ping_core/client.rs
1//! `MessagingClient` — top-level handle. Owns the OpenMLS provider, identity, local device,
2//! and the set of open conversations.
3//!
4//! All operations are `async`. The intent is that the FFI generators emit Swift `async`,
5//! Kotlin `suspend`, and the WASM glue exposes Promises.
6
7use openmls::framing::MlsMessageOut;
8use openmls::prelude::{
9 tls_codec::Serialize as TlsSerialize, BasicCredential, Ciphersuite, CredentialWithKey,
10 KeyPackageBuilder,
11};
12use openmls_basic_credential::SignatureKeyPair;
13use openmls_traits::OpenMlsProvider;
14use parking_lot::RwLock;
15use ping_mls_store::{PersistentMlsProvider, StorageBackend};
16use std::collections::HashMap;
17use std::sync::Arc;
18use zeroize::Zeroizing;
19
20use crate::{
21 codec,
22 conversation::{Conversation, ConversationId, ConversationMeta},
23 device::{
24 CatchupAppEventEntry, CatchupConversationEntry, CatchupSnapshot, DeviceId, DeviceInfo,
25 LinkingTicket, LocalDevice, CATCHUP_SNAPSHOT_VERSION,
26 },
27 error::{Error, Result},
28 identity::{Identity, UserId},
29 message::{IncomingMessage, MessageEnvelope, MessageKind},
30 storage::Storage,
31 sync::SyncCursor,
32 transport::Transport,
33};
34
35const DEFAULT_CIPHERSUITE: Ciphersuite = Ciphersuite::MLS_128_DHKEMX25519_AES128GCM_SHA256_Ed25519;
36
37/// Per-chat result reported by [`MessagingClient::admit_device_to_chats`].
38#[derive(Debug, Clone)]
39pub struct AdmitChatOutcome {
40 pub conversation_id: ConversationId,
41 pub status: AdmitChatStatus,
42}
43
44#[derive(Debug, Clone)]
45pub enum AdmitChatStatus {
46 /// The new device is now an MLS leaf in this chat. Both the Commit
47 /// and the addressed Welcome have been sent.
48 Admitted,
49 /// We chose not to admit (e.g. the conversation is a DeviceGroup,
50 /// which was already handled at linking-ticket build time).
51 Skipped { reason: String },
52 /// MLS or transport rejected the admission. `error` is the underlying
53 /// message — typically a `transport error: ...` or an OpenMLS error.
54 Failed { error: String },
55}
56
57#[derive(Debug)]
58pub struct ClientConfig {
59 pub identity: Identity,
60 pub device_label: String,
61 pub storage: Arc<dyn Storage>,
62 pub transport: Arc<dyn Transport>,
63 /// Wall clock in ms. Pulled from the host so we can use a synthetic clock in tests.
64 pub now_ms: u64,
65 /// [CR-4] OpenMLS-provider backend. Defaults to in-memory; iOS NSE and web SW
66 /// cold-start paths MUST pass `StorageBackend::Sqlite { path, encryption_key }`
67 /// (native) or `StorageBackend::IndexedDb { db_name }` (WASM, when that lands).
68 /// See `docs/design/CR4_CR7_PERSISTENCE.md`.
69 pub storage_backend: StorageBackend,
70 /// Optional 32-byte Ed25519 secret key the SDK should use as the
71 /// device signing key. When set AND no `LocalDevice` is yet
72 /// persisted in `storage`, the SDK constructs its first
73 /// `LocalDevice` from this key instead of generating a fresh
74 /// random one — so `device_id = SHA-256(public_key_of(secret))`
75 /// is fully determined by what the host provided.
76 ///
77 /// Use case: align the SDK's `device_id` (which it stamps into
78 /// every envelope's `sender_device` field) with an externally-
79 /// computed device id — typically `SHA-256(device_signing_pubkey)`
80 /// in the host's auth layer, where the JWT carries that same
81 /// value as its `device_id` claim. Without this alignment, a
82 /// server that validates `envelope.sender_device ==
83 /// jwt.device_id` would reject every send.
84 ///
85 /// Ignored on re-init (when storage already has a persisted
86 /// `LocalDevice`) so the device identity remains stable across
87 /// restarts.
88 pub device_signing_secret_key: Option<[u8; 32]>,
89}
90
91impl ClientConfig {
92 /// Construct a config with `StorageBackend::Memory` — convenient for tests and
93 /// the existing v0.1 in-memory flow.
94 pub fn new_in_memory(
95 identity: Identity,
96 device_label: String,
97 storage: Arc<dyn Storage>,
98 transport: Arc<dyn Transport>,
99 now_ms: u64,
100 ) -> Self {
101 Self {
102 identity,
103 device_label,
104 storage,
105 transport,
106 now_ms,
107 storage_backend: StorageBackend::Memory,
108 device_signing_secret_key: None,
109 }
110 }
111}
112
113pub struct MessagingClient {
114 pub(crate) identity: Identity,
115 pub(crate) local_device: LocalDevice,
116 pub(crate) crypto: Arc<PersistentMlsProvider>,
117 pub(crate) signing: Arc<SignatureKeyPair>,
118 pub(crate) storage: Arc<dyn Storage>,
119 pub(crate) transport: Arc<dyn Transport>,
120 conversations: RwLock<HashMap<ConversationId, Conversation>>,
121}
122
123impl std::fmt::Debug for MessagingClient {
124 fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
125 f.debug_struct("MessagingClient")
126 .field("user_id", &self.identity.user_id().as_hex())
127 .field("device_id", &self.local_device.device_id.as_hex())
128 .field("conversation_count", &self.conversations.read().len())
129 .finish()
130 }
131}
132
133impl MessagingClient {
134 /// Initialise. Creates a new local device if none is recorded in storage; otherwise rehydrates.
