liminal_server/server/connection/services.rs
1use std::collections::HashMap;
2use std::path::Path;
3use std::sync::atomic::{AtomicU8, AtomicU64, Ordering};
4use std::sync::{Arc, Mutex, OnceLock, RwLock, mpsc};
5use std::time::Instant;
6
7use haematite::{Database, DatabaseConfig, EventStore};
8use liminal::channel::{ChannelConfig, ChannelHandle, ChannelMode, ChannelSupervisor, Schema};
9use liminal::conversation::{
10 ConversationSupervisor, CrashPolicy, EchoBehaviour, ParticipantBehaviour,
11};
12use liminal::durability::bridge::block_on;
13use liminal::durability::{
14 DedupCache, DedupDecision, DurabilityError, DurableStore, EphemeralHaematiteStore,
15 HaematiteStore, ProcessingReceipt, open_ephemeral,
16};
17use liminal::protocol::{MessageEnvelope, ProtocolError, SchemaId as ProtocolSchemaId};
18
19use super::channel_registry::{
20 ChannelAccessError, ChannelBuildError, ChannelConfigField, ChannelDescriptor, ChannelOrigin,
21 ChannelRegistration, ChannelRegistryError, ChannelState, ChannelStatus, MAX_CHANNELS_KEY,
22 Registered, STATE_ACTIVE, STATE_QUIESCED, UNRECORDED_QUIESCE_REASON,
23};
24use super::conversation::{ConnectionConversation, LiminalConversationResource};
25use super::services_cluster::build_channel_cluster;
26use super::services_schema::{ChannelSchema, resolve_channel_schema, resolve_schema_bytes};
27use super::worker_front_door::WorkerFrontDoorServices;
28use crate::ServerError;
29use crate::config::types::{ClusterConfig, ServerConfig, ServiceProfile};
30use crate::health::reissue::OperatorCredentialReissuer;
31use crate::health::unloadable::UnloadableConversationRecord;
32use crate::server::participant::{InstalledParticipantService, ProductionParticipantHandler};
33
34pub use super::services_cluster::ChannelCluster;
35
36/// Registry of custom conversation responders, keyed by conversation subject.
37///
38/// A registered [`ParticipantBehaviour`] becomes the participant for any
39/// conversation opened on its subject; subjects with no entry fall back to the
40/// built-in [`EchoBehaviour`].
41type ResponderRegistry = HashMap<String, Arc<dyn ParticipantBehaviour>>;
42
43/// Marker for resources retained by a connection process until unsubscribe.
44pub trait SubscriptionResource: std::fmt::Debug + Send {
45 /// Releases the library subscription resource.
46 ///
47 /// # Errors
48 /// Returns [`ServerError`] when the liminal library reports an unsubscribe failure.
49 fn unsubscribe(self: Box<Self>) -> Result<(), ServerError>;
50
51 /// Attempts to pull the next delivered envelope from the wrapped library
52 /// subscription without blocking.
53 ///
54 /// Returns `None` when the subscriber inbox is empty (or momentarily
55 /// unavailable): the connection process is the delivery pump, so a transient
56 /// empty read is simply "nothing to deliver this slice", never an error.
57 fn try_next(&mut self) -> Option<liminal::envelope::Envelope>;
58
59 /// Non-consuming availability query for the post-arm race barrier.
60 fn has_pending(&self) -> bool;
61
62 /// Whether an overflow has marked this subscription for shedding (§5). The
63 /// delivery pump sheds an overflowed subscription with a typed error frame.
64 /// Defaulted to `false`: a resource with no bounded inbox never overflows.
65 fn is_overflowed(&self) -> bool {
66 false
67 }
68}
69
70/// Library subscription resource owned by a single connection process.
71#[derive(Debug)]
72pub struct ConnectionSubscription {
73 id: u64,
74 /// Channel this subscription was opened on, carried for DIAGNOSTICS only —
75 /// the shed warning has to name the channel or an operator reading it learns
76 /// that something was shed without learning what. Empty when unset (the
77 /// scheduler-free unit fixtures, which construct through `new` and never log).
78 channel: String,
79 /// Client-chosen application stream the server delivers this subscription's
80 /// messages on (echoed on `SubscribeAck`, carried on every `Deliver`). Set by
81 /// the connection process from the `Subscribe` frame before the subscription is
82 /// stored; `0` only while momentarily unset during construction.
83 stream_id: u32,
84 selected_schema: ProtocolSchemaId,
85 resource: Box<dyn SubscriptionResource>,
86}
87
88impl ConnectionSubscription {
89 /// Creates an owned subscription resource for one connection process.
90 #[must_use]
91 pub fn new(
92 id: u64,
93 selected_schema: ProtocolSchemaId,
94 resource: Box<dyn SubscriptionResource>,
95 ) -> Self {
96 Self {
97 id,
98 channel: String::new(),
99 stream_id: 0,
100 selected_schema,
101 resource,
102 }
103 }
104
105 /// Records the channel this subscription was opened on (diagnostics).
106 ///
107 /// Additive setter rather than a fourth `new` parameter: `new` is public API
108 /// and its existing callers keep compiling byte-for-byte.
109 pub(super) fn set_channel(&mut self, channel: String) {
110 self.channel = channel;
111 }
112
113 /// The channel this subscription was opened on, or `""` when unset.
114 #[must_use]
115 pub(super) fn channel(&self) -> &str {
116 &self.channel
117 }
118
119 /// Returns the protocol subscription id.
120 #[must_use]
121 pub const fn id(&self) -> u64 {
122 self.id
123 }
124
125 /// Records the client-chosen delivery stream id for this subscription.
126 pub(super) const fn set_stream_id(&mut self, stream_id: u32) {
127 self.stream_id = stream_id;
128 }
129
130 /// Returns the client-chosen application stream id deliveries ride on.
131 #[must_use]
132 pub(super) const fn stream_id(&self) -> u32 {
133 self.stream_id
134 }
135
136 /// Returns the schema selected for this subscription stream.
137 #[must_use]
138 pub const fn selected_schema(&self) -> ProtocolSchemaId {
139 self.selected_schema
140 }
141
142 /// Attempts to pull the next delivered envelope without blocking.
143 pub(super) fn try_next(&mut self) -> Option<liminal::envelope::Envelope> {
144 self.resource.try_next()
145 }
146
147 pub(super) fn has_pending(&self) -> bool {
148 self.resource.has_pending()
149 }
150
151 /// Whether this subscription has been shed by an inbox overflow (§5).
152 pub(super) fn is_overflowed(&self) -> bool {
153 self.resource.is_overflowed()
154 }
155
156 pub(super) fn unsubscribe(self) -> Result<(), ServerError> {
157 self.resource.unsubscribe()
158 }
159}
160
161/// Outcome of a server publish.
162///
163/// Carries the assigned message id plus a genuine delivery ack (`delivered` = the
164/// message was accepted by at least one live subscriber on this publish, after any
165/// dedup-on-delivery suppression).
166#[derive(Clone, Copy, Debug, PartialEq, Eq)]
167pub struct PublishOutcome {
168 /// Transport-scoped message id assigned to the accepted publish.
169 ///
170 /// TRANSPORT-SCOPED, NOT A DURABLE POSITION (G1,
171 /// `docs/design/wire-durability-gaps-20260831.md`): this is a
172 /// process-local counter (`next_message_id`, reset to 1 on every
173 /// construction), so it restarts from 1 with the server and two servers
174 /// mint the same ids. It is monotonic only within one service instance's
175 /// lifetime and identifies the publish on THIS connection's wire, nothing
176 /// more. The durable position of a publish on a durable channel is the
177 /// store-assigned sequence the library now surfaces as
178 /// `ChannelDelivery::durable_position`; putting that on the wire ack is
179 /// the A1 resume lane's frame decision, not a reinterpretation of this
180 /// field.
181 pub message_id: u64,
182 /// Whether the message was genuinely delivered to a subscriber. `false` means
183 /// the publish was accepted but reached no subscriber (empty channel) or was
184 /// a duplicate suppressed by dedup-on-delivery.
185 pub delivered: bool,
186}
187
188/// Which channel operation is asking the roster for admission.
189///
190/// `Copy`, so the hot path allocates nothing to ask. The contrast is
191/// [`ServerError::UnsupportedOperation`]'s owned `operation: String`: that one is
192/// built on a refusal path and pays for its allocation once per refusal, while
193/// this one is consulted on every publish and every subscribe frame that reaches
194/// the connection process.
195#[derive(Clone, Copy, Debug, PartialEq, Eq)]
196pub enum ChannelOperation {
197 /// A `Publish` frame is asking.
198 Publish,
199 /// A `Subscribe` frame is asking.
200 Subscribe,
201}
202
203/// Operations that adapt wire frames to liminal library calls.
204pub trait ConnectionServices: std::fmt::Debug + Send + Sync {
205 /// Returns the complete participant service installed on this adapter.
206 ///
207 /// `None` keeps participant capability disabled even when the adapter owns a
208 /// durable store for unrelated channel traffic. The returned token is
209 /// server-sealed and atomically carries declared semantics plus durability,
210 /// making a handler-without-store activation impossible by construction.
211 fn participant_service(&self) -> Option<InstalledParticipantService> {
212 None
213 }
214
215 /// Delegates a publish request to the liminal library.
216 ///
217 /// `idempotency_key`, when `Some`, drives dedup-on-delivery: a re-publish with
218 /// the same key is delivered to subscribers at most once. The returned
219 /// [`PublishOutcome`] carries the genuine delivery ack.
220 ///
221 /// # Errors
222 /// Returns [`ServerError`] when the liminal publish operation fails.
223 fn publish(
224 &self,
225 channel: &str,
226 envelope: &MessageEnvelope,
227 idempotency_key: Option<&str>,
228 ) -> Result<PublishOutcome, ServerError>;
229
230 /// Delegates a subscribe request to the liminal library.
231 ///
232 /// `install`, when `Some`, carries the connection's §5 shared inbox byte
233 /// budget, per-inbox fairness cap, and R3 wake notifier. The implementation
234 /// MUST install it on the subscription's inbox BEFORE the registration is
235 /// published to the channel actor (i.e. before any envelope can be
236 /// delivered), so no envelope is ever admitted uncharged, past the depth
237 /// cap, or without a wake. Implementations with no real inbox (test
238 /// stand-ins, capability-scoped profiles that refuse subscribe) may ignore
239 /// it.
240 ///
241 /// # Errors
242 /// Returns [`ServerError`] when the liminal subscribe operation fails.
243 fn subscribe(
244 &self,
245 channel: &str,
246 accepted_schemas: &[ProtocolSchemaId],
247 install: Option<liminal::channel::InboxInstall>,
248 ) -> Result<ConnectionSubscription, ServerError>;
249
250 /// Delegates unsubscribe to the liminal library.
251 ///
252 /// # Errors
253 /// Returns [`ServerError`] when the liminal unsubscribe operation fails.
254 fn unsubscribe(&self, subscription: ConnectionSubscription) -> Result<(), ServerError>;
255
256 /// Delegates conversation open to the liminal library.
257 ///
258 /// # Errors
259 /// Returns [`ServerError`] when the liminal conversation open operation fails.
260 fn open_conversation(
261 &self,
262 conversation_id: u64,
263 subject: &str,
264 ) -> Result<ConnectionConversation, ServerError>;
265
266 /// Delegates a conversation message to the liminal library.
267 ///
268 /// # Errors
269 /// Returns [`ServerError`] when the liminal conversation message operation fails.
270 fn conversation_message(
271 &self,
272 conversation: &ConnectionConversation,
273 envelope: &MessageEnvelope,
274 op_id: Option<u64>,
275 ) -> Result<(), ServerError>;
276
277 /// Delegates conversation close to the liminal library.
278 ///
279 /// # Errors
280 /// Returns [`ServerError`] when the liminal conversation close operation fails.
281 fn close_conversation(&self, conversation: ConnectionConversation) -> Result<(), ServerError>;
282
283 /// Flushes durable channel state through the liminal library boundary.
284 ///
285 /// # Errors
286 /// Returns [`ServerError`] when the liminal channel flush operation fails.
287 fn flush_durable_state(&self) -> Result<(), ServerError>;
288
289 /// Whether this adapter backs ordinary channel and conversation operations.
290 ///
291 /// The default is `true` — the full-service adapter serves publish, subscribe,
292 /// and conversation frames, so full mode is byte-for-byte unchanged. The
293 /// capability-scoped worker front door overrides this to `false`, letting
294 /// [`super::apply`] reject the channel/conversation frames it short-circuits on
295 /// empty connection state (`Unsubscribe`, `ConversationMessage`,
296 /// `ConversationClose`) with a typed error frame instead of silently swallowing
297 /// an operation for a resource that could never have been created in this
298 /// profile. Frames that always reach a service method (`Publish`, `Subscribe`,
299 /// `ConversationOpen`) are rejected by the front door's own method bodies and do
300 /// not consult this flag.
301 fn supports_channel_operations(&self) -> bool {
302 true
303 }
304
305 /// Whether `channel` admits `operation` right now.
306 ///
307 /// Consulted by the connection process BEFORE the operation is delegated, so
308 /// a roster refusal is typed at the moment of the decision, by the component
309 /// that made it, from the value it decided on. The alternative — classifying
310 /// an opaque failure afterwards by re-reading the roster in the error arm —
311 /// cannot tell "the roster refused this" from "something else failed while
312 /// the roster happened to change", and would put a confident wrong cause on
313 /// the wire.
314 ///
315 /// It does NOT replace the adapter's own inner check. Admission here is the
316 /// caller's guard; a service method is public and callable without a frame,
317 /// so it keeps its own.
318 ///
319 /// The default ADMITS. An adapter with no roster has nothing to say here and
320 /// its refusals travel as service errors exactly as they do today; only the
321 /// roster-owning adapter overrides this. A default body is also what keeps
322 /// this addition inside "minor": a method added without one breaks every
323 /// downstream implementor of a public trait.
324 ///
325 /// # Errors
326 /// Returns [`ChannelAccessError`] when the roster refuses the operation.
