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import os |
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import sys |
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ROOT_DIR = os.path.dirname(os.path.abspath(__file__)) |
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sys.path.append('{}/third_party/AcademiCodec'.format(ROOT_DIR)) |
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sys.path.append('{}/third_party/Matcha-TTS'.format(ROOT_DIR)) |
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import argparse |
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import gradio as gr |
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import numpy as np |
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import torch |
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import torchaudio |
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import random |
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import librosa |
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import logging |
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logging.getLogger('matplotlib').setLevel(logging.WARNING) |
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from cosyvoice.cli.cosyvoice import CosyVoice |
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from cosyvoice.utils.file_utils import load_wav |
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logging.basicConfig(level=logging.DEBUG, |
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format='%(asctime)s %(levelname)s %(message)s') |
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def generate_seed(): |
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seed = random.randint(1, 100000000) |
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return { |
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"__type__": "update", |
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"value": seed |
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} |
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def set_all_random_seed(seed): |
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random.seed(seed) |
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np.random.seed(seed) |
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torch.manual_seed(seed) |
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torch.cuda.manual_seed_all(seed) |
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max_val = 0.8 |
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def postprocess(speech, top_db=60, hop_length=220, win_length=440): |
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speech, _ = librosa.effects.trim( |
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speech, top_db=top_db, |
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frame_length=win_length, |
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hop_length=hop_length |
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) |
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if speech.abs().max() > max_val: |
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speech = speech / speech.abs().max() * max_val |
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speech = torch.concat([speech, torch.zeros(1, int(target_sr * 0.2))], dim=1) |
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return speech |
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inference_mode_list = ['预训练音色', '3s极速复刻', '跨语种复刻', '自然语言控制'] |
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instruct_dict = {'预训练音色': '1. 选择预训练音色\n2.点击生成音频按钮', |
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'3s极速复刻': '1. 选择prompt音频文件,或录入prompt音频,若同时提供,优先选择prompt音频文件\n2. 输入prompt文本\n3.点击生成音频按钮', |
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'跨语种复刻': '1. 选择prompt音频文件,或录入prompt音频,若同时提供,优先选择prompt音频文件\n2.点击生成音频按钮', |
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'自然语言控制': '1. 输入instruct文本\n2.点击生成音频按钮'} |
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def change_instruction(mode_checkbox_group): |
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return instruct_dict[mode_checkbox_group] |
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def generate_audio(tts_text, mode_checkbox_group, sft_dropdown, prompt_text, prompt_wav_upload, prompt_wav_record, instruct_text, seed): |
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if prompt_wav_upload is not None: |
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prompt_wav = prompt_wav_upload |
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elif prompt_wav_record is not None: |
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prompt_wav = prompt_wav_record |
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else: |
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prompt_wav = None |
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if mode_checkbox_group in ['自然语言控制']: |
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if cosyvoice.frontend.instruct is False: |
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gr.Warning('您正在使用自然语言控制模式, {}模型不支持此模式, 请使用speech_tts/CosyVoice-300M-Instruct模型'.format(args.model_dir)) |
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return (target_sr, default_data) |
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if instruct_text == '': |
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gr.Warning('您正在使用自然语言控制模式, 请输入instruct文本') |
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return (target_sr, default_data) |
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if prompt_wav is not None or prompt_text != '': |
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gr.Info('您正在使用自然语言控制模式, prompt音频/prompt文本会被忽略') |
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if mode_checkbox_group in ['跨语种复刻']: |
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if cosyvoice.frontend.instruct is True: |
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gr.Warning('您正在使用跨语种复刻模式, {}模型不支持此模式, 请使用speech_tts/CosyVoice-300M模型'.format(args.model_dir)) |
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return (target_sr, default_data) |
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if instruct_text != '': |
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gr.Info('您正在使用跨语种复刻模式, instruct文本会被忽略') |
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if prompt_wav is None: |
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gr.Warning('您正在使用跨语种复刻模式, 请提供prompt音频') |
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return (target_sr, default_data) |
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gr.Info('您正在使用跨语种复刻模式, 请确保合成文本和prompt文本为不同语言') |
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if mode_checkbox_group in ['3s极速复刻', '跨语种复刻']: |
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if prompt_wav is None: |
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gr.Warning('prompt音频为空,您是否忘记输入prompt音频?') |
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return (target_sr, default_data) |
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if torchaudio.info(prompt_wav).sample_rate < prompt_sr: |
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gr.Warning('prompt音频采样率{}低于{}'.format(torchaudio.info(prompt_wav).sample_rate, prompt_sr)) |
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return (target_sr, default_data) |