135 pub async fn init(cfg: ClientConfig) -> Result<Arc<Self>> {
136 // [CR-4] OpenMLS provider is now pluggable. For `StorageBackend::Memory` this
137 // behaves like the old `OpenMlsRustCrypto::default()`. For `Sqlite`, the
138 // working set is hydrated from the on-disk blob; subsequent `checkpoint` calls
139 // flush it back. iOS NSE / web SW cold-start lives here.
140 //
141 // Use `open_async` so the WASM `StorageBackend::IndexedDb` variant can read
142 // its snapshot blob through the host-supplied `AsyncBlobStore` before
143 // returning — without this, the provider's `MemoryStorage` would be empty
144 // and `MlsGroup::load` would silently return `None` for every group on
145 // cold restart, breaking chat persistence across reloads. Native targets
146 // (Memory + Sqlite) delegate to the sync path under the hood, so the
147 // `.await` is free there.
148 let crypto = PersistentMlsProvider::open_async(cfg.storage_backend.clone())
149 .await
150 .map_err(|e| Error::Storage(format!("provider open: {e}")))?;
151 let local_device = match cfg.storage.get("device", "local").await? {
152 Some(bytes) => decode_local_device(&bytes, cfg.identity.user_id().clone())?,
153 None => {
154 // First-init path. If the host supplied a signing secret
155 // (typically to align the device_id with their auth
156 // layer), use it; otherwise mint a fresh random key.
157 // Either way, the constructed `LocalDevice` is
158 // immediately persisted so future inits load from
159 // storage without consulting the override again.
160 let dev = match cfg.device_signing_secret_key.as_ref() {
161 Some(secret) => LocalDevice::from_signing_secret(
162 cfg.identity.user_id().clone(),
163 cfg.device_label,
164 cfg.now_ms,
165 secret,
166 ),
167 None => LocalDevice::generate(
168 cfg.identity.user_id().clone(),
169 cfg.device_label,
170 cfg.now_ms,
171 ),
172 };
173 let bytes = encode_local_device(&dev)?;
174 cfg.storage.put("device", "local", bytes).await?;
175 dev
176 }
177 };
178
179 // [CR-4] MLS signing keypair MUST be stable across cold restarts — otherwise the
180 // leaf-key stored on disk no longer matches the per-client key on re-init, and any
181 // send-after-restart silently misroutes. We derive deterministically from the
182 // already-persistent `LocalDevice::signing` (Ed25519, 32 raw bytes), and the
183 // ciphersuite's signature scheme is Ed25519 too — so the device signing key and the
184 // MLS leaf signing key are the same bytes. The MLS storage provider also receives
185 // a copy via `store()` so OpenMLS-internal lookups (process_message, etc.) succeed.
186 let signing = {
187 let sk_bytes = local_device.signing.to_bytes().to_vec();
188 let pk_bytes = local_device.signing.verifying_key().to_bytes().to_vec();
189 let kp = SignatureKeyPair::from_raw(
190 DEFAULT_CIPHERSUITE.signature_algorithm(),
191 sk_bytes,
192 pk_bytes,
193 );
194 kp.store(crypto.storage()).map_err(Error::mls)?;
195 Arc::new(kp)
196 };
197
198 let client = Arc::new(Self {
199 identity: cfg.identity,
200 local_device,
201 crypto,
202 signing,
203 storage: cfg.storage,
204 transport: cfg.transport,
205 conversations: RwLock::new(HashMap::new()),
206 });
207
208 client.rehydrate_conversations(cfg.now_ms).await?;
209
210 // [CR-10] Ensure the DeviceGroup exists at init, not lazily inside
211 // build_linking_ticket. Single-device users need somewhere to write
212 // personal events (drafts, read pointers, notes, vault wrapper)
213 // even before they pair a second device. Lazy creation in
214 // build_linking_ticket left them with no DG → no place for
215 // personal state to land.
216 //
217 // Idempotent — re-init after a cold restart finds the DG via
218 // rehydrate_conversations and this becomes a no-op.
219 client.ensure_device_group(cfg.now_ms).await?;
220
221 Ok(client)
222 }
223
224 /// [CR-10] Idempotently ensures this user's DeviceGroup exists in
225 /// `self.conversations`. Called from `init` (so single-device users
226 /// have a DG immediately) and from `build_linking_ticket` (the legacy
227 /// lazy path; still safe to call when the DG already exists, since
228 /// rehydrate_conversations would have re-attached it before init
229 /// returned).
230 ///
231 /// The DeviceGroup is a one-leaf MLS group at creation time —
232 /// `add_members` (called by `build_linking_ticket` when a second
233 /// device pairs in) is what grows it. We persist the snapshot so a
234 /// cold restart picks it up before this function runs again.
235 pub(crate) async fn ensure_device_group(self: &Arc<Self>, now_ms: u64) -> Result<()> {
236 let dg_id = device_group_id_for(self.identity.user_id());
237 if self.conversations.read().contains_key(&dg_id) {
238 return Ok(());
239 }
240 let mut new_dg = Conversation::create(
241 dg_id,
242 Some("device-group".into()),
243 self.local_device.device_id.clone(),
244 self.identity.user_id(),
245 self.crypto.clone(),
246 self.signing.clone(),
247 self.storage.clone(),
248 now_ms,
249 )?;
250 new_dg.meta.is_device_group = true;
251 new_dg.snapshot_to_storage().await?;
252 self.conversations.write().insert(dg_id, new_dg);
253 Ok(())
254 }
255
256 pub fn user_id(&self) -> UserId {
257 self.identity.user_id().clone()
258 }
259 pub fn device_id(&self) -> DeviceId {
260 self.local_device.device_id.clone()
261 }
262 pub fn device_info(&self, now_ms: u64) -> DeviceInfo {
263 self.local_device.info(now_ms)
264 }
265
266 /// Generate a fresh KeyPackage to publish to the directory. Hosts call this when registering
267 /// a device or topping up the directory.