327 fn admit_channel(
328 &self,
329 operation: ChannelOperation,
330 channel: &str,
331 ) -> Result<(), ChannelAccessError> {
332 let _ = (operation, channel);
333 Ok(())
334 }
335}
336
337/// Default adapter from server wire frames to liminal channel/conversation APIs.
338#[derive(Debug)]
339pub struct LiminalConnectionServices {
340 /// The channel roster, keyed by channel name.
341 ///
342 /// Behind an [`RwLock`] over `Arc` values so a reader clones one pointer out
343 /// under the guard and works with it after the guard is released: no roster
344 /// read is ever held across a library call, and an entry handed out can
345 /// outlive a concurrent mutation of the map itself.
346 channels: RwLock<HashMap<String, Arc<ConfiguredChannel>>>,
347 /// The operator-declared bound on RUNTIME-registered channels
348 /// (`limits.max_channels`), carried verbatim from config.
349 ///
350 /// `None` is "the operator declared no bound", which refuses every runtime
351 /// registration rather than admitting an unbounded one — the roster's
352 /// aggregate size is otherwise unbounded the moment a registration API
353 /// exists. Boot-configured channels are never counted against it: they are
354 /// the bound the operator already wrote, in the file they wrote it in.
355 max_channels: Option<usize>,
356 cluster: ChannelCluster,
357 durable_store: Arc<dyn DurableStore>,
358 /// Complete participant service, installed only when semantic lifecycle
359 /// handling and its durable aggregate store are both ready.
360 participant_service: Option<InstalledParticipantService>,
361 /// The production handler's refused-load record, captured at construction.
362 ///
363 /// [`InstalledParticipantService`] holds its handler behind
364 /// `dyn ParticipantSemanticHandler`, so the concrete production handler is
365 /// no longer reachable once it is installed; the record is taken here, in
366 /// the one place the concrete handler exists, and carried out to the
367 /// startup path that publishes it onto the health endpoint. `None` is "no
368 /// participant is configured", which the operator surface reports as such
369 /// rather than as an empty refusal set.
370 unloadable_conversations: Option<UnloadableConversationRecord>,
371 /// The production handler as the A7 operator credential-re-issue authority
372 /// (§0.18), captured at construction for exactly the reason above: the
373 /// concrete handler is unreachable once erased behind
374 /// `dyn ParticipantSemanticHandler`, so the operator surface's handle on it
375 /// has to be taken in the one place it still exists. `None` is "no
376 /// participant is configured", which the route reports as such.
377 credential_reissuer: Option<Arc<dyn OperatorCredentialReissuer>>,
378 /// Dedup-on-delivery cache for publishes to **durable** channels. Keyed by
379 /// the per-message idempotency key carried on the publish frame; a duplicate
380 /// key is suppressed before fan-out so a subscriber receives it at most once.
381 ///
382 /// The namespace is stable across restarts by design (A1 §5): on a durable
383 /// channel the MESSAGE survives a crash too, so a surviving receipt is
384 /// truthful.
385 dedup: DedupCache,
386 /// Dedup-on-delivery cache for publishes to **ephemeral** channels
387 /// (A1 §5, graft §0.2 — the panel's sharpest crash hole).
388 ///
389 /// Identical machinery, different namespace: this one carries a per-boot
390 /// incarnation id, so a receipt and the message it vouches for share a
391 /// lifetime. Without it, `ephemeral + keyed publish -> Defer (buffered in
392 /// memory) -> complete_receipt (persisted) -> crash before the consumer
393 /// pops` loses the message while the receipt survives to suppress the
394 /// producer's retry — silent permanent loss of something the producer was
395 /// told was admitted. With it, the post-crash retry re-claims and
396 /// re-delivers, which is exactly ephemeral's at-least-once contract.
397 ///
398 /// This changes no dedup API. It changes only the namespace string the
399 /// server composes.
400 dedup_ephemeral: DedupCache,
401 conversation_supervisor: Arc<ConversationSupervisor>,
402 /// Registered custom conversation responders, keyed by conversation subject.
403 ///
404 /// When a conversation is opened (`open_conversation`), the subject is looked
405 /// up here: a registered [`ParticipantBehaviour`] becomes the conversation's
406 /// participant; with no registration the conversation falls back to the
407 /// built-in [`EchoBehaviour`], preserving the original echo semantics exactly.
408 /// This is the seam aion #13 plugs a remote worker responder into. Interior
409 /// mutability is required because the services are shared behind `&self`.
410 responders: Mutex<ResponderRegistry>,
411 next_message_id: AtomicU64,
412 next_subscription_id: AtomicU64,
413}
414
415impl LiminalConnectionServices {
416 /// Builds library-backed services from validated server configuration.
417 ///
418 /// Durable-mode channels are backed by a shared haematite event store so
419 /// their publishes are persisted and survive the graceful-shutdown flush;
420 /// ephemeral channels carry no store.
421 ///
422 /// Full-only: a config selecting the worker-front-door profile is rejected at
423 /// entry (before any store is built), so this constructor can never build full
424 /// services for a profile that forbids them. Profile-aware callers go through
425 /// [`build_connection_services`] instead.
426 ///
427 /// # Errors
428 /// Returns [`ServerError`] when the config selects a non-full profile or a
429 /// configured channel cannot be initialized.
430 pub fn from_config(config: &ServerConfig) -> Result<Self, ServerError> {
431 require_full_profile(config)?;
432 let store = ProductionSubsystems.durable_store(config.persistence_path.as_deref())?;
433 Self::from_config_with_store_via(config, store, &ProductionSubsystems)
434 }
435
436 /// Builds services over a caller-provided durable store.
437 ///
438 /// Used by tests that need to inspect persisted state through the same store
439 /// handle the durable channels write to.
440 ///
441 /// Full-only: rejects a worker-front-door profile at entry, exactly like
442 /// [`Self::from_config`].
443 ///
444 /// # Errors
445 /// Returns [`ServerError`] when the config selects a non-full profile or a
446 /// configured channel cannot be initialized.
447 pub fn from_config_with_store(
448 config: &ServerConfig,
449 durable_store: Arc<dyn DurableStore>,
450 ) -> Result<Self, ServerError> {
451 require_full_profile(config)?;
452 Self::from_config_with_store_via(config, durable_store, &ProductionSubsystems)
453 }
454
455 /// [`Self::from_config_with_store`] with the subsystem factory injected.
456 ///
457 /// The channel supervisor and conversation supervisor are constructed ONLY
458 /// through `subsystems` — there is no direct constructor call in this body —
459 /// so a factory that records as a side effect of constructing cannot have its
460 /// recording omitted (§9 D2 seam census, record-by-construction). No profile
461 /// check here: the caller (the public wrapper or the profile dispatch in
462 /// [`build_connection_services`]) has already established the full profile.
463 fn from_config_with_store_via(
464 config: &ServerConfig,
465 durable_store: Arc<dyn DurableStore>,
466 subsystems: &dyn SubsystemFactory,
467 ) -> Result<Self, ServerError> {
468 // Build ONE shared channel supervisor for the whole server. When a
469 // [cluster] section is present it is distribution-enabled, so every
470 // channel actor and subscriber shares the clustered scheduler the cluster
471 // attaches its process-group transport to (SRV-005, Constraint B).
472 let cluster = subsystems.channel_cluster(config.cluster.as_ref())?;
473 let mut channels = HashMap::new();
474 for channel in &config.channels {
475 // Resolve the channel's real JSON Schema (loaded from `schema_ref`
476 // during config validation) or the permissive empty schema when the
477 // channel declared none. The protocol schema id advertised at
478 // subscribe time is derived from the SAME schema bytes so an SDK
479 // deriving ids from schema bytes converges on it.
480 let resolved = resolve_channel_schema(channel);
481 let configured = build_configured_channel(
482 &channel.name,
483 resolved,
484 channel.durable,
485 ChannelOrigin::BootConfigured,
486 &durable_store,
487 cluster.supervisor(),
488 )
489 .map_err(|error| ServerError::ConfigValidation {
490 message: error.boot_message(&channel.name),
491 })?;
492 channels.insert(channel.name.clone(), Arc::new(configured));
493 }
494 let conversation_supervisor = subsystems.conversation_supervisor()?;
495 let dedup = DedupCache::new(Arc::clone(&durable_store), DELIVERY_DEDUP_NAMESPACE);
496 // A1 §5: the ephemeral namespace is scoped to THIS incarnation, so an
497 // ephemeral receipt cannot outlive the in-memory message it vouches for.
498 let dedup_ephemeral =
499 DedupCache::new(Arc::clone(&durable_store), ephemeral_dedup_namespace());
500 // Production participant activation (LP gap closure, Part B): the
501 // deployment's [participant] section installs the ONE production
502 // semantic handler, sealed together with the same durable store the
503 // conversation logs live in, under the configured wire-frame limit.
504 // No section, no service — the capability bit stays off and the
505 // connection path is byte-identical to the pre-activation build.
506 let installed_participant = config
507 .participant
508 .as_ref()
509 .map(|participant| {
510 let handler =
511 ProductionParticipantHandler::new(Arc::clone(&durable_store), *participant)
512 .map_err(|error| ServerError::ParticipantStartupRestore {
513 message: error.to_string(),
514 })?;
515 // Taken BEFORE the handler is erased behind
516 // `dyn ParticipantSemanticHandler`: boot has already recorded
517 // every conversation it refused by the time `new` returns, so
518 // the record captured here is complete from the first scrape.
519 let unloadable_conversations = handler.unloadable_record();
520 let handler = Arc::new(handler);
521 // A7 (§0.18): taken here for the same reason, and from the same
522 // one live handler, so the operator surface and the participant
523 // wire cannot end up talking to two different owners.
524 let credential_reissuer: Arc<dyn OperatorCredentialReissuer> =
525 Arc::<ProductionParticipantHandler>::clone(&handler);
526 let service = InstalledParticipantService::new(
527 handler,
528 Arc::clone(&durable_store),
529 participant.wire_frame_limit,
530 )
531 .map_err(|error| ServerError::ConfigValidation {
532 message: format!(
533 "participant.wire_frame_limit: {} is below the protocol's minimum \
534 complete participant frame ({error:?})",
535 participant.wire_frame_limit
536 ),
537 })?;
538 Ok::<_, ServerError>((service, (unloadable_conversations, credential_reissuer)))
539 })
540 .transpose()?;
541 let (participant_service, operator_surfaces) = installed_participant.unzip();
542 let (unloadable_conversations, credential_reissuer) = operator_surfaces.unzip();
543 Ok(Self {
544 channels: RwLock::new(channels),
545 max_channels: config.limits.max_channels,
546 cluster,
547 durable_store,
548 participant_service,
549 unloadable_conversations,
550 credential_reissuer,
551 dedup,
552 dedup_ephemeral,
553 conversation_supervisor,
554 responders: Mutex::new(HashMap::new()),
555 next_message_id: AtomicU64::new(1),
556 next_subscription_id: AtomicU64::new(1),
557 })
558 }
559
560 /// Builds services with no configured channels.
561 ///
562 /// # Errors
563 /// Returns [`ServerError`] when the conversation supervisor scheduler cannot start.
564 pub fn empty() -> Result<Self, ServerError> {
565 let conversation_supervisor = ProductionSubsystems.conversation_supervisor()?;
566 let durable_store = build_durable_store(None)?;
567 let dedup = DedupCache::new(Arc::clone(&durable_store), DELIVERY_DEDUP_NAMESPACE);
568 // A1 §5: the ephemeral namespace is scoped to THIS incarnation, so an
569 // ephemeral receipt cannot outlive the in-memory message it vouches for.
570 let dedup_ephemeral =
571 DedupCache::new(Arc::clone(&durable_store), ephemeral_dedup_namespace());
572 Ok(Self {
573 channels: RwLock::new(HashMap::new()),
574 // No config, so no declared bound: this builder serves tests and
575 // callers with no channels at all, and a registration against it
576 // refuses `CapNotConfigured` exactly as an undeclared deployment's
577 // would.
578 max_channels: None,
579 cluster: build_channel_cluster(None)?,
580 durable_store,
581 participant_service: None,
582 unloadable_conversations: None,
583 credential_reissuer: None,
584 dedup,
585 dedup_ephemeral,
586 conversation_supervisor,
587 responders: Mutex::new(HashMap::new()),
588 next_message_id: AtomicU64::new(1),
589 next_subscription_id: AtomicU64::new(1),
590 })
591 }
592
593 /// The shared channel supervisor + cluster resolver backing this service.
594 ///
595 /// The server runtime uses this to attach the cluster to the channel
596 /// supervisor's clustered scheduler (SRV-005).
597 #[must_use]
598 pub const fn channel_cluster(&self) -> &ChannelCluster {
599 &self.cluster
600 }
601
602 /// Returns the shared durable store backing this service's durable channels.
603 #[must_use]
604 pub fn durable_store(&self) -> Arc<dyn DurableStore> {
605 Arc::clone(&self.durable_store)
606 }
607
608 /// The production participant handler's refused-load record, when a
609 /// participant is configured.
610 ///
611 /// The server's startup path publishes this onto the health endpoint so
612 /// `GET /unloadable-conversations` answers from the same record the
613 /// handler writes. `None` means no participant is configured at all, which
614 /// the surface reports as a distinct state from "nothing was refused".
615 #[must_use]
616 pub fn unloadable_conversation_record(&self) -> Option<UnloadableConversationRecord> {
617 self.unloadable_conversations.clone()
618 }
619
620 /// The A7 operator credential-re-issue authority, when a participant is
621 /// configured (§0.18).
622 ///
623 /// The startup path publishes this onto the health endpoint so
624 /// `POST /operator/credential-reissue` reaches the SAME serialized
625 /// participant-state point every wire operation does. `None` means no
626 /// participant is configured, which the route reports as a distinct state
627 /// from an unknown identity.
628 #[must_use]
629 pub fn credential_reissuer(&self) -> Option<Arc<dyn OperatorCredentialReissuer>> {
630 self.credential_reissuer.clone()
631 }
632
633 /// Installs a complete participant bundle in full-service supervisor tests.
