempotently (the daemon persists it and hot-reloads
173 /// serving). The daemon acks; the ack body is discarded.
174 pub async fn register_service(
175 &mut self,
176 name: &str,
177 backend: BackendSpec,
178 allow: Vec<String>,
179 ) -> Result<(), ClientError> {
180 self.register_service_with(name, backend, allow, false)
181 .await
182 }
183
184 /// [`register_service`](Self::register_service) with an explicit `ephemeral` flag (#36). When
185 /// `ephemeral` is true the registration lives only in daemon memory and is unregistered
186 /// automatically when THIS control connection closes — no config write, nothing to clean up.
187 /// Ideal for an embedder serving a `socket` backend from a fresh path each run.
188 pub async fn register_service_with(
189 &mut self,
190 name: &str,
191 backend: BackendSpec,
192 allow: Vec<String>,
193 ephemeral: bool,
194 ) -> Result<(), ClientError> {
195 self.request_ack(Request::RegisterService(RegisterServiceParams {
196 name: name.to_string(),
197 backend,
198 allow,
199 ephemeral,
200 rate_limit_per_min: None,
201 }))
202 .await
203 }
204
205 /// Mint a single-use pairing invite granting `services` (see `invite_multi` for more than
206 /// one); return the copyable
207 /// `mcpmesh-invite:` line + its expiry.
208 pub async fn invite(&mut self, services: Vec<String>) -> Result<InviteResult, ClientError> {
209 self.invite_with(services, None).await
210 }
211
212 /// [`invite`](Self::invite) with an opaque `app_label` (#31) carried through to the redeemer's
213 /// `pair` result. mcpmesh never interprets the label; the embedder does (e.g. its own URN).
214 pub async fn invite_with(
215 &mut self,
216 services: Vec<String>,
217 app_label: Option<String>,
218 ) -> Result<InviteResult, ClientError> {
219 self.invite_multi(services, app_label, None).await
220 }
221
222 /// `invite_with`, plus `max_uses` (#87): an invite redeemable up to that many times, each
223 /// redemption running its own SAS ceremony and writing its own peer rows.
224 ///
225 /// `None` = 1, the single-use default. The value is clamped daemon-side to
226 /// [`MAX_INVITE_USES`](crate::MAX_INVITE_USES) — read
227 /// [`InviteResult::uses_remaining`](crate::InviteResult::uses_remaining) for what you actually
228 /// got rather than assuming the request was honoured verbatim.
229 pub async fn invite_multi(
230 &mut self,
231 services: Vec<String>,
232 app_label: Option<String>,
233 max_uses: Option<u32>,
234 ) -> Result<InviteResult, ClientError> {
235 self.invite_named(services, app_label, max_uses, None).await
236 }
237
238 /// Mint an invite, optionally under YOUR OWN local name for whoever redeems it (#87).
239 ///
240 /// `peer_nickname` overrides the name they claim for themselves — the fix for two same-model
241 /// machines that does not require the other person to rename theirs. Never sent to them, and
242 /// rejected alongside `max_uses > 1` (one name for every redeemer collides on the second).
243 pub async fn invite_named(
244 &mut self,
245 services: Vec<String>,
246 app_label: Option<String>,
247 max_uses: Option<u32>,
248 peer_nickname: Option<String>,
249 ) -> Result<InviteResult, ClientError> {
250 self.invite_full(services, app_label, max_uses, peer_nickname, false)
251 .await
252 }
253
254 /// Mint an invite, optionally as a SELF-ENROLLMENT (#86): the redeemer becomes another device
255 /// of YOU rather than a peer, so both present one identity.
256 ///
257 /// `as_self` requires an empty `services` and `max_uses` of 1 — it grants nothing, and a
258 /// multi-use identity invite is a standing offer to become you.
259 pub async fn invite_full(
260 &mut self,
261 services: Vec<String>,
262 app_label: Option<String>,
263 max_uses: Option<u32>,
264 peer_nickname: Option<String>,
265 as_self: bool,
266 ) -> Result<InviteResult, ClientError> {
267 self.request_typed(
268 Request::Invite(InviteParams {
269 services,
270 app_label,
271 max_uses,
272 peer_nickname,
273 as_self,
274 }),
275 "invite result",
276 )
277 .await
278 }
279
280 /// Produce an endorsement of `subject` for someone else to redeem (#65).
281 ///
282 /// Signs with THIS node's user key. It is a statement for the recipient — it changes nothing
283 /// about your own trust in the subject, and only resolves for someone paired with you.
284 pub async fn endorse_peer(
285 &mut self,
286 subject: &str,
287 subject_user_id: Option<String>,
288 ) -> Result<PeerEndorseResult, ClientError> {
289 self.request_typed(
290 Request::PeerEndorse(PeerEndorseParams {
291 subject: subject.to_string(),
292 subject_user_id,
293 }),
294 "peer endorse result",
295 )
296 .await
297 }
298
299 /// Install a peer from an endorsement by someone you are already paired with (#65).
300 ///
301 /// Installs IDENTITY, not authorization — the peer becomes resolvable and is granted nothing.
302 /// `subject_user_id` requires `subject_binding`, the subject's OWN device→user binding: a
303 /// `user_id` is authorization-bearing and public, so an endorser alone must not attach one.
304 pub async fn introduce_peer(&mut self, params: PeerIntroduceParams) -> Result<(), ClientError> {
305 self.request_ack(Request::PeerIntroduce(params)).await
306 }
307
308 /// Redeem a pairing invite; return the inviter's suggested nickname, the display-only SAS
309 /// code, and the granted services.
310 pub async fn pair(&mut self, invite_line: &str) -> Result<PairResult, ClientError> {
311 self.pair_as(invite_line, None).await
312 }
313
314 /// Redeem an invite, optionally under YOUR OWN local name for the inviter (#87).
315 ///
316 /// `as_nickname` overrides the name the invite suggests. Use it when that name is already
317 /// taken locally — otherwise the pairing is refused and the only other fixes are asking the
318 /// inviter to re-mint or renaming your existing peer. It does not bypass the collision check:
319 /// an alias that itself collides is refused the same way.
320 pub async fn pair_as(
321 &mut self,
322 invite_line: &str,
323 as_nickname: Option<String>,
324 ) -> Result<PairResult, ClientError> {
325 self.pair_opts(invite_line, as_nickname, false).await
326 }
327
328 /// Redeem an invite, stating whether a SELF-ENROLLMENT is a ceremony you offered (#178).
329 ///
330 /// [`pair`](Self::pair) and [`pair_as`](Self::pair_as) pass `false`, so a `mcpmesh-enroll:` line
331 /// pasted into an ordinary "join" field is refused with
332 /// [`ERR_SELF_ENROLL_NOT_OFFERED`](crate::ERR_SELF_ENROLL_NOT_OFFERED) before anything is
333 /// dialled — the invite survives, so the same line still works once the person is offered the
334 /// real choice. Pass `true` only from a path that actually means "add another of my own
335 /// devices": the ceremony writes a device→user binding that is irrevocable short of rotating
336 /// the user key.
