worktree-linux-native-video
95
Commits
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20e683d705 |
feat(android): conformance on a device, and a start position for ExoPlayer
DR-247. The desktop suite cannot reach ExoPlayer: it needs an Android Context and a Looper, so it exists only inside an app process. These are the same behaviours, asserted against the engine itself. Writing them forced the same gap open that mpv had. JellyTauPlayer.load(url, mediaId) had no way to express a start position, so every caller loaded and then seeked — the test could not even be written against the old signature, which is a stronger statement than a failing assertion. The position now goes to ExoPlayer with the media item via setMediaItem(item, startPositionMs), and the two-argument form delegates to it, so nothing else had to change. Running one suite against both engines settled something guesswork could not: seekWhileOpeningIsHonoured passes on ExoPlayer with no fix ExoPlayer already queues a seek issued before prepare() completes. So the lost-seek half of DR-241 was mpv-specific, and only the missing vocabulary for a start position was shared. That is the difference between "both engines have this bug" and knowing which one does. All seven cases pass on device (ROD2-W09, arm64). The fixture is a silent WAV synthesised in the cache directory at setup rather than committed or pushed: no binary in the repo, no adb step, and an exact duration, which the seek assertions depend on. Also adds the instrumentation runner to defaultConfig and teaches sync-android-sources.sh to mirror src/androidTest, the way it already mirrors src/test — so the canonical tree stays the only place tests are edited. Run: ./gradlew :app:connectedUniversalDebugAndroidTest -x :app:rustBuildUniversalDebug |
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8904acb5f7 |
feat(player): run the old backend through the new contract
DR-245, first half. `LegacyPlayer` implements `MediaPlayer` over the existing
`PlayerBackend`, so engines not yet ported — ExoPlayer, the webview element,
the null backend — keep working while `PlayerController` moves across. Without
it the port would have to land all four engines at once.
It also makes the two designs comparable on one engine and one file. `open`
reproduces the old sequence faithfully: load, play, then seek for a start
position, with the seek's failure ignored exactly as callers used to ignore
it. Making it pass would defeat the point.
Running both engines over the same media is more informative than expected:
MpvPlayer 9/9
LegacyPlayer 8/9 - transport_settings_round_trip fails
Two things fall out of that. The start-position case now passes on *both*,
because DR-241 was fixed inside MpvBackend rather than only in the new engine
— so the suite confirms that fix independently, on a path it was not written
against. And the one genuine failure is a capability gap rather than a bug:
the old trait has no mute and no playback rate, so `LegacyPlayer` reports them
unsupported instead of folding mute into volume and losing the user's level.
That is the abstraction earning its keep on the first run: a missing
capability that was previously invisible is now a named, failing case.
The runner takes an engine argument:
player-conformance <media-file> [mpv|legacy]
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3b91922cca |
feat(player): the MediaPlayer contract
DR-242. Intent, not device operations. `open` carries the start position, so no caller sequences load-then-seek and none can race an engine's asynchronous load — the engine is the only layer that knows when its pipeline can accept a position, and it absorbs that internally by deferring or re-opening. `seek` states a destination and nothing else. Whether that is an in-place seek or a re-opened stream is the engine's business: hls.js seeks within a VOD playlist, mpv's HLS demuxer cannot make a server transcode from a new offset. Callers stop guessing on behalf of engines they do not own. `snapshot` is one coherent read rather than a dozen getters, because reading position and duration separately is how a player reported <position> / 0.0 when a file unloaded between the two calls. `Phase::Opening` names the state the previous design could not express, and is the direct cause of DR-241: a seek arriving with nothing loaded had no phase to be queued against, so it was discarded. `Capabilities` exists so callers adapt without naming engines. If a caller ever branches on which engine it holds, this struct is missing something — engine identity leaking into callers is the coupling DR-238 came from. Nothing consumes it yet; PlayerController is ported in DR-245. Carries an explicit allow(dead_code) tied to that step rather than being hidden behind cfg(test), because it is production code being built in shippable pieces. |
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2f637d4775 |
feat(video): let mpv decode video at all, behind one shared flag
mpv has never decoded a video frame in this app: the backend sets `video: no` unconditionally, because Linux video has always been the webview's job and decoding it twice would burn a core for a picture nobody sees. The render path built in the previous commit therefore had nothing to draw. With native video on, mpv is configured for video *and* `vo=libmpv` — the render API only works through that output, and the default would try to open a window of its own. Set at construction, because mpv resolves its video output when it initialises and flipping the property later does not re-open one. The flag lives in `player::native_video`, read by all three things that must agree: the backend (configured before anything plays), the surface (nothing to draw otherwise), and `get_player_status` (which tells the frontend whether to use a `<video>` element — two decoders on one stream would fight over the audio). A function rather than three `env::var` checks, because a capability answered in several places is a capability whose answers drift: four separate bugs this cycle came from exactly that shape. Also fixes an ordering bug the first run exposed. The surface was attached in `setup` before the player backend was constructed, and the mpv handle is registered *during* that construction — so it found nothing every time and logged "no mpv handle". Attaching after the backend exists is the whole fix. Confirmed on a real run: mpv accepts `vo=libmpv`, the GL context comes up on Tauri's vbox, and `mpv_render_context_create` succeeds — which also proves the libepoxy data-symbol handling is right, since a wrong `get_proc_address` would have taken SIGSEGV on the first GL call rather than returning cleanly. No frame has reached the screen yet. The webview is still opaque, so it will paint over anything drawn beneath it until transparency is set up. Security: quick-xml 0.38.4 carried RUSTSEC-2026-0194 (quadratic parse on duplicate attribute names) and RUSTSEC-2026-0195 (unbounded namespace allocation, memory-exhaustion DoS). `cargo deny` gates CI on advisories, so this would have failed the next release. Fixed by plist 1.8 -> 1.10, which pulls quick-xml 0.41. Licences, bans and sources still pass. UT-216 pins the flag's parsing: absent, empty, `0`, `no` and anything unrecognised all mean off. A half-set variable that half-enabled the renderer would configure mpv for video with nothing drawing it — audio over a black rectangle. Also removes a wall-clock timer from the waitForRepository late-arrival test, which failed once under load. The assertion is about ordering, so it now publishes on a microtask and cannot race. |
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0445a6d0aa |
docs(requirements): DR-234 is in progress, not proposed
The renderer-derived codec source was built while chasing four Android bugs that all turned out to be the same defect, so it landed ahead of the spec that allocates it. Five call sites now read one source instead of re-deriving or hardcoding the webview's answer. Not Done: on Linux it still resolves per platform, because there is still only one renderer there. It becomes the runtime question the spec describes when mpv draws the picture. |
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a8c44145ff |
fix(player): letterbox the picture, and stop racing the session
Two bugs found by resizing the window during playback. Neither was introduced by this branch; both are the kind that only surface when somebody actually drags a window edge. The picture cropped and sat at the top instead of letterboxing. The video's flex wrapper had no `min-h-0`, and a flex item defaults to `min-height: auto` — it refuses to shrink below its content's intrinsic size, and a <video> reports the *media's* natural dimensions. So whenever the picture was larger than the window the wrapper grew past the viewport, the overflow went off the bottom, and what was visible was the top-left of an uncentred, uncropped image. `object-contain` was doing its job the whole time, inside a box that was the wrong size. This is also what put the picture at the bottom in fullscreen, reported earlier and unexplained until now. "Not connected to a server", shown as a *playback* error. The player page asks for the repository on mount, but the session is restored asynchronously at startup, so losing that race turned a perfectly good stream into a fatal error screen. `getRepository()` throwing instantly is right for a click handler, where the user is present; it is wrong for anything that runs on mount. `waitForRepository()` resolves as soon as the session lands and still rejects when there genuinely is not one, so a real logged-out state surfaces — just not as a race. Worth recording how this was found, because it was nearly misdiagnosed: the symptom correlated with window resizes, but the log showed 230 Vite HMR updates against a single app start — the frontend was being remounted under the test by edits made while it ran, and a remount empties the in-memory auth store. The race is real and worth fixing on its own merits, but "resize causes it" was an artifact of how it was being observed, not a property of the bug. UT-215 covers the waiting contract: resolves when already restored, resolves when the session arrives late, still rejects when there is none, unsubscribes once settled, and leaves no armed timer to reject an already-resolved promise. |
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7cc392d78f |
docs(specs): mpv draws desktop video, and the webview path goes
The spike proved compositing works on Linux, including Wayland, and left two blockers. One is now closed: DR-228 measured a single EXT-X-STREAM-INF in the server's master playlist, so there is no adaptive bitrate for mpv to lose and finding 3 of playback-backend-unification.md is false. The spike is updated to record that. The other — an unexplained SIGSEGV in a decoder thread — is carried into the spec as DR-231 rather than chased: the spike had no render-context teardown at all, which is DR-184 on Android restated, and removing the likeliest cause is worth doing whether or not it was the cause. The spec targets every desktop platform rather than Linux alone, because the maintenance argument runs the other way. Video has three renderers today. A Linux-only version makes it four, permanently — mpv on Linux, HTML5 on Windows, ExoPlayer on Android, hls.js underneath — and the webview path then survives indefinitely because something still needs it. Finishing the job leaves mpv on desktop and ExoPlayer on Android, and hls.js, html5Adapter.ts, videoLoaderFor and the <video> element are deleted in a phase that has its own acceptance criterion so it cannot quietly become "later". The load-bearing change is DR-233: the device profile stops being a compile-time platform constant and becomes a property of the renderer that will decode the stream. The measured 7% desktop direct-play rate and Android's 85% differ by nothing except which component decodes, so that one change is what converts the former toward the latter. It looks like configuration and is not — it decides whether the server re-encodes, and it fails silently when wrong. Windows is costed rather than waved at: the surface is genuinely different code (WebView2 in an HWND, not GTK), but everything else is shared, so nothing may be guarded on cfg!(target_os = "linux"). The real cost is build — libmpv is a Linux-only dependency while Windows cross-compiles via cargo-xwin, so a Windows libmpv must reach that build and ship in the NSIS bundle under the LGPL terms DR-216 already records. Allocates UR-080, DR-230..236, IR-033. No product code yet. |
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109700b949 |
feat(playback): let Rust decide what stream to play, and say so
Playing a video meant asking the server to re-encode it, always. That
decision was made nowhere and written down nowhere, so whoever needed it
re-derived it downstream — the player worked out whether it had been handed
a playlist by looking for ".m3u8" in the URL, in two places. A viewer paid
for a transcode of a file their device could have played untouched, and the
app could not tell them which it was.
