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jellytau/scripts/extract-traces.test.ts
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feat(offline): play downloaded video, and drain the offline sync queue (0.4.6)
Bundles this session's work plus the concurrent search/offline/player changes.
Every gate passes on the combined tree: 885 frontend tests, 610 Rust tests,
clippy clean, boundary clean, trace coverage 86%.

Offline video playback — four separate defects, each of which alone stopped it:

  DR-133  A completed download's file_path is already absolute (the worker
          rewrites it on completion), but the player rooted it a second time and
          handed the webview /data/user/0/app//data/user/0/app/videos/x.mp4.
  DR-134  The asset protocol was never enabled: no protocol-asset feature and no
          assetProtocol config, so convertFileSrc produced URLs nothing answered.
          Also silently defeated the cached-thumbnail path, which fails soft to
          the server copy and hid it whenever the server was reachable.
  DR-137  Tauri's asset protocol answers a range-less request by reading the
          whole file into memory, and only advertises Accept-Ranges from inside
          its range branch, so the first request never learns ranges exist.
          Chromium gave up with PIPELINE_ERROR_READ after ~31s. Local media is
          now served by a loopback HTTP server: bounded 4 MiB chunks streamed
          from the file handle, every response length-delimited, and a range-less
          request answered with one chunk rather than the file. Confined by a
          per-session token and to the app data directory, because loopback is
          shared between apps on Android.
  DR-138  Release builds set usesCleartextTraffic=false, so Android rejected the
          request to that server before any I/O. A network-security-config
          exempts 127.0.0.1 only; a remote server must still be HTTPS.

Downloads:

  DR-135  download_item never records media_type and the reconnect resolver read
          that NULL as 'audio', so a movie queued from a media card had its URL
          resolved by get_audio_stream_url and completed as an audio-only
          transcode. The item's own type now decides.
  DR-136  Rows already downloaded that way are requeued on reconnect, since
          prevention alone leaves them reading "downloaded" and still unplayable.

Known limitation: a download taken at `original` quality is a byte copy of the
source, so it can be any container. One such file is an AVI holding XVID, which
the webview cannot play in any case — the media server serves it correctly and
Chromium refuses it. That needs either a transcoded download preset or the
native ExoPlayer surface work, and is not addressed here.

Also fixes two ID collisions between concurrent work: DR-143 defined twice
(search vs offline gate) and UT-131 defined twice (Episode Focus hero vs channel
cap). The search requirement is now DR-147 and the channel-cap test UT-141, with
their code references and matrix rows updated.
2026-08-09 16:38:07 +02:00

