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camel_component_api/
consumer.rs

1use std::sync::Arc;
2
3use async_trait::async_trait;
4use tokio::sync::{mpsc, oneshot, watch};
5use tokio::task::JoinHandle;
6use tokio_util::sync::CancellationToken;
7
8use camel_api::security_policy::SecurityPolicy;
9use camel_api::{CamelError, Exchange};
10use camel_auth::CredentialSource;
11
12/// A message sent from a consumer to the route pipeline.
13///
14/// Fire-and-forget exchanges use `reply_tx = None`.
15/// Request-reply exchanges (e.g. `direct:`) provide a `reply_tx` so the
16/// pipeline result can be sent back to the consumer.
17pub struct ExchangeEnvelope {
18    pub exchange: Exchange,
19    pub reply_tx: Option<oneshot::Sender<Result<Exchange, CamelError>>>,
20}
21
22/// Declares when the runtime may consider a Consumer "started".
23///
24/// `Immediate` (default) preserves the classic fire-and-forget semantics:
25/// `spawn_consumer_task` returns as soon as the consumer task is spawned,
26/// matching the behaviour of timer, file, direct and similar polling
27/// consumers whose `start()` IS the lifetime loop.
28///
29/// `Explicit` is for resource-binding consumers (HTTP, WebSocket, …) whose
30/// `start()` returns control only after the resource (e.g. `TcpListener`)
31/// is bound and ready. The consumer MUST call `ConsumerContext::mark_ready`
32/// after a successful bind so the runtime can await readiness and propagate
33/// pre-ready `start()` errors as proper startup failures.
34///
35/// Adding this as a default-returning trait method keeps every existing
36/// `Consumer` impl backward compatible.
37#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
38#[non_exhaustive]
39pub enum ConsumerStartupMode {
40    /// Consumer's `start()` IS the lifetime loop. The runtime treats the
41    /// consumer as ready the moment `start()` is invoked. (Default)
42    #[default]
43    Immediate,
44    /// Consumer binds/registers a resource inside `start()` and signals
45    /// readiness explicitly via `ConsumerContext::mark_ready()`.
46    Explicit,
47}
48
49/// Internal state of a [`StartupSignal`].
50#[derive(Clone, Debug)]
51enum StartupState {
52    /// Consumer has not yet signalled readiness or failure.
53    Pending,
54    /// Consumer signalled readiness via `mark_ready()`.
55    Ready,
56    /// Consumer's `start()` returned an `Err` before signalling readiness.
57    Failed(String),
58}
59
60/// Shared handle used by a Consumer to signal readiness (or failure) to the
61/// runtime's [`StartupReceiver`].
62///
63/// Constructed in a pair via [`StartupSignal::pair`]. The signal is held by
64/// the consumer side (via [`ConsumerContext`]); the receiver is returned to
65/// the route controller.
66#[derive(Clone)]
67pub struct StartupSignal {
68    tx: watch::Sender<StartupState>,
69}
70
71impl StartupSignal {
72    /// Create a `(signal, receiver)` pair seeded in the `Pending` state.
73    pub fn pair() -> (Self, StartupReceiver) {
74        let (tx, rx) = watch::channel(StartupState::Pending);
75        (Self { tx }, StartupReceiver { rx })
76    }
77
78    /// Mark the consumer as ready. Idempotent — subsequent calls are no-ops
79    /// once the state has transitioned out of `Pending`.
80    ///
81    /// Returns `true` if this call transitioned `Pending → Ready`, `false`
82    /// if the state was already `Ready` or `Failed`. The runtime uses the
83    /// return value to detect Explicit consumers that returned `Ok` from
84    /// `start()` without calling `mark_ready` (a contract violation that
85    /// would hang the controller without the defensive fallback in
86    /// `spawn_consumer_task`).
87    pub fn mark_ready(&self) -> bool {
88        self.tx.send_if_modified(|s| {
89            if matches!(*s, StartupState::Pending) {
90                *s = StartupState::Ready;
91                true
92            } else {
93                false
94            }
95        })
96    }
97
98    /// Mark the consumer's startup as failed with `err`. Idempotent.
