Files
IdeA/crates/application/tests/memory_usecases.rs
Blomios 785e9935fd feat(memory): config embedders (LOT C2) + suggestion contextuelle (LOT C3) + contexte projet partagé
- LOT C2 (§14.5.3) : use cases de configuration des embedders déclaratifs
  (List/Save/Delete + DescribeEmbedderEngines : modèles ONNX recommandés,
  environnement local détecté, stratégies compilées). UI EmbedderSettings.
- LOT C3 (§14.5.5) : suggestion contextuelle best-effort à l'activation quand la
  mémoire dépasse le budget de recall sans embedder configuré (event
  EmbedderSuggested, anti-spam 1×/session, « ne plus demander »).
- Contexte projet partagé .ideai/CONTEXT.md (model-agnostic) injecté à tous les
  agents/profils au lancement, avant la persona. UI ProjectContextPanel.

Tests : backend workspace vert (0 échec) ; frontend 306/306.

Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
2026-06-09 09:24:51 +02:00

639 lines
19 KiB
Rust

//! L12 tests for the memory use cases (ARCHITECTURE §14.5.1) with in-memory
//! port fakes (no real store/FS): CRUD (`CreateMemory`, `UpdateMemory`,
//! `GetMemory`, `ListMemories`, `DeleteMemory`) asserting the `MemorySaved` /
//! `MemoryDeleted` events, and the read-only navigation helpers
//! (`ReadMemoryIndex`, `ResolveMemoryLinks`) asserting they emit nothing.
use std::sync::{Arc, Mutex};
use async_trait::async_trait;
use domain::events::DomainEvent;
use domain::ports::{EventBus, EventStream, MemoryError, MemoryQuery, MemoryRecall, MemoryStore};
use domain::{
MarkdownDoc, Memory, MemoryFrontmatter, MemoryIndexEntry, MemoryLink, MemorySlug, MemoryType,
ProjectPath,
};
use application::{
CreateMemory, CreateMemoryInput, DeleteMemory, DeleteMemoryInput, GetMemory, GetMemoryInput,
ListMemories, ListMemoriesInput, ReadMemoryIndex, ReadMemoryIndexInput, RecallMemory,
RecallMemoryInput, ResolveMemoryLinks, ResolveMemoryLinksInput, UpdateMemory,
UpdateMemoryInput,
};
// ---------------------------------------------------------------------------
// Fakes
// ---------------------------------------------------------------------------
/// In-memory memory store keyed by slug. Index and links are derived from the
/// stored notes (mirroring the real adapter), so navigation reads stay honest.
#[derive(Clone, Default)]
struct FakeMemories(Arc<Mutex<Vec<Memory>>>);
#[async_trait]
impl MemoryStore for FakeMemories {
async fn list(&self, _root: &ProjectPath) -> Result<Vec<Memory>, MemoryError> {
Ok(self.0.lock().unwrap().clone())
}
async fn get(&self, _root: &ProjectPath, slug: &MemorySlug) -> Result<Memory, MemoryError> {
self.0
.lock()
.unwrap()
.iter()
.find(|m| m.slug() == slug)
.cloned()
.ok_or(MemoryError::NotFound)
}
async fn save(&self, _root: &ProjectPath, memory: &Memory) -> Result<(), MemoryError> {
let mut v = self.0.lock().unwrap();
if let Some(slot) = v.iter_mut().find(|m| m.slug() == memory.slug()) {
*slot = memory.clone();
} else {
v.push(memory.clone());
}
Ok(())
}
async fn delete(&self, _root: &ProjectPath, slug: &MemorySlug) -> Result<(), MemoryError> {
let mut v = self.0.lock().unwrap();
let before = v.len();
v.retain(|m| m.slug() != slug);
if v.len() == before {
return Err(MemoryError::NotFound);
}
Ok(())
}
async fn read_index(&self, _root: &ProjectPath) -> Result<Vec<MemoryIndexEntry>, MemoryError> {
Ok(self
.0
.lock()
.unwrap()
.iter()
.map(Memory::index_entry)
.collect())
}
async fn resolve_links(
&self,
_root: &ProjectPath,
slug: &MemorySlug,
) -> Result<Vec<MemoryLink>, MemoryError> {
let v = self.0.lock().unwrap();
let source = v
.iter()
.find(|m| m.slug() == slug)
.ok_or(MemoryError::NotFound)?;
// Mirror the adapter: drop links whose target note does not exist.