337 ///
338 /// `mcpmesh_node::pairing::is_enrollment_line` answers which kind of line you are holding without
339 /// dialling, for a UI that wants to PROMPT rather than recover from a refusal.
340 pub async fn pair_opts(
341 &mut self,
342 invite_line: &str,
343 as_nickname: Option<String>,
344 allow_self_enroll: bool,
345 ) -> Result<PairResult, ClientError> {
346 self.request_typed(
347 Request::Pair(PairParams {
348 invite_line: invite_line.to_string(),
349 as_nickname,
350 allow_self_enroll,
351 }),
352 "pair result",
353 )
354 .await
355 }
356
357 /// Unpair a peer by nickname: drops its identity row AND its every-`allow` membership
358 /// (idempotent; live sessions are not severed). The daemon acks; the ack body is discarded.
359 pub async fn peer_remove(&mut self, nickname: &str) -> Result<(), ClientError> {
360 self.request_ack(Request::PeerRemove(PeerRemoveParams {
361 nickname: nickname.to_string(),
362 }))
363 .await
364 }
365
366 /// Rename a contact's nickname to `to` — every device sharing `user_id` when given, else the
367 /// single provisional `nickname` entry — carrying its grants along. The daemon refuses (a
368 /// [`ClientError::Api`]) when `to` is empty or already names a different identity. The daemon
369 /// acks; the ack body is discarded.
370 pub async fn peer_rename(
371 &mut self,
372 user_id: Option<String>,
373 nickname: Option<String>,
374 to: &str,
375 ) -> Result<(), ClientError> {
376 self.request_ack(Request::PeerRename(PeerRenameParams {
377 user_id,
378 nickname,
379 to: to.to_string(),
380 }))
381 .await
382 }
383
384 /// Install a signed roster from the LOCAL file at `path` (`org_root_pk` pins the org root on
385 /// FIRST install); return the installed org id + serial + severed-session count.
386 pub async fn roster_install(
387 &mut self,
388 path: &str,
389 org_root_pk: Option<String>,
390 ) -> Result<RosterInstallResult, ClientError> {
391 self.request_typed(
392 Request::RosterInstall(RosterInstallParams {
393 path: path.to_string(),
394 org_root_pk,
395 }),
396 "roster_install result",
397 )
398 .await
399 }
400
401 /// Read the installed roster's MEMBERSHIP (#93): the declared groups, and every person with
402 /// their display name, groups, and devices.
403 ///
404 /// Distinct from [`status`](Self::status)'s `presence`, which enumerates reachable DEVICES and
405 /// omits a person entirely when none of theirs is up. This is the member list — everyone the
406 /// roster carries, with `online` per device, so one read serves both questions.
407 ///
408 /// Advisory: display and authoring input, never an authorization answer. Empty in a
409 /// pure-pairing daemon and before the first roster is installed. `api_minor >= 46`.
410 pub async fn roster_members(
411 &mut self,
412 ) -> Result<crate::protocol::RosterMembersResult, ClientError> {
413 self.request_typed(Request::RosterMembers, "roster_members result")
414 .await
415 }
416
417 /// AUTHOR an org (#66): mint this node's org root key, sign an empty roster, install it (which
418 /// pins the root), and return the copyable invite plus the root's fingerprint.
419 ///
420 /// **One-time per node** — a second call is refused rather than replacing the key, which would
421 /// orphan every roster already signed with it.
422 ///
423 /// Show `org_root_fingerprint` to the operator: it is what every joiner reads back
424 /// out-of-band, and it is the only thing anchoring their trust in the org. `api_minor >= 46`.
425 pub async fn org_create(
426 &mut self,
427 name: &str,
428 expires_secs: Option<i64>,
429 roster_url: Option<String>,
430 ) -> Result<crate::protocol::OrgCreateResult, ClientError> {
431 self.request_typed(
432 Request::OrgCreate(crate::protocol::OrgCreateParams {
433 name: name.to_string(),
434 expires_secs,
435 roster_url,
436 }),
437 "org_create result",
438 )
439 .await
440 }
441
442 /// APPROVE a join code into the roster (#66): verify its device→user-key binding, add the
443 /// member with `groups`, re-sign, install.
444 ///
445 /// **The result's `join_code_fingerprint` is not decoration.** Nothing in a join code binds it
446 /// to a human, so a substituted code is caught by the two people comparing that fingerprint
447 /// out-of-band, or it is not caught at all. Show it and have the operator confirm it.
448 ///
449 /// Each group must already be declared in the roster; an undeclared one is refused. `user_id`
450 /// overrides the id the joiner requested — worth using, since that id is chosen by the person
451 /// being approved and is what every `allow` entry will name. `api_minor >= 46`.
452 pub async fn org_approve(
453 &mut self,
454 join_code: &str,
455 groups: Vec<String>,
456 user_id: Option<String>,
457 ) -> Result<crate::protocol::OrgApproveResult, ClientError> {
458 self.request_typed(
459 Request::OrgApprove(crate::protocol::OrgApproveParams {
460 join_code: join_code.to_string(),
461 groups,
462 user_id,
463 }),
464 "org_approve result",
465 )
466 .await
467 }
468
469 /// Mint an attestation offer (#85 ask 3) — where another of this person's devices should dial.
470 pub async fn attest_offer(
471 &mut self,
472 ) -> Result<crate::protocol::AttestOfferResult, ClientError> {
473 self.request_typed(Request::AttestOffer, "attest_offer result")
474 .await
475 }
476
477 /// Present this device's identity to a peer, using their `mcpmesh-attest:` line (#85 ask 3).
478 pub async fn attest_to(
479 &mut self,
480 offer: impl Into<String>,
481 ) -> Result<crate::protocol::PairResult, ClientError> {
482 self.request_typed(
483 Request::AttestTo(crate::protocol::AttestToParams {
484 offer: offer.into(),
485 }),
486 "attest_to result",
487 )
488 .await
489 }
490
491 /// Refuse a peer's device on this node (#85 ask 4). Immediate: live sessions are severed.
492 pub async fn peer_revoke(
493 &mut self,
494 peer: impl Into<String>,
495 reason: Option<String>,
496 ) -> Result<crate::protocol::PeerRevokeResult, ClientError> {
497 self.request_typed(
498 Request::PeerRevoke(crate::protocol::PeerRevokeParams {
499 peer: peer.into(),
500 reason,
501 }),
502 "peer_revoke result",
503 )
504 .await
505 }
506
507 /// Lift a local revocation (#85 ask 4). Idempotent.