One negotiation now produces one self-describing StreamSelection — direct
play, remux or transcode; over a playlist, a plain HTTP file, or a local one
— and every renderer consumes that same answer.
Measured against the development server (Jellyfin 10.11.5), 400 items
sampled for codec mix and 40 put through a real PlaybackInfo negotiation
per profile:
Linux / WebKitGTK (h264 only, 2ch) 3/40 — 7% direct play
Android / ExoPlayer (hevc, ac3/eac3, 6ch) 34/40 — 85% direct play
The library is ~80% hevc, which is why the two diverge so hard. The payoff
is overwhelmingly Android, where 85% of plays were starting a transcode
nobody needed. Linux stays near 7% until libmpv decodes the picture — the
h264-only profile is a WebKitGTK constraint, not a JellyTau choice.
DR-219 StreamSelection: url + tagged Transport (hls/progressive/localFile)
+ PlaybackKind (directPlay/directStream/transcode) + the negotiated
rendition + this source's ladder + a needs_transcoding flag derived
in Rust so the rule is answered once. Both enums are serde-tagged
so the frontend matches a discriminant, not a substring. The paths
that never negotiate get the same shape from Rust rather than
assembling one — media_local_selection for a downloaded file,
LiveStreamInfo.transport for a live channel — so there is no second
place where a transport is decided.
DR-220 The ceiling becomes two levels: a durable device default (Settings,
persisted) and a per-playback override the in-player picker sets.
The picker had called itself a "this film, this connection" control
since it was written but wrote the process-wide default, so dropping
one awkward film to 2 Mbps silently capped every video played
afterwards for the rest of the process, with Settings still showing
the old value. The override is cleared whenever playback moves to a
new item, which stops it surviving into an autoplayed next episode.
effective_streaming_quality() is the single resolution point.
DR-221 The quality picker is filled from what this media source can offer.
Rust marks a rung exceeds_source when its ceiling is at or above the
source's own bitrate — such a rung is another way to spell Original
— and the frontend does not draw those. Original is never marked; a
source whose bitrate the server does not report marks nothing, which
keeps every rung offered.
DR-222 Direct play and direct stream are negotiated, with two client-side
overrides on top because the server's answer is right about the file
and wrong about what this app will do with it: undecodable audio
(Jellyfin 10.11.5 honours a DirectPlayProfile's container and video
codec but ignores its audio codec, so it offers direct play for an
E-AC-3 track the webview renders in silence) and a viewer-pinned
audio track the file does not default to. A direct stream is a remux
and is deliberately not counted as transcoding.
DR-223 Dropped on measurement, not deferred. A master playlist from this
server carries exactly one EXT-X-STREAM-INF: Jellyfin builds it from
the single rendition the request asked for rather than publishing a
ladder. So there is no adaptation for hls.js to be preserving and
none mpv would lose — the claim that there was, in
playback-backend-unification.md, does not hold. Recorded rather than
deleted because it is a measurement: a server that does publish a
ladder would change the answer.
DR-224 Every backend consumes the same selection. The queue item carries
the transport, so player_seek_video picks its seek strategy from the
backend's decision instead of the last stream_url.contains(".m3u8")
in the codebase. Items queued by a path that never negotiated carry
None and fall back to needs_transcoding, which is exact rather than
a guess because every transcode this app requests is HLS (DR-140).
The frontend loader decision moves to streamTransport.ts so it can be
tested: the two cases that pin it are the ones that failed against the old
implementation — a progressive stream whose URL contains ".m3u8" must not
get an HLS loader, and an HLS stream whose URL contains none must.
Also verified the URL the direct-play branch builds actually serves playable
bytes: 206, video/mp4, valid ISO-BMFF, and a mid-file range works, so
seeking a direct play works.
The spec is folded into docs/architecture/{01,02,03} and deleted, per the
rule that docs/specs holds only work that has not shipped. DR-121 leaves
read-through-media-cache.md with a pointer; that spec keeps its capture half.
Not verified: real playback on a device. Direct play changes what actually
gets played, and neither fixtures nor curl prove the WebKitGTK and ExoPlayer
paths render it.
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edff6eedc9 |
fix(player): let the background-audio toggle govern backgrounding again
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Locking the screen kept a video's audio playing whether or not the background-audio button was on. Reported as "audio only mode is always active even if not selected". The button (UR-040) was built for the WebView <video> path, where losing visibility kills the decode: it chose between handing off to a native audio stream and letting playback stop. Native video then became the default renderer (DR-188), and on that path playback runs through ExoPlayer inside a MediaSessionService -- a foreground media service whose entire purpose is to keep playing while the app is hidden. Nothing stopped it, and nothing in the codebase paused on background. So the button governed a handoff that no longer had a gap to bridge. There was no interruption to paper over, and a user who never touched it got background playback anyway. The gating made it self-concealing: MainActivity.onStop only dispatched 'jellytau-background' when backgroundAudioEnabled was already true. The one notification that the app had gone away was itself conditional on the setting, so with the button OFF nothing could react even in principle. onStop and onStart now fire unconditionally and carry the two facts only the activity knows -- whether the toggle is armed, and whether Android put the window into picture-in-picture. What to do about it is decided in Rust (player/background_policy.rs), because it depends on whether the item has a picture to lose: video + toggle off -> Pause video + toggle on -> HandOffToAudio music, either -> KeepPlaying (no picture to give up) picture-in-picture -> KeepPlaying (the window is still on screen) It takes no renderer parameter on purpose. Two renderers with two behaviours and one toggle reaching only one of them is what produced the defect; a rule that cannot see the renderer cannot reproduce it. Two failure modes are deliberate. A decision call that fails leaves playback alone rather than risking silence mid-listen. An event with no detail -- older Kotlin against newer JS -- reads as "armed, not PiP", degrading to the previous behaviour instead of pausing unexpectedly. Foregrounding resumes only what backgrounding paused: a video the user paused themselves before locking stays paused. Written test-first per CLAUDE.md. The stub encoded today's behaviour (nothing ever pauses) and failed exactly as reported -- `left: KeepPlaying, right: Pause` -- before the rule was implemented. Verified on a device, R8-minified, both directions: [player_background_action] video=true armed=false pip=false -> Pause [player_background_action] video=true armed=true pip=false -> HandOffToAudio UR-040 / DR-224 / UT-211. |
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214997144f |
feat(deps): upgrade Tauri to 2.11.5, and own the Android context it stopped setting
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The plugin versions could not be matched upward without this: both
tauri-plugin-log 2.9.0 and tauri-plugin-updater 2.10.1 require tauri
^2.10, and the tree was on 2.9.5. So the framework moves with them --
tauri 2.9.5 -> 2.11.5, tauri-build 2.5.3 -> 2.6.3, wry 0.53.5 -> 0.55.1
-- and every plugin's Rust crate and npm package is now pinned to the
same version on both sides.
That upgrade broke Android outright, and the breakage is the interesting
part.
Seven call sites in this crate reach JNI through
ndk_context::android_context(), which reads a process-global pair of
pointers. Nothing here ever set that global. `tao` did -- the windowing
layer under wry, three levels below anything this project names in
Cargo.toml. tao 0.34.5 called initialize_android_context() while starting
the activity and our code read what it left behind. tao 0.35.3 keeps the
same two pointers in a private struct and no longer publishes them.
The result, on every launch, was:
PANIC at ndk-context/src/lib.rs:72: android context was not initialized
8: ndk_context::android_context
9: jellytau_lib::run::{{closure}}
Not a crash in our code, and not a change to our code: an undocumented
side effect of a transitive dependency disappeared. Relying on someone
else to populate a global is a dependency that does not appear in
Cargo.toml and gives no warning when it goes.
src-tauri/src/android_context.rs now owns that invariant instead of
assuming it. JNI_OnLoad captures the JavaVM as the shared library loads
-- the earliest moment available, and nothing in tao, wry or tauri
defines one to collide with. The Context is resolved lazily via
ActivityThread.currentApplication() and pinned as a global reference for
the process lifetime, since ndk_context stores a bare pointer and does
not own it. It publishes the Application rather than the Activity:
SecureStorage.initialize() immediately reduces its argument to
applicationContext anyway, and an Application cannot outlive itself the
way a retained Activity would.
Restoring the global keeps all seven callers untouched. Threading a VM
and Context handle through five credential call sites would have been a
larger change with more risk, on the credential path.
Failure now degrades instead of aborting: it is logged and credentials
fall back to the encrypted-file path, which the app already supports.
Verified on a device, R8-minified, not merely compiled:
[INIT] Android JavaVM and Application published to ndk_context
Android SecureStorage initialized successfully
Android Keystore available via SecureStorage
[INIT] Using system keyring for credential storage
[CodecDetection] Detected 7 video codecs: av1,h263,h264,hevc,...
-- the real keystore path, not the fallback, and the app stays up. None
of this is reachable by CI: nothing there runs the app.