Ok(source
.outgoing_links()
.into_iter()
.filter(|l| v.iter().any(|m| m.slug() == &l.target))
.collect())
}
}
#[derive(Default, Clone)]
struct SpyBus(Arc<Mutex<Vec<DomainEvent>>>);
impl SpyBus {
fn events(&self) -> Vec<DomainEvent> {
self.0.lock().unwrap().clone()
}
}
impl EventBus for SpyBus {
fn publish(&self, event: DomainEvent) {
self.0.lock().unwrap().push(event);
}
fn subscribe(&self) -> EventStream {
Box::new(std::iter::empty())
}
}
// ---------------------------------------------------------------------------
// Builders
// ---------------------------------------------------------------------------
fn root() -> ProjectPath {
ProjectPath::new("/home/me/demo").unwrap()
}
fn slug(s: &str) -> MemorySlug {
MemorySlug::new(s).unwrap()
}
/// Builds and persists a note directly through the store (bypassing use cases).
async fn seed(store: &FakeMemories, name: &str, body: &str) {
let memory = Memory::new(
MemoryFrontmatter {
name: slug(name),
description: format!("{name} hook"),
r#type: MemoryType::Project,
},
MarkdownDoc::new(body),
)
.unwrap();
store.save(&root(), &memory).await.unwrap();
}
fn saved_slugs(events: &[DomainEvent]) -> Vec<MemorySlug> {
events
.iter()
.filter_map(|e| match e {
DomainEvent::MemorySaved { slug } => Some(slug.clone()),
_ => None,
})
.collect()
}
fn deleted_slugs(events: &[DomainEvent]) -> Vec<MemorySlug> {
events
.iter()
.filter_map(|e| match e {
DomainEvent::MemoryDeleted { slug } => Some(slug.clone()),
_ => None,
})
.collect()
}
// ---------------------------------------------------------------------------
// CreateMemory
// ---------------------------------------------------------------------------
#[tokio::test]
async fn create_persists_note_and_emits_memory_saved_with_slug() {
let store = FakeMemories::default();
let bus = SpyBus::default();
let out = CreateMemory::new(Arc::new(store.clone()), Arc::new(bus.clone()))
.execute(CreateMemoryInput {
project_root: root(),
name: "design-decision".to_owned(),
description: "why we chose hexagonal".to_owned(),
r#type: MemoryType::Project,
content: "# body".to_owned(),
})
.await
.unwrap();
assert_eq!(out.memory.slug(), &slug("design-decision"));
// Persisted.
let listed = store.list(&root()).await.unwrap();
assert_eq!(listed.len(), 1);
assert_eq!(listed[0].slug(), &slug("design-decision"));
// Emits exactly one MemorySaved with the right slug.
assert_eq!(saved_slugs(&bus.events()), vec![slug("design-decision")]);
}
#[tokio::test]
async fn create_rejects_non_kebab_name_as_invalid() {
let store = FakeMemories::default();
let bus = SpyBus::default();
let err = CreateMemory::new(Arc::new(store.clone()), Arc::new(bus.clone()))
.execute(CreateMemoryInput {
project_root: root(),
name: "Not Kebab".to_owned(),
description: "x".to_owned(),
r#type: MemoryType::User,
content: "# body".to_owned(),
})
.await
.unwrap_err();
assert_eq!(err.code(), "INVALID");
// Nothing persisted, nothing announced.