268 pub fn fresh_key_package(&self) -> Result<Vec<u8>> {
269 let credential_with_key = CredentialWithKey {
270 credential: BasicCredential::new(self.identity.user_id().0.clone()).into(),
271 signature_key: self.signing.public().to_vec().into(),
272 };
273 let bundle = KeyPackageBuilder::new()
274 .build(
275 DEFAULT_CIPHERSUITE,
276 self.crypto.as_ref(),
277 self.signing.as_ref(),
278 credential_with_key,
279 )
280 .map_err(Error::mls)?;
281 // KeyPackages are serialized as MlsMessage(KeyPackage) per the MLS framing spec.
282 let msg: MlsMessageOut = bundle.key_package().clone().into();
283 msg.tls_serialize_detached().map_err(Error::mls)
284 }
285
286 /// Create a new conversation owned by this client (and seeded with a single member: this device).
287 pub async fn create_conversation(
288 self: &Arc<Self>,
289 name: Option<String>,
290 now_ms: u64,
291 ) -> Result<ConversationId> {
292 let id = ConversationId::new();
293 let convo = Conversation::create(
294 id,
295 name,
296 self.local_device.device_id.clone(),
297 self.identity.user_id(),
298 self.crypto.clone(),
299 self.signing.clone(),
300 self.storage.clone(),
301 now_ms,
302 )?;
303 convo.snapshot_to_storage().await?;
304 self.conversations.write().insert(id, convo);
305 Ok(id)
306 }
307
308 /// Join via a Welcome bundled in a [`MessageEnvelope`] of kind `Welcome`.
309 pub async fn join_conversation(
310 self: &Arc<Self>,
311 welcome_envelope: &MessageEnvelope,
312 now_ms: u64,
313 ) -> Result<ConversationId> {
314 if welcome_envelope.kind != MessageKind::Welcome {
315 return Err(Error::Invalid("expected Welcome envelope".into()));
316 }
317 let convo = Conversation::join(
318 &welcome_envelope.payload,
319 self.local_device.device_id.clone(),
320 self.crypto.clone(),
321 self.signing.clone(),
322 self.storage.clone(),
323 now_ms,
324 )?;
325 let id = convo.id();
326 convo.snapshot_to_storage().await?;
327 self.conversations.write().insert(id, convo);
328 Ok(id)
329 }
330
331 pub fn list_conversations(&self) -> Vec<ConversationMeta> {
332 self.conversations
333 .read()
334 .values()
335 .map(|c| c.meta.clone())
336 .collect()
337 }
338
339 /// Send an application message. Returns once the envelope has been handed to the transport.
340 #[allow(clippy::await_holding_lock)] // see add_members for rationale
341 pub async fn send(
342 &self,
343 conv_id: ConversationId,
344 plaintext: Vec<u8>,
345 now_ms: u64,
346 ) -> Result<MessageEnvelope> {
347 let envelope = {
348 let mut guard = self.conversations.write();
349 let convo = guard
350 .get_mut(&conv_id)
351 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
352 convo.send_application(&plaintext, now_ms)?
353 };
354 self.transport.send(envelope.clone()).await?;
355 // The OpenMLS sender ratchet advances on every Application message — `seq` + `hlc`
356 // are bumped on the conversation, and the underlying group keystore stores new
357 // generation keys. Without a checkpoint here, a reload rolls back to the pre-send
358 // state and the next send re-uses an already-consumed generation that receivers
359 // silently drop. Mirrors the snapshot calls after every Commit/Welcome op.
360 if let Some(c) = self.conversations.read().get(&conv_id) {
361 c.snapshot_to_storage().await?;
362 }
363 Ok(envelope)
364 }
365
366 /// Add members. The Commit goes on the wire; the Welcome should be delivered to the new
367 /// devices' inboxes (the host transport implements that — typically as a separate addressed
368 /// envelope).
369 ///
370 /// [CR-2] Each entry is `(DeviceId, KeyPackage_bytes)`. The host typically gets the
371 /// device_id from the directory at the same time it gets the KeyPackage; we use it to
372 /// record a per-conversation `device_id → leaf_index` map so [`Self::revoke_device`]
373 /// can later locate the leaf without a fresh directory lookup. The SDK does not
374 /// cryptographically verify the host's device-id claim — that's a directory policy
375 /// concern.
376 //
377 // We hold a `parking_lot` read guard across `.await` for `snapshot_to_storage` here. Clippy
378 // flags this; we keep it for v0.1 because the alternative is a structural refactor of
379 // Conversation::snapshot_to_storage to split sync prep from async writes — see
380 // docs/ASSUMPTIONS.md item "lock-during-async-I/O is suboptimal but acceptable for v0.1".
381 // The `parking_lot/send_guard` feature (in core/Cargo.toml) makes the guard `Send` so the
382 // future is still schedulable across tokio threads.
383 #[allow(clippy::await_holding_lock)]
384 pub async fn add_members(
385 &self,
386 conv_id: ConversationId,
387 entries: Vec<(DeviceId, Vec<u8>)>,
388 now_ms: u64,
389 ) -> Result<()> {
390 let outcome = {
391 let mut guard = self.conversations.write();
392 let convo = guard
393 .get_mut(&conv_id)
394 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
395 convo.add_members(entries, now_ms)?
