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Commits
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0152196ac2 |
Deflake CI, and make the flake class unrepeatable (#1491)
* Deflake two iOS-sim CI tests with unbounded timing assumptions Both failed on main-adjacent CI runs during this session's PRs. Neither was a product bug; both asserted things about real time that a loaded runner is under no obligation to honour. **NetworkReachabilityGateTests: a wall-clock upper bound.** test_monitor_duplicateUpdatesDoNotPostponeOfflineCommit slept 500ms for real, then asserted total elapsed time was under 1.4s to prove a duplicate mid-window had not restarted the 1.0s debounce. One CI run took 3.75s. No wall-clock bound can separate "deadline preserved" from "runner is slow", because Task.sleep and the asyncAfter flush are both real time and neither is bounded above. The deadline property was already covered deterministically one level down: test_debounce_duplicateObservationsPreservePendingDeadline drives ReachabilityDebounce with injected timestamps and checks pendingRemaining directly. So the monitor test now asserts only what needs a real monitor — that a duplicate still yields exactly one committed false through the debounce — with an injected clock for the arithmetic and a generous liveness budget. Renamed to say what it actually checks. No coverage lost, and it runs in 0.14s instead of ~3.8s because the real sleep is gone. **NoiseEncryptionServiceTests: injected timeouts that also arm during setup.** #1483 diagnosed and fixed exactly this in the quarantine-restore test, but two sibling tests kept the shape. Their injected ordinaryResponderHandshakeTimeout (0.04 and 0.06) also arms during the establishSessions setup handshake, where bob is the responder — so a preempted runner fires it mid-setup, tears down the half-open responder, and message 3 gets answered as a fresh initiation. The CI failure named setup's own `#expect(finalMessage == nil)` seeing a 96-byte message 2, which is precisely the signature #1483 recorded. Raised both to 1.0s, matching #1483's remedy: the scenarios still need the responder timeout to fire, and it still does, just with room for setup to complete first. Thin 1-second waitUntil budgets in the file now use the shared TestConstants.longTimeout; every one of them backs a positive assertion, so waitUntil still returns the moment the condition holds and nothing gets slower in the passing case. No assertion weakened in either file. Verified 3x sequentially and 3x with all 18 cores saturated. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> * Raise two more starvation-prone test deadlines Both surfaced on the CI runs for this PR and #1487, both in tests neither PR touches, both the same shape as the two already fixed here: a deadline sized for the work rather than for a runner executing many suites at once. VoiceNotePlaybackControllerTests waited 5s for a @MainActor Task that playback schedules for the session acquire and its failure path. When that Task is not scheduled in time the helper reports *two* failures — the wait, and the `!isPlaying` the un-run failure path has not reset yet — which reads like a playback bug rather than a starved scheduler. That is exactly what CI showed. GeoRelayDirectoryTests waited 10s for work the directory runs in Task.detached(priority: .utility); utility priority competes with every other suite. The retry-scheduling case timed out at exactly 10.06s with the retry never scheduled, reading like a missing retry rather than a starved background task. Raised to 30s each with the reasoning recorded at the helper. Both helpers return as soon as their condition holds, so nothing slows down when tests pass — only the genuine-failure case takes longer to report. Verified 3x with all cores saturated: both suites clean. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> * Make the flake class unrepeatable, not just fixed Raising four deadlines fixed the four tests that happened to fire. The class was still there: fourteen separate waitUntil helpers, most defaulting to 1.0s, plus wait call sites with literal budgets. The fifth instance would have landed the same way, on someone else's unrelated PR. The rule, now written down in TestConstants.settleTimeout: **a wait deadline is not a latency budget.