assert!(store.list(&root()).await.unwrap().is_empty());
assert!(bus.events().is_empty());
}
#[tokio::test]
async fn create_rejects_empty_description() {
let store = FakeMemories::default();
let bus = SpyBus::default();
let err = CreateMemory::new(Arc::new(store), Arc::new(bus))
.execute(CreateMemoryInput {
project_root: root(),
name: "ok-slug".to_owned(),
description: String::new(),
r#type: MemoryType::User,
content: "# body".to_owned(),
})
.await
.unwrap_err();
assert_eq!(err.code(), "INVALID");
}
#[tokio::test]
async fn create_rejects_empty_content() {
let store = FakeMemories::default();
let bus = SpyBus::default();
let err = CreateMemory::new(Arc::new(store), Arc::new(bus))
.execute(CreateMemoryInput {
project_root: root(),
name: "ok-slug".to_owned(),
description: "a hook".to_owned(),
r#type: MemoryType::User,
content: String::new(),
})
.await
.unwrap_err();
assert_eq!(err.code(), "INVALID");
}
// ---------------------------------------------------------------------------
// UpdateMemory
// ---------------------------------------------------------------------------
#[tokio::test]
async fn update_replaces_content_and_emits_memory_saved() {
let store = FakeMemories::default();
seed(&store, "note-a", "v1").await;
let bus = SpyBus::default();
let out = UpdateMemory::new(Arc::new(store.clone()), Arc::new(bus.clone()))
.execute(UpdateMemoryInput {
project_root: root(),
slug: slug("note-a"),
description: "updated hook".to_owned(),
r#type: MemoryType::Reference,
content: "v2".to_owned(),
})
.await
.unwrap();
assert_eq!(out.memory.body.as_str(), "v2");
assert_eq!(out.memory.frontmatter.description, "updated hook");
assert_eq!(out.memory.frontmatter.r#type, MemoryType::Reference);
// Replace semantics: still a single note.
let listed = store.list(&root()).await.unwrap();
assert_eq!(listed.len(), 1);
assert_eq!(listed[0].body.as_str(), "v2");
assert_eq!(saved_slugs(&bus.events()), vec![slug("note-a")]);
}
#[tokio::test]
async fn update_revalidates_invariants_and_rejects_empty_content() {
let store = FakeMemories::default();
seed(&store, "note-a", "v1").await;
let bus = SpyBus::default();
let err = UpdateMemory::new(Arc::new(store.clone()), Arc::new(bus.clone()))
.execute(UpdateMemoryInput {
project_root: root(),
slug: slug("note-a"),
description: "still here".to_owned(),
r#type: MemoryType::Project,
content: String::new(),
})
.await
.unwrap_err();
assert_eq!(err.code(), "INVALID");
// Original note untouched, no event.
assert_eq!(
store
.get(&root(), &slug("note-a"))
.await
.unwrap()
.body
.as_str(),
"v1"
);
assert!(bus.events().is_empty());
}
// ---------------------------------------------------------------------------
// DeleteMemory
// ---------------------------------------------------------------------------
#[tokio::test]
async fn delete_removes_note_and_emits_memory_deleted() {
let store = FakeMemories::default();
seed(&store, "note-a", "body").await;
let bus = SpyBus::default();
DeleteMemory::new(Arc::new(store.clone()), Arc::new(bus.clone()))
.execute(DeleteMemoryInput {
project_root: root(),
slug: slug("note-a"),
})
.await
.unwrap();
assert!(store.list(&root()).await.unwrap().is_empty());
assert_eq!(deleted_slugs(&bus.events()), vec![slug("note-a")]);
}
#[tokio::test]
async fn delete_unknown_slug_is_not_found_and_emits_nothing() {
let store = FakeMemories::default();
let bus = SpyBus::default();
let err = DeleteMemory::new(Arc::new(store), Arc::new(bus.clone()))
.execute(DeleteMemoryInput {
project_root: root(),
slug: slug("ghost"),
})
.await
.unwrap_err();
assert_eq!(err.code(), "NOT_FOUND");
assert!(bus.events().is_empty());
}
// ---------------------------------------------------------------------------
// GetMemory
