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from fastapi import File, Form, HTTPException, Body, UploadFile |
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from fastapi.responses import StreamingResponse |
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import io |
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from numpy import clip |
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import soundfile as sf |
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from pydantic import BaseModel, Field |
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from fastapi.responses import FileResponse |
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from modules.synthesize_audio import synthesize_audio |
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from modules.normalization import text_normalize |
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from modules import generate_audio as generate |
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from typing import List, Literal, Optional, Union |
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import pyrubberband as pyrb |
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from modules.api import utils as api_utils |
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from modules.api.Api import APIManager |
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from modules.speaker import speaker_mgr |
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from modules.data import styles_mgr |
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import numpy as np |
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class AudioSpeechRequest(BaseModel): |
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input: str |
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model: str = "chattts-4w" |
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voice: str = "female2" |
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response_format: Literal["mp3", "wav"] = "mp3" |
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speed: float = Field(1, ge=0.1, le=10, description="Speed of the audio") |
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seed: int = 42 |
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temperature: float = 0.3 |
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style: str = "" |
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batch_size: int = Field(1, ge=1, le=20, description="Batch size") |
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spliter_threshold: float = Field( |
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100, ge=10, le=1024, description="Threshold for sentence spliter" |
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) |
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async def openai_speech_api( |
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request: AudioSpeechRequest = Body( |
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..., description="JSON body with model, input text, and voice" |
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) |
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): |
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model = request.model |
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input_text = request.input |
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voice = request.voice |
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style = request.style |
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response_format = request.response_format |
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batch_size = request.batch_size |
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spliter_threshold = request.spliter_threshold |
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speed = request.speed |
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speed = clip(speed, 0.1, 10) |
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if not input_text: |
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raise HTTPException(status_code=400, detail="Input text is required.") |
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if speaker_mgr.get_speaker(voice) is None: |
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raise HTTPException(status_code=400, detail="Invalid voice.") |
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try: |
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if style: |
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styles_mgr.find_item_by_name(style) |
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except: |
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raise HTTPException(status_code=400, detail="Invalid style.") |
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try: |
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text = text_normalize(input_text, is_end=True) |
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params = api_utils.calc_spk_style(spk=voice, style=style) |
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spk = params.get("spk", -1) |
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seed = params.get("seed", request.seed or 42) |
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temperature = params.get("temperature", request.temperature or 0.3) |
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prompt1 = params.get("prompt1", "") |
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prompt2 = params.get("prompt2", "") |
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prefix = params.get("prefix", "") |
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sample_rate, audio_data = synthesize_audio( |
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text, |
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temperature=temperature, |
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top_P=0.7, |
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top_K=20, |
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spk=spk, |
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infer_seed=seed, |
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batch_size=batch_size, |
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spliter_threshold=spliter_threshold, |
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prompt1=prompt1, |
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prompt2=prompt2, |
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prefix=prefix, |
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) |
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if speed != 1: |
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audio_data = pyrb.time_stretch(audio_data, sample_rate, speed) |
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buffer = io.BytesIO() |
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sf.write(buffer, audio_data, sample_rate, format="wav") |
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buffer.seek(0) |
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if response_format == "mp3": |
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buffer = api_utils.wav_to_mp3(buffer) |
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return StreamingResponse(buffer, media_type="audio/mp3") |
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except Exception as e: |
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import logging |
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logging.exception(e) |
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raise HTTPException(status_code=500, detail=str(e)) |
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class TranscribeSegment(BaseModel): |
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id: int |
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seek: float |
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start: float |
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end: float |
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text: str |
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tokens: list[int] |
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temperature: float |
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avg_logprob: float |
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compression_ratio: float |
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no_speech_prob: float |
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class TranscriptionsVerboseResponse(BaseModel): |
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task: str |
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language: str |
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duration: float |
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text: str |
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segments: list[TranscribeSegment] |
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def setup(app: APIManager): |
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app.post( |
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"/v1/audio/speech", |
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response_class=FileResponse, |
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description=""" |
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openai api document: |
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[https://platform.openai.com/docs/guides/text-to-speech](https://platform.openai.com/docs/guides/text-to-speech) |
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以下属性为本系统自定义属性,不在openai文档中: |
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- batch_size: 是否开启batch合成,小于等于1表示不使用batch (不推荐) |
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- spliter_threshold: 开启batch合成时,句子分割的阈值 |
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- style: 风格 |
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> model 可填任意值 |
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""", |
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)(openai_speech_api) |
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@app.post( |
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"/v1/audio/transcriptions", |
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response_model=TranscriptionsVerboseResponse, |
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description="Transcribes audio into the input language.", |
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) |
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async def transcribe( |
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file: UploadFile = File(...), |
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model: str = Form(...), |
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language: Optional[str] = Form(None), |
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prompt: Optional[str] = Form(None), |
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response_format: str = Form("json"), |
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temperature: float = Form(0), |
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timestamp_granularities: List[str] = Form(["segment"]), |
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): |
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return api_utils.success_response("not implemented yet") |
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