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ChatTTS 开源文本转语音模型本地部署

2024/12/23 12:16:04 来源:https://blog.csdn.net/m0_57057282/article/details/139801068  浏览:    关键词:ChatTTS 开源文本转语音模型本地部署

1.下载模型文件

git lfs install
git clone https://www.modelscope.cn/pzc163/chatTTS.git ChatTTS-Model

2.下载chatTTS源码

git clone https://gitcode.com/2noise/ChatTTS.git ChatTTS

3.进入源码目录,批量安装Python依赖包

pip install -r requirements.txt

特别注意:如果下载过程中,若出现找不到torch2.1.0版本错误,请修改requirements.txt文件,把torch的版本修改为2.2.2后再次执行安装:

omegaconf~=2.3.0
torch~=2.2.2
tqdm
einops
vector_quantize_pytorch
transformers~=4.41.1
vocos
IPython

4.运行测试py文件,记得将路径换为自己的

# ChatTTS-01.pyimport ChatTTS
import torch
import torchaudio# 第一步下载的ChatTTS模型文件目录,请按照实际情况替换
MODEL_PATH = '/home/cxh/ChatTTS-Model'# 初始化并加载模型,特别注意加载模型参数,官网样例代码已经过时,请使用下面代码
chat = ChatTTS.Chat()
chat.load_models(source='local', local_path='/home/cxh/ChatTTS-Model')# 需要转化为音频的文本内容
text = '你好奥'# 文本转为音频
wavs = chat.infer(text, use_decoder=True)# 保存音频文件到本地文件(采样率为24000Hz)
torchaudio.save("./outputs/output-01.wav", torch.from_numpy(wavs[0]), 24000)

5.进行webui展示

import randomimport ChatTTS
import gradio as gr
import numpy as np
import torch
from ChatTTS.infer.api import refine_text, infer_codeprint('启动ChatTTS WebUI......')# WebUI设置
WEB_HOST = '127.0.0.1'
WEB_PORT = 8089MODEL_PATH = '/home/cxh/ChatTTS-Model'chat = ChatTTS.Chat()
chat.load_models(source='local', local_path='/home/cxh/ChatTTS-Model')def generate_seed():new_seed = random.randint(1, 100000000)return {"__type__": "update","value": new_seed}def generate_audio(text, temperature, top_P, top_K, audio_seed_input, text_seed_input, refine_text_flag):torch.manual_seed(audio_seed_input)rand_spk = torch.randn(768)params_infer_code = {'spk_emb': rand_spk,'temperature': temperature,'top_P': top_P,'top_K': top_K,}params_refine_text = {'prompt': '[oral_2][laugh_0][break_6]'}torch.manual_seed(text_seed_input)text_tokens = refine_text(chat.pretrain_models, text, **params_refine_text)['ids']text_tokens = [i[i < chat.pretrain_models['tokenizer'].convert_tokens_to_ids('[break_0]')] for i in text_tokens]text = chat.pretrain_models['tokenizer'].batch_decode(text_tokens)# result = infer_code(chat.pretrain_models, text, **params_infer_code, return_hidden=True)print(f'ChatTTS微调文本:{text}')wav = chat.infer(text,params_refine_text=params_refine_text,params_infer_code=params_infer_code,use_decoder=True,skip_refine_text=True,)audio_data = np.array(wav[0]).flatten()sample_rate = 24000text_data = text[0] if isinstance(text, list) else textreturn [(sample_rate, audio_data), text_data]def main():with gr.Blocks() as demo:default_text = "大家好,我是老牛同学,微信公众号:老牛同学。很高兴与您相遇,专注于编程技术、大模型及人工智能等相关技术分享,欢迎关注和转发,让我们共同启程智慧之旅!"text_input = gr.Textbox(label="输入文本", lines=4, placeholder="Please Input Text...", value=default_text)with gr.Row():refine_text_checkbox = gr.Checkbox(label="文本微调开关", value=True)temperature_slider = gr.Slider(minimum=0.00001, maximum=1.0, step=0.00001, value=0.8, label="语音温度参数")top_p_slider = gr.Slider(minimum=0.1, maximum=0.9, step=0.05, value=0.7, label="语音top_P采样参数")top_k_slider = gr.Slider(minimum=1, maximum=20, step=1, value=20, label="语音top_K采样参数")with gr.Row():audio_seed_input = gr.Number(value=42, label="语音随机数")generate_audio_seed = gr.Button("\U0001F3B2")text_seed_input = gr.Number(value=42, label="文本随机数")generate_text_seed = gr.Button("\U0001F3B2")generate_button = gr.Button("文本生成语音")text_output = gr.Textbox(label="微调文本", interactive=False)audio_output = gr.Audio(label="语音")generate_audio_seed.click(generate_seed,inputs=[],outputs=audio_seed_input)generate_text_seed.click(generate_seed,inputs=[],outputs=text_seed_input)generate_button.click(generate_audio,inputs=[text_input, temperature_slider, top_p_slider, top_k_slider, audio_seed_input, text_seed_input, refine_text_checkbox],outputs=[audio_output, text_output, ])# 启动WebUIdemo.launch(server_name='127.0.0.1', server_port=8089, share=False, show_api=False, )if __name__ == '__main__':main()

文章内容来源:
ChatTTS 开源文本转语音模型本地部署、API使用和搭建WebUI界面(建议收藏)

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