// ---------------------------------------------------------------------------
#[tokio::test]
async fn get_returns_the_note() {
let store = FakeMemories::default();
seed(&store, "note-a", "hello").await;
let out = GetMemory::new(Arc::new(store))
.execute(GetMemoryInput {
project_root: root(),
slug: slug("note-a"),
})
.await
.unwrap();
assert_eq!(out.memory.slug(), &slug("note-a"));
assert_eq!(out.memory.body.as_str(), "hello");
}
#[tokio::test]
async fn get_unknown_slug_is_not_found() {
let store = FakeMemories::default();
let err = GetMemory::new(Arc::new(store))
.execute(GetMemoryInput {
project_root: root(),
slug: slug("ghost"),
})
.await
.unwrap_err();
assert_eq!(err.code(), "NOT_FOUND");
}
// ---------------------------------------------------------------------------
// ListMemories
// ---------------------------------------------------------------------------
#[tokio::test]
async fn list_returns_all_notes() {
let store = FakeMemories::default();
seed(&store, "note-a", "a").await;
seed(&store, "note-b", "b").await;
let out = ListMemories::new(Arc::new(store))
.execute(ListMemoriesInput {
project_root: root(),
})
.await
.unwrap();
let mut slugs: Vec<_> = out.memories.iter().map(|m| m.slug().clone()).collect();
slugs.sort();
assert_eq!(slugs, vec![slug("note-a"), slug("note-b")]);
}
#[tokio::test]
async fn list_is_empty_when_no_notes() {
let store = FakeMemories::default();
let out = ListMemories::new(Arc::new(store))
.execute(ListMemoriesInput {
project_root: root(),
})
.await
.unwrap();
assert!(out.memories.is_empty());
}
// ---------------------------------------------------------------------------
// ReadMemoryIndex
// ---------------------------------------------------------------------------
#[tokio::test]
async fn read_index_returns_one_row_per_note() {
let store = FakeMemories::default();
seed(&store, "note-a", "a").await;
seed(&store, "note-b", "b").await;
let out = ReadMemoryIndex::new(Arc::new(store))
.execute(ReadMemoryIndexInput {
project_root: root(),
})
.await
.unwrap();
assert_eq!(out.entries.len(), 2);
let mut rows: Vec<_> = out
.entries
.iter()
.map(|e| (e.slug.clone(), e.hook.clone()))
.collect();
rows.sort();
assert_eq!(
rows,
vec![
(slug("note-a"), "note-a hook".to_owned()),
(slug("note-b"), "note-b hook".to_owned()),
]
);
}
// ---------------------------------------------------------------------------
// ResolveMemoryLinks
// ---------------------------------------------------------------------------
#[tokio::test]
async fn resolve_links_returns_outgoing_links_dropping_broken_ones() {
let store = FakeMemories::default();
// note-a links to note-b (exists) and to ghost (does not).
seed(&store, "note-a", "see [[note-b]] and [[ghost]]").await;
seed(&store, "note-b", "target body").await;
let out = ResolveMemoryLinks::new(Arc::new(store))
.execute(ResolveMemoryLinksInput {
project_root: root(),
slug: slug("note-a"),
})
.await
.unwrap();
// Only the resolvable link survives; the broken one is dropped.
assert_eq!(
out.links,
vec![MemoryLink {
target: slug("note-b")
}]
);
}
#[tokio::test]
async fn resolve_links_for_unknown_source_is_not_found() {
let store = FakeMemories::default();
let err = ResolveMemoryLinks::new(Arc::new(store))
.execute(ResolveMemoryLinksInput {
project_root: root(),
slug: slug("ghost"),
})
.await
.unwrap_err();
assert_eq!(err.code(), "NOT_FOUND");
}
// ---------------------------------------------------------------------------
// RecallMemory
// ---------------------------------------------------------------------------
/// In-memory [`MemoryRecall`] fake: records the queries it received and returns a
/// canned set of entries. Lets us assert the use case delegates faithfully (same
/// `root`, the input `text`/`token_budget` forwarded) and surfaces the result.