634 ///
635 /// Production full services intentionally stay disabled until a concrete
636 /// lifecycle handler exists. This consuming test builder exercises the real
637 /// supervisor activation path without allowing an already-shared adapter to
638 /// change capability posture.
639 #[cfg(test)]
640 #[must_use]
641 pub(crate) fn with_participant_service(
642 mut self,
643 participant_service: InstalledParticipantService,
644 ) -> Self {
645 self.participant_service = Some(participant_service);
646 self
647 }
648
649 /// Returns the conversation supervisor backing supervised conversations.
650 ///
651 /// Tests use this to reach the underlying beamr scheduler so they can spawn
652 /// or terminate participant processes and exercise crash detection.
653 #[must_use]
654 pub fn conversation_supervisor(&self) -> Arc<ConversationSupervisor> {
655 Arc::clone(&self.conversation_supervisor)
656 }
657
658 /// Registers a custom conversation responder for a routing `subject`.
659 ///
660 /// When a conversation is later opened with this exact `subject`, its
661 /// participant runs `behaviour` instead of the built-in [`EchoBehaviour`].
662 /// The responder is spawned and supervised identically to the echo
663 /// participant — a real linked beamr process with the same crash-detection
664 /// semantics — so this exposes the responder seam without changing how
665 /// participants run. Registering a subject that already has a responder
666 /// replaces it; the previous behaviour is returned.
667 ///
668 /// This is the liminal-side seam aion #13 plugs a remote worker into: it
669 /// registers a responder that forwards each request to the worker and routes
670 /// the worker's reply back through the conversation. Subjects with no
671 /// registration keep echoing, so existing callers are unaffected.
672 ///
673 /// # Errors
674 /// Returns [`ServerError`] when the responder registry lock is poisoned.
675 pub fn register_responder(
676 &self,
677 subject: impl Into<String>,
678 behaviour: Arc<dyn ParticipantBehaviour>,
679 ) -> Result<Option<Arc<dyn ParticipantBehaviour>>, ServerError> {
680 let mut responders = self.lock_responders()?;
681 Ok(responders.insert(subject.into(), behaviour))
682 }
683
684 /// Removes the custom responder registered for `subject`, if any.
685 ///
686 /// After removal the subject reverts to the built-in [`EchoBehaviour`] on the
687 /// next [`Self::open_conversation`]. Returns the removed behaviour when one
688 /// was registered.
689 ///
690 /// # Errors
691 /// Returns [`ServerError`] when the responder registry lock is poisoned.
692 pub fn unregister_responder(
693 &self,
694 subject: &str,
695 ) -> Result<Option<Arc<dyn ParticipantBehaviour>>, ServerError> {
696 let mut responders = self.lock_responders()?;
697 Ok(responders.remove(subject))
698 }
699
700 /// Resolves the responder behaviour for `subject`: the registered custom
701 /// responder when present, otherwise the built-in [`EchoBehaviour`].
702 ///
703 /// This is the single routing decision behind the seam — registered-or-echo —
704 /// so the fallback is identical to the original hard-wired echo path.
705 fn responder_for(&self, subject: &str) -> Result<Arc<dyn ParticipantBehaviour>, ServerError> {
706 let responders = self.lock_responders()?;
707 Ok(responders.get(subject).map_or_else(
708 || Arc::new(EchoBehaviour) as Arc<dyn ParticipantBehaviour>,
709 Arc::clone,
710 ))
711 }
712
713 /// Locks the responder registry, mapping a poisoned lock to a [`ServerError`]
714 /// rather than panicking (the workspace denies `unwrap`/`expect`/`panic`).
715 fn lock_responders(&self) -> Result<std::sync::MutexGuard<'_, ResponderRegistry>, ServerError> {
716 self.responders
717 .lock()
718 .map_err(|_poisoned| ServerError::ListenerAccept {
719 message: "responder registry lock poisoned".to_owned(),
720 })
721 }
722
723 /// Takes the channel roster's read guard, mapping a poisoned lock to a
724 /// [`ServerError`] rather than panicking (the workspace denies
725 /// `unwrap`/`expect`/`panic`), exactly as [`Self::lock_responders`] does for
726 /// the responder registry.
727 ///
728 /// Every caller clones the `Arc` it needs out of the returned guard and drops
729 /// the guard before doing anything else: the roster lock is never held across
730 /// a call into the liminal library.
731 fn read_channels(
732 &self,
733 ) -> Result<std::sync::RwLockReadGuard<'_, HashMap<String, Arc<ConfiguredChannel>>>, ServerError>
734 {
735 self.channels
736 .read()
737 .map_err(|_poisoned| ServerError::ListenerAccept {
738 message: "channel roster lock poisoned".to_owned(),
739 })
740 }
741
742 /// Subscribes to a configured channel and returns the raw library
743 /// subscription handle so a test can drain the subscriber inbox directly and
744 /// observe exactly which messages reached a subscriber.
745 #[cfg(test)]
746 pub(crate) fn subscribe_handle_for_test(
747 &self,
748 channel: &str,
749 ) -> Result<liminal::channel::SubscriptionHandle, ServerError> {
750 self.subscribe_handle_for_test_with_install(channel, None)
751 }
752
753 /// [`Self::subscribe_handle_for_test`] carrying an explicit install, so a
754 /// test can put a subscriber under a REAL §5 regime (byte budget, fairness
755 /// cap) and observe what a publish the bus dropped does to the dedup
756 /// receipt.
757 #[cfg(test)]
758 pub(crate) fn subscribe_handle_for_test_with_install(
759 &self,
760 channel: &str,
761 install: Option<liminal::channel::InboxInstall>,
762 ) -> Result<liminal::channel::SubscriptionHandle, ServerError> {
763 let channels = self.read_channels()?;
764 let configured =
765 channels
766 .get(channel)
767 .map(Arc::clone)
768 .ok_or_else(|| ServerError::ListenerAccept {
769 message: format!("channel '{channel}' is not configured"),
770 })?;
771 drop(channels);
772 install
773 .map_or_else(
774 || configured.handle.subscribe(),
775 |install| configured.handle.subscribe_with_install(install),
776 )
777 .map_err(|error| ServerError::ListenerAccept {
778 message: format!("liminal subscribe failed for channel '{channel}': {error}"),
779 })
780 }
781
782 /// Claims the delivery right for an idempotency key.
783 ///
784 /// Returns `Ok(true)` when this is the first publish for the key (the caller
785 /// may deliver), and `Ok(false)` when the key was already claimed/completed (a
786 /// duplicate the caller must suppress). The dedup cache is driven synchronously
787 /// over the in-memory haematite store via the durable bridge.
788 fn claim_delivery(cache: &DedupCache, key: &str) -> Result<bool, ServerError> {
789 let decision = block_on(cache.claim_or_get(key, dedup_timestamp_millis()))
790 .map_err(|error| ServerError::ListenerAccept {
791 message: format!("dedup bridge failed for key '{key}': {error}"),
792 })?
793 .map_err(|error| ServerError::ListenerAccept {
794 message: format!("dedup claim failed for key '{key}': {error}"),
795 })?;
796 Ok(matches!(decision, DedupDecision::Claimed))
797 }
798
799 /// The dedup namespace a publish to `channel` belongs in (A1 §5).
800 ///
801 /// Durability decides, because durability is what determines whether a
802 /// receipt can outlive the message it vouches for. A durable channel's
803 /// message survives a crash, so its receipt may; an ephemeral channel's
804 /// does not, so its receipt must not.
805 const fn dedup_for(&self, channel: &ConfiguredChannel) -> &DedupCache {
806 match channel.handle.config().mode {
807 ChannelMode::Durable => &self.dedup,
808 ChannelMode::Ephemeral => &self.dedup_ephemeral,
809 }
810 }
811
812 /// Releases a dangling in-flight dedup claim after a failed delivery.
813 ///
814 /// Best-effort: a release failure cannot mask the original publish error, so
815 /// this returns nothing and logs at `error` level instead of surfacing. It is
816 /// never silent — the leak (a permanently suppressed key) must be observable.
817 /// `release_claim` itself never clobbers a stored receipt, so calling it on the
818 /// failure path is safe even if a concurrent completion raced ahead.
819 fn release_claim(cache: &DedupCache, key: &str) {
820 match block_on(cache.release_claim(key)) {
821 Ok(Ok(())) => {}
822 Ok(Err(error)) => {
823 tracing::error!(
824 idempotency_key = key,
825 %error,
826 "failed to release dedup claim after publish failure; key may stay suppressed"
827 );
828 }
829 Err(error) => {
830 tracing::error!(
831 idempotency_key = key,
832 %error,
833 "dedup release bridge failed after publish failure; key may stay suppressed"
834 );
835 }
836 }
837 }
838}
839
840/// The runtime channel-registration surface.
841///
842/// Inherent methods, not trait methods, and deliberately so: this is
843/// authority-moving vocabulary that belongs to the ONE adapter owning a channel
844/// roster. Putting `register`/`quiesce` on the public [`ConnectionServices`]
845/// trait would break every external implementor and would hand
846/// register/quiesce words to a profile that serves no channels at all.
847///
848/// The same seam as the existing runtime-mutation API on this type
849/// (`register_responder`/`unregister_responder`): `&self`, interior mutability,
850/// typed `Result`.
851impl LiminalConnectionServices {
852 /// Registers `spec` on the live roster.
853 ///
854 /// Idempotent when an entry of that name already has an IDENTICAL
855 /// configuration — mode, protocol schema id, and schema document, all three
856 /// — and refuses typed, naming the first differing field, otherwise. An
857 /// identical registration against a boot-configured entry answers
858 /// [`Registered::AlreadyIdentical`] and leaves its origin alone: flipping it
859 /// would make the entry lie about its restart fate and would move it into
860 /// the counted population without a channel having been created.
861 ///
862 /// The cap is consulted first, in two steps with different reach. An absent
863 /// `limits.max_channels` refuses EVERY call, identical or not, before the
864 /// roster is read at all: a deployment that has declared no bound has not
865 /// said what it admits, and unbounded-by-default is not a bound. A REACHED
866 /// cap refuses only a call that would create an entry — it gates the insert,
867 /// which is the population it bounds. An identical re-registration inserts
868 /// nothing and so is answered `AlreadyIdentical` even at a full roster;
869 /// refusing it would break idempotency at exactly the boundary a projector
870 /// re-projecting its record crosses.
871 ///
872 /// # Errors
873 /// Returns [`ChannelRegistryError`] when no cap is configured, the cap is
874 /// reached, the name exists with a different configuration, the schema bytes
875 /// do not parse or compile, durable initialization over the shared store
876 /// fails, or the roster lock is poisoned.
877 pub fn register_channel(
878 &self,
879 spec: &ChannelRegistration,
880 ) -> Result<Registered, ChannelRegistryError> {
881 // The cap is consulted before the roster is touched: an undeclared bound
882 // refuses every runtime registration, identical or not, because the
883 // deployment has not said what it admits.
884 let Some(limit) = self.max_channels else {
885 return Err(ChannelRegistryError::CapNotConfigured {
886 cap: MAX_CHANNELS_KEY,
887 });
888 };
889 // Schema resolution is pure (a JSON parse and a digest), so it runs with
890 // no lock held and its result serves BOTH the identity comparison and
891 // the construction below.
892 let resolved = resolve_schema_bytes(spec.schema_bytes.as_deref()).map_err(|error| {
893 ChannelRegistryError::SchemaRejected {
894 name: spec.name.clone(),
895 message: error.to_string(),
896 }
897 })?;
898
899 // Fast paths, under a READ lock: an already-identical registration
900 // builds nothing, and a full roster refuses before paying for a
901 // construction it would discard. Neither is the authority — the write
902 // lock below re-decides both, because the roster can move in between.
903 let (existing, registered_count) = {
904 let channels = self.read_roster()?;
905 let existing = channels.get(&spec.name).map(Arc::clone);
906 let registered_count = runtime_registered_count(&channels);
907 drop(channels);
908 (existing, registered_count)
909 };
910 if let Some(existing) = existing {
911 return compare_registration(&existing, spec, &resolved);
912 }
913 if registered_count >= limit {
914 return Err(ChannelRegistryError::CapReached {
915 cap: MAX_CHANNELS_KEY,
916 limit,
917 });
918 }
919
920 // Construction runs with NO lock held. A durable channel recovers its
921 // per-partition sequence counters from the store here, which is O(stream
922 // length) in store reads; holding the roster lock across it would put a
923 // slow store walk on every connection's publish and subscribe path.
924 let configured = build_configured_channel(
925 &spec.name,
926 resolved,
927 spec.durable,
928 ChannelOrigin::RuntimeRegistered,
929 &self.durable_store,
930 self.cluster.supervisor(),
931 )
932 .map_err(|error| error.into_registry_error(&spec.name))?;
933
934 // The authoritative decision: identity, cap, and insert under ONE write
935 // lock, so the count that admitted the entry and the insert that added
936 // it cannot be separated by a concurrent registration.
937 let mut channels = self.write_roster()?;
938 let raced = channels.get(&spec.name).map(Arc::clone);
939 let registered_count = runtime_registered_count(&channels);
940 if raced.is_none() && registered_count < limit {
941 channels.insert(spec.name.clone(), Arc::new(configured));
942 drop(channels);
943 return Ok(Registered::Created);
944 }
945 drop(channels);
946 if let Some(raced) = raced {
947 // A racer registered this name while the channel above was being
948 // built. The built entry is dropped unused: it owns no actor (the
949 // actor is spawned lazily on first use) and its durable
950 // construction only READ the store, so discarding it changes
951 // nothing an observer could see.
952 return compare_registration(&raced, spec, &schema_of(&configured));
953 }
954 Err(ChannelRegistryError::CapReached {
955 cap: MAX_CHANNELS_KEY,
956 limit,
957 })
958 }
959
960 /// Moves `name` from active to quiesced with a named `reason`. ONE-WAY.
