Files
Maven/cmd/mavttsd/piper_handler.go
claude 67decc42f0 sweep: name voice-daemon magic numbers, drop dead keep-alive vars (V-581)
mavsttd/whisper_handler.go: name the no_speech_prob confidence-zeroing
floor (0.9) and the whisper thread count (4), both previously bare
literals with no reason attached.

mavttsd/piper_handler.go: name piper's render rate (22050) and the
canonical wire rate (16000) used by the resampler, instead of repeating
the two numbers inline four times.

mavenclient/main.go: remove the strconv/io/net/time imports and their
`var _ = ...` keep-alive lines — dead weight with no caller, not future
scaffolding.

Behaviour-preserving; no test changed. go test -race ./internal/...
./cmd/... is green.
2026-08-06 03:00:21 +04:00

161 lines
4.2 KiB
Go

package main
import (
"bytes"
"context"
"encoding/binary"
"fmt"
"io"
"os/exec"
"github.com/kami/maven/internal/audio"
"github.com/kami/maven/internal/tts"
"github.com/kami/maven/internal/worker"
)
type piperHandler struct {
piperPath string
modelPath string
configPath string
espeakData string
tashkeelModel string
// lexicon rewrites service ids and Latin names into the spelling the
// Russian voice reads correctly (Vikunja #458). Nil-safe: an unconfigured
// dictionary rewrites nothing.
lexicon *tts.Lexicon
}
func newPiperHandler(piperPath, modelPath, espeakData, tashkeelModel string, lexicon *tts.Lexicon) *piperHandler {
return &piperHandler{
piperPath: piperPath,
modelPath: modelPath,
configPath: modelPath + ".json",
espeakData: espeakData,
tashkeelModel: tashkeelModel,
lexicon: lexicon,
}
}
func (h *piperHandler) Synthesize(ctx context.Context, req worker.SynthesizeReq) (worker.SynthesizeResp, error) {
var stderr bytes.Buffer
args := []string{
"--model", h.modelPath,
"--config", h.configPath,
"--output_raw",
"--quiet",
}
if h.espeakData != "" {
args = append(args, "--espeak_data", h.espeakData)
}
if h.tashkeelModel != "" {
args = append(args, "--tashkeel_model", h.tashkeelModel)
}
cmd := exec.CommandContext(ctx, h.piperPath, args...)
cmd.Stderr = &stderr
stdin, err := cmd.StdinPipe()
if err != nil {
return worker.SynthesizeResp{}, fmt.Errorf("piper: stdin pipe: %w", err)
}
stdout, err := cmd.StdoutPipe()
if err != nil {
stdin.Close()
return worker.SynthesizeResp{}, fmt.Errorf("piper: stdout pipe: %w", err)
}
if err := cmd.Start(); err != nil {
stdin.Close()
stdout.Close()
return worker.SynthesizeResp{}, fmt.Errorf("piper: start: %w", err)
}
// The dictionary is applied here, at the last edge before the voice: every
// caller's text passes through this one point, and nothing upstream has to
// know how a name is spelled out loud.
text := req.Text
if h.lexicon != nil {
text = h.lexicon.Apply(text)
}
if _, err := io.WriteString(stdin, text); err != nil {
stdin.Close()
stdout.Close()
_ = cmd.Wait()
return worker.SynthesizeResp{}, fmt.Errorf("piper: write text: %w", err)
}
stdin.Close()
rawPCM, readErr := io.ReadAll(stdout)
stdout.Close()
waitErr := cmd.Wait()
if waitErr != nil {
errMsg := stderr.String()
if errMsg != "" {
return worker.SynthesizeResp{}, fmt.Errorf("piper: %s: %s", waitErr, errMsg)
}
return worker.SynthesizeResp{}, fmt.Errorf("piper: %w", waitErr)
}
if readErr != nil {
return worker.SynthesizeResp{}, fmt.Errorf("piper: read stdout: %w", readErr)
}
if len(rawPCM) == 0 {
return worker.SynthesizeResp{}, fmt.Errorf("piper: no audio output")
}
resampled := resample22050To16000(rawPCM)
return worker.SynthesizeResp{
Audio: audio.Audio{
Format: audio.PCM16kMono,
Bytes: resampled,
},
}, nil
}
// piperSampleRate is the rate piper's onnx voices render at (ru_RU-irina and
// the other models this daemon has been pointed at). targetSampleRate is the
// canonical maven wire rate (audio.PCM16kMono) that every downstream
// consumer — playback, the voice wire, whisper on the way back in — expects.
const (
piperSampleRate = 22050
targetSampleRate = 16000
)
// resample22050To16000 converts raw 16-bit PCM from piperSampleRate to
// targetSampleRate using linear interpolation.
func resample22050To16000(input []byte) []byte {
if len(input) < 2 {
return nil
}
nSamples := len(input) / 2
outSamples := int(float64(nSamples) * float64(targetSampleRate) / float64(piperSampleRate))
output := make([]byte, outSamples*2)
ratio := float64(piperSampleRate) / float64(targetSampleRate)
for i := 0; i < outSamples; i++ {
srcPos := float64(i) * ratio
srcIdx := int(srcPos)
frac := srcPos - float64(srcIdx)
if srcIdx >= nSamples-1 {
v := int16(binary.LittleEndian.Uint16(input[(nSamples-1)*2:]))
binary.LittleEndian.PutUint16(output[i*2:], uint16(v))
continue
}
v0 := int16(binary.LittleEndian.Uint16(input[srcIdx*2:]))
v1 := int16(binary.LittleEndian.Uint16(input[(srcIdx+1)*2:]))
interpolated := int16(float64(v0)*(1-frac) + float64(v1)*frac)
binary.LittleEndian.PutUint16(output[i*2:], uint16(interpolated))
}
return output
}