#[derive(Clone, Default)]
struct FakeRecall {
entries: Arc<Vec<MemoryIndexEntry>>,
seen: Arc<Mutex<Vec<MemoryQuery>>>,
}
impl FakeRecall {
fn returning(entries: Vec<MemoryIndexEntry>) -> Self {
Self {
entries: Arc::new(entries),
seen: Arc::default(),
}
}
fn queries(&self) -> Vec<MemoryQuery> {
self.seen.lock().unwrap().clone()
}
}
#[async_trait]
impl MemoryRecall for FakeRecall {
async fn recall(
&self,
_root: &ProjectPath,
query: &MemoryQuery,
) -> Result<Vec<MemoryIndexEntry>, MemoryError> {
self.seen.lock().unwrap().push(query.clone());
Ok((*self.entries).clone())
}
}
fn entry(slug_str: &str, hook: &str) -> MemoryIndexEntry {
MemoryIndexEntry {
slug: slug(slug_str),
title: slug_str.to_owned(),
hook: hook.to_owned(),
r#type: MemoryType::Reference,
}
}
#[tokio::test]
async fn recall_delegates_to_port_and_returns_entries() {
let recalled = vec![entry("alpha", "first"), entry("beta", "second")];
let recall = FakeRecall::returning(recalled.clone());
let out = RecallMemory::new(Arc::new(recall.clone()))
.execute(RecallMemoryInput {
project_root: root(),
text: "current context".to_owned(),
token_budget: 42,
})
.await
.unwrap();
// Returns exactly what the port produced, in order.
assert_eq!(out.entries, recalled);
// The query was forwarded verbatim (text + budget).
assert_eq!(
recall.queries(),
vec![MemoryQuery {
text: "current context".to_owned(),
token_budget: 42,
}]
);
}
#[tokio::test]
async fn recall_empty_result_is_empty_not_error() {
let recall = FakeRecall::returning(Vec::new());
let out = RecallMemory::new(Arc::new(recall))
.execute(RecallMemoryInput {
project_root: root(),
text: String::new(),
token_budget: 0,
})
.await
.unwrap();
assert!(out.entries.is_empty());
}
#[tokio::test]
async fn recall_publishes_no_events() {
// RecallMemory takes no EventBus; assert a shared spy stays empty when other
// (mutating) use cases on the same bus are NOT exercised — i.e. recall is
// read-only by construction.
let recall = FakeRecall::returning(vec![entry("alpha", "first")]);
let bus = SpyBus::default();
RecallMemory::new(Arc::new(recall))
.execute(RecallMemoryInput {
project_root: root(),
text: "ctx".to_owned(),
token_budget: 10,
})
.await
.unwrap();
assert!(
bus.events().is_empty(),
"recall must not publish any DomainEvent"
);
}
// ---------------------------------------------------------------------------
// Read use cases emit no events
// ---------------------------------------------------------------------------
#[tokio::test]
async fn read_use_cases_publish_no_events() {
let store = FakeMemories::default();
seed(&store, "note-a", "see [[note-a]]").await;
let bus = SpyBus::default();
// None of the read use cases take an EventBus — assert the shared spy stays
// empty after exercising every read path on the same store.
GetMemory::new(Arc::new(store.clone()))
.execute(GetMemoryInput {
project_root: root(),
slug: slug("note-a"),
})
.await
.unwrap();
ListMemories::new(Arc::new(store.clone()))
.execute(ListMemoriesInput {
project_root: root(),
})
.await
.unwrap();
ReadMemoryIndex::new(Arc::new(store.clone()))
.execute(ReadMemoryIndexInput {
project_root: root(),
})
.await
.unwrap();
ResolveMemoryLinks::new(Arc::new(store))
.execute(ResolveMemoryLinksInput {
project_root: root(),
slug: slug("note-a"),
})
.await
.unwrap();
assert!(
bus.events().is_empty(),
"read use cases must not publish any DomainEvent"
);
}