Also fixed here, both found the same way:
- `tauri android build --apk true` is now `--apk`. The CLI took a value
until 2.10; from 2.11 the stray `true` is a positional and the build
fails before starting. Three call sites in build-android.sh and one
in build-release.yml -- the latter builds the signed APK, by far the
most-downloaded artifact.
- scripts/build-android.sh ran `npm install` on its clean-build path in
a bun project, ignoring bun.lock and re-resolving the tree. That is
exactly how the plugin crate/package versions drift apart again.
scripts/check-tooling.sh now fails on any npm/yarn/pnpm invocation or
foreign lockfile, and runs in CI.
DR-222, DR-223.
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9a19d30e6c |
fix(build): make the release actually buildable, and check it before tagging
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Preparing v0.10.0 meant building the release locally first. It did not build. Two separate defects were sitting on master, both invisible to every gate this project has, for the same reason: nothing in build-and-test.yml runs `tauri build`. Only a tag does. So the first time anyone would have discovered either was a failed release. **Tauri plugin versions had drifted apart.** Tauri refuses to build when a plugin's Rust crate and npm package are on different minor versions: tauri-plugin-log (v2.8.0) : @tauri-apps/plugin-log (v2.9.0) tauri-plugin-updater (v2.9.0) : @tauri-apps/plugin-updater (v2.10.1) Introduced by the updater and diagnostics work in this same branch -- `cargo add` took what the pinned toolchain allowed while `bun add` took latest, and the caret ranges let them separate. cargo check, clippy, cargo test and svelte-check all passed. Matching upward pulled wry 0.53.5 -> 0.54.2 along with wasm-bindgen, web-sys and webkit2gtk: the webview layer, which on Linux is the video playback path. That is not a change to make while cutting a release, so the npm packages are pinned down to the crates instead -- exactly, not by caret, since the caret is what allowed the drift. The upgrade is worth doing deliberately, with a playback check, and ci-operations.md says so. CI now runs `tauri info`, which performs the same comparison without building. Verified by reintroducing the mismatch and watching it fail. **The AppImage target had never been built.** It was added earlier in this branch because the release notes had advertised an AppImage for months while tauri.conf.json never produced one. It does not work out of the box: linuxdeploy carries its own `strip`, too old to parse the .relr.dyn section modern toolchains emit, and it fails on every bundled library -- strip: libzstd.so.1: unknown type [0x13] section `.relr.dyn' failed to bundle project `failed to run linuxdeploy` Ubuntu 23.10+ links with -z pack-relative-relocs by default, so the CI builder image fails exactly as a modern Arch host does. NO_STRIP=true is linuxdeploy's documented escape hatch. The resulting 153 MB AppImage was verified to be well-formed and to actually start. Without this the release would have failed at the Linux build step -- the artifact check added earlier refuses to publish when no AppImage is produced, which is the behaviour we want, but it would have refused a tagged build rather than a local one. Also: the traceability extractor now reads the tooling shell scripts that carry TRACES comments. DR-207, DR-213 and DR-220 all had them and were counted as uncovered because only .ts/.svelte/.rs were scanned. Listed individually rather than globbing scripts/*.sh -- most implement nothing, and adding one should be a decision. DR-221. |
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5d02628689 |
fix(release): publish real notes, and stop shipping old releases' installers
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Two defects found while preparing v0.9.2, both of which had been shipping for months without anything to notice them by. **Every release note was the same 1,050 bytes.** All 35 releases from v0.0.1 to v0.9.1 published identical generic install instructions whose "What's New" section read "See CHANGELOG.md" -- a link that does not resolve from a release page. A reader learned nothing about what changed in any release the project has ever made. The body now comes from the `## <version>` section of CHANGELOG.md, and a missing section fails the release: notes that say nothing are worse than a build that waits for a maintainer to write two sentences. The 35 published bodies have been backfilled from the changelog via the tea CLI. This also corrects something introduced two commits ago. That change generated the body from `bun run release:notes`, which CLAUDE.md is explicit about -- its output is "a reviewed draft, not a final changelog". Publishing it unreviewed proved the point immediately: the v0.9.1..HEAD range contains a repo-wide prettier sweep, so every file in src/ counted as changed, their TRACES resolved to nearly the whole matrix, and the draft claimed the release had added the entire application. The script now skips cosmetic commits (chore(format), chore(deps), style) and reports how many rather than silently returning a smaller set, but it stays a local drafting tool. **Every release from v0.1.0 to v0.8.2 shipped every Windows installer ever built.** src-tauri/target/*/release/bundle/ is not versioned, cargo never cleans it, and the runner reuses the target directory -- so the copy step's bundle/**/*-setup.exe glob collected the lot. v0.8.2 carried sixteen installers, thirteen of them stale; v0.5.0 offered users a download list going back to 0.1.0. Eight months, and nothing to notice it by: the upload loop reported success, the files were real, and the page looked busy rather than wrong. It stopped only because an unrelated cargo cache change wiped the runner's target dir, so it was dormant, not fixed. Both desktop builds now remove the bundle directory before building, so a stale file cannot exist to be copied. Filtering the copy by version would have hidden it instead. The Linux job gets the same treatment: it was never hit only because Linux packaging is newer, and the glob is identical. scripts/check-release-artifacts.sh is the backstop for whatever reintroduces one by a route nobody predicted. It runs before the SBOM, the checksums and the upload -- all of which describe the file set, so a stale artifact has to be caught before it is hashed and published as part of the release. Verified against a reconstruction of the real v0.8.2 accumulation. DR-219, DR-220, UT-210. |
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f3fa45f742 |
feat(diagnostics): persistent redacted logging and an exportable bundle
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🏗️ Build and Test JellyTau / Android Compile Check (pull_request) Successful in 4m10s
The app forgot everything it did the moment it exited. The Rust half
logged through env_logger to stdout only -- invisible to anyone who
launched from a desktop icon, and on Android worse than that: stdout is
not logcat, so the backend produced no visible output at all on the
platform carrying this project's hardest bugs. The autoplay deadlock,
the truncated-stream restart and the background-audio stall were all
diagnosed by talking a user through `adb logcat`, because there was no
other way to see anything. A panic left nothing behind at all.
Logs now go to a size-capped rotating file, to logcat on Android, and to
the webview console in dev. A panic is recorded with its backtrace before
the process dies. The frontend's messages are forwarded into the same
file, so one timeline holds both halves of the app in order -- which is
what makes a race between them legible after the fact, and races between
them are the expensive bug class here.
Redaction runs in the log FORMATTER, not at export time. A credential
sitting in a file on the device is already a disclosure; stripping it on
the way out would be too late. The exporter redacts a second time to
cover files written by builds that predate this. api_key, X-Emby-Token,
Authorization, "AccessToken" and Token="..." all reduce to [REDACTED],
while host, item ids and filenames are deliberately kept -- a log scrubbed
of those is one nobody can debug anything from. Server URLs keep scheme
and host and drop any embedded user:pass@.
Two things the tests caught that review would not have:
- redact_headers recursed on its own output. The replacement keeps the
header NAME, so the next call matched the same header forever; the
test died with a stack overflow. It is a forward scan now.
- The frontend forwarder used `void plugin.error(...)`. `void` discards
a promise's value but not its rejection, so in any webview without
IPC -- a unit test, SSR, a browser preview -- every log line became an
unhandled rejection. 20 of them showed up the first time coverage
ran. Each call now attaches a catch.
Only info and above cross the IPC boundary: debug is per-tick player
state and forwarding it would be thousands of calls a minute for output
nobody reads. A failing forwarder never propagates and never prevents the
console write.
Nothing is transmitted anywhere. The export writes a zip and reports its
path; the user attaches it themselves, which is also what keeps this from
becoming telemetry. An Android share intent is explicitly out of scope --
it is Kotlin work that belongs with the other native code.
The panic hook chains to the previous hook rather than replacing it,
because utils/lock.rs installs a silencing hook around tests that provoke
poisoned locks on purpose.
Spec in docs/specs/diagnostics-and-logging.md; UR-078 / DR-218 / UT-209.
Verified: 1079 frontend tests and the coverage gate, 759 Rust tests,
clippy -D warnings, svelte-check 0 errors, and cargo check for
aarch64-linux-android.
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3211c96ecf |
feat(updater): in-app update on desktop, releases link on Android
Anyone who installed an AppImage or ran the Windows installer was frozen
on that version forever. Nothing in the app ever mentioned a new release
existed, and the release notes were the only announcement.
Desktop now checks a signed manifest, shows the version and its notes in
Settings, and installs and relaunches on request. The signature check is
the whole point: it is what stops a substituted download from being
installed by the app itself. Windows binaries stay unsigned for
SmartScreen purposes -- that is a code-signing certificate, a separate
problem -- but the update payload is verified against our own key.
Android is deliberately not wired to the updater. An app may not replace
its own APK; that is the package installer's job, and the plugin has no
Android implementation. It gets a link to the releases page instead of a
button that would throw.
The plugins are gated with a target-triple cfg rather than
cfg(desktop). Cargo only evaluates target cfgs in a [target.'cfg(..)']
table, so cfg(desktop) matches nothing, silently drops the dependency,
and fails much later with "Permission updater:default not found" -- which
is exactly what the first attempt here did.
Where the manifest lives took some finding. This Gitea serves
/releases/download/<tag>/<asset> but 404s on
/releases/latest/download/<asset> (verified against a real asset), so
there is no stable latest-release URL. The gitea-pages branch is
force-pushed wholesale by publish-docs.yml, so it cannot host the file
either. latest.json therefore gets its own orphan branch, read over the
raw-file URL, and is published from a scratch repo in RUNNER_TEMP rather
than by switching branches in the checkout -- doing that would have left
the following steps standing on a one-commit history, and the next step
but one runs release:notes against the real commit range.
Also fixed, all of it release-integrity:
- "appimage" is in bundle.targets. The release notes have advertised an
AppImage for months; tauri.conf.json never built one, the artifact
step globbed for *.AppImage, found nothing, and said nothing. The
step now fails instead.