508 pub async fn peer_unrevoke(
509 &mut self,
510 peer: impl Into<String>,
511 ) -> Result<crate::protocol::PeerUnrevokeResult, ClientError> {
512 self.request_typed(
513 Request::PeerUnrevoke(crate::protocol::PeerUnrevokeParams { peer: peer.into() }),
514 "peer_unrevoke result",
515 )
516 .await
517 }
518
519 /// Sign a portable revocation of one of THIS person's own devices (#85 ask 4).
520 pub async fn device_revoke(
521 &mut self,
522 endpoint: impl Into<String>,
523 reason: Option<String>,
524 ) -> Result<crate::protocol::DeviceRevokeResult, ClientError> {
525 self.request_typed(
526 Request::DeviceRevoke(crate::protocol::DeviceRevokeParams {
527 endpoint: endpoint.into(),
528 reason,
529 }),
530 "device_revoke result",
531 )
532 .await
533 }
534
535 /// Apply a peer's signed device revocation (#85 ask 4).
536 pub async fn device_revocation_import(
537 &mut self,
538 token: impl Into<String>,
539 ) -> Result<crate::protocol::DeviceRevocationImportResult, ClientError> {
540 self.request_typed(
541 Request::DeviceRevocationImport(crate::protocol::DeviceRevocationImportParams {
542 token: token.into(),
543 }),
544 "device_revocation_import result",
545 )
546 .await
547 }
548
549 /// EXPORT this node's user key as a RECOVERY PHRASE (#85 ask 2).
550 ///
551 /// **The phrase is the private key**, in a form a person can write down. Anyone who reads it
552 /// can present this identity. Show it once, to the person who owns it, and do not persist it
553 /// anywhere you would not persist the key file. It is deliberately not logged or audited by the
554 /// daemon; this response is the only place it exists.
555 ///
556 /// `user_id` is safe to display and record — compare it after an import to confirm the right
557 /// identity came back. `api_minor >= 48`.
558 pub async fn user_key_export(
559 &mut self,
560 ) -> Result<crate::protocol::UserKeyExportResult, ClientError> {
561 self.request_typed(Request::UserKeyExport, "user_key_export result")
562 .await
563 }
564
565 /// IMPORT a user key from a recovery phrase (#85 ask 2), so a person's `b64u:` survives the
566 /// hardware.
567 ///
568 /// Refuses to overwrite an existing key unless `replace` is set: importing over a live key
569 /// discards the identity this node presents, irreversibly without that key's own phrase.
570 ///
571 /// **Check the returned `user_id` against the one you are recovering.** The phrase's checksum
572 /// catches most transcription errors, but the `user_id` is the definitive answer, and the only
573 /// thing that distinguishes "restored the wrong key" from "my peers have not seen me yet".
574 ///
575 /// It does NOT get this device admitted by anyone: peers authorize per DEVICE, and a restored
576 /// user key does not put this endpoint in anybody's allowlist. That is #85 ask 3, not shipped.
577 /// `api_minor >= 48`.
578 pub async fn user_key_import(
579 &mut self,
580 recovery_phrase: &str,
581 replace: bool,
582 ) -> Result<crate::protocol::UserKeyImportResult, ClientError> {
583 self.request_typed(
584 Request::UserKeyImport(crate::protocol::UserKeyImportParams {
585 recovery_phrase: recovery_phrase.to_string(),
586 replace,
587 }),
588 "user_key_import result",
589 )
590 .await
591 }
592
593 /// INSPECT a join code without approving it (#66): what it claims, and the fingerprint that
594 /// decides whether to believe it. Read-only — nothing is signed or installed.
595 ///
596 /// **Call this before [`org_approve`](Self::org_approve), show
597 /// `join_code_fingerprint`, and have the operator confirm it out-of-band.** Nothing in a join
598 /// code binds it to a person; a substituted one carries a different key and diverges here. The
599 /// fingerprint on the approval RESULT is the same words, but by then the member is in the
600 /// signed roster — too late to decline.
601 ///
602 /// The claims (`display_name`, `requested_user_id`, `device_label`) are chosen by the sender.
603 /// Render them; do not trust them. A forged binding is refused rather than described.
604 /// `api_minor >= 46`.
605 pub async fn org_join_code(
606 &mut self,
607 join_code: &str,
608 ) -> Result<crate::protocol::OrgJoinCodeResult, ClientError> {
609 self.request_typed(
610 Request::OrgJoinCode(crate::protocol::OrgJoinCodeParams {
611 join_code: join_code.to_string(),
612 }),
613 "org_join_code result",
614 )
615 .await
616 }
617
618 /// REVOKE from the roster (#66) — and sever the cut devices' live sessions, immediately.
619 ///
620 /// Three readings, and picking the wrong one is destructive, so the result reports which
621 /// `mode` was applied: `"<user_id>/<label>"` cuts ONE device; a bare `user_id` removes the
622 /// person and revokes ALL their devices; `user_key = true` is a key ROTATION — the person is
623 /// removed but their devices stay un-revoked so the same hardware re-enrolls under a fresh
624 /// user key. `api_minor >= 46`.
625 pub async fn org_revoke(
626 &mut self,
627 target: &str,
628 user_key: bool,
629 ) -> Result<crate::protocol::OrgRevokeResult, ClientError> {
630 self.request_typed(
631 Request::OrgRevoke(crate::protocol::OrgRevokeParams {
632 target: target.to_string(),
633 user_key,
634 }),
635 "org_revoke result",
636 )
637 .await
638 }
639
640 /// Pin the org root on a JOINER (no roster yet). `user_key` is a LOCAL path — the key never
641 /// crosses the API. Returns the pinned org id.
642 pub async fn org_join(
643 &mut self,
644 org_id: &str,
645 org_root_pk: &str,
646 user_id: &str,
647 user_key: &str,
648 ) -> Result<OrgJoinResult, ClientError> {
649 self.request_typed(
650 Request::OrgJoin(OrgJoinParams {
651 org_id: org_id.to_string(),
652 org_root_pk: org_root_pk.to_string(),
653 user_id: user_id.to_string(),
654 user_key: user_key.to_string(),
655 }),
656 "org_join result",
657 )
658 .await
659 }
660
661 /// Pin the HTTPS roster URL (`[roster].url`) in the daemon's config. The daemon acks; the
662 /// ack body is discarded.
663 pub async fn set_roster_url(&mut self, url: &str) -> Result<(), ClientError> {
664 self.request_ack(Request::SetRosterUrl(SetRosterUrlParams {
665 url: url.to_string(),
666 }))
667 .await
668 }
669
670 /// Discover which services a paired `peer` (a nickname, `eid:`, or `b64u:`) CURRENTLY grants
671 /// the caller (#52) — dials the peer and returns the service names its allow admits for the
672 /// caller's principal (only your own admitted services, never the peer's full registry).