396 };
397 self.transport.send(outcome.commit).await?;
398 self.transport.send(outcome.welcome).await?;
399 if let Some(c) = self.conversations.read().get(&conv_id) {
400 c.snapshot_to_storage().await?;
401 }
402 Ok(())
403 }
404
405 /// Admits `new_device_id` to every conversation in `kps_per_chat` via
406 /// the standard MLS `add_members` flow — one Commit + one Welcome per
407 /// chat. This is the SDK-side replacement for the host's previous
408 /// per-chat reconciler loop after device linking; centralising it
409 /// here means iOS/Android/web hosts all share the orchestration and
410 /// the transport's Welcome-recipient priming is automatic.
411 ///
412 /// Inputs:
413 /// - `new_device_id`: the device being admitted (matches the
414 /// `device_binding_sig` recipient in the linking ticket).
415 /// - `kps_per_chat`: one freshly-claimed KeyPackage per chat. The
416 /// host claims these via the auth-layer's per-account KP pool
417 /// (`GET /v1/devices/{accountId}`) AFTER the new device's
418 /// bootstrap has uploaded its KP batch.
419 /// - `now_ms`: wall-clock used to stamp HLCs on the emitted
420 /// envelopes.
421 ///
422 /// Per-chat failures (unknown conversation, MLS error, transport
423 /// error, etc.) are CAPTURED in the returned vec rather than
424 /// short-circuiting the whole call — losing one chat shouldn't
425 /// strand the new device on every other chat. The caller decides
426 /// whether to retry the failed entries (e.g. with a fresh KP).
427 #[allow(clippy::await_holding_lock)] // see add_members for rationale
428 pub async fn admit_device_to_chats(
429 &self,
430 new_device_id: DeviceId,
431 kps_per_chat: Vec<(ConversationId, Vec<u8>)>,
432 now_ms: u64,
433 ) -> Result<Vec<AdmitChatOutcome>> {
434 let mut outcomes = Vec::with_capacity(kps_per_chat.len());
435 for (conv_id, kp_bytes) in kps_per_chat {
436 // Belt-and-braces: skip the DeviceGroup. The DG was already
437 // welcomed via the linking ticket — re-adding the new
438 // device there would produce a duplicate-add Commit that
439 // BE de-dups, but the noise is avoidable.
440 let is_dg = self
441 .conversations
442 .read()
443 .get(&conv_id)
444 .map(|c| c.meta().is_device_group)
445 .unwrap_or(false);
446 if is_dg {
447 outcomes.push(AdmitChatOutcome {
448 conversation_id: conv_id,
449 status: AdmitChatStatus::Skipped {
450 reason: "device_group".to_string(),
451 },
452 });
453 continue;
454 }
455
456 // Prime the host transport with the welcome recipient BEFORE
457 // we mutate MLS state. If priming fails (non-web hosts use
458 // the default no-op), continue — the host's transport will
459 // either route some other way or surface a 4xx on the
460 // welcome send and we'll catch it below.
461 let _ = self
462 .transport
463 .set_next_welcome_recipients(conv_id, vec![new_device_id.clone()])
464 .await;
465
466 let entry = (new_device_id.clone(), kp_bytes);
467 let outcome_result = {
468 let mut guard = self.conversations.write();
469 match guard.get_mut(&conv_id) {
470 Some(convo) => convo.add_members(vec![entry], now_ms),
471 None => Err(Error::UnknownConversation(conv_id.as_hex())),
472 }
473 };
474
475 let outcome = match outcome_result {
476 Ok(o) => o,
477 Err(e) => {
478 outcomes.push(AdmitChatOutcome {
479 conversation_id: conv_id,
480 status: AdmitChatStatus::Failed {
481 error: e.to_string(),
482 },
483 });
484 continue;
485 }
486 };
487
488 if let Err(e) = self.transport.send(outcome.commit).await {
489 outcomes.push(AdmitChatOutcome {
490 conversation_id: conv_id,
491 status: AdmitChatStatus::Failed {
492 error: format!("commit send: {e}"),
493 },
494 });
495 continue;
496 }
497 if let Err(e) = self.transport.send(outcome.welcome).await {
498 outcomes.push(AdmitChatOutcome {
499 conversation_id: conv_id,
500 status: AdmitChatStatus::Failed {
501 error: format!("welcome send: {e}"),
502 },
503 });
504 continue;
505 }
506
507 if let Some(c) = self.conversations.read().get(&conv_id) {
508 if let Err(e) = c.snapshot_to_storage().await {
509 // Snapshot failure is non-fatal for the join — the
510 // MLS adds already shipped — but record it so the
511 // host can decide whether to retry. The next
512 // successful send/process will re-snapshot anyway.
513 outcomes.push(AdmitChatOutcome {
514 conversation_id: conv_id,
515 status: AdmitChatStatus::Failed {
516 error: format!("snapshot: {e}"),
517 },
518 });
519 continue;
520 }
521 }
522
523 outcomes.push(AdmitChatOutcome {
524 conversation_id: conv_id,
525 status: AdmitChatStatus::Admitted,
526 });
527 }
528 Ok(outcomes)
529 }
530
531 #[allow(clippy::await_holding_lock)] // see add_members for rationale
532 pub async fn remove_members(
533 &self,
534 conv_id: ConversationId,
535 leaf_indexes: Vec<u32>,
536 now_ms: u64,
537 ) -> Result<()> {
538 let envelope = {
539 let mut guard = self.conversations.write();
540 let convo = guard
541 .get_mut(&conv_id)
542 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
543 convo.remove_members(leaf_indexes, now_ms)?
