Files
yellowjacket/cmd/gentestdata/manifest.go
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feat(harness): agent-drivable dev harness and CI that gates
A coding agent could develop this repo's Go packages and could not
develop the application: every path to running YellowJacket ended in a
blocking GTK window, so 265 bound methods, 46 events, 33 component
directories and 13 stores had exactly one form of verification
available — `tsc --noEmit`.

The unlock is that `wails dev`'s dev server on :34115 serves the real
frontend with the real generated bindings against the same Go backend a
desktop window attaches to, so a plain Chromium under Xvfb gets a fully
functional app. Four test tiers now exist, cheapest first:

- `make ui-test` — 313 Vitest tests in a real browser in ~2 s, no app,
  no backend, no display. Works because `frontend/wailsjs/` is a pure
  passthrough to `window.go`/`window.runtime`, so faking just those two
  globals runs the real bindings and the real store code.
- `make test` — services in-process, asserting on the payload the
  frontend would receive, via a new `events.Emit` wrapper.
- `make dev-headless` + `playwright-cli` — the real app, driven
  interactively, with an event bridge on `window.__yjEvents` and a
  dev-only control surface at `/__test/`.
- `make e2e` — 19 of those flows frozen as Playwright specs.

`events.Emit(ctx, …)` replaces all 35 direct `runtime.EventsEmit` call
sites: wails' `getEvents` `log.Fatalf`s on any context without its
runtime, so those paths could not run under test and a background
worker could take the app down. Four packages had each hand-rolled the
same guard; nine more guarded on `ctx != nil`, which does not help.
`TestNoDirectRuntimeEmits` fails the build on a new one.

Fixtures are generated, not committed (`make testdata`), and seeds are
built by *running the app* — never by hand-writing config and DB rows,
which would be a second description of a valid YJ_HOME.

`.gitea/workflows/ci.yml` is the first workflow here that tests
anything; the other three only package, so `gitea_ci` reported only
packaging jobs and misled anyone asking whether a push was healthy.
Both jobs were prototyped to green in a bare ubuntu:24.04 container
before the YAML was written, which immediately caught `make lint`
linting three configurations that nothing builds: all three passes
omitted `webkit2_41`, so wails resolved webkit2gtk-4.0 — which Arch
still ships and Ubuntu 24.04 dropped.

Operational instructions live in `.pi/skills/yellowjacket-dev/`,
measured discoveries in `.planning/NOTES.md`, and architecture in
`CLAUDE.md` — split by tense, not by topic, because a topical split
gives every new fact two plausible homes. `make skill-check` fails a
commit if the skill cites a make target that does not exist.
2026-08-10 23:20:42 -04:00

154 lines
4.1 KiB
Go

package main
import (
"crypto/sha256"
"encoding/hex"
"encoding/json"
"fmt"
"os"
"path/filepath"
)
// manifestVersion is bumped when the manifest's shape changes in a way
// that older readers cannot handle.
const manifestVersion = 1
// manifestTrack records what a fixture is supposed to be, so a test can
// assert against the spec rather than against whatever happens to be on
// disk.
type manifestTrack struct {
Path string `json:"path"`
Case string `json:"case"`
Format string `json:"format"`
DurationMS int64 `json:"durationMs"`
FreqHz float64 `json:"freqHz"`
Cover string `json:"cover,omitempty"`
CoverSHA string `json:"coverSha,omitempty"`
Tags map[string]any `json:"tags"`
}
// manifest describes a generated fixture library.
//
// Hash covers the *logical* spec — paths, formats, durations, tags,
// cover identity — and deliberately not the encoded bytes: ffmpeg
// stamps its own encoder strings, so byte hashes differ between ffmpeg
// builds while the fixtures they describe are identical.
type manifest struct {
Version int `json:"version"`
Generator string `json:"generator"`
Hash string `json:"hash"`
LibraryRoot string `json:"libraryRoot"`
BrokenRoot string `json:"brokenRoot"`
Cases map[string][]string `json:"cases"`
Tracks []manifestTrack `json:"tracks"`
Extras []string `json:"extras"`
Broken []string `json:"broken"`
}
// buildManifest derives the manifest from the spec alone. It runs
// before any file is written, which is what lets generation be skipped
// when the on-disk manifest already matches.
func buildManifest(libraryRoot, brokenRoot string) (*manifest, error) {
m := &manifest{
Version: manifestVersion,
Generator: "gentestdata",
LibraryRoot: filepath.ToSlash(libraryRoot),
BrokenRoot: filepath.ToSlash(brokenRoot),
Cases: map[string][]string{},
Tracks: make([]manifestTrack, 0, len(libraryFixtures)),
}
for _, f := range libraryFixtures {
track := manifestTrack{
Path: f.Rel,
Case: f.Case,
Format: string(f.Format),
DurationMS: f.Duration.Milliseconds(),
FreqHz: f.FreqHz,
Cover: f.Cover,
Tags: f.Tags.changes(),
}
if f.Cover != "" {
img, err := coverJPEG(f.Cover)
if err != nil {
return nil, err
}
sum := sha256.Sum256(img)
track.CoverSHA = hex.EncodeToString(sum[:])
}
m.Tracks = append(m.Tracks, track)
m.Cases[f.Case] = append(m.Cases[f.Case], f.Rel)
}
for _, e := range libraryExtras {
m.Extras = append(m.Extras, e.Rel)
}
for _, b := range brokenFiles {
m.Broken = append(m.Broken, b.Rel)
m.Cases[caseBroken] = append(m.Cases[caseBroken], b.Rel)
}
hash, err := hashManifest(m)
if err != nil {
return nil, err
}
m.Hash = hash
return m, nil
}
// hashManifest hashes everything except the hash field itself.
func hashManifest(m *manifest) (string, error) {
clone := *m
clone.Hash = ""
raw, err := json.Marshal(clone)
if err != nil {
return "", fmt.Errorf("marshal manifest for hashing: %w", err)
}
sum := sha256.Sum256(raw)
return hex.EncodeToString(sum[:]), nil
}
// writeManifest persists the manifest next to (not inside) the library
// root, so the scanner never sees it as a stray file.
func writeManifest(path string, m *manifest) error {
raw, err := json.MarshalIndent(m, "", " ")
if err != nil {
return fmt.Errorf("marshal manifest: %w", err)
}
if err := os.MkdirAll(filepath.Dir(path), dirPerm); err != nil {
return fmt.Errorf("mkdir %s: %w", filepath.Dir(path), err)
}
if err := os.WriteFile(path, append(raw, '\n'), filePerm); err != nil {
return fmt.Errorf("write manifest %s: %w", path, err)
}
return nil
}
// readManifestHash returns the hash recorded in an existing manifest,
// or "" when there is no readable manifest at path.
func readManifestHash(path string) string {
raw, err := os.ReadFile(path)
if err != nil {
return ""
}
var m manifest
if err := json.Unmarshal(raw, &m); err != nil {
return ""
}
return m.Hash
}