99    pub fn mark_failed(&self, err: String) {
100        self.tx.send_if_modified(|s| {
101            if matches!(*s, StartupState::Pending) {
102                *s = StartupState::Failed(err);
103                true
104            } else {
105                false
106            }
107        });
108    }
109}
110
111impl std::fmt::Debug for StartupSignal {
112    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
113        f.debug_struct("StartupSignal")
114            .field("state", &self.tx.borrow())
115            .finish()
116    }
117}
118
119/// Receiver half of the consumer startup handshake. Resolves once the
120/// consumer calls [`ConsumerContext::mark_ready`] (Ok) or its `start()`
121/// returns an `Err` first (Err).
122///
123/// For [`ConsumerStartupMode::Immediate`] consumers the receiver is
124/// pre-resolved at construction time (see [`StartupReceiver::immediate`]).
125pub struct StartupReceiver {
126    rx: watch::Receiver<StartupState>,
127}
128
129impl StartupReceiver {
130    /// Construct a receiver that is already resolved as `Ok`. Used for
131    /// [`ConsumerStartupMode::Immediate`] consumers so the controller can
132    /// uniformly `await` every receiver without changing behaviour.
133    pub fn immediate() -> Self {
134        let (tx, rx) = watch::channel(StartupState::Ready);
135        // Drop the sender — state is fixed at Ready. Receiver will never
136        // observe a closure error since it already holds Ready.
137        let _ = tx;
138        Self { rx }
139    }
140
141    /// Wait for the consumer to become ready or fail. Resolves:
142    /// - `Ok(())` if the consumer signalled readiness.
143    /// - `Err(CamelError::RouteError(_))` if the consumer's `start()`
144    ///   returned an error before signalling readiness.
145    /// - `Err(CamelError::RouteError(_))` if the signal sender was dropped
146    ///   without either transition (programming-contract violation).
147    pub async fn await_ready(mut self) -> Result<(), CamelError> {
148        loop {
149            match &*self.rx.borrow() {
150                StartupState::Pending => {}
151                StartupState::Ready => return Ok(()),
152                StartupState::Failed(msg) => {
153                    return Err(CamelError::RouteError(msg.clone()));
154                }
155            }
156            if self.rx.changed().await.is_err() {
157                return Err(CamelError::RouteError(
158                    "consumer startup signal dropped without resolving".to_string(),
159                ));
160            }
161        }
162    }
163}
164
165impl std::fmt::Debug for StartupReceiver {
166    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
167        f.debug_struct("StartupReceiver")
168            .field("state", &self.rx.borrow())
169            .finish()
170    }
171}
172
173/// Context provided to a Consumer, allowing it to send exchanges into the route.
174#[derive(Clone)]
175pub struct ConsumerContext {
176    sender: mpsc::Sender<ExchangeEnvelope>,
177    cancel_token: CancellationToken,
178    route_id: String,
179    startup: StartupSignal,
180}
181
182impl ConsumerContext {
183    /// Create a new consumer context wrapping the given channel sender.
184    ///
185    /// The `route_id` identifies the route this consumer is bound to, enabling
186    /// ADR-0012 per-route metrics and health observations.
187    ///
188    /// The startup signal defaults to a fresh `Pending` pair; the consumer
189    /// can call [`Self::mark_ready`] once it has bound its resource. For
190    /// [`ConsumerStartupMode::Immediate`] consumers the runtime ignores
191    /// the signal (it constructs an already-resolved receiver instead).
192    pub fn new(
193        sender: mpsc::Sender<ExchangeEnvelope>,
194        cancel_token: CancellationToken,
195        route_id: String,
196    ) -> Self {
197        let (startup, _unused_receiver) = StartupSignal::pair();
198        // The receiver is dropped here: `spawn_consumer_task` constructs its
199        // own `(signal, receiver)` pair and replaces this one via
200        // `with_startup` so the controller holds the matching receiver.
201        let _ = _unused_receiver;
202        Self {
203            sender,
204            cancel_token,
205            route_id,
206            startup,
207        }
208    }
209
210    /// Replace the startup signal carried by this context. Used by
211    /// `spawn_consumer_task` to install the signal whose matching receiver
212    /// is returned to the route controller.
213    pub fn with_startup(mut self, startup: StartupSignal) -> Self {
214        self.startup = startup;
215        self
216    }
217
218    /// Returns a clone of the internal [`StartupSignal`] so callers (e.g.
219    /// `spawn_consumer_task`) can drive failure propagation independently of
220    /// the consumer's own `mark_ready()` call.