961 ///
962 /// New publishes and new subscribes are refused afterwards, carrying the
963 /// reason. Existing subscriptions are UNTOUCHED: nothing revokes a
964 /// subscription handle, the actor's subscriber list is not walked, no EXIT
965 /// is sent, and the channel actor keeps running. Quiesce is a roster-level
966 /// admission decision, not an actor command.
967 ///
968 /// Re-quiescing under the IDENTICAL reason is `Ok(())`; a DIFFERENT reason
969 /// refuses, carrying the reason already on record.
970 ///
971 /// The return does NOT mean "no new subscriber can appear". A subscribe that
972 /// has already passed admission completes and gets its stream — the
973 /// linearisation point is the admission read, not the subscribe's
974 /// completion. A consumer that needs "nobody is attached" must observe
975 /// attachment directly.
976 ///
977 /// # Errors
978 /// Returns [`ChannelRegistryError`] when the name is not registered, is
979 /// already quiesced under a different reason, or the roster lock is
980 /// poisoned.
981 pub fn quiesce_channel(
982 &self,
983 name: &str,
984 reason: impl Into<String>,
985 ) -> Result<(), ChannelRegistryError> {
986 let reason = reason.into();
987 // A READ lock: the state machine lives on the ENTRY, not in the map, so
988 // the operation the design most wants to be safe never blocks a reader.
989 let configured = {
990 let channels = self.read_roster()?;
991 channels.get(name).map(Arc::clone).ok_or_else(|| {
992 ChannelRegistryError::NotRegistered {
993 name: name.to_owned(),
994 }
995 })?
996 };
997 configured.quiesce(name, &reason)
998 }
999
1000 /// Cheap typed probe: one roster read plus one atomic load.
1001 ///
1002 /// Touches no actor and therefore CANNOT spawn one. Every handle accessor
1003 /// that could answer a question about a channel's activity routes through
1004 /// the lazy-spawn path, so a probe built on one would materialise the actor
1005 /// of the idle channel it was asked about — turning a read into a side
1006 /// effect. This reads the roster entry's own recorded fields and nothing
1007 /// else.
1008 ///
1009 /// # Errors
1010 /// Returns [`ChannelRegistryError::RosterUnavailable`] only.
1011 pub fn channel_status(&self, name: &str) -> Result<ChannelStatus, ChannelRegistryError> {
1012 let configured = {
1013 let channels = self.read_roster()?;
1014 channels.get(name).map(Arc::clone)
1015 };
1016 let Some(configured) = configured else {
1017 return Ok(ChannelStatus::NotRegistered);
1018 };
1019 let mode = configured.handle.config().mode;
1020 Ok(match configured.state() {
1021 ChannelState::Active => ChannelStatus::Active {
1022 origin: configured.origin,
1023 mode,
1024 schema: configured.protocol_schema,
1025 },
1026 ChannelState::Quiesced { reason } => ChannelStatus::Quiesced {
1027 reason,
1028 origin: configured.origin,
1029 mode,
1030 },
1031 })
1032 }
1033
1034 /// The whole roster: one minimal descriptor per entry, sorted by name.
1035 ///
1036 /// The census companion to [`Self::channel_status`]. A by-name probe answers
1037 /// about a name the caller already suspects; only an enumeration can reveal
1038 /// a name the caller does not know to ask about, and a verification sweep
1039 /// with no population denominator is an instrument shape this estate
1040 /// forbids. Touches no actor, under the same constraint as the probe.
1041 ///
1042 /// # Errors
1043 /// Returns [`ChannelRegistryError::RosterUnavailable`] only.
1044 pub fn registered_channels(&self) -> Result<Vec<ChannelDescriptor>, ChannelRegistryError> {
1045 let entries: Vec<(String, Arc<ConfiguredChannel>)> = {
1046 let channels = self.read_roster()?;
1047 channels
1048 .iter()
1049 .map(|(name, configured)| (name.clone(), Arc::clone(configured)))
1050 .collect()
1051 };
1052 let mut descriptors: Vec<ChannelDescriptor> = entries
1053 .into_iter()
1054 .map(|(name, configured)| ChannelDescriptor {
1055 name,
1056 origin: configured.origin,
1057 state: configured.state(),
1058 })
1059 .collect();
1060 descriptors.sort_by(|left, right| left.name.cmp(&right.name));
1061 Ok(descriptors)
1062 }
1063
1064 /// The roster admission funnel: the ONE place a channel operation's
1065 /// permission is decided.
1066 ///
1067 /// Returns the admitted entry, so the caller works from the value the
1068 /// decision was made on rather than reading the roster a second time and
1069 /// risking a different answer. This read is the LINEARISATION POINT for the
1070 /// quiesce race: everything the caller does with the returned entry happens
1071 /// outside the lock and is not re-checked, which is exactly why a quiesce
1072 /// that commits after this returns does not stop the operation it admitted.
1073 ///
1074 /// # Errors
1075 /// Returns [`ChannelAccessError`] when the channel is absent, quiesced, or
1076 /// the roster lock is poisoned.
1077 fn admit_channel(&self, channel: &str) -> Result<Arc<ConfiguredChannel>, ChannelAccessError> {
1078 let configured = {
1079 let channels = self.channels.read().map_err(|_poisoned| {
1080 ChannelAccessError::RosterUnavailable {
1081 message: ROSTER_POISONED.to_owned(),
1082 }
1083 })?;
1084 channels.get(channel).map(Arc::clone)
1085 };
1086 let configured = configured.ok_or_else(|| ChannelAccessError::NotRegistered {
1087 name: channel.to_owned(),
1088 })?;
1089 if configured.state.load(Ordering::Acquire) == STATE_QUIESCED {
1090 return Err(ChannelAccessError::Quiesced {
1091 name: channel.to_owned(),
1092 reason: configured.recorded_quiesce_reason(),
1093 });
1094 }
1095 Ok(configured)
1096 }
1097
1098 /// Takes the roster's READ guard for the registration surface, mapping a
1099 /// poisoned lock to a typed [`ChannelRegistryError`].
1100 ///
1101 /// Separate from [`Self::read_channels`] because the two surfaces answer
1102 /// different callers with different error types; recovering one from the
1103 /// other would mean inspecting a message.
1104 fn read_roster(
1105 &self,
1106 ) -> Result<
1107 std::sync::RwLockReadGuard<'_, HashMap<String, Arc<ConfiguredChannel>>>,
1108 ChannelRegistryError,
1109 > {
1110 self.channels
1111 .read()
1112 .map_err(|_poisoned| ChannelRegistryError::RosterUnavailable {
1113 message: ROSTER_POISONED.to_owned(),
1114 })
1115 }
1116
1117 /// Takes the roster's WRITE guard — held only for the check-and-insert that
1118 /// must be atomic, never across a call into the liminal library.
1119 fn write_roster(
1120 &self,
1121 ) -> Result<
1122 std::sync::RwLockWriteGuard<'_, HashMap<String, Arc<ConfiguredChannel>>>,
1123 ChannelRegistryError,
1124 > {
1125 self.channels
1126 .write()
1127 .map_err(|_poisoned| ChannelRegistryError::RosterUnavailable {
1128 message: ROSTER_POISONED.to_owned(),
1129 })
1130 }
1131}
1132
1133/// The diagnostic carried when the roster lock is poisoned. One string, shared
1134/// by every surface that reports it, so the wording cannot drift between them.
1135const ROSTER_POISONED: &str = "channel roster lock poisoned";
1136
1137/// How many roster entries the registration cap counts.
1138///
1139/// Runtime-registered entries ONLY. Boot-configured channels are the operator's
1140/// own authored bound — they are in the file the operator wrote — and counting
1141/// them would make one number mean two different things depending on how the
1142/// deployment was configured. The origin never flips, so this population is
1143/// well defined over time.
1144fn runtime_registered_count(channels: &HashMap<String, Arc<ConfiguredChannel>>) -> usize {
1145 channels
1146 .values()
1147 .filter(|configured| configured.origin == ChannelOrigin::RuntimeRegistered)
1148 .count()
1149}
1150
1151/// The three-field identity comparison behind idempotent-if-identical
1152/// registration.
1153///
1154/// All three must match; the FIRST mismatch is reported by name. The name itself
1155/// is not compared — it is the roster key, a precondition of the comparison
1156/// rather than a member of it — and neither are the supervisor or the durable
1157/// store, which are one server-wide instance each and cannot differ between two
1158/// registrations in one process.
1159///
1160/// The schema is compared as BOTH its protocol id and its parsed document, on
1161/// purpose. The id is a 64-bit non-cryptographic digest, so the document guards
1162/// against a collision accepting a different schema as identical; and the two
1163/// fail in opposite directions, because two byte sequences that parse to the
1164/// same document but differ in whitespace produce different ids — which must
1165/// refuse, since the id is what every future subscriber negotiates.
1166///
1167/// The channel's own `Schema` is not compared: it is not `PartialEq`, and its
1168/// identifier is a fresh value per construction, so comparing it would refuse
1169/// every idempotent re-registration.
1170fn compare_registration(
1171 existing: &ConfiguredChannel,
1172 spec: &ChannelRegistration,
1173 resolved: &ChannelSchema,
1174) -> Result<Registered, ChannelRegistryError> {
1175 let requested_mode = if spec.durable {
1176 ChannelMode::Durable
1177 } else {
1178 ChannelMode::Ephemeral
1179 };
1180 let config = existing.handle.config();
1181 let mismatch = if config.mode == requested_mode {
1182 if existing.protocol_schema == resolved.protocol_id {
1183 if *config.schema.definition() == resolved.document {
1184 None
1185 } else {
1186 Some(ChannelConfigField::SchemaDocument)
1187 }
1188 } else {
1189 Some(ChannelConfigField::SchemaId)
1190 }
1191 } else {
1192 Some(ChannelConfigField::Mode)
1193 };
1194 mismatch.map_or(Ok(Registered::AlreadyIdentical), |field| {
1195 Err(ChannelRegistryError::AlreadyRegistered {
1196 name: spec.name.clone(),
1197 field,
1198 })
1199 })
1200}
1201
1202/// Recovers the resolved schema of an already-built entry, so the write-lock
1203/// re-check compares the SAME three fields against the same values the fast path
1204/// would have.
1205fn schema_of(configured: &ConfiguredChannel) -> ChannelSchema {
1206 ChannelSchema {
1207 document: configured.handle.config().schema.definition().clone(),
1208 protocol_id: configured.protocol_schema,
1209 }
1210}
1211
1212/// Builds one roster entry: the channel's validation engine, its library handle
1213/// (durable or ephemeral), and the protocol schema id advertised at subscribe
1214/// time.
1215///
1216/// This is the SOLE place a [`ConfiguredChannel`] is constructed. Keeping
1217/// construction in one function is what makes "every channel on this server is
1218/// the same kind of object" structural rather than a promise: there is no second
1219/// body a channel could be built by, so no channel can drift into a different
1220/// shape. The boot loop in [`LiminalConnectionServices::from_config_with_store_via`]
1221/// is its caller.
1222///
1223/// `resolved` is consumed because its JSON Schema document is moved into the
1224/// channel's [`Schema`]; the protocol id is carried onto the entry unchanged.
1225/// `origin` is stamped here and never written again.
1226///
1227/// The failure is typed ([`ChannelBuildError`]) rather than a [`ServerError`] so
1228/// BOTH callers can render it without inspecting a message: the boot loop maps
1229/// it back to the exact `ConfigValidation` strings it has always produced, and
1230/// `register_channel` maps it to the registry's own typed variants.
1231///
1232/// # Errors
1233/// Returns [`ChannelBuildError`] when the JSON Schema document does not compile
1234/// or durable initialization over the shared store fails.
1235fn build_configured_channel(
1236 name: &str,
1237 resolved: ChannelSchema,
1238 durable: bool,
1239 origin: ChannelOrigin,
1240 durable_store: &Arc<dyn DurableStore>,
1241 supervisor: &ChannelSupervisor,
1242) -> Result<ConfiguredChannel, ChannelBuildError> {
1243 let schema =
1244 Schema::new(resolved.document).map_err(|error| ChannelBuildError::SchemaRejected {
1245 message: error.to_string(),
1246 })?;
1247 let channel_config = if durable {
1248 ChannelConfig::new(name.to_owned(), schema, ChannelMode::Durable)
1249 } else {
1250 ChannelConfig::new(name.to_owned(), schema, ChannelMode::Ephemeral)
1251 };
1252 let handle = if durable {
1253 ChannelHandle::new_durable_with_supervisor(
1254 channel_config,
1255 Arc::clone(durable_store),
1256 supervisor.clone(),
1257 )
1258 .map_err(|error| ChannelBuildError::DurableInitFailed {
1259 message: error.to_string(),
1260 })?
1261 } else {
1262 ChannelHandle::with_supervisor(channel_config, supervisor.clone())
1263 };
1264 Ok(ConfiguredChannel {
1265 handle,
1266 protocol_schema: resolved.protocol_id,
1267 origin,
1268 state: AtomicU8::new(STATE_ACTIVE),
1269 quiesce_reason: OnceLock::new(),
1270 })
1271}
1272
1273/// Returns the current epoch-millis timestamp used as the dedup entry anchor.
1274///
1275/// A clock error before the Unix epoch yields `0`: the timestamp is only a TTL
1276/// anchor for the in-memory cache and a zero anchor never breaks the at-most-once
1277/// claim semantics, so this avoids surfacing a clock fault on the publish path.
1278fn dedup_timestamp_millis() -> u64 {
1279 use std::time::{SystemTime, UNIX_EPOCH};
1280 SystemTime::now()
1281 .duration_since(UNIX_EPOCH)
1282 .ok()
1283 .and_then(|duration| u64::try_from(duration.as_millis()).ok())
1284 .unwrap_or(0)
1285}
1286
1287/// Default shard count for an on-disk durable store.
1288///
1289/// Haematite routes keys across this many single-threaded shard actors; a small
1290/// power of two gives parallelism across cursors/streams without spawning an
1291/// actor per core. The value is fixed (haematite has no silent default) and not
1292/// yet surfaced in server config.