673 pub async fn peer_services(&mut self, peer: &str) -> Result<Vec<String>, ClientError> {
674 self.request_typed::<PeerServicesResult>(
675 Request::PeerServices(PeerServicesParams {
676 peer: peer.to_string(),
677 }),
678 "peer_services",
679 )
680 .await
681 .map(|r| r.services)
682 }
683
684 /// Remove a service registration (#50) — the deregistration mirror of `register_service`.
685 /// Removes the whole entry (allow included) + any ephemeral registration of the name, then
686 /// hot-reloads. Idempotent: an unknown name is a clean no-op.
687 pub async fn unregister_service(&mut self, name: &str) -> Result<(), ClientError> {
688 self.request_ack(Request::UnregisterService(UnregisterServiceParams {
689 name: name.to_string(),
690 }))
691 .await
692 }
693
694 /// Grant a stable `principal` (`b64u:`/`eid:`) access to `service` WITHOUT (re)pairing (#44)
695 /// — the per-peer "sharing on" toggle. Idempotent; an unknown service is a clean no-op.
696 pub async fn service_allow_grant(
697 &mut self,
698 service: &str,
699 principal: &str,
700 ) -> Result<(), ClientError> {
701 self.request_ack(Request::ServiceAllowGrant(ServiceAllowParams {
702 service: service.to_string(),
703 principal: principal.to_string(),
704 }))
705 .await
706 }
707
708 /// Revoke a stable `principal` from `service`'s allow WITHOUT unpairing (#44) — the
709 /// "sharing off" toggle. The peer's identity row is untouched; it just cannot open NEW
710 /// sessions (in-flight ones run to completion). Idempotent.
711 pub async fn service_allow_revoke(
712 &mut self,
713 service: &str,
714 principal: &str,
715 ) -> Result<(), ClientError> {
716 self.request_ack(Request::ServiceAllowRevoke(ServiceAllowParams {
717 service: service.to_string(),
718 principal: principal.to_string(),
719 }))
720 .await
721 }
722
723 /// Set this node's opaque app-metadata blob (#39, roster mode): ≤256 bytes, folded
724 /// signed into each presence heartbeat so paired peers read it in `status` presence —
725 /// no per-peer session. `""` clears it; in-memory (re-set on startup).
726 pub async fn set_app_metadata(&mut self, metadata: &str) -> Result<(), ClientError> {
727 self.request_ack(Request::SetAppMetadata(SetAppMetadataParams {
728 metadata: metadata.to_string(),
729 }))
730 .await
731 }
732
733 /// Set this node's CUSTOM relay set LIVE (#53). `relay_urls` is the desired set (each must
734 /// parse as an iroh `RelayUrl`; empty is rejected). When the node is already in
735 /// `relay_mode = "custom"`, the daemon diffs against the running endpoint and applies the
736 /// delta live (iroh `insert_relay`/`remove_relay`) — no restart, no dropped sessions — then
737 /// persists `[network]`. When the node is currently `default`/`disabled`, the config is
738 /// persisted but the live mode transition isn't possible: the returned
739 /// [`SetRelaysResult::restart_required`] is `true`. Idempotent (an unchanged set → `changed:
740 /// false`, no writes).
741 pub async fn set_relays(
742 &mut self,
743 relay_urls: &[String],
744 ) -> Result<SetRelaysResult, ClientError> {
745 self.request_typed::<SetRelaysResult>(
746 Request::SetRelays(SetRelaysParams {
747 relay_urls: relay_urls.to_vec(),
748 }),
749 "set_relays",
750 )
751 .await
752 }
753
754 /// Rename this node LIVE (#37): the daemon validates + persists `[identity].nickname`
755 /// under its own config lock and updates the name future invites present — no restart.
756 /// Peers keep their stored pairing-time nickname until a re-invite (display-only).
757 pub async fn set_nickname(&mut self, nickname: &str) -> Result<(), ClientError> {
758 self.request_ack(Request::SetNickname(SetNicknameParams {
759 nickname: nickname.to_string(),
760 }))
761 .await
762 }
763
764 /// Summarize the daemon's LOCAL audit log into per-peer / per-service session counts
765 /// (local-only — nothing is transmitted).
766 pub async fn audit_summary(&mut self) -> Result<AuditSummaryResult, ClientError> {
767 self.request_typed(Request::AuditSummary, "audit_summary result")
768 .await
769 }
770
771 /// Publish a local file into `scope`; return the minted `mcpmesh/blob/1` ticket + hash.
772 pub async fn blob_publish(
773 &mut self,
774 scope: &str,
775 path: &str,
776 ) -> Result<BlobPublishResult, ClientError> {
777 self.request_typed(
778 Request::BlobPublish(BlobPublishParams {
779 scope: scope.to_string(),
780 path: path.to_string(),
781 }),
782 "blob_publish result",
783 )
784 .await
785 }
786
787 /// List the daemon's blob scopes (name → hashes + grants + withdrawn).
788 ///
789 /// A DEFAULT LIMIT applies (#84b) — check `truncated` and page with
790 /// [`blob_list_paged`](Self::blob_list_paged) rather than assuming you saw everything.
791 pub async fn blob_list(&mut self) -> Result<BlobScopeList, ClientError> {
792 self.blob_list_paged(Default::default()).await
793 }
794
795 /// List blob scopes with filters + paging (#84b, `api_minor >= 20`).
796 pub async fn blob_list_paged(
797 &mut self,
798 params: crate::BlobListParams,
799 ) -> Result<BlobScopeList, ClientError> {
800 self.request_typed(Request::BlobList(params), "blob_list result")
801 .await
802 }
803
804 /// Fetch a `mcpmesh/blob/1` ticket THROUGH the daemon (BLAKE3-verified), export to
805 /// `dest_path`; return the verified hash + byte length.
806 pub async fn blob_fetch(
807 &mut self,
808 ticket: &str,
809 dest_path: &str,
810 ) -> Result<BlobFetchResult, ClientError> {
811 self.blob_fetch_from(ticket, dest_path, Vec::new()).await
812 }
813
814 /// [`blob_fetch`](Self::blob_fetch) with ADDITIONAL sources to try when the ticket's publisher
815 /// does not answer (#83).
816 ///
817 /// Content addressing makes every recipient a potential source; a single-address ticket made
818 /// that unusable, so a file shared with a room became unfetchable the moment the sender closed
819 /// their laptop — even though others in the room already held the identical verified bytes.
820 ///
821 /// `from` takes stable principals (`eid:`, `b64u:`) or paired nicknames — the same vocabulary
822 /// `open_session` takes, and naming a PERSON offers every device of theirs. They are tried in
823 /// order, **after** the publisher, so a live publisher costs nothing and an offline one costs
824 /// one dial timeout.
825 ///
826 /// **The bytes are BLAKE3-verified against the ticket's hash whoever serves them**, so an
827 /// alternate cannot substitute content. It can refuse: an alternate serves only hashes it has
828 /// republished into a scope that grants you (see `blob_republish`), and an ungranted one
829 /// answers a permission error and the fetch moves on. Every failure mode falls through, not
830 /// only an unreachable dial — a refusal, a missing hash, a reset, and a stalled transfer all
831 /// move to the next source. `api_minor >= 47`.
