Files
maarcadetweet/crates/appview/tests/handle_sync_integration.rs
T
tomdebone c586fd39c9 maarcadetweet: initial commit
AT Protocol PDS + AppView + Tauri Desktop Client, 160-char post limit.

- PDS (Rust + axum + sqlx)
  - Auth: createAccount, createSession, refreshSession
  - Records: createRecord, deleteRecord (race-safe via SELECT FOR UPDATE)
  - Feed: feed.like.create, feed.repost.create
  - Sync: getRepo, getBlocks, getLatestCommit, getRecord (with MST proof), listRepos
  - Identity: resolveHandle
  - MST: spec-conformant (at-mst crate, 27 tests)
  - Repo: signed commits, TID counter (monotonic, 4096 wrap safe)

- AppView (Rust + axum + sqlx)
  - Jetstream consumer (WebSocket, exponential backoff, 38k+ events indexed)
  - REST API: timeline/home (graph-aware), profile, search, post (with thread hydration)
  - Handle-sync worker (did:plc + did:web)
  - JSONB embed storage + thread columns (migration 0003)
  - Like/repost counter cache (migration 0004)

- Tauri 2 + Svelte 5 Desktop Client
  - System tray (Show/Compose/Quit menu)
  - OS notifications (tauri-plugin-notification)
  - Auto-update (tauri-plugin-updater, placeholder endpoint)
  - Window-state (tauri-plugin-window-state)
  - 160-char compose with live counter
  - Image/Link embed rendering
  - LocalStorage-persisted like state
  - Timeline with poll (prepend new posts)
  - Custom TitleBar (transparent, no decorations)
  - Orange/IBM Plex Mono maarcade design

Tests: 231 Rust + 9 vitest = 240 passed.
2026-07-05 20:01:31 +02:00

462 lines
15 KiB
Rust

//! Integration tests for `HandleSyncWorker::run_once()`.
//!
//! These exercise the worker's SQL against a live appview DB. The
//! resolver is substituted for a stub so the tests do not depend on
//! `plc.directory` being reachable (and so we can deterministically
//! prove the "don't overwrite" race protection works).
//!
//! Like the sibling `api_integration.rs`, every test is fail-open: if
//! `DATABASE_URL_APPVIEW` is unset or the DB isn't reachable, the test
//! prints a notice and returns. This keeps `cargo test --workspace`
//! green in environments without the appview stack running.
use anyhow::Result;
use async_trait::async_trait;
use at_identity::DidHandleResolver;
use std::collections::HashMap;
use std::sync::{Arc, Mutex};
use std::time::Duration;
use tokio::time::timeout;
use uuid::Uuid;
use appview::handle_sync::{HandleSyncWorker, SyncReport};
/// In-process test double for the PLC client. We never want these
/// tests to talk to the real PLC.
#[derive(Default)]
struct StubResolver {
/// DID → resolved handle (or `None` for an unresolvable DID).
/// `Some("")` is treated as "no result" by the worker.
mapping: Mutex<HashMap<String, Option<String>>>,
/// How many times each DID was queried — used by the limit test.
queries: Mutex<Vec<String>>,
}
impl StubResolver {
fn new(map: HashMap<String, Option<String>>) -> Self {
Self {
mapping: Mutex::new(map),
queries: Mutex::new(Vec::new()),
}
}
fn into_arc(self) -> Arc<StubResolver> {
Arc::new(self)
}
fn query_count(&self, did: &str) -> usize {
self.queries
.lock()
.unwrap()
.iter()
.filter(|d| d.as_str() == did)
.count()
}
}
#[async_trait]
impl DidHandleResolver for StubResolver {
async fn resolve_handle(&self, did: &str) -> Result<Option<String>> {
self.queries.lock().unwrap().push(did.to_string());
// Snapshot the mapping out so the worker sees a consistent view
// even if another writer fiddles mid-call.
let m = self.mapping.lock().unwrap();
// None → unknown; Some("") → unknown; Some("h") → resolved.
match m.get(did) {
Some(Some(h)) if !h.is_empty() => Ok(Some(h.clone())),
_ => Ok(None),
}
}
}
/// Build a worker whose PLC and web resolvers are both the same stub.