1293const DEFAULT_SHARD_COUNT: usize = 8;
1294
1295/// Namespace prefix for the dedup-on-delivery cache streams. Keeps delivery dedup
1296/// keys from colliding with any other haematite streams in the shared store.
1297///
1298/// This is the **durable** namespace (A1 §5): stable across restarts, because a
1299/// durable channel's message outlives a restart too.
1300const DELIVERY_DEDUP_NAMESPACE: &str = "liminal:delivery-dedup";
1301
1302/// The **ephemeral** dedup namespace for this server incarnation (A1 §5,
1303/// graft §0.2).
1304///
1305/// Scoped to the process incarnation so an ephemeral channel's receipt shares a
1306/// lifetime with the in-memory message it vouches for. Composed from the
1307/// process id and the boot instant, which is enough to make two incarnations
1308/// disagree; nothing reads the components back, so no meaning is attached to
1309/// them beyond distinctness.
1310///
1311/// **Known bound, not silently absorbed.** §5 also specifies writing these
1312/// records with the engine's native TTL so a previous incarnation's keyspace
1313/// ages out. `DurableStore` exposes no `append_with_ttl` at this tree, so that
1314/// half is NOT wired here: stranded incarnation namespaces are reclaimed by the
1315/// existing `DedupSweeper` (the design's own belt-and-braces path) once it is
1316/// scheduled, and adding a TTL verb to the store trait is a store-layer change
1317/// A1 does not name.
1318fn ephemeral_dedup_namespace() -> String {
1319 use std::time::{SystemTime, UNIX_EPOCH};
1320 let boot_nanos = SystemTime::now()
1321 .duration_since(UNIX_EPOCH)
1322 .map_or(0, |since| since.as_nanos());
1323 format!(
1324 "{DELIVERY_DEDUP_NAMESPACE}:incarnation:{}-{boot_nanos}",
1325 std::process::id()
1326 )
1327}
1328
1329/// Beamr-scheduler-owning subsystems the full-service construction path builds
1330/// beyond the connection supervisor's own scheduler. The §9 D2 seam census counts
1331/// these: the worker-front-door profile must construct NONE of them. Test-gated:
1332/// this is the recording vocabulary of the gate's instrument, not production state.
1333#[cfg(test)]
1334#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord)]
1335pub(super) enum SchedulerSubsystem {
1336 /// The shared channel supervisor (its own beamr scheduler).
1337 ChannelSupervisor,
1338 /// The conversation supervisor (its own beamr scheduler).
1339 ConversationSupervisor,
1340 /// The haematite store's database (its shard-actor scheduler).
1341 HaematiteStore,
1342}
1343
1344/// Constructor seam for every scheduler-owning subsystem (`SchedulerSubsystem`)
1345/// the profile-aware construction path can create.
1346///
1347/// These methods are the ONLY route through which [`build_connection_services`]
1348/// and the [`LiminalConnectionServices`] config constructors reach
1349/// `build_channel_cluster`, `ConversationSupervisor::new`, and the durable-store
1350/// constructors — no direct constructor call exists in those bodies. The §9 D2
1351/// gate therefore injects a factory that records as a side effect of
1352/// constructing (the D3 store-seam ownership move applied to schedulers): a
1353/// recording cannot be omitted without also failing to construct the subsystem,
1354/// which closes the "hand-placed census call beside the constructor" gap where a
1355/// future subsystem could be built without its courtesy call.
1356pub(super) trait SubsystemFactory {
1357 /// Constructs the shared channel supervisor + cluster resolver (a beamr
1358 /// scheduler).
1359 ///
1360 /// # Errors
1361 /// Returns [`ServerError`] when the channel supervisor scheduler cannot start.
1362 fn channel_cluster(
1363 &self,
1364 cluster_config: Option<&ClusterConfig>,
1365 ) -> Result<ChannelCluster, ServerError>;
1366
1367 /// Constructs the conversation supervisor (a beamr scheduler).
1368 ///
1369 /// # Errors
1370 /// Returns [`ServerError`] when the conversation supervisor scheduler cannot
1371 /// start.
1372 fn conversation_supervisor(&self) -> Result<Arc<ConversationSupervisor>, ServerError>;
1373
1374 /// Constructs the durable store (haematite's shard-actor scheduler):
1375 /// persistent under `persistence_path`, self-owning ephemeral otherwise.
1376 ///
1377 /// # Errors
1378 /// Returns [`ServerError`] when the store cannot be opened.
1379 fn durable_store(
1380 &self,
1381 persistence_path: Option<&Path>,
1382 ) -> Result<Arc<dyn DurableStore>, ServerError>;
1383}
1384
1385/// The production factory: the real constructors, recording nothing.
1386pub(super) struct ProductionSubsystems;
1387
1388impl SubsystemFactory for ProductionSubsystems {
1389 fn channel_cluster(
1390 &self,
1391 cluster_config: Option<&ClusterConfig>,
1392 ) -> Result<ChannelCluster, ServerError> {
1393 build_channel_cluster(cluster_config)
1394 }
1395
1396 fn conversation_supervisor(&self) -> Result<Arc<ConversationSupervisor>, ServerError> {
1397 Ok(Arc::new(ConversationSupervisor::new().map_err(
1398 |error| ServerError::ConfigValidation {
1399 message: format!("failed to start conversation supervisor: {error}"),
1400 },
1401 )?))
1402 }
1403
1404 fn durable_store(
1405 &self,
1406 persistence_path: Option<&Path>,
1407 ) -> Result<Arc<dyn DurableStore>, ServerError> {
1408 build_durable_store(persistence_path)
1409 }
1410}
1411
1412/// Test-only recording implementation of [`SubsystemFactory`] for the §9 D2
1413/// construction gate. Lives here (not in a test module's private scope) so the
1414/// supervisor-level gate test reuses the same instrument.
1415#[cfg(test)]
1416#[allow(clippy::expect_used)]
1417pub(super) mod subsystem_census {
1418 use std::path::{Path, PathBuf};
1419 use std::sync::{Arc, Mutex};
1420
1421 use liminal::conversation::ConversationSupervisor;
1422 use liminal::durability::{DurableStore, open_ephemeral_rooted};
1423
1424 use super::{
1425 ChannelCluster, DEFAULT_SHARD_COUNT, ProductionSubsystems, SchedulerSubsystem,
1426 SubsystemFactory, build_durable_store_with,
1427 };
1428 use crate::ServerError;
1429 use crate::config::types::ClusterConfig;
1430
1431 /// Records each [`SchedulerSubsystem`] AS A SIDE EFFECT of constructing it,
1432 /// then hands back the production-constructed subsystem (with ephemeral
1433 /// stores rooted in an isolated directory, so the fs half of the gate is a
1434 /// real negative assertion). Because [`SubsystemFactory`] is the only route
1435 /// the profile-aware construction path has to these constructors, a
1436 /// recording cannot be omitted without also failing to construct — the
1437 /// record-by-construction guarantee.
1438 pub struct RecordingSubsystems {
1439 census: Mutex<Vec<SchedulerSubsystem>>,
1440 ephemeral_root: PathBuf,
1441 }
1442
1443 impl RecordingSubsystems {
1444 /// A recording factory whose ephemeral stores live under `ephemeral_root`.
1445 pub fn rooted(ephemeral_root: &Path) -> Self {
1446 Self {
1447 census: Mutex::new(Vec::new()),
1448 ephemeral_root: ephemeral_root.to_path_buf(),
1449 }
1450 }
1451
1452 /// The recorded construction census, sorted for order-independent
1453 /// comparison.
1454 pub fn recorded(&self) -> Vec<SchedulerSubsystem> {
1455 let mut recorded = self
1456 .census
1457 .lock()
1458 .expect("subsystem census lock is never poisoned in tests")
1459 .clone();
1460 recorded.sort();
1461 recorded
1462 }
1463
1464 fn record(&self, subsystem: SchedulerSubsystem) {
1465 self.census
1466 .lock()
1467 .expect("subsystem census lock is never poisoned in tests")
1468 .push(subsystem);
1469 }
1470 }
1471
1472 impl SubsystemFactory for RecordingSubsystems {
1473 fn channel_cluster(
1474 &self,
1475 cluster_config: Option<&ClusterConfig>,
1476 ) -> Result<ChannelCluster, ServerError> {
1477 let cluster = ProductionSubsystems.channel_cluster(cluster_config)?;
1478 self.record(SchedulerSubsystem::ChannelSupervisor);
1479 Ok(cluster)
1480 }
1481
1482 fn conversation_supervisor(&self) -> Result<Arc<ConversationSupervisor>, ServerError> {
1483 let supervisor = ProductionSubsystems.conversation_supervisor()?;
1484 self.record(SchedulerSubsystem::ConversationSupervisor);
1485 Ok(supervisor)
1486 }
1487
1488 fn durable_store(
1489 &self,
1490 persistence_path: Option<&Path>,
1491 ) -> Result<Arc<dyn DurableStore>, ServerError> {
1492 let store = build_durable_store_with(persistence_path, || {
1493 open_ephemeral_rooted(&self.ephemeral_root, DEFAULT_SHARD_COUNT)
1494 })?;
1495 self.record(SchedulerSubsystem::HaematiteStore);
1496 Ok(store)
1497 }
1498 }
1499}
1500
1501/// Full-only constructor guard: rejects a config whose profile is not `Full`.
1502///
1503/// [`LiminalConnectionServices`]' config-based constructors call this at entry so
1504/// the full service stack can never be built for a worker-front-door config —
1505/// profile enforcement holds on every public construction path, not only the
1506/// file-loading pipeline.
1507fn require_full_profile(config: &ServerConfig) -> Result<(), ServerError> {
1508 match config.services.profile()? {
1509 ServiceProfile::Full => Ok(()),
1510 ServiceProfile::WorkerFrontDoor => Err(ServerError::ConfigValidation {
1511 message: format!(
1512 "services.profile: \"{}\" cannot construct the full LiminalConnectionServices; \
1513 build profile-selected services via build_connection_services",
1514 ServiceProfile::WORKER_FRONT_DOOR
1515 ),
1516 }),
1517 }
1518}
1519
1520/// Builds the connection-services adapter selected by `config`'s service profile.
1521///
1522/// `Full` builds [`LiminalConnectionServices`] (channels, conversations, durable
1523/// store, dedup cache) exactly as today. `WorkerFrontDoor` builds
1524/// [`WorkerFrontDoorServices`], which constructs none of that machinery. This is the
1525/// single profile-dispatch authority: [`super::supervisor::ConnectionSupervisor`]'s
1526/// config constructor and the standalone runtime's worker arm both route through it
1527/// (the runtime's full arm stays on the explicit
1528/// [`LiminalConnectionServices::from_config`] path because it also needs the shared
1529/// channel cluster, which the trait object does not expose — that path is guarded
1530/// full-only at entry).
1531///
1532/// # Errors
1533/// Returns [`ServerError`] when the selected adapter cannot be constructed, the
1534/// configured profile value is not recognised, or the worker-front-door profile is
1535/// combined with full-only config fields.
1536pub fn build_connection_services(
1537 config: &ServerConfig,
1538) -> Result<Arc<dyn ConnectionServices>, ServerError> {
1539 build_connection_services_via(config, &ProductionSubsystems)
1540}
1541
1542/// [`build_connection_services`] with the subsystem factory injected — the §9 D2
1543/// gate seam, both halves at once.
1544///
1545/// Every scheduler-owning subsystem the `Full` branch creates is constructed
1546/// through `subsystems` and nowhere else, so a recording factory observes exactly
1547/// what was built (thread half, record-by-construction); the gate's factory also
1548/// roots its ephemeral stores in an isolated directory, so "the root stays empty
1549/// on the worker branch" is a real negative assertion (fs half, the D3 pattern).
1550/// The `WorkerFrontDoor` branch never touches the factory — a regression that gave
1551/// the front door any subsystem would both record in the census and land a store
1552/// directory in the injected root.
1553///
1554/// The worker branch re-runs the cross-field checks here, not only in file-loading
1555/// validation, so a directly-constructed config cannot smuggle full-only machinery
1556/// past the profile.
1557pub(super) fn build_connection_services_via(
1558 config: &ServerConfig,
1559 subsystems: &dyn SubsystemFactory,
1560) -> Result<Arc<dyn ConnectionServices>, ServerError> {
1561 match config.services.profile()? {
1562 ServiceProfile::Full => {
1563 let store = subsystems.durable_store(config.persistence_path.as_deref())?;
1564 Ok(Arc::new(
1565 LiminalConnectionServices::from_config_with_store_via(config, store, subsystems)?,
1566 ))
1567 }
1568 ServiceProfile::WorkerFrontDoor => {
1569 let errors = crate::config::validation::worker_front_door_field_errors(config);
1570 if !errors.is_empty() {
1571 return Err(ServerError::ConfigValidation {
1572 message: errors.join("; "),
1573 });
1574 }
1575 Ok(Arc::new(WorkerFrontDoorServices::new()))
1576 }
1577 }
1578}
1579
1580/// Builds the haematite-backed durable store.
1581///
1582/// When `persistence_path` is `Some`, the database lives there and survives
1583/// process restarts: an existing database directory is reopened, a fresh one is
1584/// created. When it is `None` (no durable path configured, or the channel-free
1585/// `empty()` services used by tests), a self-owning ephemeral store is opened
1586/// instead: its temporary directory is created and removed by the store itself
1587/// (D3), so it leaves no residue once the last store handle drops. The two paths
1588/// return distinct concrete stores on purpose — only the ephemeral one carries a
1589/// directory guard; the persistent path is untouched.
1590fn build_durable_store(
1591 persistence_path: Option<&Path>,
1592) -> Result<Arc<dyn DurableStore>, ServerError> {
1593 build_durable_store_with(persistence_path, || open_ephemeral(DEFAULT_SHARD_COUNT))
1594}
1595
1596/// [`build_durable_store`] with the ephemeral factory injected.