832 pub async fn blob_fetch_from(
833 &mut self,
834 ticket: &str,
835 dest_path: &str,
836 from: Vec<String>,
837 ) -> Result<BlobFetchResult, ClientError> {
838 self.request_typed(
839 Request::BlobFetch(BlobFetchParams {
840 ticket: ticket.to_string(),
841 dest_path: dest_path.to_string(),
842 from,
843 }),
844 "blob_fetch result",
845 )
846 .await
847 }
848
849 /// Stop every in-flight [`blob_fetch`](Self::blob_fetch) of `hash` (#172).
850 ///
851 /// **Send this on a DIFFERENT connection than the fetch it cancels.** This client is one
852 /// request at a time — `&mut self` is borrowed until the fetch answers — so a cancel issued on
853 /// the same client can only run after the thing it would cancel is already over. The cancelled
854 /// fetch answers [`ERR_CANCELLED`](crate::ERR_CANCELLED) on its own connection.
855 ///
856 /// `cancelled: false` means nothing was fetching that blob here. That is the honest answer to a
857 /// cancel that raced a fetch to completion, not an error.
858 ///
859 /// Needs `api_minor >= 44`; below it the method is unknown.
860 pub async fn blob_fetch_cancel(
861 &mut self,
862 hash: &str,
863 ) -> Result<BlobFetchCancelResult, ClientError> {
864 self.request_typed(
865 Request::BlobFetchCancel(BlobFetchCancelParams {
866 hash: hash.to_string(),
867 }),
868 "blob_fetch_cancel result",
869 )
870 .await
871 }
872
873 /// Grant a scope to a principal — any flat-namespace entry: a group name, a user_id,
874 /// or a nickname (the shared `principal_set` expansion).
875 /// The daemon acks; the ack body is discarded (a JSON-RPC error surfaces as
876 /// `ClientError::Api`). Granting a scope to your own user_id reaches ALL of that
877 /// person's devices.
878 pub async fn blob_grant(&mut self, scope: &str, principal: &str) -> Result<(), ClientError> {
879 self.request_ack(Request::BlobGrant(BlobGrantParams {
880 scope: scope.to_string(),
881 principal: principal.to_string(),
882 }))
883 .await
884 }
885
886 /// The TYPED `subscribe` upgrade: send [`Request::Subscribe`] (after which the connection
887 /// stops being request/response — see [`open_stream`](Self::open_stream)) and return a
888 /// [`StreamSubscription`] yielding [`StreamFrame`]s. For raw frames (e.g. to tolerate frame
889 /// types newer than this crate), use `open_stream("subscribe")` instead.
890 pub async fn subscribe(self) -> Result<StreamSubscription, ClientError> {
891 let (reader, writer) = self.open_stream("subscribe").await?;
892 Ok(StreamSubscription {
893 reader,
894 _writer: writer,
895 })
896 }
897}
898
899/// A live [`Request::Subscribe`] stream yielding typed [`StreamFrame`]s (snapshot, then
900/// events/lagged notices) until the daemon side closes. Holds the connection's write half for its
901/// lifetime — a subscriber only reads, but dropping the writer would half-close the socket. Drop
902/// the subscription to disconnect (there is no request channel back).
903pub struct StreamSubscription {
904 reader: FrameReader<ControlRead>,
905 _writer: ControlWrite,
906}
907
908/// Hand-rolled like [`ControlClient`]'s: the boxed transport halves are not `Debug`.
909impl std::fmt::Debug for StreamSubscription {
910 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
911 f.debug_struct("StreamSubscription").finish_non_exhaustive()
912 }
913}
914
915impl StreamSubscription {
916 /// The next frame, or `None` when the daemon closed the stream. A frame this crate's
917 /// [`StreamFrame`] does not model (a NEWER daemon's frame type) surfaces as
918 /// [`ClientError::Malformed`] — a forward-compatible consumer reads raw frames via
919 /// [`ControlClient::open_stream`] instead.
920 pub async fn next(&mut self) -> Result<Option<StreamFrame>, ClientError> {
921 match self.reader.next().await? {
922 Some(Inbound::Frame(v)) => serde_json::from_value(v)
923 .map(Some)
924 .map_err(|_| ClientError::Malformed("stream frame")),
925 Some(Inbound::Violation(_)) => Err(ClientError::Malformed("stream frame")),
926 None => Ok(None),
927 }
928 }
929}
930
931/// Complete the mcpmesh-local/1 hello handshake over ALREADY-CONNECTED byte halves —
932/// the transport-agnostic core of [`connect_control`], and the front door for in-process
933/// embedding (`mcpmesh-node`'s `Node::control` dials a tokio duplex through here).
934pub async fn connect_control_io(
935 reader: impl tokio::io::AsyncRead + Send + Unpin + 'static,
936 writer: impl tokio::io::AsyncWrite + Send + Unpin + 'static,
937) -> Result<ControlClient, ClientError> {
938 let mut reader = FrameReader::new(Box::new(reader) as ControlRead, MAX_FRAME_BYTES);
939 let hello: Hello = match reader.next().await? {
940 Some(Inbound::Frame(v)) => {
941 serde_json::from_value(v).map_err(|_| ClientError::Malformed("hello"))?
942 }
943 Some(Inbound::Violation(_)) => return Err(ClientError::Malformed("hello")),
944 None => return Err(ClientError::Closed("hello")),
945 };
946 if hello.api != crate::protocol::API_NAME {
947 return Err(ClientError::WrongApi {
948 got: hello.api,
949 want: crate::protocol::API_NAME,
950 });
951 }
952 Ok(ControlClient {
953 hello,
954 reader,
955 writer: Box::new(writer) as ControlWrite,
956 })
957}
958
959/// Connect + complete the hello handshake, asserting the api name is `mcpmesh-local/1`.
960pub async fn connect_control(path: &Path) -> Result<ControlClient, ClientError> {
961 let stream = connect_local(path).await?;
962 let (read_half, write_half) = split_local(stream);
963 connect_control_io(read_half, write_half).await
964}
965
966/// [`connect_control`] at the platform default endpoint ([`crate::paths::default_endpoint`]):
967/// the quickstart front door — a consumer dials the running daemon without reimplementing
968/// the platform endpoint rule. Resolution failure surfaces as [`ClientError::Io`]
969/// (`NotFound`), same as a daemon that is not running.
