Four defects behind "downloads still flaky", each with its own cause.
Libraries mixed their media (DR-167). Cached items carry no link back to their
library — library_id and parent_id are NULL on every row — so the library branch
of get_downloaded_items matched `EXISTS (SELECT 1 FROM libraries WHERE id = ?)`,
which asserts only that the library exists and never constrains the item to it.
Opening any downloaded library listed every downloaded top-level item on the
server: films under Music, albums under TV. The query deciding which libraries
appear already had the right rule, so the two disagreed about the same question;
that collection_type <-> item_type mapping is now one constant used by both.
Pause and resume did nothing (DR-168). pause_download wrote status = 'paused'
and stopped there — no cancellation existed anywhere in the download stack, so
the streaming task ran on and overwrote the row with completed/failed when it
finished. The row flicked to "paused" and undid itself. resume_download had the
mirror defect: it flipped the row to 'pending' without pumping, and the pump is
not a poller, so a resumed download sat until some unrelated event pumped the
queue. Adds a per-download stop flag the worker reads between chunks and on
retry, returning Stopped — not retryable, not recorded as a failure, and the
.part file is kept because that is what the resume continues from. Registering
returns a fresh flag so a resumed download does not inherit the pause that
stopped it. Cancel and clear_stale_downloads signal it too, so neither deletes a
file still being written.
Partial files were never reaped (DR-169). The worker named its sidecar with
with_extension("part"), which replaces: movie.mp4 became movie.part. Every
cleanup path deleted "{file_path}.part" — movie.mp4.part. They never matched, so
the partial of every cancelled or failed download stayed on disk forever,
invisible to disk-usage totals because no row pointed at it. One partial_path
helper now serves the writer and the cleaners.
Bitrate downloads corrupted themselves (DR-170). Only `original` asks for
Static=true; every other rung requests a transcode, which Jellyfin serves
chunked with no Content-Length and cannot byte-seek — it ignores Range and
answers 200 with the whole stream, not 206 with the tail. The worker sent the
header whenever a .part existed and appended the body regardless, so each retry
concatenated another full copy onto what was on disk. The file grew past its
real size and would not play, which is why bitrate downloads stayed broken after
the videoBitRate casing fix corrected the request. resume_offset now lets the
response decide: append only on 206, otherwise truncate and take it from the top.
docs/requirements.md also carries DR-171/UT-166, written by a parallel session
working in the same tree; its code lands separately.
183 lines
6.6 KiB
TypeScript
183 lines
6.6 KiB
TypeScript
/**
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* Tests for the traceability coverage computation.
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*
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* These run over fixture strings rather than the live docs/requirements.md, so
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* their meaning does not drift as requirements are added.
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*
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* Background: the CI gate divided traced-requirement counts by hardcoded
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* denominators (UR/39, IR/24, DR/48, JA/3, total 114) that had fallen out of
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* date, reporting 158% coverage and making the 50% threshold unreachable. These
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* tests pin the parsing and arithmetic that replace those literals.
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*
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* @req-test: UT-089 - Requirement definitions parsed from requirements.md
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* @req-test: UT-090 - Coverage is the intersection of traced and defined IDs
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*/
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import { describe, it, expect } from "vitest";
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import { countDefinedRequirements, computeCoverage } from "./extract-traces";
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describe("countDefinedRequirements", () => {
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it("counts a well-formed table row as a defined requirement", () => {
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const md = `
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| ID | Requirement | Priority | Status |
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|----|-------------|----------|--------|
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| UR-001 | Run the app on multiple platforms | High | In Progress |
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| UR-002 | Access media when online or offline | High | Done |
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`;
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const defined = countDefinedRequirements(md);
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expect(defined.UR).toBe(2);
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expect(defined.DR).toBe(0);
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});
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it("does not count IDs that appear only in the Traces To column", () => {
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// The bug this rule avoids: a naive grep for /DR-\d{3}/ over the whole file
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// counts DR-001 here as "defined", inflating the denominator with IDs that
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// are merely referenced.
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const md = `
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| DR-001 | Player state machine | Player | UR-005 | Done |
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| DR-002 | MediaItem struct | Player | UR-003, UR-004 | Done |
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`;
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const defined = countDefinedRequirements(md);
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expect(defined.DR).toBe(2);
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// UR-005/UR-003/UR-004 are referenced, never defined here.
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expect(defined.UR).toBe(0);
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});
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it("does not count IDs mentioned in prose", () => {
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const md = `
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Some prose explaining that UR-005 relates to DR-001 and JA-002.
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| UR-005 | Control media playback | High | Done |
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`;
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const defined = countDefinedRequirements(md);
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expect(defined.UR).toBe(1);
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expect(defined.DR).toBe(0);
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expect(defined.JA).toBe(0);
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});
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it("deduplicates an ID listed in both the spec table and the traceability matrix", () => {
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// requirements.md lists every UR twice: once in §1 (definition) and again in
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// §3 (traceability matrix), both as a leading table cell. Counting rows
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// instead of unique IDs double-counts the UR denominator (121 vs 61).