183 lines
6.6 KiB
TypeScript

/**
* Tests for the traceability coverage computation.
*
* These run over fixture strings rather than the live docs/requirements.md, so
* their meaning does not drift as requirements are added.
*
* Background: the CI gate divided traced-requirement counts by hardcoded
* denominators (UR/39, IR/24, DR/48, JA/3, total 114) that had fallen out of
* date, reporting 158% coverage and making the 50% threshold unreachable. These
* tests pin the parsing and arithmetic that replace those literals.
*
* @req-test: UT-089 - Requirement definitions parsed from requirements.md
* @req-test: UT-090 - Coverage is the intersection of traced and defined IDs
*/
import { describe, it, expect } from "vitest";
import { countDefinedRequirements, computeCoverage } from "./extract-traces";
describe("countDefinedRequirements", () => {
it("counts a well-formed table row as a defined requirement", () => {
const md = `
| ID | Requirement | Priority | Status |
|----|-------------|----------|--------|
| UR-001 | Run the app on multiple platforms | High | In Progress |
| UR-002 | Access media when online or offline | High | Done |
`;
const defined = countDefinedRequirements(md);
expect(defined.UR).toBe(2);
expect(defined.DR).toBe(0);
});
it("does not count IDs that appear only in the Traces To column", () => {
// The bug this rule avoids: a naive grep for /DR-\d{3}/ over the whole file
// counts DR-001 here as "defined", inflating the denominator with IDs that
// are merely referenced.
const md = `
| DR-001 | Player state machine | Player | UR-005 | Done |
| DR-002 | MediaItem struct | Player | UR-003, UR-004 | Done |
`;
const defined = countDefinedRequirements(md);
expect(defined.DR).toBe(2);
// UR-005/UR-003/UR-004 are referenced, never defined here.
expect(defined.UR).toBe(0);
});
it("does not count IDs mentioned in prose", () => {
const md = `
Some prose explaining that UR-005 relates to DR-001 and JA-002.
| UR-005 | Control media playback | High | Done |
`;
const defined = countDefinedRequirements(md);
expect(defined.UR).toBe(1);
expect(defined.DR).toBe(0);
expect(defined.JA).toBe(0);
});
it("deduplicates an ID listed in both the spec table and the traceability matrix", () => {
// requirements.md lists every UR twice: once in §1 (definition) and again in
// §3 (traceability matrix), both as a leading table cell. Counting rows
// instead of unique IDs double-counts the UR denominator (121 vs 61).
const md = `
| UR-005 | Control media playback | High | Done |
| UR-006 | Browse the library | High | Done |
### Traceability Matrix
| UR-005 | - | DR-001, DR-005, DR-009 |
| UR-006 | - | DR-012 |
`;
const defined = countDefinedRequirements(md);
expect(defined.UR).toBe(2);
});
it("collects the defined ID set, not just counts", () => {
const md = `
| UR-001 | A | High | Done |
| DR-050 | B | Player | UR-001 | Done |
`;
const defined = countDefinedRequirements(md);
expect(defined.ids.has("UR-001")).toBe(true);
expect(defined.ids.has("DR-050")).toBe(true);
expect(defined.ids.has("UR-999")).toBe(false);
});
});
describe("computeCoverage", () => {
const defined = {
UR: 2,
IR: 0,
DR: 2,
JA: 0,
total: 4,
ids: new Set(["UR-001", "UR-002", "DR-001", "DR-002"]),
};
it("computes coverage as traced ∩ defined over defined", () => {
const traced = ["UR-001", "DR-001"];
const cov = computeCoverage(traced, defined);
expect(cov.covered).toBe(2);
expect(cov.total).toBe(4);
expect(cov.percent).toBe(50);
});
it("does not let a traced-but-undefined ID inflate the numerator", () => {
// This is how a ratio exceeds 100%: a TRACES comment naming a typo'd or
// deleted requirement counted as covered.
const traced = ["UR-001", "DR-001", "DR-097"];
const cov = computeCoverage(traced, defined);
expect(cov.covered).toBe(2);
expect(cov.percent).toBe(50);
});
it("reports traced-but-undefined IDs as orphaned so they get fixed", () => {
const traced = ["UR-001", "DR-097", "JA-404"];
const cov = computeCoverage(traced, defined);
expect(cov.orphaned).toEqual(["DR-097", "JA-404"]);
});
it("has no orphans when every traced ID is defined", () => {
const cov = computeCoverage(["UR-001", "UR-002"], defined);
expect(cov.orphaned).toEqual([]);
});
it("ignores UT/IT test IDs entirely — they are a separate taxonomy", () => {
// UT/IT are defined in §4 of requirements.md, not among the four
// requirement types. Treating them as orphans buries real typos in ~60
// lines of noise, and counting them would corrupt the ratio.
const cov = computeCoverage(["UR-001", "UT-088", "IT-017"], defined);
expect(cov.orphaned).toEqual([]);
expect(cov.covered).toBe(1);
});
it("reports 0% rather than dividing by zero for an empty trace set", () => {
const cov = computeCoverage([], defined);
expect(cov.covered).toBe(0);
expect(cov.percent).toBe(0);
});
it("reports 0% rather than NaN when nothing is defined", () => {
const empty = { UR: 0, IR: 0, DR: 0, JA: 0, total: 0, ids: new Set<string>() };
const cov = computeCoverage([], empty);
expect(cov.percent).toBe(0);
expect(Number.isNaN(cov.percent)).toBe(false);
});
it("reports exactly 100% when all defined requirements are traced, never above", () => {
const traced = ["UR-001", "UR-002", "DR-001", "DR-002"];
const cov = computeCoverage(traced, defined);
expect(cov.percent).toBe(100);
});
it("ignores duplicate traced IDs", () => {
const traced = ["UR-001", "UR-001", "UR-001"];
const cov = computeCoverage(traced, defined);
expect(cov.covered).toBe(1);
});
});
describe("live requirements.md", () => {
it("parses the real file to the counts the CI gate must use", () => {
// Guards the specific regression: CI hardcoded UR/39, IR/24, DR/48, JA/3
// (total 114) while the real file had grown to 211. Update these numbers
// deliberately when requirements are added — that edit is the signal the
// denominator is live rather than frozen.
const fs = require("fs");
const path = require("path");
// import.meta.dir is Bun-only; derive from import.meta.url under vitest.
const here = path.dirname(new URL(import.meta.url).pathname);
const md = fs.readFileSync(
path.resolve(here, "../docs/requirements.md"),
"utf-8"
);
const defined = countDefinedRequirements(md);
expect(defined.UR).toBe(71);
expect(defined.IR).toBe(32);
expect(defined.DR).toBe(142);
expect(defined.JA).toBe(35);
expect(defined.total).toBe(280);
});
});