221    pub fn startup_signal(&self) -> StartupSignal {
222        self.startup.clone()
223    }
224
225    /// Mark this consumer's startup as complete. Only meaningful for
226    /// [`ConsumerStartupMode::Explicit`] consumers — `Immediate` consumers
227    /// never need to call this because the runtime resolves their startup
228    /// receiver at construction time.
229    ///
230    /// Idempotent.
231    pub fn mark_ready(&self) {
232        let _ = self.startup.mark_ready();
233    }
234
235    /// Mark this consumer's startup as FAILED with `err`. Only meaningful for
236    /// [`ConsumerStartupMode::Explicit`] consumers whose readiness is gated on
237    /// an asynchronous event that may never arrive (e.g. Kafka partition
238    /// assignment). Calling this resolves the runtime's startup await with a
239    /// startup error instead of hanging.
240    ///
241    /// Idempotent — the first transition out of `Pending` wins, so a later
242    /// `mark_ready()` cannot override an earlier `mark_failed()` and vice
243    /// versa.
244    pub fn mark_failed(&self, err: String) {
245        self.startup.mark_failed(err);
246    }
247
248    /// Returns a future that resolves when shutdown is requested.
249    /// Use in `tokio::select!` inside consumer loops.
250    pub async fn cancelled(&self) {
251        self.cancel_token.cancelled().await
252    }
253
254    /// Returns true if shutdown has been requested.
255    pub fn is_cancelled(&self) -> bool {
256        self.cancel_token.is_cancelled()
257    }
258
259    /// Returns the route_id this consumer is bound to.
260    ///
261    /// Available for ADR-0012 metrics/health calls that require a route_id
262    /// (categories (b′), (e), (g)). Set at construction time by the route
263    /// controller when spawning the consumer task.
264    pub fn route_id(&self) -> &str {
265        &self.route_id
266    }
267
268    /// Returns a clone of the `CancellationToken`.
269    ///
270    /// Useful for consumers that spawn per-request tasks and need to propagate
271    /// shutdown to each task. See `HttpConsumer` for an example.
272    pub fn cancel_token(&self) -> CancellationToken {
273        self.cancel_token.clone()
274    }
275
276    /// Returns a clone of the channel sender for manual exchange submission.
277    ///
278    /// Useful for consumers that spawn per-request tasks (e.g., `HttpConsumer`)
279    /// where each task independently sends exchanges into the pipeline.
280    /// For simple consumers, prefer `send()` or `send_and_wait()` instead.
281    pub fn sender(&self) -> mpsc::Sender<ExchangeEnvelope> {
282        self.sender.clone()
283    }
284
285    /// Send an exchange into the route pipeline (fire-and-forget).
286    pub async fn send(&self, exchange: Exchange) -> Result<(), CamelError> {
287        self.sender
288            .send(ExchangeEnvelope {
289                exchange,
290                reply_tx: None,
291            })
292            .await
293            .map_err(|_| CamelError::ChannelClosed)
294    }
295
296    /// Send an exchange and wait for the pipeline result (request-reply).
297    ///
298    /// Returns `Ok(exchange)` on success or `Err(e)` if the pipeline failed
299    /// without an error handler absorbing the error.
300    pub async fn send_and_wait(&self, exchange: Exchange) -> Result<Exchange, CamelError> {
301        let (reply_tx, reply_rx) = oneshot::channel();
302        self.sender
303            .send(ExchangeEnvelope {
304                exchange,
305                reply_tx: Some(reply_tx),
306            })
307            .await
308            .map_err(|_| CamelError::ChannelClosed)?;
309        reply_rx.await.map_err(|_| CamelError::ChannelClosed)?
310    }
311}
312
313/// Security context passed to a consumer before `start()`.
314///
315/// Carries the route's security classification so consumers can register
316/// auth state before accepting connections. Declared routes carry the
317/// `SecurityPolicy` from the route controller; plan-only contexts (routes
318/// without a policy declaration) carry just the compiled
319/// [`RouteSecurityPlan`] (`policy = None`). Authentication itself runs
320/// through the kernel fields (`plan` + `providers`).
321pub struct SecurityContext {
322    /// Route policy, when the route declared one. `None` for plan-only
323    /// contexts built via [`SecurityContext::from_plan`].
324    pub policy: Option<Arc<dyn SecurityPolicy>>,
325    pub credential_sources: Vec<CredentialSource>,
326    /// Compiled `RouteSecurityPlan` for the route, when one has been compiled.
327    ///
328    /// Phase-2 transports read the plan from here to drive per-route dispatch
329    /// enforcement. `None` until Task 1.8 compiles plans into the context.