/// The integration tests in this file don't care which method the
/// DID uses — the stub answers for any prefix.
fn worker_with(db: sqlx::PgPool, stub: Arc<StubResolver>) -> HandleSyncWorker {
let r: Arc<dyn DidHandleResolver> = stub;
HandleSyncWorker {
db,
plc_resolver: Arc::clone(&r),
web_resolver: Arc::clone(&r),
interval_secs: 999,
}
}
async fn try_test_db() -> Option<sqlx::PgPool> {
let url = std::env::var("DATABASE_URL_APPVIEW").ok()?;
match timeout(Duration::from_secs(2), sqlx::PgPool::connect(&url)).await {
Ok(Ok(pool)) => match sqlx::migrate!("../../migrations/appview")
.run(&pool)
.await
{
Ok(()) => Some(pool),
Err(_) => None,
},
_ => None,
}
}
fn unique_did(prefix: &str) -> String {
format!("did:plc:hsync_{}_{}", prefix, Uuid::new_v4().simple())
}
async fn seed_post(
db: &sqlx::PgPool,
did: &str,
rkey: &str,
handle: &str,
text: &str,
) -> Result<()> {
let uri = format!("at://{did}/app.twi.post/{rkey}");
sqlx::query(
r#"INSERT INTO posts
(uri, did, handle, rkey, collection, text, cid,
parent_uri, root_uri, langs, created_at)
VALUES ($1,$2,$3,$4,'app.twi.post',$5,'bafy',NULL,NULL,NULL, now())
ON CONFLICT (uri) DO NOTHING"#,
)
.bind(&uri)
.bind(did)
.bind(handle)
.bind(rkey)
.bind(text)
.execute(db)
.await?;
Ok(())
}
async fn fetch_handle(
db: &sqlx::PgPool,
did: &str,
) -> Result<Option<String>> {
let row: Option<(String,)> = sqlx::query_as(
"SELECT handle FROM posts WHERE did = $1 \
ORDER BY indexed_at DESC LIMIT 1",
)
.bind(did)
.fetch_optional(db)
.await?;
Ok(row.and_then(|(s,)| if s.is_empty() { None } else { Some(s) }))
}
async fn count_empty_handle_for(db: &sqlx::PgPool, did: &str) -> Result<i64> {
let (n,): (i64,) = sqlx::query_as(
"SELECT COUNT(*) FROM posts WHERE did = $1 AND handle = ''",
)
.bind(did)
.fetch_one(db)
.await?;
Ok(n)
}
/// Seed two posts for one DID with empty handles, point the stub
/// resolver at a known handle, and assert the worker fills both rows.
#[tokio::test]
async fn sync_resolves_known_did() {
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let did = unique_did("known");
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await
.unwrap();
let expected = format!("known.{}", Uuid::new_v4().simple());
let stub = StubResolver::new(HashMap::from([(
did.clone(),
Some(expected.clone()),
)]))
.into_arc();
// Two posts → two rows must be updated.
seed_post(&db, &did, "rka", "", "first").await.unwrap();
seed_post(&db, &did, "rkb", "", "second").await.unwrap();
assert_eq!(count_empty_handle_for(&db, &did).await.unwrap(), 2);
let worker = worker_with(db.clone(), stub.clone());
let report: SyncReport = worker.run_once().await.unwrap();
assert_eq!(report.resolved, 2, "{report:?}");
assert_eq!(report.failed, 0);
assert_eq!(report.skipped, 0);
// No empty-handle rows remain for this DID and the handle matches.
assert_eq!(count_empty_handle_for(&db, &did).await.unwrap(), 0);
let got = fetch_handle(&db, &did).await.unwrap();
assert_eq!(got.as_deref(), Some(expected.as_str()));
// Resolver was consulted exactly once for this DID.
assert_eq!(stub.query_count(&did), 1);
// Cleanup.
