package encoder import ( "context" "encoding/json" "fmt" "os/exec" "path/filepath" "regexp" "sort" "strconv" "strings" "videnc-vibe/internal/logger" "videnc-vibe/pkg/types" ) var idetSummaryRegex = regexp.MustCompile(`Multi frame detection:\s+TFF:\s*(\d+)\s+BFF:\s*(\d+)\s+Progressive:\s*(\d+)\s+Undetermined:\s*(\d+)`) type Encoder struct { ffmpegPath string ffprobePath string opusencPath string log *logger.Logger } type StreamInfo struct { Width int `json:"width"` Height int `json:"height"` SampleAspectRatio string `json:"sample_aspect_ratio"` DisplayAspectRatio string `json:"display_aspect_ratio"` CodecName string `json:"codec_name"` CodecType string `json:"codec_type"` } type ProbeResult struct { Streams []StreamInfo `json:"streams"` } type StreamMetadata struct { Index int `json:"index"` CodecType string `json:"codec_type"` CodecName string `json:"codec_name"` Language string `json:"tags"` Title string `json:"title"` } func New(log *logger.Logger) *Encoder { return &Encoder{ ffmpegPath: "ffmpeg", ffprobePath: "ffprobe", opusencPath: "opusenc", log: log, } } // runCmd executes the command and emits a debug entry containing the full // command line and its combined output. file is the source file the command // is acting on (may be empty). func (e *Encoder) runCmd(ctx context.Context, label, file, name string, args []string) ([]byte, error) { cmd := exec.CommandContext(ctx, name, args...) out, err := cmd.CombinedOutput() extra, _ := json.Marshal(struct { Cmd string `json:"cmd"` Output string `json:"output"` }{ Cmd: name + " " + strings.Join(args, " "), Output: string(out), }) e.log.Debug(label, file, string(extra)) return out, err } func (e *Encoder) CheckDeps() error { if _, err := exec.LookPath(e.ffmpegPath); err != nil { return fmt.Errorf("ffmpeg not found") } if _, err := exec.LookPath(e.ffprobePath); err != nil { return fmt.Errorf("ffprobe not found") } if _, err := exec.LookPath(e.opusencPath); err != nil { return fmt.Errorf("opusenc not found") } return nil } func (e *Encoder) GetStreamLanguages(ctx context.Context, path string) ([]StreamMetadata, error) { args := []string{"-v", "error", "-show_streams", "-print_format", "json", path} output, err := e.runCmd(ctx, "ffprobe stream languages", path, e.ffprobePath, args) if err != nil { return nil, fmt.Errorf("ffprobe error: %w", err) } var result struct { Streams []struct { Index int `json:"index"` CodecType string `json:"codec_type"` CodecName string `json:"codec_name"` Tags map[string]string `json:"tags"` } `json:"streams"` } if err := json.Unmarshal(output, &result); err != nil { return nil, fmt.Errorf("parsing ffprobe: %w", err) } var streams []StreamMetadata for _, s := range result.Streams { lang := "" title := "" if s.Tags != nil { lang = s.Tags["language"] title = s.Tags["title"] } streams = append(streams, StreamMetadata{ Index: s.Index, CodecType: s.CodecType, CodecName: s.CodecName, Language: lang, Title: title, }) } streamsJSON, _ := json.Marshal(streams) e.log.Debug("parsed stream languages", path, string(streamsJSON)) return streams, nil } func (e *Encoder) GetMediaInfo(ctx context.Context, path string) (width, height int, interlaced bool, err error) { probeArgs := []string{"-v", "error", "-show_streams", "-print_format", "json", path} output, err := e.runCmd(ctx, "ffprobe media info", path, e.ffprobePath, probeArgs) if err != nil { return 0, 0, false, fmt.Errorf("ffprobe error: %w", err) } var result ProbeResult if err := json.Unmarshal(output, &result); err != nil { return 0, 0, false, fmt.Errorf("parsing ffprobe output: %w", err) } foundVideo := false for _, stream := range result.Streams { if stream.CodecType == "video" { width = stream.Width height = stream.Height foundVideo = true info, _ := json.Marshal(map[string]interface{}{ "width": width, "height": height, "codec": stream.CodecName, "sar": stream.SampleAspectRatio, }) e.log.Debug("detected video stream", path, string(info)) break } } if !foundVideo { return 0, 0, false, fmt.Errorf("no video stream found") } idetArgs := []string{ "-hide_banner", "-nostats", "-i", path, "-vf", "idet", "-frames:v", "400", "-an", "-sn", "-f", "null", "-", } idetOut, _ := e.runCmd(ctx, "ffmpeg idet", path, e.ffmpegPath, idetArgs) interlaced = detectInterlaced(string(idetOut)) info, _ := json.Marshal(map[string]bool{"interlaced": interlaced}) e.log.Debug("interlace detection", path, string(info)) return width, height, interlaced, nil } // detectInterlaced parses ffmpeg idet's "Multi frame detection" summary line // and returns true when TFF+BFF clearly outnumber Progressive frames among // the decided frames. Undetermined frames are ignored. If the summary line // is missing, returns false (default to progressive). func detectInterlaced(idetOutput string) bool { m := idetSummaryRegex.FindStringSubmatch(idetOutput) if m == nil { return false } tff, _ := strconv.Atoi(m[1]) bff, _ := strconv.Atoi(m[2]) prog, _ := strconv.Atoi(m[3]) interlaced := tff + bff decided := interlaced + prog if decided == 0 { return false } return interlaced > prog } func (e *Encoder) calculateZscaleWidth(ctx context.Context, path string, originalHeight int) (string, int, error) { args := []string{"-v", "error", "-select_streams", "v:0", "-show_entries", "stream=width,height,sample_aspect_ratio", "-print_format", "json", path} output, err := e.runCmd(ctx, "ffprobe zscale info", path, e.ffprobePath, args) if err != nil { return "", 0, fmt.Errorf("ffprobe error: %w", err) } var result ProbeResult if err := json.Unmarshal(output, &result); err != nil { return "", 0, fmt.Errorf("parsing ffprobe: %w", err) } if len(result.Streams) == 0 { return "", 0, fmt.Errorf("no video streams found") } stream := result.Streams[0] width := stream.Width height := stream.Height sar := stream.SampleAspectRatio newWidth := width if sar == "1:1" || sar == "N/A" || sar == "" { return "", newWidth, nil } parts := strings.Split(sar, ":") if len(parts) != 2 { return "", newWidth, nil } num, err1 := strconv.Atoi(parts[0]) den, err2 := strconv.Atoi(parts[1]) if err1 != nil || err2 != nil || num == 0 || den == 0 { return "", newWidth, nil } // Round to nearest, then snap down to even (mod-2 widths preferred by AV1/H.264). newWidth = ((width*num + den/2) / den) &^ 1 info, _ := json.Marshal(map[string]interface{}{ "width": width, "height": height, "sar": sar, "new_width": newWidth, }) e.log.Debug("zscale calculation", path, string(info)) if newWidth == width { return "", newWidth, nil } zscale := fmt.Sprintf("zscale=w=%d:h=%d:filter=spline36", newWidth, height) return zscale, newWidth, nil } func (e *Encoder) Transcode(ctx context.Context, input, workDir string, job *types.Job, metadata *types.Metadata, interlaced bool, streamLangs []StreamMetadata) error { audioWavs, err := e.extractAudio(ctx, input, workDir, streamLangs) if err != nil { return fmt.Errorf("extracting audio: %w", err) } opusFiles, err := e.encodeOpus(ctx, audioWavs, workDir) if err != nil { return fmt.Errorf("encoding opus: %w", err) } if err := e.encodeVideo(ctx, input, workDir, opusFiles, job, metadata, interlaced, streamLangs); err != nil { return fmt.Errorf("encoding video: %w", err) } return nil } // audioStreamsInSourceOrder returns the audio entries of streamLangs sorted by // their source-side Index. The resulting slice position is the 0-based audio // stream index used by ffmpeg selectors like `0:a:`. func audioStreamsInSourceOrder(streamLangs []StreamMetadata) []StreamMetadata { var audio []StreamMetadata for _, s := range streamLangs { if s.CodecType == "audio" { audio = append(audio, s) } } sort.Slice(audio, func(i, j int) bool { return audio[i].Index < audio[j].Index }) return audio } func (e *Encoder) extractAudio(ctx context.Context, input, workDir string, streamLangs []StreamMetadata) ([]string, error) { audio := audioStreamsInSourceOrder(streamLangs) if len(audio) == 0 { return nil, fmt.Errorf("no audio streams found") } wavs := make([]string, 0, len(audio)) for srcAudioIndex := range audio { wavPath := filepath.Join(workDir, fmt.Sprintf("audio.