330    pub plan: Option<camel_api::security_policy::RouteSecurityPlan>,
331    /// Provider registry carrying the route's named authenticators.
332    ///
333    /// Phase-2 transports read providers from here (grpc 2.1, mcp 2.6, ws 2.8,
334    /// http 2.9) instead of holding their own authenticator. `None` for routes
335    /// built before the registry injection path lands.
336    pub providers: Option<std::sync::Arc<camel_auth::ProviderRegistry>>,
337}
338
339impl SecurityContext {
340    pub fn new(policy: impl SecurityPolicy + 'static) -> Self {
341        Self {
342            policy: Some(Arc::new(policy)),
343            credential_sources: vec![CredentialSource::AuthorizationHeader],
344            plan: None,
345            providers: None,
346        }
347    }
348
349    pub fn from_arc(policy: Arc<dyn SecurityPolicy>) -> Self {
350        Self {
351            policy: Some(policy),
352            credential_sources: vec![CredentialSource::AuthorizationHeader],
353            plan: None,
354            providers: None,
355        }
356    }
357
358    /// Build a plan-only context: no policy, no providers, empty credential
359    /// sources. The controller delivers a route's compiled classification
360    /// (e.g. the `Public` default for an undeclared server route) through
361    /// this form.
362    pub fn from_plan(plan: camel_api::security_policy::RouteSecurityPlan) -> Self {
363        Self {
364            policy: None,
365            credential_sources: Vec::new(),
366            plan: Some(plan),
367            providers: None,
368        }
369    }
370
371    pub fn with_credential_sources(mut self, sources: Vec<CredentialSource>) -> Self {
372        self.credential_sources = sources;
373        self
374    }
375
376    /// Attach the compiled `RouteSecurityPlan` for this route.
377    pub fn with_plan(mut self, plan: camel_api::security_policy::RouteSecurityPlan) -> Self {
378        self.plan = Some(plan);
379        self
380    }
381
382    /// Attach the provider registry carrying this route's named authenticators.
383    pub fn with_providers(
384        mut self,
385        providers: std::sync::Arc<camel_auth::ProviderRegistry>,
386    ) -> Self {
387        self.providers = Some(providers);
388        self
389    }
390}
391
392impl Clone for SecurityContext {
393    fn clone(&self) -> Self {
394        Self {
395            policy: self.policy.clone(),
396            credential_sources: self.credential_sources.clone(),
397            plan: self.plan.clone(),
398            providers: self.providers.as_ref().map(Arc::clone),
399        }
400    }
401}
402
403impl std::fmt::Debug for SecurityContext {
404    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
405        f.debug_struct("SecurityContext")
406            .field("policy", &self.policy.as_ref().map(|_| "<SecurityPolicy>"))
407            .field("credential_sources", &self.credential_sources)
408            .field("plan", &self.plan)
409            .field(
410                "providers",
411                &self.providers.as_ref().map(|_| "<ProviderRegistry>"),
412            )
413            .finish()
414    }
415}
416
417/// How a consumer's exchanges should be processed by the pipeline.
418#[derive(Debug, Clone, PartialEq, Eq)]
419#[non_exhaustive]
420pub enum ConcurrencyModel {
421    /// Exchanges are processed one at a time, in order. Default for polling
422    /// consumers (timer, file) and synchronous consumers (direct).
423    Sequential,
424    /// Exchanges are processed concurrently via `tokio::spawn`. Optional
425    /// semaphore limit (`max`). `None` means unbounded (channel buffer is
426    /// the only backpressure).
427    Concurrent { max: Option<usize> },
428}
429
430/// A Consumer receives data from an external system and submits Exchanges
431/// to the Route's Pipeline via the [`ConsumerContext`].
432///
433/// # Shutdown Contract
434///
435/// The Runtime guarantees the following lifecycle:
436///
437/// 1. `start()` is called once. The Runtime spawns a task that owns the Consumer.
438/// 2. On route stop, the Runtime cancels the [`ConsumerContext`] cancel token.
439/// 3. The spawned task calls `stop()` on ALL exit paths after `start()` succeeds
440///    (clean exit, crash, cancellation, natural completion).
441/// 4. `background_task_handle()` is a supervision hook for crash propagation (ADR-0007),
442///    NOT the shutdown API.