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await;
}
/// A DID whose posts already carry a handle must NOT be re-queried
/// or overwritten — the worker's `SELECT … WHERE handle = ''` filters
/// it out entirely.
#[tokio::test]
async fn sync_skips_already_resolved() {
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let did = unique_did("already");
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await
.unwrap();
let pre = "preset.handle".to_string();
seed_post(&db, &did, "rkA", &pre, "alpha").await.unwrap();
seed_post(&db, &did, "rkB", &pre, "beta").await.unwrap();
// The stub would overwrite with a different handle if asked.
let stub = StubResolver::new(HashMap::from([(
did.clone(),
Some("wrong.handle".into()),
)]))
.into_arc();
let worker = worker_with(db.clone(), stub.clone());
let report = worker.run_once().await.unwrap();
assert_eq!(report.resolved, 0, "{report:?}");
assert_eq!(report.failed, 0);
// Both rows must still carry the pre-existing handle.
let (cnt,): (i64,) = sqlx::query_as(
"SELECT COUNT(*) FROM posts WHERE did = $1 AND handle = $2",
)
.bind(&did)
.bind(&pre)
.fetch_one(&db)
.await
.unwrap();
assert_eq!(cnt, 2);
// Resolver was NOT consulted for this DID.
assert_eq!(stub.query_count(&did), 0);
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await;
}
/// Seed more than `BATCH_SIZE` distinct empty-handle DIDs and verify
/// only the first batch is processed this pass. The leftover DIDs
/// remain empty (will be picked up next pass).
#[tokio::test]
async fn sync_respects_limit() {
use appview::handle_sync::BATCH_SIZE;
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let prefix = unique_did("limit");
// Seed BATCH_SIZE + 5 distinct DIDs, each with one empty-handle post.
let total = BATCH_SIZE as usize + 5;
let mut all_dids = Vec::with_capacity(total);
for i in 0..total {
let did = format!("{prefix}_{i}");
seed_post(&db, &did, "rk", "", "x").await.unwrap();
all_dids.push(did);
}
let mut mapping = HashMap::new();
for did in &all_dids {
mapping.insert(
did.clone(),
Some(format!("resolved.{}", &did[did.len() - 6..])),
);
}
let stub = StubResolver::new(mapping).into_arc();
let worker = worker_with(db.clone(), stub.clone());
let report = worker.run_once().await.unwrap();
assert_eq!(
report.resolved as i64,
BATCH_SIZE,
"expected exactly BATCH_SIZE rows resolved, got {report:?}"
);
assert_eq!(report.failed, 0);
assert_eq!(report.skipped, 0);
// Exactly 5 empty-handle posts remain (the capped overflow).
let remaining: i64 = sqlx::query_scalar(
"SELECT COUNT(*) FROM posts WHERE did LIKE $1 AND handle = ''",
)
.bind(format!("{prefix}_%"))
.fetch_one(&db)
.await
.unwrap();
assert_eq!(remaining, 5, "expected 5 unresolved rows left");
// The stub resolver was consulted for exactly BATCH_SIZE DIDs.
// (Note: the worker can't know which 5 were left out — the query
// count is process-wide; we count the total below.)
let total_qs = {
let guard = stub.queries.lock().unwrap();
guard.len()
};
assert_eq!(
total_qs as i64,
BATCH_SIZE,
"resolver must be called at most BATCH_SIZE times, got {total_qs}"
);
// Cleanup so repeated runs stay hygienic.
let _ = sqlx::query("DELETE FROM posts WHERE did LIKE $1")
.bind(format!("{prefix}_%"))
.execute(&db)
.await;
}
/// Unresolvable DIDs (stub returns `Ok(None)`) count as `skipped`,
/// not `failed`, so a temporary PLC outage doesn't poison
/// observability dashboards.
