Files
PiCloud/crates/executor-core/tests/sdk_queue.rs
MechaCat02 1844bef132 feat(executor): thread the defining node into ExecRequest (Phase 4b C2)
Carry the resolved script's owner (its defining node) from dispatch into
the executor so `import` resolution can be lexical (§5.5). The executing
app (`app_id`) stays the SDK isolation boundary; `script_owner` is a
separate axis — the lexical origin for imports.

- `ExecRequest.script_owner: Option<ScriptOwner>` (serde default; `None`
  falls back to `App(app_id)` in the engine for old payloads / cluster wire).
- `ScriptOwner` gains `Serialize`/`Deserialize` for the wire.
- The engine computes `default_origin` and hands it to the resolver
  (used fully in C3; the resolve() lookup already uses it).
- Every dispatch site sets it from the resolved `Script.owner()`:
  the 4 dispatcher arms (queue/trigger/http/invoke_async, via a new
  `ResolvedTrigger.script_owner`), the orchestrator id-bypass, and the
  `invoke()` SDK path (new `ResolvedScript.owner`, so a group script
  invoked by an app resolves imports from the group).

Behaviour-preserving: app scripts still resolve `App(app_id)`; group
scripts can't yet carry imports (lifted in C4).

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
2026-06-26 07:17:33 +02:00

212 lines
6.9 KiB
Rust

//! `queue::` SDK bridge integration tests — runs a real Rhai engine
//! against an in-memory `QueueService` that records the enqueued
//! `(queue_name, payload, opts)`. Verifies opts handling, blob
//! base64 encoding, depth/depth_pending pass-through.
use std::collections::BTreeMap;
use std::sync::{Arc, Mutex};
use async_trait::async_trait;
use picloud_executor_core::{Engine, ExecRequest, InvocationType, Limits};
use picloud_shared::{
AppId, EnqueueOpts, ExecutionId, NoopDeadLetterService, NoopDocsService, NoopEventEmitter,
NoopFilesService, NoopHttpService, NoopKvService, NoopModuleSource, NoopPubsubService,
QueueError, QueueMessageId, QueueService, RequestId, ScriptId, ScriptSandbox, SdkCallCx,
Services,
};
use serde_json::{json, Value};
#[derive(Default)]
struct RecordingQueue {
enqueues: Mutex<Vec<(String, Value, EnqueueOpts)>>,
depth: Mutex<u64>,
depth_pending: Mutex<u64>,
}
#[async_trait]
impl QueueService for RecordingQueue {
async fn enqueue(
&self,
_cx: &SdkCallCx,
queue_name: &str,
payload: Value,
opts: EnqueueOpts,
) -> Result<QueueMessageId, QueueError> {
if queue_name.is_empty() {
return Err(QueueError::EmptyName);
}
self.enqueues
.lock()
.unwrap()
.push((queue_name.to_string(), payload, opts));
Ok(QueueMessageId::new())
}
async fn depth(&self, _cx: &SdkCallCx, _queue_name: &str) -> Result<u64, QueueError> {
Ok(*self.depth.lock().unwrap())
}
async fn depth_pending(&self, _cx: &SdkCallCx, _queue_name: &str) -> Result<u64, QueueError> {
Ok(*self.depth_pending.lock().unwrap())
}
}
fn make_engine(svc: Arc<RecordingQueue>) -> Arc<Engine> {
let services = Services::new(
Arc::new(NoopKvService),
Arc::new(NoopDocsService),
Arc::new(NoopDeadLetterService),
Arc::new(NoopEventEmitter),
Arc::new(NoopModuleSource),
Arc::new(NoopHttpService),
Arc::new(NoopFilesService),
Arc::new(NoopPubsubService),
Arc::new(picloud_shared::NoopSecretsService),
Arc::new(picloud_shared::NoopEmailService),
Arc::new(picloud_shared::NoopUsersService),
svc,
Arc::new(picloud_shared::NoopInvokeService),
Arc::new(picloud_shared::NoopVarsService),
);
Arc::new(Engine::new(Limits::default(), services))
}
fn baseline_request(app_id: AppId) -> ExecRequest {
let execution_id = ExecutionId::new();
ExecRequest {
execution_id,
request_id: RequestId::new(),
script_id: ScriptId::new(),
script_name: "queue-test".into(),
invocation_type: InvocationType::Http,