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if mode_checkbox_group in ['预训练音色']: |
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if instruct_text != '' or prompt_wav is not None or prompt_text != '': |
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gr.Info('您正在使用预训练音色模式,prompt文本/prompt音频/instruct文本会被忽略!') |
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if mode_checkbox_group in ['3s极速复刻']: |
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if prompt_text == '': |
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gr.Warning('prompt文本为空,您是否忘记输入prompt文本?') |
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return (target_sr, default_data) |
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if instruct_text != '': |
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gr.Info('您正在使用3s极速复刻模式,预训练音色/instruct文本会被忽略!') |
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if mode_checkbox_group == '预训练音色': |
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logging.info('get sft inference request') |
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set_all_random_seed(seed) |
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output = cosyvoice.inference_sft(tts_text, sft_dropdown) |
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elif mode_checkbox_group == '3s极速复刻': |
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logging.info('get zero_shot inference request') |
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prompt_speech_16k = postprocess(load_wav(prompt_wav, prompt_sr)) |
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set_all_random_seed(seed) |
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output = cosyvoice.inference_zero_shot(tts_text, prompt_text, prompt_speech_16k) |
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elif mode_checkbox_group == '跨语种复刻': |
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logging.info('get cross_lingual inference request') |
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prompt_speech_16k = postprocess(load_wav(prompt_wav, prompt_sr)) |
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set_all_random_seed(seed) |
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output = cosyvoice.inference_cross_lingual(tts_text, prompt_speech_16k) |
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else: |
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logging.info('get instruct inference request') |
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set_all_random_seed(seed) |
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output = cosyvoice.inference_instruct(tts_text, sft_dropdown, instruct_text) |
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audio_data = output['tts_speech'].numpy().flatten() |
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return (target_sr, audio_data) |
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def main(): |
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with gr.Blocks() as demo: |
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gr.Markdown("### 代码库 [CosyVoice](https://github.com/FunAudioLLM/CosyVoice) 预训练模型 [CosyVoice-300M](https://www.modelscope.cn/models/speech_tts/CosyVoice-300M) [CosyVoice-300M-Instruct](https://www.modelscope.cn/models/speech_tts/CosyVoice-300M-Instruct) [CosyVoice-300M-SFT](https://www.modelscope.cn/models/speech_tts/CosyVoice-300M-SFT)") |
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gr.Markdown("#### 请输入需要合成的文本,选择推理模式,并按照提示步骤进行操作") |
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tts_text = gr.Textbox(label="输入合成文本", lines=1, value="我是通义实验室语音团队全新推出的生成式语音大模型,提供舒适自然的语音合成能力。") |
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with gr.Row(): |
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mode_checkbox_group = gr.Radio(choices=inference_mode_list, label='选择推理模式', value=inference_mode_list[0]) |
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instruction_text = gr.Text(label="操作步骤", value=instruct_dict[inference_mode_list[0]], scale=0.5) |
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sft_dropdown = gr.Dropdown(choices=sft_spk, label='选择预训练音色', value=sft_spk[0], scale=0.25) |
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with gr.Column(scale=0.25): |
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seed_button = gr.Button(value="\U0001F3B2") |
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seed = gr.Number(value=0, label="随机推理种子") |
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with gr.Row(): |
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prompt_wav_upload = gr.Audio(sources='upload', type='filepath', label='选择prompt音频文件,注意采样率不低于16khz') |
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prompt_wav_record = gr.Audio(sources='microphone', type='filepath', label='录制prompt音频文件') |
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prompt_text = gr.Textbox(label="输入prompt文本", lines=1, placeholder="请输入prompt文本,需与prompt音频内容一致,暂时不支持自动识别...", value='') |
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instruct_text = gr.Textbox(label="输入instruct文本", lines=1, placeholder="请输入instruct文本.", value='') |
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generate_button = gr.Button("生成音频") |
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audio_output = gr.Audio(label="合成音频") |
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seed_button.click(generate_seed, inputs=[], outputs=seed) |
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generate_button.click(generate_audio, |
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inputs=[tts_text, mode_checkbox_group, sft_dropdown, prompt_text, prompt_wav_upload, prompt_wav_record, instruct_text, seed], |
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outputs=[audio_output]) |
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mode_checkbox_group.change(fn=change_instruction, inputs=[mode_checkbox_group], outputs=[instruction_text]) |
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demo.queue(max_size=4, default_concurrency_limit=2) |
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demo.launch(server_port=args.port) |
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if __name__ == '__main__': |
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parser = argparse.ArgumentParser() |
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parser.add_argument('--port', |
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type=int, |
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default=8000) |
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parser.add_argument('--model_dir', |
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type=str, |
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default='speech_tts/CosyVoice-300M', |
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help='local path or modelscope repo id') |
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args = parser.parse_args() |
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cosyvoice = CosyVoice(args.model_dir) |
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sft_spk = cosyvoice.list_avaliable_spks() |
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prompt_sr, target_sr = 16000, 22050 |
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default_data = np.zeros(target_sr) |
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main() |
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