- The .AppImage.tar.gz/.sig pair and the NSIS .sig are collected. A
manifest referencing a signature that was never uploaded fails only
on the user's machine, so the manifest step also refuses to write an
entry with an empty signature.
- Release notes are generated by release:notes from the traceability
graph, which is what CLAUDE.md has asked for all along, instead of a
fixed heredoc that said "see CHANGELOG.md for detailed changes" and
linked "GitHub Issues" on a Gitea-hosted project.
- The notes tell users how to verify a download with SHA256SUMS.
Requirements UR-077 / DR-217, tests UT-208 (12 cases over the version
comparison and the platform decision, including that a pre-release does
not offer itself as an upgrade to the matching release).
Verified: 1070 frontend tests, cargo check for both the host and
aarch64-linux-android (confirming the plugins are absent there), clippy
-D warnings, svelte-check 0 errors.
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f6653e6a8b |
ci(security): add a supply-chain gate, checksums and an SBOM
The project shipped signed Android builds and unsigned desktop binaries
with no vulnerability scanning of any kind. Nothing checked the ~500
crate Rust graph or the JS packages against an advisory feed, and nothing
checked that what we redistribute inside an MIT bundle permits it.
The first cargo-deny run found eight vulnerabilities and one
unsoundness -- bytes, four in rustls-webpki, time, two in quick-xml and
rand -- every one of them closed by a `cargo update` nobody had a reason
to run. That update is in this commit; 740 Rust tests and clippy
-D warnings pass on the new lockfile.
Two structural fixes matter as much as the gate itself:
- deny.toml scopes the graph to the targets we actually ship. Without
it the Apple targets pull in plist -> quick-xml and report two DoS
advisories against a crate that is in no binary we release. Ignoring
those by ID would silence them everywhere, including where they
would matter; scoping makes them correctly absent.
- libmpv is pinned by rev instead of branch = "master". A branch means
the revision is whatever Cargo.lock happens to hold and any
`cargo update` silently substitutes new upstream code -- in the one
dependency that is not from crates.io and that links a C library
into the player. The rev is the commit already locked, so this pins
current behaviour rather than changing it.
Licence findings are recorded rather than waved through. libmpv and
libmpv-sys are LGPL-2.1, satisfied here by dynamic linking against the
system library; deny.toml carries the two obligations that follow (keep
the linkage dynamic, ship libmpv's licence text with any bundle carrying
the .so). MPL-2.0 crates are file-level copyleft and fine unmodified.
Releases now publish SHA256SUMS (verified in-job with `sha256sum -c`
before upload) and a CycloneDX SBOM for both halves, so "does this
release contain <vulnerable crate>?" has an answer that is not "rebuild
the tag and re-resolve it".
Workflows pin jellytau-builder:2026.08 instead of :latest. While every
job said :latest, rebuilding the image changed what every build compiled
against, including rebuilds of old release tags.
Also folded in, because both were the same class of problem:
- publish-docs.yml downloaded mdBook from GitHub releases into
/usr/local/bin at job time -- a toolchain install in CI, which
CLAUDE.md explicitly forbids, and a hard dependency on GitHub's CDN
at publish time. It is in the builder image now.
- extract-traces.ts only ever read .ts/.svelte/.rs, so every
requirement implemented by *configuration* was invisible to the
matrix that measures it. DR-205, DR-206, DR-207 and DR-215 all carry
TRACES comments nothing read, and each counted as uncovered while
being covered. Coverage was really 90%, not 88%; MIN_THRESHOLD moves
to 89 accordingly. CI workflows stay excluded and there is a test
saying why: traceability-check.yml quotes "a TRACES: comment" beside
deliberately-undefined example IDs, which the extractor would read
as real traces and then fail its own dangling-ID check.
Supply-chain requirement is DR-216.
🔴 The builder image must be rebuilt and pushed
(scripts/build-builder-image.sh 2026.08) before this reaches master --
the workflows now name a tag and tools that do not exist in the registry
yet.
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32043a2152 |
docs: fold shipped specs into the architecture docs and delete them
A spec was a promise; sixteen of them had become descriptions of code that already shipped, sitting beside four that describe work still outstanding, with nothing in the file telling the two apart. Half the statuses were also wrong — audio-equalizer read "Accepted" with the EQ live on both platforms, the native video spec said the flag stays off after the default was flipped on. The shipped designs move into docs/architecture, which is the maintained description of the build, and the spec files go. Git history keeps the originals; what a future change still needs is carried across: - 01-rust-backend: favourites rewritten (the old section named a file that no longer exists and called shipped buttons "planned"), domain vocabulary owned by Rust (SearchScope, exclusions, the bitrate ladder), background workers - 02-svelte-frontend: app shell and chrome, library mosaic, series/episode navigation, downloaded browse, safe-area insets, native-video store, logging - 03-data-flow: locally-indexed search - 05-platform-backends: audio settings on ExoPlayer, the equalizer's band vocabulary, native video compositing, the background-audio handoff - 06-downloads-and-offline: one storage model, offline catalog visibility - 09-security: path confinement and input binding docs/specs/README.md now says what the directory is for and where each shipped design went. Deferred work the specs recorded is kept beside the code it concerns rather than lost: season-bounded autoplay, the two dead search commands, why indexing is a full crawl. requirements.md had fourteen stale statuses — Android audio parity still read "Linux only", DR-150 still said the native-video default was off, DR-190 was Proposed after DR-196 implemented it, and five tooling requirements were Proposed after landing. Three unbuilt specs suggested requirement ids that have since been allocated to other work; each now carries a warning. |
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8f5c9023d0 |
ci: make the frontend gates real, and fix the coverage script
The repo configured four frontend gates and enforced one of them. eslint
and prettier ran in no workflow and no hook; `bun run check` ran only in
build-release.yml, so a type error could sit on master until somebody cut
a tag; and `bun run test:coverage` had been dead for months.
CI (build-and-test.yml) now runs format:check, lint, check and coverage
alongside the existing boundary and doc-link tripwires.
The coverage script failure was a version mismatch, not a config problem:
@vitest/coverage-v8 resolved to 4.1.10, whose peer range pins vitest
exactly, while package.json asked for ">=1.0.0 <5.0.0" and got 4.0.16 --
every run died on a missing BaseCoverageProvider export. The loose range
is what allowed the pair to drift, so it is now ^4.1.10.
Two ratchets, same policy as MIN_THRESHOLD in traceability-check.yml:
eslint --max-warnings=159 (0 errors; 159 is today's backlog, only
ever lower it)
vitest thresholds (statements 51 / branches 45 /
functions 46 / lines 52, measured at
54.6 / 48.7 / 49.6 / 55.1)
no-console is promoted from "off" to "error": the logger-facade
migration it was waiting on is finished -- 8 calls remained, 2 of them
real stragglers in the settings page, now on the facade the file already
imported. The sink itself, tests, and scripts/ are exempted; a CLI whose
stdout is the product is not a stray debug statement.
The threshold was verified to bite by raising it to 99 and watching the
run go red, not by assuming an unfailed gate works.
DR-205 moves to Done; the coverage gate is DR-215.
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16658889a2 |
fix(home): restart the hero banner timer on a manual change
🏗️ Build and Test JellyTau / Run Tests (push) Failing after 14m18s
🏗️ Build and Test JellyTau / Android Compile Check (push) Skipped
Publish Documentation / Build & publish docs to gitea-pages (push) Successful in 5m31s
Traceability Validation / Check Requirement Traces (push) Successful in 17s
Build & Release / Run Tests (push) Failing after 14m7s
Build & Release / Build Linux (push) Skipped
Build & Release / Build Windows (push) Skipped
Build & Release / Build Android (push) Skipped
Build & Release / Create Release (push) Skipped
The rotation interval was installed once when the banner mounted and never touched again, so a swipe, arrow or dot tap inherited whatever was left of the running countdown — swiping 5.5s into a 6s interval moved the banner on half a second later. The timer moves into heroRotation.ts as a small restartable object so it can be unit-tested, and every manual navigation path restarts it from that moment. Verified red-first: with restart() reverted to leave a running timer alone, the regression test fails. Release 0.9.1. |
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d32ca13d00 |
chore: give the project its own identity instead of the scaffold's
Cargo.toml still carried `description = "A Tauri App"` and `authors = ["you"]`, package.json's description was empty with no author or repository, and there was no LICENSE file at all despite package.json declaring MIT. The user-visible half matters more. productName was the scaffold's lowercase "jellytau", which is what the Android *release* build shows under its icon and what the deb/rpm/NSIS bundles carry as their display name. It went unnoticed because build.gradle.kts overrides the label to "JellyTau Debug" for the debug build type — the install a developer sees every day was the only correctly-cased one. mainBinaryName pins the executable filename to "jellytau" so build-windows-cross.sh and the Arch PKGBUILD, which both resolve it by name, need no change. strings.xml moves into the canonical android tree rather than being edited in gen/, since sync-android-sources.sh already copies res/values/*.xml — so the fix survives the next regeneration. Bundle metadata (publisher, copyright, category, descriptions, licence) was absent entirely, so the packages shipped with no maintainer or description. The hand-written PKGBUILD and .desktop had all of it; only the generated packaging was wrong. Adds .env.example: three scripts require signing vars from a gitignored .env and .gitignore already whitelists the example, but none existed. TRACES: | DR-214 |
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2a3f08f8a4 |
build: hand containerised build artifacts back to the host user
The compose services bind-mount the repo and build as root, so every artifact they leave in src-tauri/target belongs to root on the host. It accumulates: 11,124 such files had built up, enough that cargo clean and scripts/clean.sh failed with EACCES — and a plain cargo build died part-way through, because build scripts compile for the host and land in target/debug even when cross-compiling to Android. That is what blocked the device build in this batch. Restores ownership at the end of each containerised build, reading the intended owner from the checkout so no uid has to be plumbed through from the host. A no-op when not running as root, so the native build scripts call it unconditionally. Running the containers as the host uid is the tidier fix and stays open — it needs the cargo/bun cache volumes moved off /root first, which is why this is not a one-line user: directive. TRACES: | DR-213 |
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aeb29f916b | docs(requirements): add rows for the path-confinement and query-binding work | ||
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662cb3cd85 |
docs(requirements): add new IDs, retire the v0.6.0 audit, record module size
Adds the requirement rows other work in flight needs so `traces:validate`
stays green: DR-204 (frontend logging facade), DR-205 (ESLint + Prettier
gate), DR-206 (pinned Rust toolchain), DR-207 (pre-commit hook), DR-208
(documentation link integrity), DR-209 (server-side library folder
exclusion) and UR-076, plus §4 test rows UT-201, UT-202 and UT-203.
