Plan 007 phase 4 is verified by measurement, not by assertion, and there was no way to produce a number: the fixture library is a few dozen tracks and cannot show any of the findings. - `cmd/gentestdata -bulk N` (`make bulkdata`) writes a ~50 000-track library in 11 s / 466 MB by encoding six clips once and copying them, while still tagging every file through `backend/tagwriter` — a library the app cannot read back measures nothing. - `make sandbox-seed-bulk` seeds from it through the same script and the same discipline as any other seed: by running the app and waiting for the real scan. - `e2e/perf/measure.mjs` (`make perf LABEL=x`, `make perf-compare`) takes fourteen measurements against a running app and writes them to a gitignored `.dev/perf/<label>.json`. It wraps every bound Go method, so "did that refetch the library" is a fact rather than an inference, and records `longtask` entries, which is where a 25 MB JSON parse on the main thread shows up and nowhere else. It is not a spec and does not run in CI.
233 lines
6.4 KiB
Go
233 lines
6.4 KiB
Go
package main
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import (
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"bytes"
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"context"
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"encoding/binary"
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"errors"
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"fmt"
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"image"
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"image/color"
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"image/jpeg"
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"math"
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"os"
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"os/exec"
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"path/filepath"
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"time"
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"yellowjacket/backend/tagwriter"
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)
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// Synthesis parameters. Mono 22.05 kHz keeps the whole fixture
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// library in the single-digit megabytes while staying a format every
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// decoder in the app handles.
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const (
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sampleRate = 22050
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amplitude = 0.3
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fadeSeconds = 0.02
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jpegQuality = 80
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coverSizePx = 64
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ffmpegTimeout = 2 * time.Minute
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)
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var errFFmpegMissing = errors.New(
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"ffmpeg not found in PATH; install it to generate fixtures",
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)
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// synthesizeWAV writes a mono 16-bit WAV holding a sine wave at freqHz
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// for the given duration, with a short fade at each end so lossy
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// encoders do not introduce a click that shifts the reported length.
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//
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// The waveform is a pure function of (duration, freqHz), which is what
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// makes a fixture reproducible: the same spec always yields the same
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// PCM, and a decoded sample identifies which track is playing.
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func synthesizeWAV(path string, dur time.Duration, freqHz float64) error {
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total := int(float64(sampleRate) * dur.Seconds())
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fade := int(sampleRate * fadeSeconds)
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pcm := make([]byte, total*2)
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for i := range total {
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t := float64(i) / sampleRate
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v := math.Sin(2*math.Pi*freqHz*t) * amplitude
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switch {
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case i < fade:
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v *= float64(i) / float64(fade)
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case i >= total-fade:
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v *= float64(total-i) / float64(fade)
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}
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binary.LittleEndian.PutUint16(
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pcm[i*2:], uint16(int16(v*math.MaxInt16)),
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)
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}
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return writeWAVContainer(path, pcm)
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}
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// writeWAVContainer wraps raw PCM in a canonical 44-byte RIFF header.
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func writeWAVContainer(path string, pcm []byte) error {
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const (
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headerSize = 44
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fmtChunkSize = 16
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pcmFormat = 1
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channels = 1
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bitsPerSample = 16
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)
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byteRate := sampleRate * channels * bitsPerSample / 8
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blockAlign := channels * bitsPerSample / 8
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buf := make([]byte, 0, headerSize+len(pcm))
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buf = append(buf, "RIFF"...)
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buf = binary.LittleEndian.AppendUint32(buf, uint32(36+len(pcm)))
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buf = append(buf, "WAVEfmt "...)
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buf = binary.LittleEndian.AppendUint32(buf, fmtChunkSize)
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buf = binary.LittleEndian.AppendUint16(buf, pcmFormat)
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buf = binary.LittleEndian.AppendUint16(buf, channels)
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buf = binary.LittleEndian.AppendUint32(buf, sampleRate)
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buf = binary.LittleEndian.AppendUint32(buf, uint32(byteRate))
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buf = binary.LittleEndian.AppendUint16(buf, uint16(blockAlign))
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buf = binary.LittleEndian.AppendUint16(buf, bitsPerSample)
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buf = append(buf, "data"...)
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buf = binary.LittleEndian.AppendUint32(buf, uint32(len(pcm)))
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buf = append(buf, pcm...)
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if err := os.WriteFile(path, buf, filePerm); err != nil {
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return fmt.Errorf("write wav %s: %w", path, err)
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}
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return nil
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}
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// encodeArgs returns the ffmpeg codec arguments for a target format.