544 };
545 self.transport.send(envelope).await?;
546 if let Some(c) = self.conversations.read().get(&conv_id) {
547 c.snapshot_to_storage().await?;
548 }
549 Ok(())
550 }
551
552 /// Process an inbound envelope coming from the transport's subscribe callback or a sync pull.
553 /// Returns `Some` for application traffic, `None` for handshake messages (already merged).
554 #[allow(clippy::await_holding_lock)] // see add_members for rationale
555 pub async fn process_envelope(
556 &self,
557 env: &MessageEnvelope,
558 now_ms: u64,
559 ) -> Result<Option<IncomingMessage>> {
560 // Welcome envelopes for unknown conversations are routed to `join_conversation` by the
561 // caller. Here we only handle traffic for already-open groups.
562 let mut guard = self.conversations.write();
563 let convo = match guard.get_mut(&env.conversation_id) {
564 Some(c) => c,
565 None => return Err(Error::UnknownConversation(env.conversation_id.as_hex())),
566 };
567 let out = convo.process(env, now_ms)?;
568 // Cheap snapshot — only mutates KV the size of the cursor.
569 convo.snapshot_to_storage().await?;
570 Ok(out)
571 }
572
573 /// Catch-up sync: pull missing events for every open conversation since its cursor.
574 /// Returns the list of newly-decrypted application messages, in apply order.
575 pub async fn sync_conversations(&self, now_ms: u64) -> Result<Vec<IncomingMessage>> {
576 let pending: Vec<(ConversationId, SyncCursor)> = self
577 .conversations
578 .read()
579 .iter()
580 .map(|(id, c)| (*id, c.cursor.clone()))
581 .collect();
582
583 let mut delivered = Vec::new();
584 for (conv_id, cursor) in pending {
585 loop {
586 let batch = self
587 .transport
588 .fetch_since(conv_id, cursor.clone(), 256)
589 .await?;
590 if batch.is_empty() {
591 break;
592 }
593 for env in &batch {
594 if let Some(msg) = self.process_envelope(env, now_ms).await? {
595 delivered.push(msg);
596 }
597 }
598 if batch.len() < 256 {
599 break;
600 } // partial page → caught up
601 }
602 }
603 Ok(delivered)
604 }
605
606 /// Rehydrate conversations from storage on startup ([CR-4]).
607 ///
608 /// Walks the host-side `groups` namespace for meta records, pairs each with its
609 /// cursor + device→leaf map, and asks `Conversation::load` to re-attach to the
610 /// underlying OpenMLS group state. The MLS state itself was persisted by the
611 /// SQLite-backed `PersistentMlsProvider` on the previous run; this method
612 /// reconciles the SDK-side caches with what's on disk.
613 async fn rehydrate_conversations(self: &Arc<Self>, now_ms: u64) -> Result<()> {
614 let metas = self.storage.list_keys("groups", "").await?;
615 for path in metas {
616 // path looks like "{convId}/meta"
617 let Some((id_hex, suffix)) = path.split_once('/') else {
618 continue;
619 };
620 if suffix != "meta" {
621 continue;
622 }
623 let Some(meta_bytes) = self.storage.get("groups", &path).await? else {
624 continue;
625 };
626 let meta: ConversationMeta = match codec::decode(&meta_bytes) {
627 Ok(m) => m,
628 Err(_) => continue,
629 };
630 let cursor_bytes = self
631 .storage
632 .get("cursors", id_hex)
633 .await?
634 .unwrap_or_default();
635 let cursor = if cursor_bytes.is_empty() {
636 SyncCursor::default()
637 } else {
638 SyncCursor::decode(&cursor_bytes).unwrap_or_default()
639 };
640
641 // [CR-2] device→leaf map was persisted alongside meta + cursor.
642 let device_leaves_bytes = self
643 .storage
644 .get("device_leaves", id_hex)
645 .await?
646 .unwrap_or_default();
647 let device_leaves: std::collections::BTreeMap<DeviceId, u32> =
648 if device_leaves_bytes.is_empty() {
649 std::collections::BTreeMap::new()
650 } else {
651 let pairs: Vec<(DeviceId, u32)> =
652 codec::decode(&device_leaves_bytes).unwrap_or_default();
653 pairs.into_iter().collect()
654 };
655
656 match Conversation::load(
657 meta.id,
658 meta.clone(),
659 cursor,
660 device_leaves,
661 self.local_device.device_id.clone(),
662 self.crypto.clone(),
663 self.signing.clone(),
664 self.storage.clone(),
665 now_ms,
666 ) {
667 Ok(Some(convo)) => {
668 tracing::debug!(
669 target: "ping_core::client",
670 convo = %id_hex,
671 epoch = meta.epoch,
672 "rehydrated conversation from disk"
673 );
674 self.conversations.write().insert(meta.id, convo);
675 }
676 Ok(None) => {
677 tracing::warn!(
678 target: "ping_core::client",
679 convo = %id_hex,
680 "host-side meta present but OpenMLS state missing — skipping"
681 );
682 }
683 Err(e) => {
684 tracing::warn!(
685 target: "ping_core::client",
686 convo = %id_hex,
687 error = %e,
688 "Conversation::load failed — skipping"
689 );
690 }
691 }
692 }
693 Ok(())
694 }
695
696 // ------------------- Multi-device API -------------------
697
698 /// Build a [`LinkingTicket`] for a new device. The caller obtains `new_device_kp` from the
699 /// new device (e.g., via QR-encoded handshake) and is responsible for sealing the returned
700 /// ticket against the new device's ephemeral X25519 pubkey before transmission via
701 /// [`ping_link::seal_ticket`].