path: "/queue-test".into(),
method: String::new(),
headers: BTreeMap::new(),
body: Value::Null,
params: BTreeMap::new(),
query: BTreeMap::new(),
rest: String::new(),
sandbox_overrides: ScriptSandbox::default(),
app_id,
script_owner: None,
principal: None,
trigger_depth: 0,
root_execution_id: execution_id,
is_dead_letter_handler: false,
event: None,
}
}
async fn run(engine: Arc<Engine>, src: &str, req: ExecRequest) {
let src = src.to_string();
tokio::task::spawn_blocking(move || engine.execute(&src, req))
.await
.expect("spawn_blocking should not panic")
.expect("script execution should succeed");
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn enqueue_map_payload() {
let svc = Arc::new(RecordingQueue::default());
let engine = make_engine(svc.clone());
run(
engine,
r#"queue::enqueue("jobs", #{ id: 1, name: "x" });"#,
baseline_request(AppId::new()),
)
.await;
let (qn, msg, opts) = svc.enqueues.lock().unwrap()[0].clone();
assert_eq!(qn, "jobs");
assert_eq!(msg, json!({ "id": 1, "name": "x" }));
assert!(opts.delay_ms.is_none());
assert!(opts.max_attempts.is_none());
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn enqueue_with_opts_threads_through() {
let svc = Arc::new(RecordingQueue::default());
let engine = make_engine(svc.clone());
run(
engine,
r#"queue::enqueue("jobs", #{ x: 1 }, #{ delay_ms: 60000, max_attempts: 5 });"#,
baseline_request(AppId::new()),
)
.await;
let (qn, _msg, opts) = svc.enqueues.lock().unwrap()[0].clone();
assert_eq!(qn, "jobs");
assert_eq!(opts.delay_ms, Some(60_000));
assert_eq!(opts.max_attempts, Some(5));
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn enqueue_blob_base64_encodes() {
let svc = Arc::new(RecordingQueue::default());
let engine = make_engine(svc.clone());
run(
engine,
r#"
let data = base64::decode("aGVsbG8=");
queue::enqueue("blobs", #{ raw: data });
"#,
baseline_request(AppId::new()),
)
.await;
let (_qn, msg, _opts) = svc.enqueues.lock().unwrap()[0].clone();
assert_eq!(msg, json!({ "raw": "aGVsbG8=" }));
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn depth_returns_service_value() {
let svc = Arc::new(RecordingQueue::default());
*svc.depth.lock().unwrap() = 99;
let engine = make_engine(svc.clone());
// Stash result via a known-shape map; the engine returns the eval value.
let src = r#"
let n = queue::depth("any");
#{ statusCode: 200, body: n }
"#
.to_string();
let req = baseline_request(AppId::new());
let resp = tokio::task::spawn_blocking({
let engine = engine.clone();
move || engine.execute(&src, req)
})
.await
.expect("spawn_blocking should not panic")
.expect("script execution should succeed");
assert_eq!(resp.body, json!(99));
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn enqueue_rejects_fnptr_in_payload() {
let svc = Arc::new(RecordingQueue::default());
let engine = make_engine(svc.clone());
let src = r#"
let f = |x| x + 1;
queue::enqueue("jobs", #{ closure: f });
"#
.to_string();
let req = baseline_request(AppId::new());
let res = tokio::task::spawn_blocking(move || engine.execute(&src, req))
.await
.expect("spawn_blocking should not panic");
let err = res.unwrap_err();
let msg = err.to_string();
assert!(
msg.contains("FnPtr") || msg.contains("closure"),
"expected FnPtr rejection, got: {msg}"
);
}
#[tokio::test(flavor = "multi_thread", worker_threads = 2)]
async fn enqueue_empty_name_throws() {
let svc = Arc::new(RecordingQueue::default());
let engine = make_engine(svc.clone());
let src = r#"queue::enqueue("", 1);"#.to_string();
let req = baseline_request(AppId::new());
let res = tokio::task::spawn_blocking(move || engine.execute(&src, req))
.await
.expect("spawn_blocking should not panic");
assert!(res.is_err(), "empty queue_name should throw");
}