970pub async fn connect_control_default() -> Result<ControlClient, ClientError> {
971 connect_control(&crate::paths::default_endpoint()?).await
972}
973
974// Seam-ported (Task 6): every stub daemon binds via the platform seam
975// (`transport::bind_local` + `LocalListener::accept`) rather than a raw `UnixListener`,
976// so these exercise the platform-identical `ControlClient` on BOTH unix (UDS) and windows
977// (named pipe). Gated on `feature = "service"` (bind needs it) rather than `unix`: under
978// `cargo test --workspace` feature unification turns `service` on for this crate (cli
979// depends on local-api with features=["service"]), so the module compiles and RUNS on the
980// windows CI leg. `test_endpoint` yields a platform-appropriate unique endpoint.
981#[cfg(all(test, feature = "service"))]
982mod tests {
983 use super::*;
984 use crate::protocol::{API_NAME, API_VERSION, BackendKind, ServiceInfo, StatusResult};
985 use crate::transport::{LocalListener, bind_local, split_local};
986 use tokio::io::AsyncWriteExt;
987
988 /// A unique local endpoint for a stub daemon, platform-appropriate: a tempdir socket
989 /// path on unix, a per-process-unique `\\.\pipe\…` name on windows. Returns the
990 /// endpoint plus a guard that MUST outlive the listener (the `TempDir` on unix; unit
991 /// on windows, whose pipe namespace needs no filesystem cleanup).
992 #[cfg(unix)]
993 fn test_endpoint(tag: &str) -> (std::path::PathBuf, tempfile::TempDir) {
994 let dir = tempfile::tempdir().unwrap();
995 let path = dir.path().join(format!("{tag}.sock"));
996 (path, dir)
997 }
998 #[cfg(windows)]
999 fn test_endpoint(tag: &str) -> (std::path::PathBuf, ()) {
1000 use std::sync::atomic::{AtomicU64, Ordering};
1001 static SEQ: AtomicU64 = AtomicU64::new(0);
1002 let n = SEQ.fetch_add(1, Ordering::Relaxed);
1003 let path = std::path::PathBuf::from(format!(
1004 r"\\.\pipe\mcpmesh-client-test-{}-{tag}-{n}",
1005 std::process::id()
1006 ));
1007 (path, ())
1008 }
1009
1010 /// A stub mcpmesh daemon: send Hello, then answer one `status` with a StatusResult.
1011 async fn stub_daemon(mut listener: LocalListener) {
1012 let stream = listener.accept().await.unwrap();
1013 let (read_half, mut writer) = split_local(stream);
1014 write_frame(
1015 &mut writer,
1016 &serde_json::to_value(Hello {
1017 api: API_NAME.into(),
1018 api_version: API_VERSION.into(),
1019 api_minor: 0,
1020 stack_version: "0.1.0".into(),
1021 })
1022 .unwrap(),
1023 )
1024 .await
1025 .unwrap();
1026 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1027 let req = match reader.next().await.unwrap().unwrap() {
1028 Inbound::Frame(v) => v,
1029 Inbound::Violation(_) => panic!("violation"),
1030 };
1031 assert_eq!(req["method"], "status");
1032 let result = StatusResult {
1033 stack_version: "0.1.0".into(),
1034 services: vec![ServiceInfo {
1035 name: "kb".into(),
1036 allow: vec![],
1037 allow_display: vec![],
1038 backend: BackendKind::Socket,
1039 ephemeral: false,
1040 }],
1041 peers: vec![],
1042 roster: None,
1043 presence: vec![],
1044 self_user_id: None,
1045 recent_pairings: vec![],
1046 reachability: vec![],
1047 self_nickname: String::new(),
1048 storage: None,
1049 revoked: Vec::new(),
1050 self_network: None,
1051 };
1052 write_frame(
1053 &mut writer,
1054 &serde_json::json!({ "jsonrpc": "2.0", "id": 1, "result": result }),
1055 )
1056 .await
1057 .unwrap();
1058 writer.flush().await.unwrap();
1059 }
1060
1061 /// The transport-agnostic front door: the same hello handshake over a plain in-memory
1062 /// duplex — what an embedded node's `Node::control` dials through.
1063 #[tokio::test]
1064 async fn connect_control_io_handshakes_over_a_duplex() {
1065 let (client_io, mut server_io) = tokio::io::duplex(4096);
1066 tokio::spawn(async move {
1067 write_frame(
1068 &mut server_io,
1069 &serde_json::to_value(Hello {
1070 api: API_NAME.into(),
1071 api_version: API_VERSION.into(),
1072 api_minor: 0,
1073 stack_version: "in-proc".into(),
1074 })
1075 .unwrap(),
1076 )
1077 .await
1078 .unwrap();
1079 });
1080 let (r, w) = tokio::io::split(client_io);
1081 let client = connect_control_io(r, w).await.expect("handshake");
1082 assert_eq!(client.hello().stack_version, "in-proc");
1083 }
1084
1085 #[tokio::test]
1086 async fn connect_reads_hello_asserts_api_and_requests() {
1087 let (sock, _guard) = test_endpoint("status");
1088 let listener = bind_local(&sock).unwrap();
1089 let server = tokio::spawn(stub_daemon(listener));
1090
1091 let mut client = connect_control(&sock).await.unwrap();
1092 assert_eq!(client.hello().api, API_NAME);
1093 let result = client.request(Request::Status).await.unwrap();
1094 assert_eq!(result["services"][0]["name"], "kb");
1095 assert_eq!(result["services"][0]["backend"], "socket");
1096 server.await.unwrap();
1097 }
1098
1099 #[tokio::test]
1100 async fn wrong_api_hello_is_rejected() {
1101 let (sock, _guard) = test_endpoint("wrongapi");
1102 let listener = bind_local(&sock).unwrap();
1103 tokio::spawn(async move {
1104 let mut listener = listener;
1105 let stream = listener.accept().await.unwrap();
1106 let (_r, mut w) = split_local(stream);
1107 write_frame(
1108 &mut w,
1109 &serde_json::json!({"api":"other/1","api_version":"1.0","stack_version":"0"}),
1110 )
1111 .await
1112 .unwrap();
1113 w.flush().await.unwrap();
1114 });
1115 match connect_control(&sock).await {
1116 Err(ClientError::WrongApi { got, want }) => {
1117 assert_eq!(got, "other/1");
1118 assert_eq!(want, API_NAME);
1119 }
1120 other => panic!("expected WrongApi, got {other:?}"),
1121 }
1122 }
1123
1124 #[tokio::test]
1125 async fn blob_fetch_and_publish_deserialize_typed_results() {
1126 use crate::protocol::{BlobFetchResult, BlobPublishResult};
1127 let (sock, _guard) = test_endpoint("blob");
1128 let listener = bind_local(&sock).unwrap();
1129 let server = tokio::spawn(async move {
1130 let mut listener = listener;
1131 let stream = listener.accept().await.unwrap();
1132 let (read_half, mut writer) = split_local(stream);
1133 write_frame(
1134 &mut writer,
1135 &serde_json::to_value(Hello {
1136 api: API_NAME.into(),
1137 api_version: API_VERSION.into(),
1138 api_minor: 0,
1139 stack_version: "0.1.0".into(),
1140 })
1141 .unwrap(),
1142 )
1143 .await
1144 .unwrap();
1145 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1146 // First request: blob_publish -> a ticket + hash.