%d.wav", srcAudioIndex)) args := []string{ "-i", input, "-map", fmt.Sprintf("0:a:%d", srcAudioIndex), "-vn", "-c:a", "pcm_s16le", "-ar", "48000", "-f", "wav", wavPath, } out, err := e.runCmd(ctx, "ffmpeg extract audio", input, e.ffmpegPath, args) if err != nil { return wavs, fmt.Errorf("ffmpeg extract a:%d: %s %w", srcAudioIndex, out, err) } wavs = append(wavs, wavPath) } return wavs, nil } func (e *Encoder) encodeOpus(ctx context.Context, wavs []string, workDir string) ([]string, error) { var opusFiles []string for _, wav := range wavs { base := filepath.Base(strings.Replace(wav, ".wav", ".opus", 1)) out := filepath.Join(workDir, base) args := []string{"--bitrate", "128k", wav, out} logOut, err := e.runCmd(ctx, "opusenc", wav, e.opusencPath, args) if err != nil { return nil, fmt.Errorf("opusenc: %s %w", logOut, err) } opusFiles = append(opusFiles, out) } return opusFiles, nil } func (e *Encoder) encodeVideo(ctx context.Context, input, workDir string, opusFiles []string, job *types.Job, metadata *types.Metadata, interlaced bool, streamLangs []StreamMetadata) error { outFile := filepath.Join(workDir, "output.mkv") svtParams := fmt.Sprintf("film-grain=10:film-grain-denoise=1:scd=1:qm-min=4:qm-max=15:keyint=10s") zscaleStr, newWidth, err := e.calculateZscaleWidth(ctx, input, 0) if err != nil { return fmt.Errorf("calculating zscale: %w", err) } var filters []string if interlaced { filters = append(filters, "bwdif=mode=0:par=-1:-1") } if zscaleStr != "" { filters = append(filters, zscaleStr) } filterInfo, _ := json.Marshal(map[string]interface{}{ "zscale": zscaleStr, "new_width": newWidth, "interlaced": interlaced, "vf": strings.Join(filters, ","), }) e.log.Debug("video filter chain", input, string(filterInfo)) args := []string{ "-y", "-i", input, } for _, opus := range opusFiles { args = append(args, "-i", opus) } if len(filters) > 0 { args = append(args, "-vf", strings.Join(filters, ",")) } args = append(args, "-c:v", "libsvtav1") args = append(args, "-crf", strconv.Itoa(job.CRF)) args = append(args, "-preset", strconv.Itoa(job.Preset)) args = append(args, "-svtav1-params", svtParams) args = append(args, "-pix_fmt", "yuv420p10le") args = append(args, "-map", "0:v") args = append(args, "-map", "0:s?") for i := range opusFiles { args = append(args, "-map", fmt.Sprintf("%d:a", i+1)) } args = append(args, "-c:a", "copy") args = append(args, "-c:s", "copy") args = append(args, "-map_metadata", "-1") // Walk opusFiles by output audio index (0..N-1) and look up the source // audio language at the same source-audio-index position. This keeps the // `-metadata:s:a:i` index aligned with the output stream order, regardless // of whether some source streams lacked a language tag. audioStreams := audioStreamsInSourceOrder(streamLangs) for i := range opusFiles { if i >= len(audioStreams) { break } lang := audioStreams[i].Language if lang == "" { continue } args = append(args, fmt.Sprintf("-metadata:s:a:%d", i), fmt.Sprintf("language=%s", lang)) } for _, stream := range streamLangs { if stream.CodecType == "subtitle" && stream.Language != "" { idx := 0 for _, s := range streamLangs { if s.CodecType == "subtitle" && s.Index < stream.Index { idx++ } } args = append(args, fmt.Sprintf("-metadata:s:s:%d", idx), fmt.Sprintf("language=%s", stream.Language)) } } args = append(args, "-metadata", fmt.Sprintf("TITLE=%s", metadata.Title)) args = append(args, "-metadata", fmt.Sprintf("DATE_RELEASED=%s", metadata.DateReleased)) args = append(args, "-metadata", fmt.Sprintf("IMDBID=%s", metadata.IMDBID)) args = append(args, "-metadata", fmt.Sprintf("ORIGINAL_MEDIA_TYPE=%s", metadata.OriginalMedia)) if metadata.IsSeries { args = append(args, "-metadata", fmt.Sprintf("COLLECTION=%s", metadata.Collection)) args = append(args, "-metadata", fmt.Sprintf("SEASON=%s", metadata.Season)) args = append(args, "-metadata", fmt.Sprintf("EPISODE=%s", metadata.Episode)) if metadata.TVMazeID != "" { args = append(args, "-metadata", fmt.Sprintf("TVMAZE_ID=%s", metadata.TVMazeID)) } } args = append(args, outFile) args = append([]string{"-hide_banner", "-v", "error"}, args...) out, err := e.runCmd(ctx, "ffmpeg encode", input, e.ffmpegPath, args) if err != nil { return fmt.Errorf("ffmpeg encode: %s %w", out, err) } return nil }