702 ///
703 /// [CR-13] `last_app_events` is a host-supplied list of `(conversation_id, app_event_bytes)`
704 /// for the new device's "what you missed" UI. The SDK adds its own metas + (currently-
705 /// empty) per-conversation MLS state and bundles everything into
706 /// [`device::CatchupSnapshot`], CBOR-encoded into the ticket's `catchup_snapshot` field.
707 /// Pass an empty `Vec` to suppress catchup data (the new device sees an empty
708 /// conversation list until normal sync runs).
709 pub async fn build_linking_ticket(
710 self: &Arc<Self>,
711 new_device_id: DeviceId,
712 new_device_kp: Vec<u8>,
713 last_app_events: Vec<(ConversationId, Vec<u8>)>,
714 now_ms: u64,
715 ) -> Result<LinkingTicket> {
716 let device_binding_sig = self.identity.sign_device_binding(&new_device_id.0);
717 let dg_id = device_group_id_for(self.identity.user_id());
718
719 // [CR-10] DG is eagerly created at init now, but call ensure here too so
720 // hosts that bypass `MessagingClient::init` (mocked tests, legacy upgrade
721 // paths) keep working.
722 self.ensure_device_group(now_ms).await?;
723
724 // Admit the new device to the DeviceGroup.
725 let outcome = {
726 let mut conversations = self.conversations.write();
727 let dg = conversations
728 .get_mut(&dg_id)
729 .expect("DeviceGroup ensured above");
730 // [CR-2] Record the new device's leaf in the DG so future `revoke_device`
731 // can find it. The new_device_id we got as a parameter is the inviter's
732 // own assertion — same trust model as the rest of `add_members`.
733 dg.add_members(vec![(new_device_id.clone(), new_device_kp)], now_ms)?
734 };
735
736 // [CR-13] Assemble the catchup snapshot: SDK-known conversation metadata + host-
737 // supplied last-known plaintext per conversation. [CR-7] now populates
738 // `group_state_bytes` with each group's MLS state so the new device can decrypt
739 // historical traffic without re-Welcoming. An empty `group_state_bytes` would
740 // mean either a group with no exportable state (shouldn't happen) or an
741 // encoder failure (we let those propagate as errors below).
742 let catchup_snapshot = if last_app_events.is_empty() && self.conversations.read().is_empty()
743 {
744 // Cheap path: nothing to snapshot, skip the encode round-trip.
745 Vec::new()
746 } else {
747 let conversation_metas: Vec<CatchupConversationEntry> = self
748 .conversations
749 .read()
750 .values()
751 .map(|c| -> Result<CatchupConversationEntry> {
752 // CR-7: per-group state. We deliberately keep the export bytes
753 // inside the (HPKE-sealed-by-CR-3) LinkingTicket; the receiver
754 // calls `import_state_snapshot` with these bytes after `consume_linking_ticket`.
755 let group_bytes = c.export_state_snapshot(now_ms)?.to_vec();
756 Ok(CatchupConversationEntry {
757 conversation_id: c.id(),
758 meta: c.meta().clone(),
759 group_state_bytes: group_bytes,
760 })
761 })
762 .collect::<Result<_>>()?;
763 let last_app_events_per_conv: Vec<CatchupAppEventEntry> = last_app_events
764 .into_iter()
765 .map(|(conversation_id, app_event_bytes)| CatchupAppEventEntry {
766 conversation_id,
767 app_event_bytes,
768 })
769 .collect();
770 CatchupSnapshot {
771 v: CATCHUP_SNAPSHOT_VERSION,
772 conversation_metas,
773 last_app_events_per_conv,
774 }
775 .encode()?
776 };
777
778 Ok(LinkingTicket {
779 v: 1,
780 user_id: self.identity.user_id().clone(),
781 user_pubkey: self.identity.public_key().to_bytes().to_vec(),
782 new_device_id,
783 device_binding_sig,
784 device_group_welcome: outcome.welcome.payload,
785 catchup_snapshot,
786 })
787 }
788
789 /// Apply a received linking ticket. Joins the user's DeviceGroup; the catch-up snapshot
790 /// (if any) is decrypted by the host using the standard per-conversation channel afterwards.
791 pub async fn consume_linking_ticket(
792 self: &Arc<Self>,
793 ticket: &LinkingTicket,
794 now_ms: u64,
795 ) -> Result<()> {
796 // Verify the binding the existing device made for us. (Ed25519 public keys are 32 bytes.)
797 let pk_bytes: [u8; 32] = ticket
798 .user_pubkey
799 .as_slice()
800 .try_into()
801 .map_err(|_| Error::Identity("user_pubkey must be 32 bytes".into()))?;
802 let user_pk = ed25519_dalek::VerifyingKey::from_bytes(&pk_bytes)
803 .map_err(|e| Error::Identity(format!("bad user pubkey: {e}")))?;
804 Identity::verify_device_binding(
805 &user_pk,
806 &ticket.user_id,
807 &ticket.new_device_id.0,
808 &ticket.device_binding_sig,
809 )?;
810 if ticket.new_device_id != self.local_device.device_id {
811 return Err(Error::Invalid(
812 "ticket addressed to a different device".into(),
813 ));
814 }
815
816 let dummy_env = MessageEnvelope::new(
817 ConversationId(device_group_id_for(&ticket.user_id).0),
818 0,
819 MessageKind::Welcome,
820 self.local_device.device_id.clone(),
821 0,
822 crate::clock::Hlc::ZERO,
823 ticket.device_group_welcome.clone(),
824 );
825 self.join_conversation(&dummy_env, now_ms).await?;
826 Ok(())
827 }
828
829 /// [CR-7] Export the MLS state snapshot for one open conversation.