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const md = `
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| UR-005 | Control media playback | High | Done |
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| UR-006 | Browse the library | High | Done |
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### Traceability Matrix
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| UR-005 | - | DR-001, DR-005, DR-009 |
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| UR-006 | - | DR-012 |
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`;
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const defined = countDefinedRequirements(md);
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expect(defined.UR).toBe(2);
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});
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it("collects the defined ID set, not just counts", () => {
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const md = `
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| UR-001 | A | High | Done |
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| DR-050 | B | Player | UR-001 | Done |
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`;
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const defined = countDefinedRequirements(md);
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expect(defined.ids.has("UR-001")).toBe(true);
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expect(defined.ids.has("DR-050")).toBe(true);
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expect(defined.ids.has("UR-999")).toBe(false);
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});
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});
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describe("computeCoverage", () => {
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const defined = {
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UR: 2,
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IR: 0,
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DR: 2,
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JA: 0,
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total: 4,
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ids: new Set(["UR-001", "UR-002", "DR-001", "DR-002"]),
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};
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it("computes coverage as traced ∩ defined over defined", () => {
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const traced = ["UR-001", "DR-001"];
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const cov = computeCoverage(traced, defined);
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expect(cov.covered).toBe(2);
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expect(cov.total).toBe(4);
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expect(cov.percent).toBe(50);
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});
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it("does not let a traced-but-undefined ID inflate the numerator", () => {
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// This is how a ratio exceeds 100%: a TRACES comment naming a typo'd or
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// deleted requirement counted as covered.
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const traced = ["UR-001", "DR-001", "DR-097"];
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const cov = computeCoverage(traced, defined);
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expect(cov.covered).toBe(2);
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expect(cov.percent).toBe(50);
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});
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it("reports traced-but-undefined IDs as orphaned so they get fixed", () => {
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const traced = ["UR-001", "DR-097", "JA-404"];
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const cov = computeCoverage(traced, defined);
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expect(cov.orphaned).toEqual(["DR-097", "JA-404"]);
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});
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it("has no orphans when every traced ID is defined", () => {
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const cov = computeCoverage(["UR-001", "UR-002"], defined);
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expect(cov.orphaned).toEqual([]);
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});
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it("ignores UT/IT test IDs entirely — they are a separate taxonomy", () => {
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// UT/IT are defined in §4 of requirements.md, not among the four
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// requirement types. Treating them as orphans buries real typos in ~60
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// lines of noise, and counting them would corrupt the ratio.
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const cov = computeCoverage(["UR-001", "UT-088", "IT-017"], defined);
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expect(cov.orphaned).toEqual([]);
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expect(cov.covered).toBe(1);
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});
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it("reports 0% rather than dividing by zero for an empty trace set", () => {
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const cov = computeCoverage([], defined);
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expect(cov.covered).toBe(0);
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expect(cov.percent).toBe(0);
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});
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it("reports 0% rather than NaN when nothing is defined", () => {
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const empty = { UR: 0, IR: 0, DR: 0, JA: 0, total: 0, ids: new Set<string>() };
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const cov = computeCoverage([], empty);
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expect(cov.percent).toBe(0);
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expect(Number.isNaN(cov.percent)).toBe(false);
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});
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it("reports exactly 100% when all defined requirements are traced, never above", () => {
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const traced = ["UR-001", "UR-002", "DR-001", "DR-002"];
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const cov = computeCoverage(traced, defined);
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expect(cov.percent).toBe(100);
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});
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it("ignores duplicate traced IDs", () => {
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const traced = ["UR-001", "UR-001", "UR-001"];
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const cov = computeCoverage(traced, defined);
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expect(cov.covered).toBe(1);
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});
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});
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describe("live requirements.md", () => {
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it("parses the real file to the counts the CI gate must use", () => {
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// Guards the specific regression: CI hardcoded UR/39, IR/24, DR/48, JA/3
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// (total 114) while the real file had grown to 211. Update these numbers
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// deliberately when requirements are added — that edit is the signal the
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// denominator is live rather than frozen.
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const fs = require("fs");
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const path = require("path");
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// import.meta.dir is Bun-only; derive from import.meta.url under vitest.
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const here = path.dirname(new URL(import.meta.url).pathname);
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const md = fs.readFileSync(
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path.resolve(here, "../docs/requirements.md"),
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"utf-8"
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);
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const defined = countDefinedRequirements(md);
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expect(defined.UR).toBe(74);
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expect(defined.IR).toBe(32);
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expect(defined.DR).toBe(162);
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expect(defined.JA).toBe(35);
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expect(defined.total).toBe(303);
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});
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});
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