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//
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// Metadata is stripped (-map_metadata -1): every tag this library
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// carries is written afterwards by backend/tagwriter, so the fixtures
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// and the app's reader cannot drift apart.
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func encodeArgs(format tagwriter.AudioFormat) ([]string, error) {
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switch format {
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case tagwriter.FormatMP3:
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return []string{"-c:a", "libmp3lame", "-q:a", "5"}, nil
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case tagwriter.FormatFLAC:
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return []string{"-c:a", "flac", "-compression_level", "5"}, nil
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case tagwriter.FormatOGG:
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return []string{"-c:a", "libvorbis", "-q:a", "2"}, nil
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case tagwriter.FormatWAV:
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return nil, nil
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default:
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return nil, fmt.Errorf("%w: %s", errUnknownFormat, format)
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}
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}
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// transcode converts the synthesized WAV at src into dst's format.
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func transcode(src, dst string, format tagwriter.AudioFormat) error {
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args, err := encodeArgs(format)
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if err != nil {
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return err
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}
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full := append([]string{
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"-nostdin", "-hide_banner", "-loglevel", "error", "-y",
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"-i", src, "-map_metadata", "-1",
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}, args...)
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full = append(full, dst)
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ctx, cancel := context.WithTimeout(context.Background(), ffmpegTimeout)
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defer cancel()
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out, err := exec.CommandContext(ctx, "ffmpeg", full...).CombinedOutput()
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if err != nil {
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return fmt.Errorf("ffmpeg %s: %w: %s", dst, err, out)
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}
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return nil
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}
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// requireFFmpeg fails early with an actionable message rather than
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// letting the first transcode blow up halfway through generation.
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func requireFFmpeg() error {
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if _, err := exec.LookPath("ffmpeg"); err != nil {
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return errFFmpegMissing
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}
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return nil
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}
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// coverJPEG renders a small, deterministic cover image for a key.
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//
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// Identical keys produce byte-identical JPEGs, which is exactly what
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// the library's cover-art deduplication is supposed to collapse into a
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// single stored blob.
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func coverJPEG(key string) ([]byte, error) {
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return coverJPEGSized(key, coverSizePx)
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}
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// coverJPEGSized is coverJPEG at an explicit edge length. The bulk
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// library uses a larger one, because a 64 px cover cannot show the
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// difference between rendering the original artwork and rendering the
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// thumbnail tier that exists for the purpose.
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// coverJPEGSized is coverJPEG at an explicit edge length. The bulk
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// library uses a larger one, because a 64 px cover cannot show the
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// difference between rendering the original artwork and rendering the
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// thumbnail tier that exists for the purpose.
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func coverJPEGSized(key string, px int) ([]byte, error) {
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img := image.NewRGBA(image.Rect(0, 0, px, px))
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// A per-key hue derived from the key's bytes, plus a diagonal
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// band, so covers are distinguishable by eye in a screenshot.
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var seed uint32
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for _, b := range []byte(key) {
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seed = seed*31 + uint32(b)
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}
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base := color.RGBA{
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R: uint8(seed >> 16),
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G: uint8(seed >> 8),
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B: uint8(seed),
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A: 255,
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}
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for y := range px {
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for x := range px {
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c := base
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if (x+y)%16 < 8 {
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c.R /= 2
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c.G /= 2
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c.B /= 2
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}
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img.Set(x, y, c)
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}
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}
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var buf bytes.Buffer
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if err := jpeg.Encode(&buf, img, &jpeg.Options{Quality: jpegQuality}); err != nil {
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return nil, fmt.Errorf("encode cover %q: %w", key, err)
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}
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return buf.Bytes(), nil
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}
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// stampMTime pins a fixture's modification time. The library scanner
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// keys incremental rescans off audio_files.modified_at, so a fixed
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// mtime makes "has this changed since the last scan" reproducible.
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func stampMTime(path string) error {
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if err := os.Chtimes(path, fixedMTime, fixedMTime); err != nil {
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return fmt.Errorf("chtimes %s: %w", path, err)
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}
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return nil
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}
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// ensureDir creates a fixture's parent directory.
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func ensureDir(path string) error {
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if err := os.MkdirAll(filepath.Dir(path), dirPerm); err != nil {
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return fmt.Errorf("mkdir %s: %w", filepath.Dir(path), err)
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}
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return nil
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}
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