1597///
1598/// The split exists for the D3 construction gates: the SAME branch logic runs
1599/// in production and tests, and only the factory closure differs — tests root
1600/// the ephemeral store in an isolated directory (via liminal's test-gated
1601/// rooted factory) so "no ephemeral directory was created" is a real assertion
1602/// rather than a scan of the shared system temp dir.
1603fn build_durable_store_with(
1604 persistence_path: Option<&Path>,
1605 make_ephemeral: impl FnOnce() -> Result<EphemeralHaematiteStore, DurabilityError>,
1606) -> Result<Arc<dyn DurableStore>, ServerError> {
1607 let Some(path) = persistence_path else {
1608 let store = make_ephemeral().map_err(|error| ServerError::ConfigValidation {
1609 message: format!("failed to open ephemeral durable store: {error}"),
1610 })?;
1611 return Ok(Arc::new(store));
1612 };
1613 let data_dir = path.join("durability");
1614 let database = open_or_create_database(&data_dir)?;
1615 let event_store = EventStore::new(database);
1616 Ok(Arc::new(HaematiteStore::new(Arc::new(event_store))))
1617}
1618
1619/// Opens an existing haematite database at `data_dir`, or creates one.
1620fn open_or_create_database(data_dir: &Path) -> Result<Database, ServerError> {
1621 let config_file = data_dir.join("config.json");
1622 let result = if config_file.exists() {
1623 adopt_pre_budget_config(data_dir, &config_file)?;
1624 Database::open(data_dir)
1625 } else {
1626 Database::create(DatabaseConfig {
1627 data_dir: data_dir.to_path_buf(),
1628 shard_count: DEFAULT_SHARD_COUNT,
1629 distributed: None,
1630 executor_threads: None,
1631 // haematite 0.8.3 requires this field and refuses `None` at
1632 // validation; `Unlimited` is the crate's explicit spelling of the
1633 // pre-budget (0.8.1) behaviour — the behaviour-preserving choice
1634 // for a dependency hop. A real byte ceiling is a deployment
1635 // decision for its own measured lane. A store whose `config.json`
1636 // predates the field is migrated by the open arm above
1637 // (`adopt_pre_budget_config`) — same value, written once, on
1638 // upgrade.
1639 node_cache_budget: Some(haematite::NodeCacheBudget::Unlimited),
1640 })
1641 };
1642 result.map_err(|error| ServerError::ConfigValidation {
1643 message: format!(
1644 "failed to open durable store at {}: {error}",
1645 data_dir.display()
1646 ),
1647 })
1648}
1649
1650/// Writes the budget the create arm already chooses into a `config.json` that
1651/// predates haematite's `node_cache_budget` field, so a store created before
1652/// the field existed opens on upgrade with no operator hand.
1653///
1654/// haematite refuses to open such a store (`MissingNodeCacheBudget`) and is
1655/// right to: the budget is a deployment decision, and it will not invent one.
1656/// This crate IS the caller that owns that decision, and it already makes it
1657/// on every create — `Unlimited`, the crate's spelling of the pre-budget
1658/// behaviour — so answering the refusal here, once, on upgrade, changes
1659/// nothing about how the store runs and takes the file off the operator's
1660/// desk (the store migrates itself or it doesn't ship).
1661///
1662/// Touches the file in exactly one case: a readable JSON object with no
1663/// `node_cache_budget` key. Anything else — unreadable bytes, a non-object,
1664/// an explicit value however wrong — is left byte-identical so
1665/// [`Database::open`] surfaces haematite's own sharpest refusal instead of
1666/// this function guessing over it. The write is atomic and durable (tmp file
1667/// beside the target, fsync, rename, directory fsync): a crash mid-migration
1668/// leaves the original bytes, and the next boot migrates again.
1669fn adopt_pre_budget_config(data_dir: &Path, config_file: &Path) -> Result<(), ServerError> {
1670 let Ok(bytes) = std::fs::read(config_file) else {
1671 return Ok(());
1672 };
1673 let Ok(mut config) = serde_json::from_slice::<serde_json::Value>(&bytes) else {
1674 return Ok(());
1675 };
1676 let Some(object) = config.as_object_mut() else {
1677 return Ok(());
1678 };
1679 if object.contains_key("node_cache_budget") {
1680 return Ok(());
1681 }
1682 object.insert(
1683 "node_cache_budget".to_owned(),
1684 serde_json::Value::String("unlimited".to_owned()),
1685 );
1686 let migrated =
1687 serde_json::to_vec_pretty(&config).map_err(|error| ServerError::ConfigValidation {
1688 message: format!(
1689 "durable store config at {} predates `node_cache_budget` and its migration \
1690 could not be serialized: {error}",
1691 config_file.display()
1692 ),
1693 })?;
1694 let write_error = |step: &str, error: std::io::Error| ServerError::ConfigValidation {
1695 message: format!(
1696 "durable store config at {} predates `node_cache_budget` and migrating it failed \
1697 at {step}: {error}",
1698 config_file.display()
1699 ),
1700 };
1701 let tmp_file = data_dir.join("config.json.migrate-tmp");
1702 let mut tmp = std::fs::File::create(&tmp_file)
1703 .map_err(|error| write_error("creating the temporary file", error))?;
1704 std::io::Write::write_all(&mut tmp, &migrated)
1705 .map_err(|error| write_error("writing the temporary file", error))?;
1706 tmp.sync_all()
1707 .map_err(|error| write_error("syncing the temporary file", error))?;
1708 drop(tmp);
1709 std::fs::rename(&tmp_file, config_file)
1710 .map_err(|error| write_error("renaming over config.json", error))?;
1711 std::fs::File::open(data_dir)
1712 .and_then(|dir| dir.sync_all())
1713 .map_err(|error| write_error("syncing the data directory", error))?;
1714 tracing::warn!(
1715 config = %config_file.display(),
1716 "durable store config predates `node_cache_budget` -- wrote the create-arm default \
1717 (\"unlimited\", the behaviour-preserving budget) so the store opens with no operator \
1718 action"
1719 );
1720 Ok(())
1721}
1722
1723impl ConnectionServices for LiminalConnectionServices {
1724 fn participant_service(&self) -> Option<InstalledParticipantService> {
1725 self.participant_service.clone()
1726 }
1727
1728 /// The roster's admission decision, exposed across the trait boundary as the
1729 /// permission alone.
1730 ///
1731 /// Two methods share the name `admit_channel` on this type: this trait
1732 /// method, and the private inherent funnel it delegates to. They are the
1733 /// same decision at two different boundaries — the funnel returns the ENTRY
1734 /// the decision was made on, because its in-crate callers go on to publish
1735 /// or subscribe through it, and this one returns `()`, because a caller
1736 /// outside the crate is asking whether it MAY, not for the thing itself.
1737 /// Handing the entry out here would make [`ConfiguredChannel`] public
1738 /// surface and hand a frame-level caller a channel handle it has no business
1739 /// holding. Rust resolves an inherent method ahead of a trait method of the
1740 /// same name, so the funnel's existing callers — and the `Self::` call below
1741 /// — reach the funnel, not this method; the trait form is reached only
1742 /// through a `dyn ConnectionServices`, which is exactly the caller it exists
1743 /// for. `an_admitted_operation_the_service_then_refuses_stays_undifferentiated`
1744 /// is the instrument that would catch this delegation turning into a
1745 /// recursion.
1746 ///
1747 /// `operation` is unused in v1 and the parameter is still right: absence
1748 /// refuses both operations, and quiesce refuses new publishes and new
1749 /// subscribes alike, so the two answers are equal today and not equal by
1750 /// definition. A signature that could not see what it was deciding about
1751 /// would have to break the day they part.
1752 fn admit_channel(
1753 &self,
1754 _operation: ChannelOperation,
1755 channel: &str,
1756 ) -> Result<(), ChannelAccessError> {
1757 Self::admit_channel(self, channel)?;
1758 Ok(())
1759 }
1760
1761 fn publish(
1762 &self,
1763 channel: &str,
1764 envelope: &MessageEnvelope,
1765 idempotency_key: Option<&str>,
1766 ) -> Result<PublishOutcome, ServerError> {
1767 // The roster read holds its guard only long enough to clone the entry's
1768 // `Arc` out; everything below — the dedup bridge and the publish into the
1769 // channel actor — runs with no roster lock held.
1770 //
1771 // This inner admission STAYS even once the connection process consults
1772 // the roster ahead of delegating: this method is public and callable
1773 // without going through a frame at all, and a guard that only exists in
1774 // the caller is not a guard.
1775 let configured = self
1776 .admit_channel(channel)
1777 .map_err(|error| access_to_server_error(&error))?;
1778
1779 // Dedup-on-delivery: a publish carrying an idempotency key is delivered to
1780 // subscribers AT MOST ONCE across re-publishes of the same key. Only a
1781 // fresh `Claimed` decision proceeds to fan-out; a `Completed`/`InFlight`
1782 // decision is a duplicate and is suppressed (no second delivery), which is
1783 // the at-most-once guarantee the aion outbox relies on.
1784 // A1 §5: the namespace is chosen by the channel's DURABILITY, so an
1785 // ephemeral receipt cannot outlive the message it vouches for.
1786 let dedup = self.dedup_for(&configured);
1787 if let Some(key) = idempotency_key {
1788 if !Self::claim_delivery(dedup, key)? {
1789 // A dedup-suppressed re-publish is still an accepted publish (it is
1790 // assigned a message id), but it reaches no subscriber, so it counts
1791 // toward publishes and not deliveries.
1792 crate::metrics::publish_accepted();
1793 return Ok(PublishOutcome {
1794 message_id: self.next_message_id.fetch_add(1, Ordering::Relaxed),
1795 delivered: false,
1796 });
1797 }
1798 }
1799
1800 let delivery = configured.handle.publish_with_delivery(
1801 &envelope.payload,
1802 liminal::envelope::PublisherId::default(),
1803 None,
1804 );
1805 let delivery = match delivery {
1806 Ok(delivery) => delivery,
1807 Err(error) => {
1808 // The claim above appended an `InFlight` entry but the delivery
1809 // failed before `complete_receipt` could run. Release the claim so
1810 // the key is re-claimable; otherwise every re-publish would see
1811 // `InFlight` and be suppressed forever. Best-effort: surface the
1812 // ORIGINAL publish error regardless, but never swallow a release
1813 // failure silently (it leaves the leak intact).
1814 if let Some(key) = idempotency_key {
1815 Self::release_claim(dedup, key);
1816 }
1817 return Err(ServerError::ListenerAccept {
1818 message: format!("liminal publish failed for channel '{channel}': {error}"),
1819 });
1820 }
1821 };
1822
1823 // A1 §5, the two-way dedup mapping. Every publish outcome maps to
1824 // EXACTLY ONE of complete/release — the same shape as the C1 contract:
1825 //
1826 // * **Defer (or Accept) => `complete_receipt`.** The message is
1827 // admitted and bus-held, so the key is done: a producer retrying it
1828 // hits `Completed` and there is no duplicate delivery and no InFlight
1829 // leak. This is the path that makes "re-publishing with the same key
1830 // is safe and is suppressed while the bus owns the message" true.
1831 // * **Reject => `release_claim`.** Aggregation makes a producer-visible
1832 // Reject mean delivered-to-zero, so the correct dedup state is "as if
1833 // never published": tombstone it so a deliberate retry can re-claim.
1834 // `release_claim` never clobbers a receipt, so the at-most-once guard
1835 // survives a concurrent completion racing ahead.
1836 //
1837 // Mixed accept/reject reports Defer and so completes — consistent with
1838 // "at least one delivery happened".
1839 if let Some(key) = idempotency_key {
1840 if delivery.is_admitted() {
1841 block_on(dedup.complete_receipt(key, ProcessingReceipt::new(Vec::new())))
1842 .map_err(|error| ServerError::ListenerAccept {
1843 message: format!("dedup receipt bridge failed for key '{key}': {error}"),
1844 })?
1845 .map_err(|error| ServerError::ListenerAccept {
1846 message: format!("dedup receipt write failed for key '{key}': {error}"),
1847 })?;
1848 } else {
1849 Self::release_claim(dedup, key);
1850 }
1851 }
1852
1853 // Record the accepted publish and its genuine subscriber deliveries. The
1854 // delivered count (0 for an empty channel) is the same signal the delivery
1855 // ack is derived from.
1856 crate::metrics::publish_accepted();
1857 let delivered_count = u64::try_from(delivery.delivered_count()).unwrap_or(u64::MAX);
1858 crate::metrics::deliveries_recorded(delivered_count);
1859
1860 Ok(PublishOutcome {
1861 message_id: self.next_message_id.fetch_add(1, Ordering::Relaxed),
1862 delivered: delivery.is_delivered(),
1863 })
1864 }
1865
1866 fn subscribe(
1867 &self,
1868 channel: &str,
1869 accepted_schemas: &[ProtocolSchemaId],
1870 install: Option<liminal::channel::InboxInstall>,
1871 ) -> Result<ConnectionSubscription, ServerError> {
1872 // As in `publish`: the admission funnel clones the entry's `Arc` out
1873 // under the read guard and the guard is released before schema
1874 // negotiation or the actor round-trip below. That release is what makes
1875 // this the linearisation point — a quiesce landing after it does not
1876 // stop the subscription this call is already building.
1877 let configured = self
1878 .admit_channel(channel)
1879 .map_err(|error| access_to_server_error(&error))?;
1880 let selected_schema = if accepted_schemas.is_empty() {
1881 configured.protocol_schema
1882 } else {
1883 liminal::protocol::negotiate_schema(configured.protocol_schema, accepted_schemas)
1884 .map_err(|error| server_error_from_protocol(&error))?
1885 };
1886 // `subscribe_with_install` installs the §5 budget/fairness cap and the R3
1887 // wake notifier on the inbox at construction — strictly before the
1888 // registration is published to the channel actor — so there is no window
1889 // in which a publish can land uncharged or without a wake.