Deletes docs/codebase-audit.md. It was a 2026-08-16 snapshot of v0.6.0 at
commit
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c18d79c656 |
fix(android): stop background audio rewinding to where it started
A video handed off to background audio (UR-040) streams a live mp3 transcode
over plain HTTP. That response is chunked, so there is no Content-Length, and a
live encode carries no Xing header, so the extractor establishes no duration —
on device every position tick reads "<position> / 0.0".
ProgressiveMediaPeriod.configureRetry resumes a failed load in place only when
the content length is known or the seek map has a duration. With neither it
assumes the source is live, sets pendingDeferredRetry, and when the sample
queues next run dry resets them and re-requests the URL from offset 0. Our URL
carries StartTimeTicks = the handoff point, so "offset 0" is where audio-only
mode began: a transient load error armed a retry that fired minutes later, when
the buffer finally drained, and playback resumed at the handoff point and ran
on from there. A successful retry raises no error and ends nothing, so neither
arm of DR-129 was consulted and no discontinuity handler existed — the only
trace was a position that went backwards, which is why it read as random, and
why the two earlier fixes for the same symptom (DR-129's phantom end, DR-159's
relative-timeline leak) left it standing.
A retry that can only restart the stream is worth less than no retry at all.
player_retry_restarts_stream marks a Remote audio-only video item,
loadWithMetadata carries the answer to Kotlin, and the pure StreamRetryDecision
holds it for a DefaultLoadErrorHandlingPolicy that returns C.TIME_UNSET —
making onLoadError answer DONT_RETRY_FATAL before it reaches configureRetry.
The rewind becomes a recoverable error, which recoverable_error_resume already
answers by re-opening at the position playback reached, StartTimeTicks
rewritten so the selected audio track survives. Every other source keeps the
player's retry: a static file and an HLS playlist declare their timeline and
are resumed where the load stopped. onPositionDiscontinuity is added for its
log line alone, loud for DISCONTINUITY_REASON_INTERNAL, which is the rewind's
own signature.
Verified on device (FP5), same procedure both runs — handoff, 60s to fill the
buffer, a 45s radio outage:
before 13:54:52 BUFFERING, then "Media ready! Duration: -9.22e15"
(C.TIME_UNSET) and position 1165.4s -> 840.349s, exactly the handoff
base, 3.5 minutes after the outage with nothing logged between
after 14:05:08 "declining the player's retry", playback undisturbed off the
buffer for 69s (a fatal load error is only raised when the renderer
next needs data), then ERROR_CODE_IO_NETWORK_CONNECTION_FAILED ->
re-opening at 785.6s -> READY, and no rewind in the following 7 min
Kotlin tests run with ./gradlew :app:testUniversalDebugUnitTest.
TRACES: UR-040, UR-004 | DR-203 | UT-200
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69c2498cf7 |
docs(traceability): record DR-202 device verification
FP5, native ExoPlayer path: the hold follows IS PLAYING CHANGED within 17 ms, dumpsys shows fl=KEEP_SCREEN_ON on the window, and a pause/resume round-trip releases and re-takes it. The webview <video> path is still unverified. |
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caebf2d139 |
fix(android): keep the display awake while video plays
Android counts its display timeout from the last user input, and watching
something is exactly the case where there is none — so the screen dimmed and
slept mid-playback unless the user kept tapping it.
Nothing held it. FLAG_KEEP_SCREEN_ON appeared nowhere in the app, and neither
renderer supplies a hold for free: ExoPlayer's setWakeMode is a CPU/wifi wake
lock that says nothing about the display, and it draws into the TextureView we
own (DR-192) rather than media3's PlayerView, which is the widget that would
otherwise set keepScreenOn itself; the webview <video> path is no better,
because the display wake lock Chrome takes for video lives in the browser layer
and not in an embedded WebView.
ScreenWakeManager toggles FLAG_KEEP_SCREEN_ON on the Activity window — window
scoped, so it stops applying the moment the app is not visible and cannot
outlive a crash the way an acquired PowerManager.WakeLock can, and it needs no
permission. The two rendering paths are independent holders OR-ed in the pure
ScreenWakeState: the native path follows onIsPlayingChanged plus surface
teardown, so the hold tracks what ExoPlayer reports rather than what the UI
intends, and the webview path reuses the setHtml5VideoState report the frontend
already sends for PiP. Audio is deliberately not a holder — screen-off music is
the point of that path.
Also the repo's first Kotlin JVM unit tests: ScreenWakeState is framework-free,
so the decision is testable off-device with
./gradlew :app:testUniversalDebugUnitTest
(note the variant — plain testDebugUnitTest is ambiguous here). sync-android
-sources.sh mirrors src/test into the gen tree alongside the main sources.
TRACES: UR-003, UR-004 | DR-202 | UT-199
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d5d0e35bca |
docs(debt): close the R8 release-APK validation item
Validated on device. It was the last item gating confidence in v0.8.0 itself: R8 stripping JNI-loaded classes has broken release builds here before, and this release added a new Kotlin path the unminified debug pass did not exercise. Recorded as closed rather than deleted, so it is not re-raised. |
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a1cb142df4 |
docs(debt): record the 12 open items from the codebase audit
Findings not addressed in v0.8.0, plus items the device-verification pass turned up, ordered by what would hurt most if left. Highest are the Android 16 Local Network Protections exposure (LAN Jellyfin access is the app's core function and enforcement is coming) and the traceability extractor's blindness to the Kotlin tree, which means the 90% figure excludes a whole platform. |
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6dfc6b259a |
fix(player): lockscreen skip scrubs instead of advancing in background audio
onSkipToNext/onSkipToPrevious forwarded a bare next/previous to Rust, which always advanced the queue. Correct for music, wrong for a video whose audio is running through a background-audio handoff (UR-040): pressing skip to re-hear a line jumped to the next episode instead of scrubbing. resolve_skip_action in player/seek.rs maps the command to Advance or SeekTo, and is_background_audio_active() is the whole test — the handoff exists only for video, and an episode played through it reports MediaType::Audio, so media type cannot distinguish the case. Forward 30s, back 10s, both clamped to [0, duration] so a skip near either end cannot seek negative or read as EOF and advance. Routed through the same spawn-then-seek_absolute path as the scrubber, because a handoff seek re-opens the stream and must not run under the blocking lock (DR-159). Kotlin keeps sending the opaque command; it only gains FAST_FORWARD/ REWIND in the PlaybackStateCompat so the system stops drawing skip arrows for a control that scrubs. The remote-volume action block is deliberately untouched: the handoff never applies to cast sessions, where skip really does mean advance. Tests written first and watched fail (left: Advance, right: SeekTo). 706 Rust tests pass, clippy 0, coverage 90%. |
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88e15e3e12 |
merge: Android runtime security (B1, B3)
Correct the POST_NOTIFICATIONS mechanism: the lockscreen notification is exempt because of the MediaSession token, not because it belongs to a foreground service — FGS notifications are explicitly NOT exempt. So no permission prompt and no checkSelfPermission gate; instead both notification builders bind the token once and log loudly if it is ever null, turning a silent failure into a logcat line. Stop the webview undoing the network security config: mixedContentMode COMPATIBILITY, allowFileAccess/allowContentAccess false. Conflict resolution: this branch's DR-198 collided with the Tauri branch's, so it was renumbered DR-200 (3 TRACES in JellyTauPlaybackService.kt and the UR-006 matrix row updated). DR-199 was uncontested. Pinned counts summed to DR 191 / total 334; UR-071 takes both DR-198 and DR-199. |
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c9f33ae6a4 |
merge: restrictive CSP and narrowed asset scope (C1, C2)
Set a CSP with script-src 'self' (Tauri nonces the one inline bootstrap script), object-src/frame-src 'none', and necessarily-permissive img/media/connect for the user-supplied Jellyfin origin. Narrow assetProtocol $APPDATA/** -> thumbnails/**, which is convertFileSrc's only remaining caller. Conflict resolution: scripts/extract-traces.test.ts pinned counts summed rather than side-picked — DR-189 and DR-198 were added independently on two branches, so DR 187 -> 189 and total 330 -> 332. docs/traceability.md regenerated. |
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2d21f092d5 |
fix(android): stop the webview undoing the network security config
MainActivity set mixedContentMode = MIXED_CONTENT_ALWAYS_ALLOW together with allowFileAccess/allowContentAccess = true, which is a blanket cleartext opt-in reached by hand — the exact thing network_security_config.xml exists to prevent and its own comment warns against. Nothing needed any of the three: - file:// is never loaded. Cached thumbnails go through convertFileSrc, which on Android resolves to http://asset.localhost/... and is answered by wry's request interceptor rather than the filesystem; downloaded media goes over the loopback HTTP server (DR-137), which exists precisely because the asset/file route cannot stream a large file. - content:// is never loaded. The manifest's FileProvider is for outbound share intents, not webview navigation. - Mixed content never arises. Tauri serves the UI from http://tauri.localhost (use_https_scheme defaults false and is not set), and both 127.0.0.1 and asset.localhost are loopback/.localhost origins Chromium treats as potentially trustworthy. A plain-HTTP remote server would be mixed content, but the network security config already rejects it first — so ALWAYS_ALLOW bought nothing. COMPATIBILITY_MODE rather than NEVER_ALLOW is a deliberate hedge: the platform default at targetSdk 21+ is NEVER_ALLOW, so this is still one step looser, and it keeps passive content working if the analysis missed a path. The two files now cross-reference each other so the pair cannot drift apart again. Also records why POST_NOTIFICATIONS is declared but never requested. An audit read the missing runtime request as a threat to the lockscreen controls; it is not. A foreground-service notification is explicitly NOT exempt, but a media-session one is, and the platform predicate (Notification.isMediaNotification) requires MediaStyle AND a non-null session token. Confirmed on device: appops POST_NOTIFICATION: ignore with the transport notification live. So no permission prompt is added and startForeground stays ungated — a guard there would trade a cosmetic problem for the "did not then call Service.startForeground()" kill. What is added is the guard matching the real precondition: both builders bind the token once and log an error if it is ever null, since SystemUI's media carousel is gated on the same predicate and a token-less notification loses the lockscreen controls entirely, silently. TRACES: UR-006, UR-071 | DR-198, DR-199 |