443///
444/// Component authors MUST ensure:
445///
446/// - `stop()` cancels all component-owned inner tasks and cleans up registrations/resources.
447/// - If inner tasks use a private `CancellationToken`, `stop()` MUST cancel it.
448/// - Best practice: inner tasks should use the [`ConsumerContext`] cancel token (or a child)
449///   so they respond to runtime shutdown without waiting for `stop()`.
450/// - If using a private token, `stop()` must cancel it to ensure prompt cleanup.
451/// - `background_task_handle()` returns the `JoinHandle` of the primary background task,
452///   if any. The Runtime monitors this handle for unexpected exits (crash propagation).
453#[async_trait]
454pub trait Consumer: Send + Sync {
455    /// Start consuming messages, sending them through the provided context.
456    async fn start(&mut self, context: ConsumerContext) -> Result<(), CamelError>;
457
458    /// Stop consuming messages and clean up all resources.
459    ///
460    /// Called by the Runtime on every exit path after `start()` succeeds.
461    /// See the [Shutdown Contract](#shutdown-contract) above.
462    async fn stop(&mut self) -> Result<(), CamelError>;
463
464    /// Temporarily suspend consuming messages without fully stopping.
465    ///
466    /// Default: no-op, returns `Ok(())`.
467    async fn suspend(&self) -> Result<(), CamelError> {
468        Ok(())
469    }
470
471    /// Resume consuming after a previous suspension.
472    ///
473    /// Default: no-op, returns `Ok(())`.
474    async fn resume(&self) -> Result<(), CamelError> {
475        Ok(())
476    }
477
478    /// Declares this consumer's natural concurrency model.
479    ///
480    /// The runtime uses this to decide whether to process exchanges
481    /// sequentially or spawn per-exchange. Consumers that accept inbound
482    /// connections (HTTP, WebSocket, Kafka) should override this to return
483    /// `ConcurrencyModel::Concurrent`.
484    ///
485    /// Default: `Sequential`.
486    fn concurrency_model(&self) -> ConcurrencyModel {
487        ConcurrencyModel::Sequential
488    }
489
490    /// Declares how the runtime should wait for this consumer's startup.
491    ///
492    /// - [`ConsumerStartupMode::Immediate`] (default): the consumer's
493    ///   `start()` IS the lifetime loop. The runtime treats the route as
494    ///   started as soon as `start()` is invoked, preserving the existing
495    ///   fire-and-forget semantics for timer/file/direct/… consumers.
496    /// - [`ConsumerStartupMode::Explicit`]: the consumer binds/registers a
497    ///   resource inside `start()` and MUST call
498    ///   [`ConsumerContext::mark_ready`] after a successful bind. The
499    ///   runtime awaits this signal (or an early `start()` error) before
500    ///   treating the route as started, so HTTP/WebSocket listeners fail
501    ///   fast when the bind fails instead of crashing the background task.
502    ///
503    /// Default: `Immediate`.
504    fn startup_mode(&self) -> ConsumerStartupMode {
505        ConsumerStartupMode::Immediate
506    }
507
508    /// Return a handle to the consumer's long-running background task so the
509    /// runtime can monitor it for unexpected exits after `start()` returns `Ok`.
510    ///
511    /// Default: `None` — consumer's work completes entirely within `start()`.
512    /// Override: return `Some(handle)` if `start()` spawns a detached task.
513    ///
514    /// **Contract:** the task must observe `ConsumerContext::cancelled()` so
515    /// runtime shutdown is distinguishable from crash exits.
516    ///
517    /// This method is called at most once; implementations should use `.take()`
518    /// to transfer ownership of the handle.
519    fn background_task_handle(&mut self) -> Option<JoinHandle<Result<(), CamelError>>> {
520        None
521    }
522
523    /// Set the security context for this consumer.
524    ///
525    /// Called by the route controller before `start()` so the consumer
526    /// can register auth state (e.g. WebSocket auth in `WsAppState`).
527    ///
528    /// Default: no-op, returns `Ok(())`.