1890 let subscription = install
1891 .map_or_else(
1892 || configured.handle.subscribe(),
1893 |install| configured.handle.subscribe_with_install(install),
1894 )
1895 .map_err(|error| ServerError::ListenerAccept {
1896 message: format!("liminal subscribe failed for channel '{channel}': {error}"),
1897 })?;
1898 let id = self.next_subscription_id.fetch_add(1, Ordering::Relaxed);
1899 let mut connection_subscription = ConnectionSubscription::new(
1900 id,
1901 selected_schema,
1902 Box::new(LiminalSubscriptionResource { subscription }),
1903 );
1904 connection_subscription.set_channel(channel.to_owned());
1905 Ok(connection_subscription)
1906 }
1907
1908 fn unsubscribe(&self, subscription: ConnectionSubscription) -> Result<(), ServerError> {
1909 subscription.unsubscribe()
1910 }
1911
1912 fn open_conversation(
1913 &self,
1914 conversation_id: u64,
1915 subject: &str,
1916 ) -> Result<ConnectionConversation, ServerError> {
1917 // Spawn a REAL participant process (a beamr `NativeHandler` running the
1918 // resolved responder behaviour) on the conversation supervisor's
1919 // scheduler, and a supervised conversation actor linked to it. The actor
1920 // FORWARDS each conversation message to the participant, which genuinely
1921 // processes it and delivers a reply back. The actor traps the
1922 // participant's EXIT (a beamr process link), so killing it fires a
1923 // structural, microsecond-scale crash signal.
1924 //
1925 // The responder is chosen by `subject`: a custom responder registered via
1926 // `register_responder` for this subject, or the built-in `EchoBehaviour`
1927 // when none is registered. Either way it runs as the SAME supervised,
1928 // linked participant process — the seam changes WHO responds, not HOW the
1929 // participant is spawned or supervised.
1930 let behaviour = self.responder_for(subject)?;
1931 let (actor, participant) = self
1932 .conversation_supervisor
1933 .spawn_with_participant(behaviour, None, ChannelMode::Ephemeral, CrashPolicy::Fail)
1934 .map_err(|error| ServerError::ListenerAccept {
1935 message: format!(
1936 "failed to spawn supervised conversation {conversation_id} ('{subject}'): {error}"
1937 ),
1938 })?;
1939
1940 // Drive boot to completion so the beamr link to the participant exists
1941 // before any message is forwarded (link-before-forward), mirroring the
1942 // ROUTING-004 dispatch pattern.
1943 actor.pid().map_err(|error| ServerError::ListenerAccept {
1944 message: format!(
1945 "failed to boot supervised conversation {conversation_id} ('{subject}'): {error}"
1946 ),
1947 })?;
1948
1949 // Register the structural EXIT notifier BEFORE returning, so a crash that
1950 // fires the instant a message reaches the participant is never missed.
1951 // The notifier is woken by the actor's trapped-EXIT handler (event
1952 // driven), and a crash that already landed is replayed immediately.
1953 let (exit_tx, exit_rx) = mpsc::sync_channel::<Instant>(1);
1954 actor
1955 .notify_on_participant_exit(participant, exit_tx)
1956 .map_err(|error| ServerError::ListenerAccept {
1957 message: format!(
1958 "failed to arm crash detection for conversation {conversation_id}: {error}"
1959 ),
1960 })?;
1961
1962 Ok(ConnectionConversation::new(Box::new(
1963 LiminalConversationResource::new(actor, participant, exit_rx),
1964 )))
1965 }
1966
1967 fn conversation_message(
1968 &self,
1969 conversation: &ConnectionConversation,
1970 envelope: &MessageEnvelope,
1971 op_id: Option<u64>,
1972 ) -> Result<(), ServerError> {
1973 conversation.message(envelope, op_id)
1974 }
1975
1976 fn close_conversation(&self, conversation: ConnectionConversation) -> Result<(), ServerError> {
1977 conversation.close()
1978 }
1979
1980 fn flush_durable_state(&self) -> Result<(), ServerError> {
1981 // Clone the roster out under the read guard and drop the guard before
1982 // flushing: a shutdown flush is a durable write per entry, and it must
1983 // never run with the roster lock held.
1984 let entries: Vec<(String, Arc<ConfiguredChannel>)> = {
1985 let channels = self.read_channels()?;
1986 channels
1987 .iter()
1988 .map(|(channel_name, configured)| (channel_name.clone(), Arc::clone(configured)))
1989 .collect()
1990 };
1991 for (channel_name, configured) in entries {
1992 if configured.handle.config().mode == ChannelMode::Durable {
1993 configured
1994 .handle
1995 .flush()
1996 .map_err(|error| ServerError::ShutdownFlush {
1997 message: format!(
1998 "failed to flush durable channel '{channel_name}': {error}"
1999 ),
2000 })?;
2001 }
2002 }
2003 Ok(())
2004 }
2005}
2006
2007/// One roster entry: a channel's library handle, the protocol schema id
2008/// advertised for it, where it came from, and its admission state.
2009#[derive(Debug)]
2010pub(super) struct ConfiguredChannel {
2011 handle: ChannelHandle,
2012 protocol_schema: ProtocolSchemaId,
2013 /// Boot-configured or runtime-registered. Written once at construction and
2014 /// NEVER flipped: it is the only field that predicts what a restart does to
2015 /// this entry, and it defines the population the registration cap counts.
2016 origin: ChannelOrigin,
2017 /// [`STATE_ACTIVE`] or [`STATE_QUIESCED`]. Written at most once, by one
2018 /// `compare_exchange`, so the transition is one-way and exactly one caller
2019 /// can perform it.
2020 state: AtomicU8,
2021 /// The quiesce cause, set STRICTLY BEFORE `state` flips so any reader that
2022 /// observes [`STATE_QUIESCED`] can read it. Written once (the `OnceLock`
2023 /// enforces that structurally), which is why a re-quiesce under a different
2024 /// reason must refuse rather than silently keep or replace one of them.
2025 quiesce_reason: OnceLock<String>,
2026}
2027
2028impl ConfiguredChannel {
2029 /// The entry's admission state as a value.
2030 ///
2031 /// One `Acquire` load and, when quiesced, one read of the already-written
2032 /// reason. Touches no actor: the whole point of recording state on the entry
2033 /// is that observing it cannot spawn the thing being observed.
2034 fn state(&self) -> ChannelState {
2035 if self.state.load(Ordering::Acquire) == STATE_QUIESCED {
2036 ChannelState::Quiesced {
2037 reason: self.recorded_quiesce_reason(),
2038 }
2039 } else {
2040 ChannelState::Active
2041 }
2042 }
2043
2044 /// The recorded quiesce reason, for a caller that has already observed
2045 /// [`STATE_QUIESCED`] with an `Acquire` load.
2046 fn recorded_quiesce_reason(&self) -> String {
2047 self.quiesce_reason
2048 .get()
2049 .map_or_else(|| UNRECORDED_QUIESCE_REASON.to_owned(), Clone::clone)
2050 }
2051
2052 /// Moves this entry from active to quiesced, recording `reason` first.
2053 ///
2054 /// The reason is written to the `OnceLock` BEFORE the `Release`
2055 /// `compare_exchange` that flips the state, so no reader can observe
2056 /// `QUIESCED` without being able to read why. Re-quiescing under the
2057 /// IDENTICAL reason is `Ok(())` — the caller's intent already holds — and a
2058 /// DIFFERENT reason refuses, because the recorded one cannot be replaced
2059 /// without losing a cause and cannot be kept without lying to the caller.
2060 fn quiesce(&self, name: &str, reason: &str) -> Result<(), ChannelRegistryError> {
2061 // Whoever wins the `OnceLock` writes the cause on record; every other
2062 // caller — a re-quiesce or a concurrent racer — is judged against THAT
2063 // reason, never against whether it happened to perform the flip itself.
2064 // Reporting success for having won the CAS would tell a racer whose
2065 // reason lost that its reason took effect.
2066 let recorded = match self.quiesce_reason.set(reason.to_owned()) {
2067 Ok(()) => reason.to_owned(),
2068 Err(_rejected) => self.recorded_quiesce_reason(),
2069 };
2070 // The reason is now readable, so the flip may become visible. The CAS
2071 // result is deliberately unused: the state is `QUIESCED` afterwards
2072 // whether this call or a racer performed the transition, and the answer
2073 // to the caller is governed by the recorded reason above.
2074 let _flipped_here = self.state.compare_exchange(
2075 STATE_ACTIVE,
2076 STATE_QUIESCED,
2077 Ordering::Release,
2078 Ordering::Acquire,
2079 );
2080 if recorded == reason {
2081 return Ok(());
2082 }
2083 Err(ChannelRegistryError::AlreadyQuiesced {
2084 name: name.to_owned(),
2085 reason: recorded,
2086 })
2087 }
2088}
2089
2090#[derive(Debug)]
2091struct LiminalSubscriptionResource {
2092 subscription: liminal::channel::SubscriptionHandle,
2093}
2094
2095impl SubscriptionResource for LiminalSubscriptionResource {
2096 fn unsubscribe(self: Box<Self>) -> Result<(), ServerError> {
2097 drop(self.subscription);
2098 Ok(())
2099 }
2100
2101 fn is_overflowed(&self) -> bool {
2102 self.subscription.is_overflowed()
2103 }
2104
2105 fn has_pending(&self) -> bool {
2106 self.subscription.has_pending()
2107 }
2108
2109 fn try_next(&mut self) -> Option<liminal::envelope::Envelope> {
2110 match self.subscription.try_next() {
2111 Ok(envelope) => envelope,
2112 Err(error) => {
2113 // A poisoned inbox lock is PERMANENT, not transient: once poisoned it
2114 // stays poisoned, so every future `try_next` also returns `Err` and this
2115 // subscription goes silent for the rest of its life — no further
2116 // deliveries, not "held for the next slice". Poisoning requires a panic
2117 // while the lock is held, which the workspace lints forbid
2118 // (no unwrap/expect/panic), so this is an accepted low-probability
2119 // failure rather than a recoverable one. We keep the connection alive (a
2120 // single permanently-silent subscription is less harmful than tearing
2121 // down every other subscription and stream the connection multiplexes)
2122 // but log loudly so the silence is diagnosable. The log cannot storm:
2123 // it can only fire after the one panic that poisoned the lock.
2124 tracing::error!(
2125 %error,
2126 "subscription inbox lock is poisoned; this subscription is now \
2127 permanently silent and will deliver no further messages"
2128 );
2129 None
2130 }
2131 }
2132 }
2133}
2134
2135/// Renders an admission refusal as the service error the trait's callers expect.
2136///
2137/// The two refusals that already existed keep their EXACT bytes: an absent
2138/// channel is still `channel '<name>' is not configured` and a poisoned roster
2139/// is still `channel roster lock poisoned`, so nothing that reads these messages
2140/// today sees a change. Discrimination lives in the reason code
2141/// ([`ChannelAccessError::reason_code`]), which the connection process carries to
2142/// the wire — this rendering is the degraded path for a caller that reaches the
2143/// service directly and has no code to carry.
2144///
2145/// `Quiesced` has no predecessor string to preserve; it carries the refusal's own
2146/// message, reason included.
2147///
2148/// The connection process renders its admission refusals through this SAME
2149/// function rather than through [`ChannelAccessError`]'s own `Display`. Two
2150/// consequences, both wanted. The bytes on the wire for an absent channel stay
2151/// exactly what they have always been, which is the whole of the semver promise
2152/// this lane makes. And an operation refused AT admission and one refused after
2153/// admission by the service produce the identical message, differing only in the
2154/// reason code — so the code really is the only discriminator, instead of the
2155/// message quietly becoming a second one.
2156pub(super) fn access_to_server_error(error: &ChannelAccessError) -> ServerError {
2157 let message = match error {
2158 ChannelAccessError::NotRegistered { name } => {
2159 format!("channel '{name}' is not configured")
2160 }
2161 ChannelAccessError::Quiesced { .. } => error.to_string(),
2162 ChannelAccessError::RosterUnavailable { message } => message.clone(),
2163 };
2164 ServerError::ListenerAccept { message }
2165}
2166
2167pub(super) fn server_error_from_protocol(error: &ProtocolError) -> ServerError {
2168 ServerError::ListenerAccept {
2169 message: format!("protocol operation failed: {error}"),
2170 }
2171}
2172
2173/// The three pinned registration tests. A CHILD module of `services` because
2174/// test 2 must hold the exact entry the admission funnel handed out.
2175#[cfg(test)]
2176#[path = "services_registry_tests.rs"]
2177mod services_registry_tests;
2178
2179#[cfg(test)]
2180#[allow(clippy::expect_used, clippy::unwrap_used, clippy::panic)]
2181mod durable_store_tests {
2182 use liminal::durability::open_ephemeral_rooted;
2183
2184 use super::subsystem_census::RecordingSubsystems;
2185 use super::{
2186 ConnectionServices, DEFAULT_SHARD_COUNT, LiminalConnectionServices, SchedulerSubsystem,
2187 build_connection_services, build_connection_services_via, build_durable_store_with,
2188 };
2189 use crate::ServerError;
2190 use crate::config::types::{LimitsConfig, ServerConfig, ServicesConfig};
2191
2192 /// Counts directory entries under `root`, for the empty/one-dir assertions
2193 /// on an injected ephemeral root.
2194 fn entry_count(root: &std::path::Path) -> usize {
2195 std::fs::read_dir(root)
2196 .expect("ephemeral root is readable")
2197 .count()
2198 }
2199
2200 /// A minimal channel-free config with the given service `profile`. No channels,
2201 /// routing, persistence, or cluster — the shape both profiles accept (the full
2202 /// profile simply builds an empty channel set; the worker-front-door profile
2203 /// requires exactly this shape).