830 ///
831 /// Thin pass-through to [`Conversation::export_state_snapshot`]. Returned bytes
832 /// are wrapped in `Zeroizing` because they contain past epoch secrets.
833 pub fn export_conversation_state_snapshot(
834 &self,
835 conv_id: ConversationId,
836 now_ms: u64,
837 ) -> Result<zeroize::Zeroizing<Vec<u8>>> {
838 let guard = self.conversations.read();
839 let convo = guard
840 .get(&conv_id)
841 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
842 convo.export_state_snapshot(now_ms)
843 }
844
845 /// [CR-7] Import a `GroupStateSnapshot` produced by another device's
846 /// [`Conversation::export_state_snapshot`].
847 ///
848 /// Replays the snapshot's entries into this client's OpenMLS provider, then
849 /// reconstructs the `Conversation` handle via `MlsGroup::load`. After return,
850 /// the conversation is in `list_conversations()` and `send`/`process_envelope`
851 /// work against it normally.
852 ///
853 /// **Scope.** This is for the *same-user* hand-off (linking, recovery). The
854 /// snapshot exposes the exporter's view of past epoch secrets for the target
855 /// group; only call this when the receiving device has been authenticated to
856 /// the same user identity (mnemonic, QR-handshake). Cross-user history transfer
857 /// uses HPKE-sealed AppEvent re-shares (umbrella §15.6), not this method.
858 ///
859 /// **Sanity.** Refuses snapshots whose `group_id` doesn't match the bytes the
860 /// receiver intends to claim — guards against host bugs that shuffle snapshots
861 /// between groups. Refuses mismatched OpenMLS storage versions outright; no
862 /// silent forward/back compatibility.
863 pub async fn import_state_snapshot(
864 self: &Arc<Self>,
865 snapshot_bytes: &[u8],
866 now_ms: u64,
867 ) -> Result<ConversationId> {
868 use crate::device::GroupStateSnapshot;
869 let snap = GroupStateSnapshot::decode(snapshot_bytes)
870 .map_err(|e| Error::Invalid(format!("snapshot decode: {e}")))?;
871
872 if snap.openmls_storage_version != openmls_traits::storage::CURRENT_VERSION {
873 return Err(Error::Invalid(format!(
874 "snapshot openmls_storage_version={} not supported (this SDK supports v={})",
875 snap.openmls_storage_version,
876 openmls_traits::storage::CURRENT_VERSION
877 )));
878 }
879
880 let conv_id = snap.group_id;
881
882 // Refuse if we already have an active handle for this conv — the host should
883 // close it first, otherwise import silently overwrites in-memory state and
884 // the existing handle becomes stale.
885 if self.conversations.read().contains_key(&conv_id) {
886 return Err(Error::Invalid(format!(
887 "conversation {} already open; close before importing snapshot",
888 conv_id.as_hex()
889 )));
890 }
891
892 // Replay raw KV pairs into the provider's working set.
893 let entries: Vec<(Vec<u8>, Vec<u8>)> =
894 snap.entries.into_iter().map(|e| (e.key, e.value)).collect();
895 self.crypto
896 .import_entries(entries)
897 .map_err(|e| Error::Storage(format!("import entries: {e}")))?;
898
899 // Reconstruct the Conversation handle. `Conversation::load` will return
900 // `Ok(None)` if OpenMLS still can't find the group — i.e. our snapshot was
901 // incomplete or for a different storage version.
902 let meta = ConversationMeta {
903 id: conv_id,
904 name: None,
905 epoch: 0, // will be overwritten from the loaded group state in process()
906 member_count: 0,
907 is_device_group: false, // host can flip this via meta update if needed
908 created_at_ms: now_ms,
909 };
910 let convo = Conversation::load(
911 conv_id,
912 meta,
913 SyncCursor::default(),
914 std::collections::BTreeMap::new(),
915 self.local_device.device_id.clone(),
916 self.crypto.clone(),
917 self.signing.clone(),
918 self.storage.clone(),
919 now_ms,
920 )?
921 .ok_or_else(|| {
922 Error::Invalid(
923 "snapshot imported but OpenMLS could not load the group — snapshot may be incomplete or storage version mismatched"
924 .into(),
925 )
926 })?;
927
928 // Pull the live epoch + member count from the loaded group so the meta we
929 // just stubbed is consistent with what we'll observe on subsequent process_envelope.
930 let live_epoch = convo.epoch();
931 let live_members = convo.group.members().count() as u32;
932 let mut convo = convo;
933 convo.meta.epoch = live_epoch;
934 convo.meta.member_count = live_members;
935 convo.snapshot_to_storage().await?;
936
937 self.conversations.write().insert(conv_id, convo);
938 Ok(conv_id)
939 }
940
941 /// Export a derived secret from one conversation's MLS exporter ([CR-8]).
942 ///
943 /// Thin pass-through to [`Conversation::export_secret`]. See that method's doc comment
944 /// for the contract on `label`, `context`, length validation, and zeroization. The
945 /// returned `Zeroizing<Vec<u8>>` is automatically wiped when dropped.
946 pub fn export_conversation_secret(
947 &self,
948 conv_id: ConversationId,
949 label: &str,
950 context: &[u8],
951 length: usize,
952 ) -> Result<Zeroizing<Vec<u8>>> {
953 let guard = self.conversations.read();
954 let convo = guard
955 .get(&conv_id)
956 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
957 convo.export_secret(label, context, length)
958 }
959
960 /// Revoke a device by removing its leaf from every conversation where we know its
961 /// position ([CR-2]).