529    fn set_security_context(&mut self, _ctx: SecurityContext) {}
530}
531
532#[cfg(test)]
533mod tests {
534    use super::*;
535
536    #[test]
537    fn consumer_context_exposes_route_id() {
538        let (tx, _rx) = mpsc::channel(1);
539        let ctx = ConsumerContext::new(tx, CancellationToken::new(), "test-route".to_string());
540        assert_eq!(ctx.route_id(), "test-route");
541    }
542
543    #[tokio::test]
544    async fn test_consumer_context_cancelled() {
545        let (tx, _rx) = mpsc::channel(16);
546        let token = CancellationToken::new();
547        let ctx = ConsumerContext::new(tx, token.clone(), "test-route".to_string());
548
549        assert!(!ctx.is_cancelled());
550        token.cancel();
551        ctx.cancelled().await;
552        assert!(ctx.is_cancelled());
553    }
554
555    #[test]
556    fn test_concurrency_model_default_is_sequential() {
557        use super::ConcurrencyModel;
558
559        struct DummyConsumer;
560
561        #[async_trait::async_trait]
562        impl super::Consumer for DummyConsumer {
563            async fn start(&mut self, _ctx: super::ConsumerContext) -> Result<(), CamelError> {
564                Ok(())
565            }
566            async fn stop(&mut self) -> Result<(), CamelError> {
567                Ok(())
568            }
569        }
570
571        let consumer = DummyConsumer;
572        assert_eq!(consumer.concurrency_model(), ConcurrencyModel::Sequential);
573    }
574
575    #[test]
576    fn test_concurrency_model_concurrent_override() {
577        use super::ConcurrencyModel;
578
579        struct ConcurrentConsumer;
580
581        #[async_trait::async_trait]
582        impl super::Consumer for ConcurrentConsumer {
583            async fn start(&mut self, _ctx: super::ConsumerContext) -> Result<(), CamelError> {
584                Ok(())
585            }
586            async fn stop(&mut self) -> Result<(), CamelError> {
587                Ok(())
588            }
589            fn concurrency_model(&self) -> ConcurrencyModel {
590                ConcurrencyModel::Concurrent { max: Some(16) }
591            }
592        }
593
594        let consumer = ConcurrentConsumer;
595        assert_eq!(
596            consumer.concurrency_model(),
597            ConcurrencyModel::Concurrent { max: Some(16) }
598        );
599    }
600
601    // --- ConsumerStartupMode tests ---
602
603    #[test]
604    fn test_default_startup_mode_is_immediate() {
605        struct DummyConsumer;
606
607        #[async_trait::async_trait]
608        impl super::Consumer for DummyConsumer {
609            async fn start(&mut self, _ctx: super::ConsumerContext) -> Result<(), CamelError> {
610                Ok(())
611            }
612            async fn stop(&mut self) -> Result<(), CamelError> {
613                Ok(())
614            }
615        }
616
617        let consumer = DummyConsumer;
618        assert_eq!(
619            consumer.startup_mode(),
620            super::ConsumerStartupMode::Immediate
621        );
622    }
623
624    #[test]
625    fn test_startup_mode_explicit_override() {
626        struct ExplicitConsumer;
627
628        #[async_trait::async_trait]
629        impl super::Consumer for ExplicitConsumer {
630            async fn start(&mut self, _ctx: super::ConsumerContext) -> Result<(), CamelError> {
631                Ok(())
632            }
633            async fn stop(&mut self) -> Result<(), CamelError> {
634                Ok(())
635            }
636            fn startup_mode(&self) -> super::ConsumerStartupMode {
637                super::ConsumerStartupMode::Explicit
638            }
639        }
640
641        let consumer = ExplicitConsumer;
642        assert_eq!(
643            consumer.startup_mode(),
644            super::ConsumerStartupMode::Explicit
645        );
646    }
647
648    #[tokio::test]
649    async fn test_startup_signal_mark_ready_resolves_receiver_ok() {
650        let (signal, receiver) = StartupSignal::pair();
651        // Not yet signalled — receiver should still be pending.
652        assert!(matches!(*receiver.rx.borrow(), StartupState::Pending));
653
654        // Mark ready — receiver must observe Ok.
655        signal.mark_ready();
656        let result = receiver.await_ready().await;
657        assert!(result.is_ok(), "expected Ok after mark_ready");
658    }
659
660    #[tokio::test]
661    async fn test_startup_signal_mark_failed_propagates_error() {
662        let (signal, receiver) = StartupSignal::pair();
663        signal.mark_failed("bind failed".to_string());
664        let err = receiver
665            .await_ready()
666            .await
667            .expect_err("expected Err after mark_failed");
668        match err {
669            CamelError::RouteError(msg) => assert!(msg.contains("bind failed")),
670            other => panic!("expected RouteError, got {other:?}"),
671        }
672    }
673
674    #[tokio::test]
675    async fn test_startup_signal_idempotent_first_wins() {
676        let (signal, receiver) = StartupSignal::pair();
677        signal.mark_ready();
678        // mark_failed after mark_ready must NOT override.