1147 let req = match reader.next().await.unwrap().unwrap() {
1148 Inbound::Frame(v) => v,
1149 Inbound::Violation(_) => panic!("violation"),
1150 };
1151 assert_eq!(req["method"], "blob_publish");
1152 assert_eq!(req["params"]["scope"], "eng");
1153 write_frame(
1154 &mut writer,
1155 &serde_json::json!({"jsonrpc":"2.0","id":1,"result":{"ticket":"blobT","hash":"ab"}}),
1156 )
1157 .await
1158 .unwrap();
1159 // Second request: blob_fetch -> a verified hash + length.
1160 let req = match reader.next().await.unwrap().unwrap() {
1161 Inbound::Frame(v) => v,
1162 Inbound::Violation(_) => panic!("violation"),
1163 };
1164 assert_eq!(req["method"], "blob_fetch");
1165 assert_eq!(req["params"]["ticket"], "blobT");
1166 assert_eq!(req["params"]["dest_path"], "/tmp/out.bin");
1167 write_frame(
1168 &mut writer,
1169 &serde_json::json!({"jsonrpc":"2.0","id":2,"result":{"hash":"cd","bytes_len":7}}),
1170 )
1171 .await
1172 .unwrap();
1173 let _ = (
1174 BlobFetchResult {
1175 hash: "cd".into(),
1176 bytes_len: 7,
1177 },
1178 BlobPublishResult {
1179 ticket: "blobT".into(),
1180 hash: "ab".into(),
1181 },
1182 );
1183 });
1184
1185 let mut client = connect_control(&sock).await.unwrap();
1186 let pub_res = client.blob_publish("eng", "/tmp/a.bin").await.unwrap();
1187 assert_eq!(pub_res.ticket, "blobT");
1188 assert_eq!(pub_res.hash, "ab");
1189 let fetch_res = client.blob_fetch("blobT", "/tmp/out.bin").await.unwrap();
1190 assert_eq!(fetch_res.hash, "cd");
1191 assert_eq!(fetch_res.bytes_len, 7);
1192 server.await.unwrap();
1193 }
1194
1195 /// Regression (lossless rebox): a frame the server PIPELINES in the same write as
1196 /// the Hello must survive `open_session` + kb's production re-box shape
1197 /// (`FrameReader::new(Box::new(reader.into_inner()), …)`, bridge/session.rs). Against
1198 /// the old `into_inner -> R` — which unwrapped the internal `BufReader` and DROPPED
1199 /// its read-ahead — the pipelined frame vanished and this test failed (EOF instead of
1200 /// the frame). `into_inner -> BufReader<R>` carries the read-ahead across the rebox.
1201 #[tokio::test]
1202 async fn frame_pipelined_behind_hello_survives_open_session_rebox() {
1203 use tokio::io::AsyncRead;
1204
1205 let (sock, _guard) = test_endpoint("pipelined");
1206 let listener = bind_local(&sock).unwrap();
1207 let server = tokio::spawn(async move {
1208 let mut listener = listener;
1209 let stream = listener.accept().await.unwrap();
1210 let (read_half, mut writer) = split_local(stream);
1211 // ONE write carrying the Hello AND a session frame → both land in the
1212 // client's first BufReader fill (the read-ahead under test).
1213 let mut bytes = serde_json::to_vec(
1214 &serde_json::to_value(Hello {
1215 api: API_NAME.into(),
1216 api_version: API_VERSION.into(),
1217 api_minor: 0,
1218 stack_version: "0.1.0".into(),
1219 })
1220 .unwrap(),
1221 )
1222 .unwrap();
1223 bytes.push(b'\n');
1224 bytes.extend_from_slice(b"{\"jsonrpc\":\"2.0\",\"id\":42,\"result\":{}}\n");
1225 writer.write_all(&bytes).await.unwrap();
1226 writer.flush().await.unwrap();
1227 // Absorb the client's open_session frame so its write never sees EPIPE.
1228 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1229 let req = match reader.next().await.unwrap().unwrap() {
1230 Inbound::Frame(v) => v,
1231 Inbound::Violation(_) => panic!("violation"),
1232 };
1233 assert_eq!(req["method"], "open_session");
1234 });
1235
1236 let client = connect_control(&sock).await.unwrap();
1237 let (reader, _writer) = client
1238 .open_session("peer".into(), "kb".into())
1239 .await
1240 .unwrap();
1241 // kb's production shape: erase the half type behind a boxed pipe, then re-frame.
1242 let boxed: Box<dyn AsyncRead + Unpin + Send> = Box::new(reader.into_inner());
1243 let mut reframed = FrameReader::new(boxed, MAX_FRAME_BYTES);
1244 match reframed.next().await.unwrap() {
1245 Some(Inbound::Frame(v)) => assert_eq!(v["id"], 42),
1246 other => panic!("pipelined frame was lost across the rebox: {other:?}"),
1247 }
1248 server.await.unwrap();
1249 }
1250
1251 #[tokio::test]
1252 async fn blob_grant_issues_request_and_acks() {
1253 let (sock, _guard) = test_endpoint("grant");
1254 let listener = bind_local(&sock).unwrap();
1255 let server = tokio::spawn(async move {
1256 let mut listener = listener;
1257 let stream = listener.accept().await.unwrap();
1258 let (read_half, mut writer) = split_local(stream);
1259 write_frame(
1260 &mut writer,
1261 &serde_json::to_value(Hello {
1262 api: API_NAME.into(),
1263 api_version: API_VERSION.into(),
1264 api_minor: 0,
1265 stack_version: "0.1.0".into(),
1266 })
1267 .unwrap(),
1268 )
1269 .await
1270 .unwrap();
1271 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1272 let req = match reader.next().await.unwrap().unwrap() {
1273 Inbound::Frame(v) => v,
1274 Inbound::Violation(_) => panic!("violation"),
1275 };
1276 assert_eq!(req["method"], "blob_grant");
1277 assert_eq!(req["params"]["scope"], "kb-sync");
1278 assert_eq!(req["params"]["principal"], "alice");
1279 write_frame(
1280 &mut writer,
1281 &serde_json::json!({"jsonrpc":"2.0","id":1,"result":{"ok":true}}),
1282 )
1283 .await
1284 .unwrap();
1285 });
1286 let mut client = connect_control(&sock).await.unwrap();
1287 client.blob_grant("kb-sync", "alice").await.unwrap();
1288 server.await.unwrap();
1289 }
1290
1291 /// The typed `status()` helper pairs `Request::Status` with `StatusResult` — the caller gets
1292 /// the struct, not a `Value` to hand-deserialize (and a malformed result surfaces as
1293 /// `ClientError::Malformed`, never a silently-wrong type).