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ebf9a99b80 |
docs(traces): tag the twelve "Done but untraced" requirements, and stop the matrix over-reporting
Twelve requirements were marked Done in docs/requirements.md with zero TRACES anywhere in the tree. The features work — the tags were simply never written — so the matrix over-reported on exactly the requirements a reviewer would most want to verify. Each is now tagged at the code that actually implements it: - JA-006 / JA-009 / JA-013 / JA-014 / JA-015 / JA-018 and IR-022 / IR-024 at their Jellyfin call sites in repository/online.rs (search, get_item's MediaStreams/People fields, Items/Resume, Shows/NextUp, FavoriteItems DELETE, get_person/get_items_by_person), plus the commands that expose them. - UR-006 / IR-006 across the lockscreen spine: JellyTauPlaybackService (the MediaSessionCompat owner), the nativeOnMediaCommand JNI intake, and LockscreenMetadata / update_lockscreen_metadata. - IR-008 at both audio-focus mechanisms — ExoPlayer-managed for audio, the manual AudioFocusRequest listener for video — and at the media-type string that chooses between them. - UR-037 (with DR-042, also untraced) on the video-library poster grid: LibraryGrid, MediaCard, and the tv/movies routes. Resolve contradictory statuses across layers, evidence first: - IR-018/IR-019 were Planned under Done URs because they were scoped to libmpv. MpvBackend is the audio-only backend and overrides neither set_subtitle_track nor set_audio_track — the trait's not_implemented() default still stands — so UR-020/UR-021 are met by ExoPlayer and by the HTML5 <video> path instead. Both IRs are re-scoped to those backends and marked Done; IT-008/IT-009 and the stale @req-planned markers in backend.rs follow. - IR-005 (MPRIS) stays Planned: there is no MPRIS/D-Bus code or dependency in the project and update_lockscreen_metadata is a no-op off Android. UR-006 is corrected to Done (Android) rather than the IR being marked Done. - A note under the IR table records where a UR is met by a different mechanism than its IR anticipated. Define the two dangling IDs the source already referenced: DR-189 (the control bar never auto-hid on a touchscreen, because its timer was armed only from onmousemove) and UT-188 (its rule test). The live-denominator assertion in extract-traces.test.ts moves 187/330 to 188/331 accordingly. Traced requirements 444 to 459; IR coverage 19/32 to 25/32. |
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38dd1129e5 |
feat(security): set a restrictive CSP and scope the asset protocol to thumbnails
`app.security.csp` was `null`, so the webview ran with no Content-Security-Policy
at all: any script that reached the web layer would have inherited the whole IPC
surface. There is no known injection path today (one app-owned `{@html}`, no
`innerHTML`/`eval`), so this is defence in depth rather than a fix for an open
hole.
`script-src 'self'` is the restrictive half — Tauri nonces SvelteKit's inline
bootstrap script at build time, so no `'unsafe-inline'` is needed — together with
`object-src`/`frame-src 'none'` and `base-uri 'self'`. `img-src`/`media-src`/
`connect-src` cannot be restrictive: the Jellyfin origin is typed in by the user
at run time and is routinely plain http on a LAN, so they allow `http:`/`https:`.
That is a wide grant for data, but it still bars `file:`/`filesystem:` and does
not touch script execution. A run-time policy naming the server exactly was
rejected: Tauri derives the header from immutable config when it serves the HTML,
so it would mean rebuilding config and reloading the webview on every server
change. `style-src` keeps `'unsafe-inline'` because Svelte compiles `style="…"`
attributes into markup; `worker-src`/`media-src` keep `blob:` for hls.js's
demuxer worker and its MSE object URL; `ipc:`/`http://ipc.localhost` keeps
`invoke` working. `devCsp` mirrors it with the eval/inline/websocket allowances
Vite's dev server needs.
The asset-protocol scope narrows from `$APPDATA/**` — the storage root holding
the SQLite database and the encrypted-token fallback file — to
`$APPDATA/thumbnails/**`. Since DR-137 moved downloaded media to the loopback
media server, `imageCache` is the only `convertFileSrc` caller left.
Needs manual verification on both platforms: thumbnails, online HLS video and
offline downloaded video cannot be exercised headlessly.
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73641e192c |
chore(release): 0.7.0
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Version bumped across package.json, tauri.conf.json and Cargo.toml (+ lock), CHANGELOG entry written from the five commits in the range rather than from the trace extractor's output — VideoPlayer.svelte alone carries dozens of TRACES, so the generated draft named most of the app's requirements for a five-commit release. DR-188 is retargeted: it recorded the native-video default as waiting on the background-audio handoff, which is now fixed (DR-196), so it records the completed flip and the evidence for it instead. Minor, not patch: the rendering path changes underneath every Android user. |
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be907b4945 |
fix(home): stop Next Up repeating Continue Watching
Jellyfin's /Shows/NextUp defaults EnableResumable=true, which returns a
partially-watched episode as its own series' next up — precisely the
episode /Items/Resume already returns. Home's "Next Episode" row and the
TV landing's Next Up row therefore duplicated Continue Watching card for
card.
build_next_up_endpoint now sends EnableResumable=false, and because
servers predating that parameter ignore it, filterInProgressNextUpItems
also drops any next-up entry whose id appears in the resume list. It is
the mirror of DR-089 and sits beside it: presentation-layer de-duplication
over two lists the frontend already holds. The resume filter still reads
its frontier from the unfiltered Next Up list, so pruning in-progress
entries cannot resurrect a stale resume card.
The code changes were swept into
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5e8efa252e |
fix(player): restart the native renderer when returning from background audio
With native video on, coming back from background audio left a black screen: a play overlay pinned at 0:00, a seek bar at zero, and a play button that did nothing. Nothing crashed — the process stayed up and the frontend kept logging — the transition was simply dropped. The two render paths resume by different means, and exitBackgroundAudioHandoff only ever performed one of them. The webview <video> reloads off its stream URL: an $effect watches it, reinitialises HLS or sets element.src, and canplay drives the seek and play. ExoPlayer owns no element and nothing watches the URL on its behalf — native playback is only ever started by an explicit player_play_item plus adapter load, which the component issues once, from onMount. So reassigning the URL restarted precisely nothing, and since player_exit_background_audio had already stopped the handoff's audio player, the backend came back holding no item at all. That is why the play button was inert: there was nothing loaded to play. The return now re-issues that pair on the native path, in the same order as the initial load, carrying the position the audio reached. Subtitle configurations are reused from the ones resolved at mount — ExoPlayer sideloads them as MediaItem.SubtitleConfigurations and cannot accept one after prepare(). Which path to take is decided by planHandoffReturn, a pure helper in backgroundAudioHandoff.ts, so the branch is unit-testable without mounting the player. It also folds in shouldResumeOnForeground, so a pause taken on the lockscreen during the handoff still wins over the snapshot captured on the way out. Verified on device (HONOR ROD2-W09, Android 16): handoff to audio-only at 69:54, return restored native video playing at 70:18. Previously the same sequence left the player idle and black. The requirements count pin in extract-traces.test.ts moves with the new DR-196. |
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1285908733 |
fix(android): paint the letterbox bars, so stale pixels stop surviving in them
Native video left debris in the padding around the video: the "previous frame" flash on rotation, a ghost copy of the control bar stranded in the top bar, each new clock digit drawn over the one before it (35:42 with the 1 still showing through the 2), and the sleep/quality menus leaving their imprint after closing. One cause under all of it — nothing painted those bars. The window surface is opaque; the theme is not translucent and dumpsys window shows no translucency flag. For an opaque surface HWUI deliberately does NOT clear the damaged region before replaying a frame: it assumes the view hierarchy covers every pixel it owns. Here that hierarchy is window background → video TextureView → transparent WebView, and fitSurfaceToScreen sizes the TextureView to the letterboxed video rect. So the bars were the window background's alone to paint, and setTransparent(true) cleared it to TRANSPARENT — leaving them painted by nobody, with whatever was last in the framebuffer surviving there. The window background now stays opaque black while compositing. It cannot hide the video: the TextureView is drawn on top of it, and the WebView's own background is what lets the picture through. Three previous attempts missed because they aimed at the window's rotation animation and at TextureView frame-retention — two postOnAnimation hops, an onSurfaceTextureUpdated reveal, then ROTATION_ANIMATION_JUMPCUT with FLAG_FULLSCREEN to make it stick. The pixels were never the animation's, which is also why the artefact reproduces standing still, with no rotation involved. Those are removed. The alpha-hiding among them actively made things worse: it blanked the one view that reliably paints its own rect. FLAG_FULLSCREEN goes too — it fought edge-to-edge insets for no gain. Verified on device (HONOR ROD2-W09, Android 16): reproduced with native video on — ghost control bar in the top bar, doubled clock digit — then absent after the fix across playback, the control bar and a rotation round-trip. DR-194 is rewritten to record the real mechanism and marked Done. |
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dccb5f53dd |
fix(android): stop the rotation cross-fade replaying the old video frame
Rotating with native video on shows the previous frame flashing in what become
the letterbox bars. It reads as a TextureView artefact — the view retains its
last frame, so between the rotation and fitSurfaceToScreen() landing that frame
sits at the old size — and two fixes were built on that reading:
1. reveal after two postOnAnimation hops. An animation frame is not a video
frame; at 24fps the next decoded frame can be several vsyncs away.