679        signal.mark_failed("late failure".to_string());
680        let result = receiver.await_ready().await;
681        assert!(result.is_ok(), "first transition (Ready) wins");
682    }
683
684    #[tokio::test]
685    async fn test_startup_receiver_immediate_is_pre_resolved_ok() {
686        let receiver = StartupReceiver::immediate();
687        let result = receiver.await_ready().await;
688        assert!(result.is_ok(), "immediate receiver must resolve Ok");
689    }
690
691    #[tokio::test]
692    async fn test_consumer_context_mark_ready_drives_signal() {
693        let (tx, _rx) = mpsc::channel(1);
694        let ctx = ConsumerContext::new(
695            tx,
696            CancellationToken::new(),
697            "startup-test-route".to_string(),
698        );
699        let (signal, receiver) = StartupSignal::pair();
700        let ctx = ctx.with_startup(signal);
701        ctx.mark_ready();
702        let result = receiver.await_ready().await;
703        assert!(result.is_ok(), "ctx.mark_ready must resolve the receiver");
704    }
705
706    #[tokio::test]
707    async fn test_consumer_context_mark_failed_drives_signal() {
708        let (tx, _rx) = mpsc::channel(1);
709        let ctx = ConsumerContext::new(
710            tx,
711            CancellationToken::new(),
712            "startup-fail-route".to_string(),
713        );
714        let (signal, receiver) = StartupSignal::pair();
715        let ctx = ctx.with_startup(signal);
716        ctx.mark_failed("assignment window elapsed".to_string());
717        let err = receiver
718            .await_ready()
719            .await
720            .expect_err("ctx.mark_failed must resolve the receiver as Err");
721        match err {
722            CamelError::RouteError(msg) => assert!(msg.contains("assignment window elapsed")),
723            other => panic!("expected RouteError, got {other:?}"),
724        }
725    }
726
727    #[tokio::test]
728    async fn test_startup_receiver_dropped_sender_returns_err() {
729        // Build a signal/receiver pair and drop the signal without ever
730        // transitioning — receiver must surface a contract-violation error.
731        let (_signal, receiver) = StartupSignal::pair();
732        drop(_signal);
733        let err = receiver
734            .await_ready()
735            .await
736            .expect_err("dropped signal must surface as Err");
737        match err {
738            CamelError::RouteError(msg) => assert!(msg.contains("dropped")),
739            other => panic!("expected RouteError, got {other:?}"),
740        }
741    }
742
743    #[tokio::test]
744    async fn test_consumer_default_suspend_resume() {
745        struct DummyConsumer;
746
747        #[async_trait::async_trait]
748        impl super::Consumer for DummyConsumer {
749            async fn start(&mut self, _ctx: super::ConsumerContext) -> Result<(), CamelError> {
750                Ok(())
751            }
752            async fn stop(&mut self) -> Result<(), CamelError> {
753                Ok(())
754            }
755        }
756
757        let consumer = DummyConsumer;
758        assert!(consumer.suspend().await.is_ok());
759        assert!(consumer.resume().await.is_ok());
760    }
761
762    // --- SecurityContext tests ---
763
764    struct StubPolicy;
765
766    #[async_trait::async_trait]
767    impl SecurityPolicy for StubPolicy {
768        async fn evaluate(
769            &self,
770            _exchange: &mut Exchange,
771            _auth: &camel_api::security_policy::AuthContext<'_>,
772        ) -> Result<camel_api::security_policy::AuthorizationDecision, CamelError> {
773            Ok(camel_api::security_policy::AuthorizationDecision::Granted {
774                principal: camel_api::security_policy::Principal {
775                    subject: "stub".into(),
776                    issuer: "stub".into(),
777                    audience: vec![],
778                    scopes: vec![],
779                    roles: vec![],
780                    claims: serde_json::json!({}),
781                },
782            })
783        }
784    }
785
786    struct StubAuthenticator;
787
788    #[async_trait::async_trait]
789    impl camel_auth::TokenAuthenticator for StubAuthenticator {
790        async fn authenticate_bearer(
791            &self,
792            _token: &str,
793        ) -> Result<camel_api::security_policy::Principal, CamelError> {
794            Ok(camel_api::security_policy::Principal {
795                subject: "stub".into(),