2204 fn config_with_profile(profile: &str) -> ServerConfig {
2205 ServerConfig {
2206 listen_address: "127.0.0.1:0".parse().expect("valid socket addr"),
2207 health_listen_address: "127.0.0.1:1".parse().expect("valid socket addr"),
2208 drain_timeout_ms: 30_000,
2209 channels: Vec::new(),
2210 routing_rules: Vec::new(),
2211 persistence_path: None,
2212 cluster: None,
2213 auth: None,
2214 services: ServicesConfig {
2215 profile: profile.to_owned(),
2216 },
2217 limits: LimitsConfig::default(),
2218 participant: None,
2219 websocket: None,
2220 }
2221 }
2222
2223 /// §9 D2 front-door construction gate (fs half): building the worker-front-door
2224 /// services creates NO haematite store and NO temp dir, while the full profile
2225 /// over an equally-rooted factory DOES create exactly one store directory.
2226 ///
2227 /// The injected root is the only place an ephemeral store directory can appear
2228 /// (the recording factory roots its stores there), so "the root stays empty on
2229 /// the front-door branch" is a real negative assertion: a regression that gave
2230 /// the front door a store would land its directory here and fail this test. The
2231 /// full-profile arm is the positive control proving the seam genuinely
2232 /// constructs a store when the profile asks for one.
2233 #[test]
2234 fn worker_front_door_builds_no_store_and_no_temp_dir() {
2235 let front_door_root = tempfile::tempdir().expect("test can create an ephemeral root");
2236 let full_root = tempfile::tempdir().expect("test can create an ephemeral root");
2237
2238 let front_door_subsystems = RecordingSubsystems::rooted(front_door_root.path());
2239 let front_door: std::sync::Arc<dyn ConnectionServices> = build_connection_services_via(
2240 &config_with_profile("worker-front-door"),
2241 &front_door_subsystems,
2242 )
2243 .expect("worker-front-door services build");
2244 assert!(
2245 !front_door.supports_channel_operations(),
2246 "the worker front door serves no channel operations"
2247 );
2248 assert_eq!(
2249 entry_count(front_door_root.path()),
2250 0,
2251 "the worker front door creates no ephemeral store directory (no haematite, no temp dir)"
2252 );
2253
2254 let full_subsystems = RecordingSubsystems::rooted(full_root.path());
2255 let full = build_connection_services_via(&config_with_profile("full"), &full_subsystems)
2256 .expect("full services build");
2257 assert!(
2258 full.supports_channel_operations(),
2259 "full mode serves channel operations"
2260 );
2261 assert_eq!(
2262 entry_count(full_root.path()),
2263 1,
2264 "full mode with no persistence path builds exactly one ephemeral store directory"
2265 );
2266
2267 drop(front_door);
2268 drop(full);
2269 }
2270
2271 /// §9 D2 front-door construction gate (thread half — record-by-construction
2272 /// census): the worker profile constructs NO channel-supervisor,
2273 /// conversation-supervisor, or haematite scheduler, while the SAME instrument
2274 /// over the full profile records all three — the positive control proving the
2275 /// census detects the extra schedulers, so an empty census on the worker branch
2276 /// is a real observation, not a decoration.
2277 ///
2278 /// The instrument's boundary: recording happens INSIDE the [`SubsystemFactory`]
2279 /// methods that are the profile-aware path's only route to these constructors,
2280 /// so a recording cannot be silently omitted — a future subsystem added to this
2281 /// path either goes through the factory (and is recorded by construction) or
2282 /// bypasses it, which is a code-review-visible structural violation of the
2283 /// factory seam, not a silently-missing side call. The connection supervisor's
2284 /// own scheduler is the shared baseline of both profiles and is asserted at the
2285 /// supervisor level (`supervisor::tests`); an OS-level thread census upgrades
2286 /// this when the beamr composition lane's scheduler-inventory API (currently on
2287 /// their branch, not yet consumable from liminal) lands.
2288 #[test]
2289 fn worker_profile_census_is_empty_and_full_profile_records_all_schedulers() {
2290 let worker_root = tempfile::tempdir().expect("test can create an ephemeral root");
2291 let full_root = tempfile::tempdir().expect("test can create an ephemeral root");
2292
2293 let worker_subsystems = RecordingSubsystems::rooted(worker_root.path());
2294 let front_door = build_connection_services_via(
2295 &config_with_profile("worker-front-door"),
2296 &worker_subsystems,
2297 )
2298 .expect("worker-front-door services build");
2299 assert_eq!(
2300 worker_subsystems.recorded(),
2301 Vec::<SchedulerSubsystem>::new(),
2302 "the worker front door constructs no scheduler-owning subsystem"
2303 );
2304
2305 let full_subsystems = RecordingSubsystems::rooted(full_root.path());
2306 let full = build_connection_services_via(&config_with_profile("full"), &full_subsystems)
2307 .expect("full services build");
2308 assert_eq!(
2309 full_subsystems.recorded(),
2310 vec![
2311 SchedulerSubsystem::ChannelSupervisor,
2312 SchedulerSubsystem::ConversationSupervisor,
2313 SchedulerSubsystem::HaematiteStore,
2314 ],
2315 "the full profile constructs every scheduler-owning subsystem, once each — \
2316 the positive control proving the census instrument detects them"
2317 );
2318
2319 drop(front_door);
2320 drop(full);
2321 }
2322
2323 /// MAJOR-1 regression: the full-only constructors reject a worker-front-door
2324 /// config with a typed `ConfigValidation` error AT ENTRY — no full service can
2325 /// be created through any public config-based constructor under that profile.
2326 #[test]
2327 fn full_only_constructors_reject_worker_profile() {
2328 let config = config_with_profile("worker-front-door");
2329
2330 let from_config = LiminalConnectionServices::from_config(&config);
2331 assert!(
2332 matches!(from_config, Err(ServerError::ConfigValidation { .. })),
2333 "from_config must reject a worker-front-door profile with ConfigValidation, got {from_config:?}"
2334 );
2335
2336 let root = tempfile::tempdir().expect("test can create an ephemeral root");
2337 let store = open_ephemeral_rooted(root.path(), DEFAULT_SHARD_COUNT)
2338 .expect("test store for the rejection check builds");
2339 let from_config_with_store =
2340 LiminalConnectionServices::from_config_with_store(&config, std::sync::Arc::new(store));
2341 assert!(
2342 matches!(
2343 from_config_with_store,
2344 Err(ServerError::ConfigValidation { .. })
2345 ),
2346 "from_config_with_store must reject a worker-front-door profile with ConfigValidation"
2347 );
2348 }
2349
2350 /// MAJOR-1 regression: the profile-aware factory itself re-runs the
2351 /// worker-front-door cross-field checks, so a directly-constructed config (one
2352 /// that never passed file-loading validation) combining the worker profile with
2353 /// full-only machinery is refused with the same typed `ConfigValidation` errors.
2354 #[test]
2355 fn build_connection_services_rejects_worker_profile_with_full_only_fields() {
2356 let mut config = config_with_profile("worker-front-door");
2357 config.channels = vec![crate::config::types::ChannelDef {
2358 name: "orders".to_owned(),
2359 schema_ref: None,
2360 durable: false,
2361 loaded_schema: None,
2362 }];
2363 config.persistence_path = Some(std::path::PathBuf::from("/tmp"));
2364
2365 let result = build_connection_services(&config);
2366 let Err(ServerError::ConfigValidation { message }) = result else {
2367 panic!("expected ConfigValidation for worker profile with full-only fields");
2368 };
2369 assert!(message.contains("builds no channels"), "got: {message}");
2370 assert!(
2371 message.contains("builds no durable store"),
2372 "got: {message}"
2373 );
2374 }
2375
2376 /// §9 D3 construction gate (persistent half): requesting a *persistent* store
2377 /// creates its database under the configured path and NO ephemeral directory.
2378 ///
2379 /// Exercises `build_durable_store_with` — the same branch logic production
2380 /// runs — with only the ephemeral factory swapped to root in an isolated
2381 /// directory. That root is where any ephemeral directory would have to
2382 /// appear, so "the root stays empty" is a real negative assertion — a
2383 /// regression that constructs an ephemeral store on the persistent branch
2384 /// lands its directory here and fails this test.
2385 #[test]
2386 fn persistent_store_uses_configured_path_and_creates_no_temp_dir() {
2387 let home = tempfile::tempdir().expect("test can create a temp dir");
2388 let ephemeral_root = tempfile::tempdir().expect("test can create an ephemeral root");
2389
2390 let store = build_durable_store_with(Some(home.path()), || {
2391 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2392 })
2393 .expect("persistent store builds");
2394
2395 assert!(
2396 home.path().join("durability").join("config.json").exists(),
2397 "the persistent database is created under the configured path"
2398 );
2399 assert_eq!(
2400 entry_count(ephemeral_root.path()),
2401 0,
2402 "the persistent branch creates no ephemeral guard directory"
2403 );
2404
2405 drop(store);
2406 }
2407
2408 /// Pins the wiring seam: the ephemeral (`None`) branch of the shared build
2409 /// logic goes through the guarded constructor — exactly one directory
2410 /// appears under the injected root while the store lives, and zero residue
2411 /// remains after the last handle drops.
2412 #[test]
2413 fn ephemeral_store_directory_is_owned_through_the_build_seam() {
2414 let ephemeral_root = tempfile::tempdir().expect("test can create an ephemeral root");
2415
2416 let store = build_durable_store_with(None, || {
2417 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2418 })
2419 .expect("ephemeral store builds");
2420
2421 assert_eq!(
2422 entry_count(ephemeral_root.path()),
2423 1,
2424 "the ephemeral branch creates exactly one guard directory"
2425 );
2426
2427 drop(store);
2428
2429 assert_eq!(
2430 entry_count(ephemeral_root.path()),
2431 0,
2432 "dropping the last store handle removes the guard directory — zero residue"
2433 );
2434 }
2435
2436 /// The store migrates itself: a `config.json` written before haematite
2437 /// required `node_cache_budget` opens on the new server with no operator
2438 /// hand, and the file afterwards carries the key — spelled exactly as the
2439 /// create arm spells it. The pre-field store is fabricated by creating a
2440 /// current one and deleting the key, which is byte-faithful to what a
2441 /// 0.8.1-era store looks like to the parser: the key absent, everything
2442 /// else in place.
2443 #[test]
2444 fn a_store_whose_config_predates_the_budget_field_opens_with_no_operator_hand() {
2445 let home = tempfile::tempdir().expect("test can create a temp dir");
2446 let ephemeral_root = tempfile::tempdir().expect("test can create an ephemeral root");
2447 let store = build_durable_store_with(Some(home.path()), || {
2448 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2449 })
2450 .expect("persistent store builds");
2451 drop(store);
2452
2453 let config_file = home.path().join("durability").join("config.json");
2454 let bytes = std::fs::read(&config_file).expect("config.json is readable");
2455 let mut config: serde_json::Value =
2456 serde_json::from_slice(&bytes).expect("config.json parses");
2457 config
2458 .as_object_mut()
2459 .expect("config.json is an object")
2460 .remove("node_cache_budget")
2461 .expect("the created config carries the budget to remove");
2462 std::fs::write(
2463 &config_file,
2464 serde_json::to_vec_pretty(&config).expect("serializes"),
2465 )
2466 .expect("test can age the config");
2467
2468 let reopened = build_durable_store_with(Some(home.path()), || {
2469 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2470 })
2471 .expect("a pre-budget store opens with no operator action");
2472 drop(reopened);
2473
2474 let after = std::fs::read(&config_file).expect("config.json is readable after");
2475 let migrated: serde_json::Value =
2476 serde_json::from_slice(&after).expect("migrated config parses");
2477 assert_eq!(
2478 migrated.get("node_cache_budget"),
2479 Some(&serde_json::Value::String("unlimited".to_owned())),
2480 "the migrated file carries the budget the create arm chooses"
2481 );
2482 }
2483
2484 /// The migration touches only the one migratable case. A corrupt
2485 /// `config.json` still refuses — through haematite's own parse refusal,
2486 /// which is sharper than anything this crate could say — and the bytes are
2487 /// left exactly as found, so the operator diagnoses the file that failed,
2488 /// not one the migration half-rewrote.
2489 #[test]
2490 fn a_corrupt_config_still_refuses_and_is_left_untouched() {
2491 let home = tempfile::tempdir().expect("test can create a temp dir");
2492 let data_dir = home.path().join("durability");
2493 std::fs::create_dir_all(&data_dir).expect("test can create the data dir");
2494 let config_file = data_dir.join("config.json");
2495 let garbage = b"{ not json at all";
2496 std::fs::write(&config_file, garbage).expect("test can write garbage");
2497
2498 let ephemeral_root = tempfile::tempdir().expect("test can create an ephemeral root");
2499 let refused = build_durable_store_with(Some(home.path()), || {
2500 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2501 });
2502 assert!(refused.is_err(), "a corrupt config refuses to open");
2503 assert_eq!(
2504 std::fs::read(&config_file)
2505 .expect("config.json is still readable")
2506 .as_slice(),
2507 garbage,
2508 "the refusing file is left byte-identical for the operator to read"
2509 );
2510 }
2511
2512 /// A config already carrying the budget is not rewritten: reopening leaves
2513 /// the file byte-identical, so the migration cannot churn mtimes, reorder
2514 /// keys, or otherwise touch a store that needs nothing.
2515 #[test]
2516 fn a_config_already_carrying_the_budget_is_left_byte_identical() {
2517 let home = tempfile::tempdir().expect("test can create a temp dir");
2518 let ephemeral_root = tempfile::tempdir().expect("test can create an ephemeral root");
2519 let store = build_durable_store_with(Some(home.path()), || {
2520 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2521 })
2522 .expect("persistent store builds");
2523 drop(store);
2524
2525 let config_file = home.path().join("durability").join("config.json");
2526 let before = std::fs::read(&config_file).expect("config.json is readable");
2527 let reopened = build_durable_store_with(Some(home.path()), || {
2528 open_ephemeral_rooted(ephemeral_root.path(), DEFAULT_SHARD_COUNT)
2529 })
2530 .expect("a current store reopens");
2531 drop(reopened);
2532 assert_eq!(
2533 std::fs::read(&config_file).expect("config.json is readable after"),
2534 before,
2535 "a config that already carries the budget is left byte-identical"
2536 );
2537 }
2538}