** It exists so a genuine hang eventually fails the suite, so size it for the worst-case scheduler, never for how long the operation should take. Waits return as soon as their condition holds, so a generous deadline is free in the passing case and only extends genuine failures. - Every wait helper now defaults to TestConstants.settleTimeout (30s), and the literal wait call sites below the floor were converted too — sixteen sites across ten files. - TestTimingHygieneTests enforces it by scanning the test sources: wait defaults and wait call sites must be at least minimumSettleTimeout, and no test may assert an upper bound on elapsed wall-clock time (the assertion that started this, which cannot separate correct behaviour from a slow machine). - Both rules waive per line with "test-timing-ok: <reason>", accepted on the line or in the comment block above it so the reason has room to be a sentence. One legitimate use so far: a NEGATIVE wait in NoiseCoverageTests asserting a promotion has *not* completed within 50ms, where a long deadline would only make the suite slow while still passing. Injected production timeouts are deliberately not matched — the Noise handshake timeouts are the behaviour under test, and short values are correct there. Verified the guard actually fails: a canary file with both banned shapes was flagged with file and line, and the suite went green again once it was removed. Full suite passes with all 18 cores saturated. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> * Close the guard's blind spot: named short timeouts A fifth flake landed on CI while the first guard was in review — GossipSyncBoardTests timing out at 1.03s — and the guard did not catch it, because the deadline was `TestConstants.shortTimeout` rather than a literal. A literals-only scan cannot see a short value behind a symbol, which is the more common way it is written: 81 wait sites used shortTimeout (1s) or defaultTimeout (5s), every one of them below the floor. Rather than guess which of those were safe to raise, all 81 were converted and the suite timed. Runtime went 15s -> 72s, which located the genuine negative waits precisely: ten tests that assert something does *not* happen and therefore always run their deadline out. Measurement instead of a heuristic, since a mis-guess in either direction is invisible — too short reintroduces the flake, too long silently costs a minute a run. Those 28 sites now use `TestConstants.negativeWaitWindow`, a named constant whose doc explains the inverted reasoning: for a negative wait, starvation can only make the assertion *more* likely to hold, so short is correct, and the name states the polarity instead of leaving a bare literal that reads like the mistake. Suite is back to 15.3s. The guard now also rejects `timeout: TestConstants.shortTimeout` and `defaultTimeout`, while accepting `negativeWaitWindow` by name. Re-verified with a canary carrying every banned shape — literal default, both named constants, and an elapsed-time upper bound. All four were flagged with file and line; the suite went green again on removal. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> * Delete shortTimeout now that nothing may use it The hygiene guard bans `TestConstants.shortTimeout` at every wait site and the last users were converted, so Periphery correctly flagged the constant itself as dead and failed CI. Remove it from both TestConstants copies; the banned-name entry stays so the symbol cannot quietly return. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> --------- Co-authored-by: jack <jackjackbits@users.noreply.github.com> Co-authored-by: Claude Opus 5 <noreply@anthropic.com> |
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ef848857b7 |
Remove dead code found by full Periphery audit; add scan config + advisory CI (#1410)
Periphery 3.7.4 audit of both schemes (macOS + iOS, intersected so platform-specific code is never touched), with test targets indexed and the share extension built. 277 dead declarations removed or demoted: dead forwarding wrappers (ChatViewModel+Nostr/+PrivateChat), removed- feature remnants (autocomplete command suggestions, back-swipe tuning, MediaSendError, GeohashParticipantTracker), unused Tor dormancy bindings, assign-only properties, unused parameters (renamed to _), and redundant public accessibility. 13 orphaned localization keys deleted across all 29 locales (old pre-#1392 location-notes UI, app_info warnings). Two real tests were flagged as unused because they never ran: Swift Testing methods missing @Test (NostrProtocolTests. testAckRoundTripNIP44V2_Delivered, NotificationStreamAssemblerTests. testAssemblesCompressedLargeFrame). Re-armed both; they pass. Deliberately kept, now recorded in .periphery.baseline.json: iOS-only code invisible to the CI macOS scan, C FFI signatures, keep-alive NWPathMonitor reference, InboundEventKey.eventID (dedup semantics), wifiBulk capability bit (reserved for Wi-Fi bulk work, used by BitFoundation package tests), and the String secureClear cluster (exercised by package tests). New: .periphery.yml config and an advisory Dead Code CI job (mirrors the SwiftLint precedent from #1361) that fails on findings not in the committed baseline. Verified: full macOS app suite, BitFoundation (119) and BitLogger (13) package tests green; periphery scan --strict exits clean. Co-authored-by: jack <jackjackbits@users.noreply.github.com> Co-authored-by: Claude Fable 5 <noreply@anthropic.com> |
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8296630cf3 |
Deflake app test suite: hermetic caches, robust async waits, perf-gate retry (#1365)
