Files
jellytau/scripts
dtourolle 75cd07a5c0 fix(player): decide transport in Rust for webview media (DR-097)
Video on Android/Linux renders in a webview <video> element, and the
frontend facade short-circuited play/pause/toggle straight into the
adapter whenever one was registered. Html5PlayerAdapter.toggle() then
decided play-vs-pause by reading el.paused off the DOM, so the Rust
controller never saw the intent and could not serialise competing ones.

el.paused flips transiently while an element buffers or settles a seek.
Two intents ~150ms apart therefore read *different* values and performed
*opposing* actions — one playing, one pausing — which self-sustained a
play/pause loop that needed no further input. On device this showed up
as a fully healthy element (readyState=4, networkState=1, not seeking,
not buffering, not ended) pausing itself roughly once a second, so
unpausing or skipping ahead bounced straight back to paused.

The root cause was that Rust held NO state for webview-rendered media:
report_html5_state only re-emitted its argument, despite the comment
above it claiming the controller was the single source of truth. It had
nothing to decide a toggle from.

Now report_html5_state tracks the reported state, and play/pause/toggle
consult it and drive the element by emitting a ControlCommand — the same
"backend decides, adapter executes the primitive" split player_seek_video
already uses. A stopped/idle report clears the tracking so MPV/ExoPlayer
regain authority for music playback.

Tests cover the loop signature directly (repeated toggles must alternate,
never repeat or oppose) plus a guard that one intent yields exactly one
ControlCommand — which matters on Windows, where the backend is itself
webview-based and could otherwise be driven twice.
2026-07-30 13:54:41 +02:00
..
2026-07-02 20:01:43 +02:00
2026-01-26 22:21:54 +01:00
2026-01-26 22:21:54 +01:00
2026-01-26 22:21:54 +01:00
2026-01-26 22:21:54 +01:00
2026-06-20 15:32:32 +02:00
2026-01-26 22:21:54 +01:00

Development Scripts

Collection of utility scripts for building, testing, and deploying JellyTau.

Testing Scripts

test-all.sh

Run all tests (frontend + Rust backend).

./scripts/test-all.sh

test-frontend.sh

Run frontend tests only.

./scripts/test-frontend.sh          # Run all tests
./scripts/test-frontend.sh --watch  # Watch mode
./scripts/test-frontend.sh --ui     # Open UI

test-rust.sh

Run Rust tests only.

./scripts/test-rust.sh              # Run all tests
./scripts/test-rust.sh -- --nocapture  # Show println! output

Android Scripts

build-android.sh

Build the Android APK.

./scripts/build-android.sh          # Debug build
./scripts/build-android.sh release  # Release build

deploy-android.sh

Install APK on connected Android device.

./scripts/deploy-android.sh         # Deploy debug APK
./scripts/deploy-android.sh release # Deploy release APK

build-and-deploy.sh

Build and deploy in one command.

./scripts/build-and-deploy.sh       # Build + deploy debug
./scripts/build-and-deploy.sh release  # Build + deploy release

check-android.sh

Check Android development environment setup.

./scripts/check-android.sh

logcat.sh

View Android logcat filtered for the app.

./scripts/logcat.sh

Traceability & Documentation

extract-traces.ts

Extract requirement IDs (TRACES) from source code and generate a traceability matrix mapping requirements to implementation locations.

bun run traces                    # Generate markdown report
bun run traces:json              # Generate JSON report
bun run traces:markdown           # Save to docs/traceability.md
bun run traces:coverage           # Coverage gate — exits non-zero below 50%

The script scans all TypeScript, Svelte, and Rust files (plus scripts/) looking for TRACES: comments and generates a comprehensive mapping of:

  • Which code files implement which requirements
  • Line numbers and code context
  • Coverage summary by requirement type (UR, IR, DR, JA)

bun run traces:coverage is the supported way to check requirement coverage locally — it runs the same computation CI does. Coverage denominators are derived from docs/requirements.md at run time; they are never hardcoded. An ID that appears in a TRACES: comment but is not defined in requirements.md is reported as orphaned and does not count toward coverage (see DR-093).

Removed: check-req-coverage.sh, check-test-coverage.sh, and find-req-implementations.sh were deleted in July 2026. They read an undocumented @req: tag convention parallel to TRACES:, grepped src-tauri/ unscoped (hanging on ~40 GB of target/ artifacts), and in one case reported "all requirements implemented" from an empty result set. extract-traces.ts is the single source of truth for requirement coverage. See docs/specs/req-coverage-script-removal.md.

Example TRACES comment in code:

// TRACES: UR-005, UR-026 | DR-029
function handlePlayback() { ... }

See docs/traceability.md for the latest generated mapping.

CI/CD Validation

The traceability system is integrated with Gitea Actions CI/CD:

  • Automatically validates TRACES on every push and pull request
  • Enforces minimum 50% coverage threshold
  • Warns if new code lacks TRACES comments
  • Generates traceability reports automatically

For details, see:

Utility Scripts

clean.sh

Clean all build artifacts.

./scripts/clean.sh

NPM Script Aliases

You can also run these via npm/bun:

bun run test:all           # All tests
bun run test:rust          # Rust tests
bun run android:build      # Build Android APK
bun run android:deploy     # Deploy to device
bun run android:dev        # Build + deploy debug
bun run android:check      # Check environment
bun run clean              # Clean artifacts