Html5PlayerAdapter.play() reported every interrupted play attempt as a
player error. While an HLS stream stalls, hls.js' gap-controller nudges
the element to recover, which cancels the pending play() promise and
raises AbortError ("play() request was interrupted by a call to
pause()"). That is transient — the element is still trying to play — but
it hit host.onError roughly once a second for the whole stall, leaving
the UI stuck reporting paused.
Treat an interrupted play as a debug-level non-event, and memoise the
in-flight attempt so the UI and recovery paths share one element.play()
rather than stacking calls that abort each other.
This is the loop amplifier, complementing DR-095 which removed the
dead-segment stall that triggered it.
Note: webviewAudioAdapter.play() has the same raw shape but is not
implicated — audio playback does not go through hls.js — so it is left
unchanged rather than widening this fix.
Seeking near the end of a transcoded video locked the player into a
stall/pause loop: unpausing or skipping bounced straight back to paused.
Both seek paths clamped the target to exactly `duration`. hls.js then
requested the segment whose start time lies *past* the end of the media
(a 6330.324s item asks for segment 1055, starting at 6336.33s). Jellyfin
never produces that segment, the fetch times out, and the gap-controller
stalls forever at the last buffered position — retrying ~1x/second and
firing an endless stream of AbortErrors as play() lands mid-nudge.
Clamp strictly inside the media instead, keeping one segment length
(6s) of margin, floored at 0 so short media still seeks to the start.
The seek-bar drag path needed this too: its range input `max` is the
duration itself, so dragging fully right produced the same dead target.
Also bumps the requirement-count fixture for the new DR-095 row.
The coverage gate divided traced counts by hardcoded literals (UR/39,
IR/24, DR/48, JA/3, TOTAL_REQS=114) that had fallen out of date as
requirements grew to 211. It reported 158% coverage — JA alone printed
800% — so the 50% threshold was mathematically unreachable and the job
could not fail. Coverage could have collapsed to 30% and CI would still
have printed a green tick.
Real coverage is 86%. The number was fine; the gate was dead.
extract-traces.ts now owns both sides of the fraction:
- countDefinedRequirements() counts an ID only where it leads a markdown
table row, ignoring the "Traces To" column and prose. IDs are
deduplicated because requirements.md lists every UR twice (§1
definition + §3 matrix), which would otherwise report UR as 121/61.
- computeCoverage() uses the intersection of traced and defined IDs, so
a TRACES comment naming a deleted or typo'd requirement is reported as
`orphaned` rather than inflating the ratio past 100%. UT/IT test
identifiers are excluded as a separate taxonomy.
- CI reads .coverage.percent and fails on <50% or >100%; a >100% reading
is now a hard error rather than the condition that hid this bug.
- New `bun run traces:coverage` runs the same computation locally.
- scripts/ added to the scan roots — the coverage tool was invisible to
the matrix it generates.
Tests written first (15, over fixtures so they don't drift as
requirements are added). vitest include widened to scripts/** so build
tooling is covered by the normal suite.
Verified empirically rather than by inspection: forcing the threshold to
99% fails; adding a requirement lowers coverage 86%→85%; a TRACES: DR-999
lands in `orphaned` without changing `covered`.
traceability-ci.md documented the same stale numbers and would have let
the broken arithmetic be reconstructed — replaced with a pointer to the
live command.