962 ///
963 /// Returns one Commit envelope per conversation the device was a leaf in. The host
964 /// broadcasts each envelope to the affected conversation; the SDK has also already
965 /// handed them to the transport via `transport.send` (idempotent broadcast is the
966 /// host's call).
967 ///
968 /// **Scope.** The SDK can only resolve leaves it recorded itself — either when it
969 /// admitted the device via [`Self::add_members`] or when this device joined as the
970 /// target via Welcome. For peer-admitted devices the leaf index isn't locally known;
971 /// those conversations are silently skipped. The host can fall back to
972 /// `remove_members(leaf_index)` directly using a transport-side directory lookup if
973 /// it needs to revoke from those conversations too. See
974 /// `docs/architecture/multi-device.md §Device removal` for the broader flow.
975 ///
976 /// Conversations with no entry for `device_id` produce no envelope; an empty `Vec`
977 /// return is a valid outcome (e.g. the device was already revoked, or was never
978 /// added by this client).
979 #[allow(clippy::await_holding_lock)] // see add_members for rationale
980 pub async fn revoke_device(
981 &self,
982 device_id: DeviceId,
983 now_ms: u64,
984 ) -> Result<Vec<MessageEnvelope>> {
985 // 1. Walk every open conversation and gather (conv_id, leaf_index) pairs where
986 // we know `device_id` controls a leaf. Done under a read lock so we don't hold
987 // the write lock across the per-conversation remove path.
988 let targets: Vec<(ConversationId, u32)> = self
989 .conversations
990 .read()
991 .iter()
992 .filter_map(|(id, c)| c.leaf_index_of(&device_id).map(|leaf| (*id, leaf)))
993 .collect();
994
995 // 2. For each target, emit a remove_members commit. We do this sequentially: each
996 // one is a separate MLS epoch advance on its own group, and they don't share
997 // state, so parallel issuance is safe but adds complexity we don't need for v1.
998 let mut envelopes = Vec::with_capacity(targets.len());
999 for (conv_id, leaf_index) in targets {
1000 let envelope = {
1001 let mut guard = self.conversations.write();
1002 let convo = guard
1003 .get_mut(&conv_id)
1004 .ok_or_else(|| Error::UnknownConversation(conv_id.as_hex()))?;
1005 convo.remove_members(vec![leaf_index], now_ms)?
1006 };
1007 self.transport.send(envelope.clone()).await?;
1008 if let Some(c) = self.conversations.read().get(&conv_id) {
1009 c.snapshot_to_storage().await?;
1010 }
1011 envelopes.push(envelope);
1012 }
1013
1014 // 3. Notify the auth-layer server so it can invalidate the
1015 // revoked device's KeyPackage pool, mark `auth.devices.revoked_at`,
1016 // and refuse any future envelope signed by the revoked device's
1017 // JWT. Done AFTER the MLS Commits so peers learn via MLS first
1018 // (the canonical path) and the auth layer is the eventual-
1019 // consistency cleanup. Transport failures bubble up so callers
1020 // can retry — but the MLS-side work has already shipped, so
1021 // the device is functionally revoked in every group; only the
1022 // auth-layer KeyPackage purge is pending.
1023 self.transport.revoke_device_remote(device_id).await?;
1024 Ok(envelopes)
1025 }
1026}
1027
1028fn device_group_id_for(user_id: &UserId) -> ConversationId {
1029 // Deterministic 16-byte ID derived from the user's id, prefixed so it cannot collide with
1030 // a randomly-generated ULID in normal use (ULIDs start with a millisecond timestamp).
1031 let mut bytes = [0u8; 16];
1032 bytes[0] = 0xFF;
1033 bytes[1] = 0xDC; // "DeviCe" group sentinel
1034 let h = codec::sha256(&user_id.0);
1035 bytes[2..].copy_from_slice(&h[..14]);
1036 ConversationId(bytes)
1037}
1038
1039fn encode_local_device(d: &LocalDevice) -> Result<Vec<u8>> {
1040 use serde::Serialize;
1041 #[derive(Serialize)]
1042 struct Persisted<'a> {
1043 device_id: &'a DeviceId,
1044 label: &'a str,
1045 created_at_ms: u64,
1046 #[serde(with = "serde_bytes")]
1047 signing_seed: &'a [u8],
1048 }
1049 codec::encode(&Persisted {
1050 device_id: &d.device_id,
1051 label: &d.label,
1052 created_at_ms: d.created_at_ms,
1053 signing_seed: d.signing.as_bytes(),
1054 })
1055}
1056
1057fn decode_local_device(bytes: &[u8], user_id: UserId) -> Result<LocalDevice> {
1058 use serde::Deserialize;
1059 #[derive(Deserialize)]
1060 struct Persisted {
1061 device_id: DeviceId,
1062 label: String,
1063 created_at_ms: u64,
1064 #[serde(with = "serde_bytes")]
1065 signing_seed: Vec<u8>,
1066 }
1067 let p: Persisted = codec::decode(bytes)?;
1068 let seed: [u8; 32] = p
1069 .signing_seed
1070 .as_slice()
1071 .try_into()
1072 .map_err(|_| Error::Invalid("device signing seed must be 32 bytes".into()))?;
1073 let signing = ed25519_dalek::SigningKey::from_bytes(&seed);
1074 Ok(LocalDevice {
1075 device_id: p.device_id,
1076 user_id,
1077 label: p.label,
1078 signing,
1079 created_at_ms: p.created_at_ms,
1080 })
1081}