#[tokio::test]
async fn sync_skips_unresolvable_dids() {
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let did = unique_did("unres");
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await
.unwrap();
seed_post(&db, &did, "rk", "", "").await.unwrap();
// DID deliberately absent from the stub's mapping → Ok(None).
let stub = StubResolver::new(HashMap::new()).into_arc();
let worker = worker_with(db.clone(), stub.clone());
let report = worker.run_once().await.unwrap();
assert_eq!(report.resolved, 0);
assert_eq!(report.failed, 0);
assert_eq!(report.skipped, 1, "{report:?}");
assert_eq!(
count_empty_handle_for(&db, &did).await.unwrap(),
1,
"post must remain empty until resolver succeeds"
);
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await;
}
/// End-to-end test for the `did:web:` dispatch path: a `did:web:`
/// DID with an empty post handle must be routed to the **web**
/// resolver (not the PLC one) and the post handle must be updated
/// from the web resolver's answer.
#[tokio::test]
async fn sync_resolves_did_web_via_web_resolver() {
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let did = format!("did:web:example.com:user:{}", Uuid::new_v4().simple());
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await
.unwrap();
seed_post(&db, &did, "rk", "", "web post").await.unwrap();
// Two stubs that disagree. The dispatcher MUST pick the web one
// for a did:web DID — choosing the PLC one would write the wrong
// handle.
let expected = format!("web-handle.{}", Uuid::new_v4().simple());
let plc = StubResolver::new(HashMap::from([(
did.clone(),
Some("WRONG-PLC-HANDLE".into()),
)]));
let web = StubResolver::new(HashMap::from([(
did.clone(),
Some(expected.clone()),
)]));
let plc_arc: Arc<dyn DidHandleResolver> = plc.into_arc();
let web_arc: Arc<dyn DidHandleResolver> = web.into_arc();
let worker = HandleSyncWorker {
db: db.clone(),
plc_resolver: plc_arc,
web_resolver: web_arc,
interval_secs: 999,
};
let report = worker.run_once().await.unwrap();
assert_eq!(
report.resolved, 1,
"did:web must resolve through the web resolver, got {report:?}"
);
assert_eq!(report.failed, 0);
let h = fetch_handle(&db, &did).await.unwrap();
assert_eq!(h.as_deref(), Some(expected.as_str()));
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await;
}
/// `did:plc:` DIDs must still flow through the PLC resolver — the
/// web resolver must NOT be consulted (which would otherwise issue
/// a `https://plc.directory/.../did.json` request and fail).
#[tokio::test]
async fn sync_resolves_did_plc_via_plc_resolver() {
let Some(db) = try_test_db().await else {
eprintln!("appview DB unavailable; skipping");
return;
};
let did = unique_did("plcpath");
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await
.unwrap();
seed_post(&db, &did, "rk", "", "plc post").await.unwrap();
let expected = format!("plc-handle.{}", Uuid::new_v4().simple());
let plc = StubResolver::new(HashMap::from([(
did.clone(),
Some(expected.clone()),
)]));
// The web stub deliberately holds the wrong handle. If dispatch
// wrongly routed a did:plc DID to the web resolver, the row would
// end up with "WRONG-WEB-HANDLE".
let web = StubResolver::new(HashMap::from([(
did.clone(),
Some("WRONG-WEB-HANDLE".into()),
)]));
let plc_arc: Arc<dyn DidHandleResolver> = plc.into_arc();
let web_arc: Arc<dyn DidHandleResolver> = web.into_arc();
let worker = HandleSyncWorker {
db: db.clone(),
plc_resolver: plc_arc,
web_resolver: web_arc,
interval_secs: 999,
};
let report = worker.run_once().await.unwrap();
assert_eq!(
report.resolved, 1,
"did:plc must resolve through the PLC resolver, got {report:?}"
);
let h = fetch_handle(&db, &did).await.unwrap();
assert_eq!(h.as_deref(), Some(expected.as_str()));
let _ = sqlx::query("DELETE FROM posts WHERE did = $1")
.bind(&did)
.execute(&db)
.await;
}