796                issuer: "stub".into(),
797                audience: vec![],
798                scopes: vec![],
799                roles: vec![],
800                claims: serde_json::json!({}),
801            })
802        }
803    }
804
805    #[test]
806    fn test_security_context_new() {
807        let ctx = SecurityContext::new(StubPolicy);
808        assert!(Arc::strong_count(ctx.policy.as_ref().expect("new sets policy")) == 1);
809        assert_eq!(
810            ctx.credential_sources,
811            vec![camel_auth::CredentialSource::AuthorizationHeader]
812        );
813    }
814
815    #[test]
816    fn test_security_context_from_arc() {
817        let policy: Arc<dyn SecurityPolicy> = Arc::new(StubPolicy);
818        let ctx = SecurityContext::from_arc(Arc::clone(&policy));
819        assert!(Arc::ptr_eq(
820            ctx.policy.as_ref().expect("from_arc sets policy"),
821            &policy
822        ));
823        assert_eq!(
824            ctx.credential_sources,
825            vec![camel_auth::CredentialSource::AuthorizationHeader]
826        );
827    }
828
829    #[test]
830    fn test_security_context_clone_independent() {
831        let ctx = SecurityContext::new(StubPolicy);
832        let cloned = ctx.clone();
833        assert!(Arc::ptr_eq(
834            ctx.policy.as_ref().expect("source policy"),
835            cloned.policy.as_ref().expect("cloned policy"),
836        ));
837        assert_eq!(ctx.credential_sources, cloned.credential_sources);
838    }
839
840    #[test]
841    fn test_security_context_debug_redacts_traits() {
842        let ctx = SecurityContext::new(StubPolicy);
843        let debug_str = format!("{ctx:?}");
844        assert!(debug_str.contains("<SecurityPolicy>"));
845        assert!(debug_str.contains("credential_sources"));
846    }
847
848    #[test]
849    fn test_security_context_with_credential_sources() {
850        let ctx = SecurityContext::new(StubPolicy).with_credential_sources(vec![
851            camel_auth::CredentialSource::Cookie {
852                name: "session".into(),
853            },
854            camel_auth::CredentialSource::AuthorizationHeader,
855        ]);
856        assert_eq!(ctx.credential_sources.len(), 2);
857        assert!(matches!(
858            &ctx.credential_sources[0],
859            camel_auth::CredentialSource::Cookie { .. }
860        ));
861    }
862
863    #[test]
864    fn security_context_holds_plan_and_providers() {
865        use camel_api::security_policy::{AccessMode, RouteSecurityPlan, TransportId};
866
867        let plan = RouteSecurityPlan {
868            access_mode: AccessMode::Public,
869            provider_ref: None,
870            transport: TransportId::Http,
871            credential_sources: vec![],
872            audience_binding: None,
873        };
874
875        let registry = camel_auth::ProviderRegistry::new();
876        registry.register(
877            "default",
878            camel_auth::ProviderEntry {
879                authenticator: Arc::new(StubAuthenticator),
880                audience_binding: None,
881            },
882        );
883
884        let ctx = SecurityContext::new(StubPolicy)
885            .with_plan(plan)
886            .with_providers(Arc::new(registry));
887
888        let ctx_plan = ctx.plan.as_ref().expect("plan must be attached");
889        assert!(matches!(ctx_plan.access_mode, AccessMode::Public));
890        assert_eq!(ctx_plan.transport, TransportId::Http);
891
892        let providers = ctx.providers.as_ref().expect("providers must be attached");
893        let resolved = providers.resolve("default").expect("provider must resolve");
894        assert!(resolved.audience_binding.is_none());
895    }
896
897    /// `finish-auth-flip` Task 1.3: the `SecurityContext.authenticator`
898    /// hand-off is deleted — transports authenticate through the kernel
899    /// fields (`plan` + `providers`). Registry/doc mentions of the word
900    /// `authenticator` (e.g. `ProviderEntry`) are allowed; the struct
901    /// field is not.
902    #[test]
903    fn security_context_authenticator_deleted_source_scan() {
904        let src = include_str!("consumer.rs");
905        // Assembled at runtime so this scan's own text cannot match.
906        let needle = format!("pub {}authenticator", "");
907        assert!(
908            !src.contains(&needle),
909            "SecurityContext.authenticator must stay deleted: field found in consumer.rs"
910        );
911    }
912}