1294 #[tokio::test]
1295 async fn typed_status_helper_deserializes_the_result() {
1296 let (sock, _guard) = test_endpoint("typedstatus");
1297 let listener = bind_local(&sock).unwrap();
1298 let server = tokio::spawn(stub_daemon(listener));
1299
1300 let mut client = connect_control(&sock).await.unwrap();
1301 let status = client.status().await.unwrap();
1302 assert_eq!(status.stack_version, "0.1.0");
1303 assert_eq!(status.services[0].name, "kb");
1304 assert_eq!(status.services[0].backend, BackendKind::Socket);
1305 assert!(status.peers.is_empty());
1306 server.await.unwrap();
1307 }
1308
1309 /// The ack-shaped typed helpers issue the right wire method and discard the `{}` ack; a
1310 /// JSON-RPC error frame surfaces as `ClientError::Api`.
1311 #[tokio::test]
1312 async fn typed_ack_helpers_issue_requests_and_surface_api_errors() {
1313 let (sock, _guard) = test_endpoint("typedack");
1314 let listener = bind_local(&sock).unwrap();
1315 let server = tokio::spawn(async move {
1316 let mut listener = listener;
1317 let stream = listener.accept().await.unwrap();
1318 let (read_half, mut writer) = split_local(stream);
1319 write_frame(
1320 &mut writer,
1321 &serde_json::to_value(Hello {
1322 api: API_NAME.into(),
1323 api_version: API_VERSION.into(),
1324 api_minor: 0,
1325 stack_version: "0.1.0".into(),
1326 })
1327 .unwrap(),
1328 )
1329 .await
1330 .unwrap();
1331 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1332 // peer_remove → ack.
1333 let req = match reader.next().await.unwrap().unwrap() {
1334 Inbound::Frame(v) => v,
1335 Inbound::Violation(_) => panic!("violation"),
1336 };
1337 assert_eq!(req["method"], "peer_remove");
1338 assert_eq!(req["params"]["nickname"], "bob");
1339 write_frame(
1340 &mut writer,
1341 &serde_json::json!({"jsonrpc":"2.0","id":1,"result":{}}),
1342 )
1343 .await
1344 .unwrap();
1345 // peer_rename → an error frame (collision refusal).
1346 let req = match reader.next().await.unwrap().unwrap() {
1347 Inbound::Frame(v) => v,
1348 Inbound::Violation(_) => panic!("violation"),
1349 };
1350 assert_eq!(req["method"], "peer_rename");
1351 assert_eq!(req["params"]["to"], "Bobby");
1352 write_frame(
1353 &mut writer,
1354 &serde_json::json!({"jsonrpc":"2.0","id":2,"error":{"code":-32000,"message":"taken"}}),
1355 )
1356 .await
1357 .unwrap();
1358 });
1359
1360 let mut client = connect_control(&sock).await.unwrap();
1361 client.peer_remove("bob").await.unwrap();
1362 match client.peer_rename(None, Some("bob".into()), "Bobby").await {
1363 Err(ClientError::Api(e)) => assert_eq!(e["message"], "taken"),
1364 other => panic!("expected Api error, got {other:?}"),
1365 }
1366 server.await.unwrap();
1367 }
1368
1369 /// The typed `subscribe()` upgrade yields `StreamFrame`s — snapshot, event, lagged — then
1370 /// `None` when the daemon side closes.
1371 #[tokio::test]
1372 async fn typed_subscribe_yields_frames_then_end() {
1373 use crate::protocol::{ActiveSession, AuditRecord, PeerReachability};
1374
1375 let (sock, _guard) = test_endpoint("subscribe");
1376 let listener = bind_local(&sock).unwrap();
1377 let server = tokio::spawn(async move {
1378 let mut listener = listener;
1379 let stream = listener.accept().await.unwrap();
1380 let (read_half, mut writer) = split_local(stream);
1381 write_frame(
1382 &mut writer,
1383 &serde_json::to_value(Hello {
1384 api: API_NAME.into(),
1385 api_version: API_VERSION.into(),
1386 api_minor: 0,
1387 stack_version: "0.1.0".into(),
1388 })
1389 .unwrap(),
1390 )
1391 .await
1392 .unwrap();
1393 let mut reader = FrameReader::new(read_half, MAX_FRAME_BYTES);
1394 let req = match reader.next().await.unwrap().unwrap() {
1395 Inbound::Frame(v) => v,
1396 Inbound::Violation(_) => panic!("violation"),
1397 };
1398 assert_eq!(req["method"], "subscribe");
1399 for frame in [
1400 StreamFrame::Snapshot {
1401 self_network: None,
1402 active_sessions: vec![ActiveSession {
1403 peer: "bob".into(),
1404 service: "notes".into(),
1405 opened_at: 7,
1406 principal: Some("eid:bob".into()),
1407 }],
1408 reachability: vec![PeerReachability {
1409 name: "bob".into(),
1410 reachable: true,
1411 rtt_ms: Some(42),
1412 age_secs: Some(3),
1413 meta: String::new(),
1414 principal: None,
1415 path: Default::default(),
1416 }],
1417 },
1418 StreamFrame::Event {
1419 record: Box::new(AuditRecord::session_open(
1420 "2026-07-03T14:02:11.480Z".into(),
1421 Some("bob".into()),
1422 "notes".into(),
1423 None,
1424 )),
1425 },
1426 StreamFrame::Lagged { dropped: 12 },
1427 ] {
1428 write_frame(&mut writer, &serde_json::to_value(&frame).unwrap())
1429 .await
1430 .unwrap();
1431 }
1432 writer.flush().await.unwrap();
1433 // Drop the connection: the client must see the stream END (Ok(None)), not an error.
1434 });
1435
1436 let client = connect_control(&sock).await.unwrap();
1437 let mut sub = client.subscribe().await.unwrap();
1438 match sub.next().await.unwrap().unwrap() {
1439 StreamFrame::Snapshot {
1440 active_sessions,
1441 reachability,
1442 ..
1443 } => {
1444 assert_eq!(active_sessions[0].peer, "bob");
1445 assert_eq!(reachability[0].rtt_ms, Some(42));
1446 }
1447 other => panic!("expected the snapshot first, got {other:?}"),
1448 }
1449 match sub.next().await.unwrap().unwrap() {
1450 StreamFrame::Event { record } => {
1451 assert_eq!(record.peer.as_deref(), Some("bob"));
1452 assert_eq!(record.service.as_deref(), Some("notes"));
1453 }
1454 other => panic!("expected the event, got {other:?}"),
1455 }
1456 assert_eq!(
1457 sub.next().await.unwrap(),
1458 Some(StreamFrame::Lagged { dropped: 12 })
1459 );
1460 assert_eq!(sub.next().await.unwrap(), None, "clean end of stream");
1461 server.await.unwrap();
1462 }
1463}