2. reveal on onSurfaceTextureUpdated, i.e. when a real frame lands. This meant
owning the SurfaceTextureListener and handing ExoPlayer the Surface directly
instead of via setVideoTextureView, which installs its own and leaves us
blind to frame arrival.
Neither stopped the flash. The mechanism is the WINDOW's rotation animation:
Android cross-fades a screenshot of the old orientation, that screenshot holds
the old video frame at the old size, and nothing at the TextureView level can
reach it. The app cannot pre-empt the screenshot either — onConfigurationChanged
fires after it is taken.
So the animation itself has to go: ROTATION_ANIMATION_JUMPCUT. That was accepted
and silently ignored, and the platform said why out loud —
"VRI[MainActivity]: setLayoutParams: not fullscreen" — because the attribute is
honoured only for a fullscreen window. FLAG_FULLSCREEN is therefore set with it,
scoped to while native compositing is active so the rest of the app keeps its
normal animation. After the change that complaint is gone from logcat.
The frame-arrival reveal is kept: it replaces a fixed-timeout guess with a real
signal, and its timeout is required rather than defensive — a resize while paused
means no new frame is ever coming, and revealing a stale frame beats a
permanently black player.
NOT CONFIRMED FIXED on device. The forced-rotation harness
(settings put system user_rotation) proved unreliable here, and screenrecord
fixes its canvas at start, so a rotation inside a recording never changes frame
dimensions — which defeated two separate attempts to measure this. DR-194 is
recorded as "Needs device verification" rather than Done.
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c142568230 |
fix(player): make transport reach the player that is actually rendering
Play/pause did nothing on the Android native video path — from the on-screen tap, from the control bar, and from a direct player_toggle invocation — while seek and skip kept working. That asymmetry was the whole clue: seek decides in player_seek_video, transport decides in toggle_playback. DR-195 is the cause. `html5_playing` is Rust's record of "a webview <video> is active and in this state", and toggle_playback/play/pause all route transport to that element whenever it is set. The player route mirrored element state into it UNCONDITIONALLY — from handleReportStart and, fatally, from handleReportProgress, which VideoPlayer calls on a 10-second interval. So on the native path the frontend re-declared every ten seconds that an element was playing when none existed, and every transport intent was emitted into the void. It also explains the flashing: the control bar and the JRay overlay both key off isPlaying, which was being contradicted on every tick. The mirror now lives in mirrorElementStateToRust() in VideoPlayer, gated on useHtml5Element — the only place that knows whether an element renders at all. The route cannot tell the paths apart, which is exactly how it came to lie. DR-193 hands transport authority back to the native backend when an item loads into it. Necessary but insufficient alone: the progress interval put the flag straight back, which is why the first device test after it still failed. DR-192 presents native video through a TextureView instead of a SurfaceView. A SurfaceView renders on its own layer outside the app window and punches a transparent region through it, and everything drawn above that hole — here, the entire Svelte UI — depends on that composition path. The overlay dropped its incremental damage: the DOM advanced (slider 476 -> 479 across three seconds) behind a screen showing neither, so the progress bar froze, controls would not fade and rotation lost the transport UI, while structural DOM changes got through, which is why the play overlay always appeared to work. It supersedes DR-191, which forced redraws in a loop and treated the symptom. DR-194 hides the video view across a resize and reveals it two frames later. A TextureView retains its last frame, so between a rotation and the re-fit landing that frame is stretched across the old rect and the previous frame flashes in what should be the letterbox bars. Verified on device (Honor ROD2-W09, Android 16) by driving ADB and reading the live DOM over the devtools socket: surface tap pauses (position frozen across 12 seconds, overlay raised, transport flipped) and resumes; the control bar does both. UT-189 drives the real 10-second interval under fake timers — an earlier version asserted on a freshly mounted player, passed with the guard deleted, and guarded nothing. Still open, and deliberately not claimed: DR-192's effect on the overlay repaint is unverified on device, DR-194's letterbox reset is untested, and the native default (DR-188) stays off pending DR-190, the background-audio return. |
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95129d04a3 |
fix(player): make Android native video actually visible, and usable
DR-172 reverted native video to opt-in after it shipped as audio with no picture, naming the compositing as the suspect. The compositing was fine. Five separate defects sat between ExoPlayer and the screen, each able to produce that exact symptom on its own, and each invisible to the others. DR-185 — the app shell painted over the surface. app.css clears the page's opaque layers through three selectors, one of which targets `[data-app-shell]`, an attribute NO component has ever set, in any commit. The shell paints --color-background across the whole viewport and VideoPlayer stacks above it, so the WebView composited opaque no matter what else was cleared. Invisible three ways over: the CSS is valid, the selector is plausible, and a rule matching nothing looks exactly like a rule matching something already transparent. DR-182 — nothing could lift the poster card. Every markMediaReady() call site is an HTML5 <video> event, and the native branch renders no element, so the black title card covered the surface for the entire session. The first fix hooked `player://position-update` / `player://state-changed`; those channels are never emitted by the backend, so it passed a test that fired them by hand and did nothing on a device. Driven from the player store now, as the seek bar already was. DR-183 — the JS bridges raced the page load. Installed 500ms after onCreate by walking the view tree, while WebView binds injected objects at page-load time, and the identity guard then declined to re-inject forever. setTransparent(true) could never arrive. Installed from WryActivity.onWebViewCreate instead, which wry calls immediately before the first loadUrl. DR-184 — the SurfaceView was never detached. detachVideoSurface had no callers anywhere, mirroring the DR-151 defect: every native video left its surface parented to the content view and the next one stacked another beneath it. DR-191 — the overlay stopped repainting. Incremental damage (the clock's text, the control bar's opacity) never reached the screen while structural changes did, so the progress bar froze, the controls would not fade, and the play overlay appeared to work because it is added and removed from the DOM. Driven from the Activity via postInvalidateOnAnimation while compositing is on. Two UI defects only this path could reveal came with them: isPlaying froze at its initial value, leaving the play overlay dimming and covering the video (DR-186), and the control bar's auto-hide was armed solely by mousemove, which a touchscreen never fires (DR-189). Immersive mode now applies on entering the player rather than only via the fullscreen button (DR-187). Verified on a device (Honor ROD2-W09, Android 16): logcat carries `WebView transparent = true` and `Marking media ready` with video on screen — the pair DR-172 went looking for and could not find — and skip, seek, rotation and subtitle rendering were exercised by hand. The default stays OFF (DR-188). Turning it on surfaced a further unverified sub-path: returning from background audio is HTML5-only, so playback stays dead (DR-190, proposed). Shipping it would have repeated DR-161 exactly — a verified sub-path made default over an unverified one. |
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c0c6c5023e |
fix(player): resume a transcoded video by seeking, not by asking for a stream that starts mid-item
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A resumed transcode played nothing at all: every segment came back 400, hls.js exhausted its retries and gave up, while the same episode from the beginning was fine. Jellyfin builds each segment URI by echoing the master playlist's query string into it, and its segment handler opens by rejecting any request carrying StartTimeTicks > 0 (ArgumentException → 400). So one resume position on the playlist is copied onto every hls1/main/N.ts and 400s all of them — the `> 0` being exactly why starting from the beginning survived. HLS does not need the parameter: a playlist spans the whole item and asking for segment N *is* the seek. It is removed from the URL builder entirely rather than conditionalised — the builder cannot know whether its response will be segmented — and the position becomes a seek issued once the player has loaded. The progressive /Audio/universal builder behind the background-audio handoff has no segments and keeps its StartTimeTicks, which is why audio-only handoffs resumed correctly and video ones did not. Completing that across the boundary, since the URL no longer starts where the caller asked: - reloadSource(url, position) now means "reload and resume AT this absolute position": it seeks the element once the source is playable and clears the transcode offset to zero. It previously set the offset to the position and seeked nothing, which was correct only while the URL itself began there — left in place it would have shown 20:00 on the scrubber while the opening titles played, with no seek ever happening. - The transcoded resume path in the player page collapses into the same "seek after load" branch direct streams already used. - VideoPlayer's background-audio return does the same: no base, seek to the absolute position. - The stale test asserting StartTimeTicks is present is rewritten to keep its other half (an HLS master playlist, never a progressive stream.mp4, carrying the chosen source and audio track). TRACES: UR-004, UR-005, UR-019, UR-021, UR-074 | DR-181 | UT-182, UT-183 |
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5096c01960 |
fix(player): restore the subtitle sidecar work dropped by the previous commit
The previous commit was assembled from a tree read before
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2d67b0e4f5 |
fix(player): give every transcode its own play session, and stop the one it replaces