Four spurious CI failures on July 5, all loaded-runner flakiness: - ViewSmokeTests.voiceAndMediaViews_renderAndWarmCaches asserted an exact bin count on WaveformCache.shared for the same URL the mounted VoiceNoteView was concurrently warming at its default 120-bin width; whichever barrier write landed last owned the entry. Probe the cache with a dedicated audio file no view touches, and purge both URLs. Also replace the fixed 250ms sleep for loadDuration's background hop with a waitUntil poll. - sendImage_privateChatProcessesAndTransfersImage (and its sendVoiceNote / sendImage siblings) wait on work that hops through Task.detached; the global executor is shared with every parallel test worker, so a loaded runner can exceed the 5s wait. Raise those positive waits to TestConstants.longTimeout (10s) — waitUntil returns as soon as the condition holds, so passing runs are unaffected. - subscribeNostrEvent_addsToTimeline_ifMatchesGeohash raced concurrently running suites (e.g. CommandProcessorTests) on the process-wide LocationChannelManager singleton: a mid-test channel flip reroutes or drops the event permanently, so no fixed wait recovers. The wait loop now re-asserts the channel and redelivers the event on each poll — idempotent because channel switches clear the processed-event set and the store dedups by message ID — so interference heals while genuine failures still time out. - The performance floor gate failed on a saturated runner (gcs.buildAndDecode at 85% of floor). check-perf-floors.sh now re-runs the benchmark suite up to twice when a metric lands below floor, appending to the same PERF log and keeping each benchmark's best value across attempts: noise clears on a retry, a real algorithmic regression fails every attempt. Floors are unchanged and never lowered by the mechanism; missing-benchmark failures exit immediately without retrying. Co-authored-by: jack <jackjackbits@users.noreply.github.com> Co-authored-by: Claude Fable 5 <noreply@anthropic.com> |
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3d914dcf46 |
Convert the remaining tests to Swift Testing (#781)
* SwiftTesting: NoiseProtocolTests + BinaryProtocolPaddingTests * SwiftTesting: `NotificationStreamAssemblerTests` * SwiftTesting: `NostrProtocolTests` * SwiftTesting: `BinaryProtocolTests` * SwiftTesting: `PeerIDTests` * SwiftTesting: `BLEServiceTests` * SwiftTesting: `CommandProcessorTests` * SwiftTesting: `GCSFilterTests` * SwiftTesting: `GeohashBookmarksStoreTests` * Remove `peerID` test constants * Remove PeerID + String interop from tests * Refactor IntegrationTests to extract state management * Refactor global state management of MockBLEService * NoiseProtocolSwiftTests: `actor` -> `struct` * Remove measurement tests w/ no benchmark * `NoiseProtocolSwiftTests` -> `NoiseProtocolTests` * SwiftTesting: `LocationChannelsTests` * SwiftTesting: `GossipSyncManagerTests` * SwiftTesting: `LocationNotesManagerTests` * Global `sleep` function for tests * SwiftTesting: `IntegrationTests` --------- Co-authored-by: jack <jackjackbits@users.noreply.github.com> |
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03c357f048 |
PeerID 11/n: Noise types use PeerID + create separate files (#750)
* Noise types use PeerID * Fix tests * Extract `NoiseSessionManager` into a separate file * Extract `NoiseSessionState` into a separate file * Remove `failed` state from `NoiseSessionState` * Extract `NoiseSessionError` into a separate file |
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847d333366 |
Fix all compilation errors and warnings in test suite
- Fixed mock service property overrides to match base class properties - Added missing CryptoKit imports where needed - Fixed immutable property assignments by creating new instances - Replaced XCTAssertThrows with XCTAssertThrowsError - Fixed DeliveryAck serialization method names (serialize -> encode) - Fixed unused variable warnings - Ensured all BitchatPacket modifications create new instances - Fixed BitchatMessage property mutations by creating new instances All test targets now build successfully for both iOS and macOS platforms. |
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96136ec364 |
Add comprehensive test suite for bitchat
- Created test utilities and helpers for common test operations - Implemented Binary Protocol tests covering encoding/decoding, compression, and padding - Added Noise Protocol tests for handshake, encryption, and session management - Created Public Chat E2E tests for broadcasting, routing, TTL, and mesh topologies - Implemented Private Chat E2E tests for direct messaging, delivery ACKs, and retry logic - Added Integration tests for multi-peer scenarios, network resilience, and mixed traffic patterns - Created mock implementations for BluetoothMeshService and NoiseSession Test coverage includes: - Protocol layer (binary encoding, message serialization) - Security layer (Noise handshake, encryption/decryption) - Application layer (public/private messaging, delivery tracking) - Network scenarios (mesh topology, partitions, churn) - Performance and stress testing |