Switching bitrate mid-film stalled playback. The server served the new playlist and then rejected its segments: 400 on hls1/main/0.ts, six times over 25 seconds, never recovering, while the UI logged "Streaming quality changed" as if nothing were wrong. Jellyfin keys a transcode job by device and play session. Every stream URL this app built carried the same hardcoded DeviceId and no PlaySessionId at all, so the second stream for an item was indistinguishable from the first and nothing ever stopped the old ffmpeg. Re-opening a stream is not rare — a quality switch, a transcoded seek and an audio-track switch all do it. Replayed against the server, a second stream opened for a live job's item alternates per attempt between serving bytes and 400ing, which is why it read as flaky rather than broken. begin_video_play_session mints a session id per open and reports the one it supersedes; the URL builder stops that job (DELETE /Videos/ActiveEncodings, un-retried — a slow stop must not delay playback) before returning. Putting it in the builder rather than in each caller covers every re-open path by construction. adopt_video_play_session takes ownership of the job the server starts itself when PlaybackInfo answers with a TranscodingUrl: without it the first switch on a stream has nothing to stop and collides with what is playing. Two client faults made the same incident worse and go with it: - The fatal-HLS-error handler added the transcode seek offset to a position that already included it. Past roughly the halfway mark of a film the doubled value cleared the "near end" threshold, so any transient network error was reported as end-of-stream and autoplay skipped to the next item — precisely when a quality switch had just made the offset large. The decision now lives in hlsRecovery.ts, against the absolute position. - The HTML5 reload primitive resolved on its own canplay timeout, so a reload the server never served reported success. The picker showed a quality that was not playing and the caller had nothing to revert. TRACES: UR-074, UR-004 | DR-177 | UT-173, UT-174, UT-175 |
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13264e225b |
fix(player): never let the server burn a subtitle in, and never offer one we cannot draw
Reported as "subtitles are shown even when off", and no toggle in the app cleared them — because they were not the app's subtitles at all. The server was painting them into the video. `PlaybackInfo` omitted `SubtitleStreamIndex`, which does not mean "none": the server then honours the source's own default/forced flag. On the reported episode that default is a PGS track — a bitmap, which cannot go out as a sidecar — so the server fell back to `SubtitleMethod=Encode` and composited it onto every frame. Confirmed against the live server, which answered the same PlaybackInfo request two ways: with the index omitted it returned `SubtitleStreamIndex=2` + `SubtitleMethod=Encode` and a `SubtitleCodecNotSupported` transcode reason, and its ffmpeg command carried `[0:2]…[sub];[main][sub]overlay_qsv=…`; with `-1` it selected no subtitle stream at all. The cost landed on the video, not the subtitle: burn-in rules out remuxing, so a stream that only needed its audio transcoded was re-encoded frame by frame. Three parts: - The negotiation asks for `SubtitleStreamIndex=-1` and advertises every text format we can render (srt/subrip/ass/ssa/vtt) as `External`. - The stream URL says the same thing, because the negotiation is not what opens most streams: a quality switch, a transcoded seek and an audio-track switch each rebuild the URL on their own, and an omitted index there lets the server pick the default track back up out of whatever session state it still holds. - The picker offers only subtitles the app can actually draw. Each subtitle stream now crosses the boundary carrying `supports_external_delivery`, decided in Rust where the codec vocabulary belongs, and `None` for anything that is not a subtitle so a `false` cannot be misread as a verdict. `subtitleStreamsOf()` drops the rejected ones — and since that one function feeds the menu, the `<track>` children and the native play request alike, a bitmap track disappears from all three without its URL ever being fetched. Only an explicit "no" hides a track; a stream carrying no verdict behaves exactly as before. Nothing is lost by refusing burn-in: the app already fetches the text tracks and draws them itself (UR-020), so the server's composited copy was always redundant. Image-based tracks are consequently not offered, which is honest rather than a regression — the renderer cannot composite a bitmap, and the old behaviour paid for them by making the whole stream unwatchable. Tests were written first and observed failing: the Rust one would not compile against a field that did not exist, and the frontend one resolved a URL for the PGS track it was supposed to drop. Carries with it the in-flight per-stream `PlaySessionId` work in online.rs, whose hunks sit inside the same request builder and could not be separated from these. TRACES: UR-020, UR-004 | DR-176 | UT-168 |
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041969f446 |
fix(player): stop the server burning subtitles into the picture
A transcoded episode stalled every few seconds and seeking took five to nine seconds to produce a frame. Neither was a seek bug: both seeks in the capture landed correctly. The stream itself could not keep up. The episode was HEVC video, E-AC-3 audio, and a PGSSUB subtitle track. Only the audio needed transcoding — the device profile supports HEVC and the server would have remuxed the video untouched. But the PlaybackInfo request omitted SubtitleStreamIndex, and omitting it does not mean "no subtitles": the server then honours the source's default/forced flag and picks a track itself. It picked the PGS one. PGS is a bitmap, and the profile advertised only srt/vtt as External, so it could not go out as a sidecar — leaving SubtitleMethod=Encode, burn-in. Burn-in is a video cost, not a subtitle cost. Compositing rules out remuxing, so the whole HEVC stream was re-encoded to h264 frame by frame. The server could not sustain that in real time: the buffer never grew past one segment and playback ran waiting -> HLS error -> canplay -> three seconds of picture, indefinitely, while each seek restarted the encoder from scratch. TranscodeReasons named it — SubtitleCodecNotSupported — but nothing in the log connected that to the stall, so the diagnostic now says which track it is declining and why. Ask for SubtitleStreamIndex=-1 explicitly, and advertise every text format we can render (srt/subrip/ass/ssa/vtt) as External so a subtitle can only ever arrive as a sidecar. Nothing is lost: the app already fetches subtitle tracks itself and draws them over the video (UR-020), so the server's composited copy was always redundant. Image-based tracks are consequently not offered, which is honest rather than a regression — the renderer cannot composite a bitmap, and the previous behaviour paid for them by making the stream unwatchable. The policy lives beside the other device-profile rules in Rust, where it is testable without a device. TRACES: UR-020, UR-004 | DR-176 | UT-168 |
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1a9805f0f3 |
fix(downloads): queue the whole album, and make every queued track findable offline
An album download put a handful of its tracks on the device while the button reported the album as downloaded. Two independent gaps, one shared cause. - `download_album` read its track list from `items WHERE album_id = ?` — the local catalog cache. Jellyfin does not return `AlbumId` on every listing endpoint, so tracks cached from one of those sit in `items` with a NULL `album_id` and are invisible to that query. On the reported database three whole albums (18, 12 and 9 tracks) had it NULL on every track; a partially linked album queued only the linked subset. - The frontend then resolved one stream URL per track from its own list and paired it with the returned row ids by position. The ids came back in the backend's `index_number` order over a different set of rows, so a row could be handed another track's URL and any track past the end of the shorter list was never started. On Android that loop also stopped wherever the webview was suspended. - `album_id` is what `OfflineRepository::get_items` joins a track to its album on, so a track that did download stayed invisible under its album offline — the same missing link seen from the other side. The operation now belongs to Rust end to end: - `HybridRepository::get_album_tracks` asks the server what the album contains. Cache-first `get_items` is right for browsing and wrong for deciding what to download; it errors offline so the caller falls back to the ungated local catalog, keeping the queue-while-offline flow. - `queue_album_tracks` writes the album link onto every track it queues, and creates an `items` row for tracks the cache has never seen. - Stream URLs resolve here, through the existing reconnect resolver, now scoped to the rows just queued so one album cannot start every unrelated pending row. Only the album id crosses the IPC boundary. - `album_file_names` gives each track its own file. A title repeated inside one album (deluxe edition, two discs) mapped to one path, so those downloads overwrote each other. Re-tapping download on a broken album heals it: missing tracks are queued and the tracks already on disk get their link. `download_series`/`download_season` still derive their episode lists from the cache the same way and want the same treatment. DR-173, UT-170..172. Rust 673 tests, frontend 975 tests, svelte-check and check:boundary clean. Note: this tree is shared with a concurrent session. Only the files above are committed; docs/traceability.md is left to be regenerated once that work lands. |
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3363ff7f08 |
Merge branch 'master' into worktree-mosaic-library
# Conflicts: # scripts/extract-traces.test.ts |
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f46d7bf676 |
fix(player): make native Android video opt-in again — it shipped as audio with no picture
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DR-161 flipped experimentalNativeVideo on by default so picture-in-picture could shrink a real video surface. On a device that shipped sound with a blank screen. The decode path was never at fault. Logcat shows ExoPlayer running and feeding a live SurfaceView with an active BufferQueue. The compositing was: the SurfaceView sits behind the WebView, and the step that clears the opaque layers above it never took effect — `WebView transparent = false` is logged, `= true` never appears. The video was rendering correctly the whole time, behind an opaque page. This is precisely the defect the flag existed to contain; VideoPlayer.scrubRegression.test.ts had already recorded that "the native SurfaceView has never been visible through the webview". Enabling it by default shipped a verified decode path on top of an unverified display path. Reverting costs nothing that matters: PiP does not depend on it — DR-160 drives PiP from the WebView <video> — and working video outranks PiP showing a native surface. The flag stays in Settings, now described as incomplete rather than as a performance win, so anyone helping test it still can. Fixing the compositing is the prerequisite for trying this default again (DR-172). |
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7e1f0e0547 |
Merge branch 'master' into worktree-mosaic-library
# Conflicts: # docs/traceability.md |
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e015c4c9b1 |
Merge branch 'master' into worktree-mosaic-library
Renumbers the mosaic's requirement IDs out of the way of the download work that landed on master in parallel: it had already claimed DR-163/DR-164 and UT-162, so the mosaic layout is now DR-172, the library favourites scope DR-173, and its composition test UT-167. Note for the download branch: its UT-162..UT-165 rows trace to DR-163..DR-166, none of which are defined in requirements.md — that branch defined DR-167..171 instead. Those references are orphaned and want a look; nothing here touches them. |