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import os |
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import random |
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import gradio as gr |
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from zhconv import convert |
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from LLM import LLM |
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from ASR import WhisperASR, FunASR |
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from TFG import SadTalker |
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from TTS import EdgeTTS |
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from VITS import GPT_SoVITS |
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from src.cost_time import calculate_time |
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from configs import * |
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os.environ["GRADIO_TEMP_DIR"]= './temp' |
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description = """<p style="text-align: center; font-weight: bold;"> |
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<span style="font-size: 28px;">Linly 智能对话系统 (Linly-Talker + GPT-SoVITS)</span> |
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<br> |
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<span style="font-size: 18px;" id="paper-info"> |
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[<a href="https://zhuanlan.zhihu.com/p/671006998" target="_blank">知乎</a>] |
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[<a href="https://www.bilibili.com/video/BV1rN4y1a76x/" target="_blank">bilibili</a>] |
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[<a href="https://github.com/Kedreamix/Linly-Talker" target="_blank">GitHub</a>] |
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[<a herf="https://kedreamix.github.io/" target="_blank">个人主页</a>] |
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[<a herf="https://github.com/RVC-Boss/GPT-SoVITS" target="_blank">GPT-SoVITS</a>] |
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</span> |
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<br> |
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<span>Linly-Talker 是一款智能 AI 对话系统,结合了大型语言模型 (LLMs) 与视觉模型,是一种新颖的人工智能交互方式。</span> |
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</p> |
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""" |
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source_image = r'./inputs/boy.png' |
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blink_every = True |
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size_of_image = 256 |
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preprocess_type = 'crop' |
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facerender = 'facevid2vid' |
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enhancer = False |
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is_still_mode = False |
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pic_path = "./inputs/boy.png" |
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crop_pic_path = "./inputs/first_frame_dir_boy/boy.png" |
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first_coeff_path = "./inputs/first_frame_dir_boy/boy.mat" |
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crop_info = ((876, 747), (0, 0, 886, 838), [10.382158280494476, 0, 886, 747.7078990925525]) |
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exp_weight = 1 |
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use_ref_video = False |
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ref_video = None |
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ref_info = 'pose' |
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use_idle_mode = False |
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length_of_audio = 5 |
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@calculate_time |
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def Asr(audio): |
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try: |
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question = asr.transcribe(audio) |
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question = convert(question, 'zh-cn') |
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except Exception as e: |
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print("ASR Error: ", e) |
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question = 'Gradio 的麦克风有时候可能音频还未传入,请重试一下' |
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return question |
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@calculate_time |
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def LLM_response(question_audio, question, voice = 'zh-CN-XiaoxiaoNeural', rate = 0, volume = 0, pitch = 0): |
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answer = llm.generate(question) |
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print(answer) |
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if voice in tts.SUPPORTED_VOICE: |
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try: |
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tts.predict(answer, voice, rate, volume, pitch , 'answer.wav', 'answer.vtt') |
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except: |
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os.system(f'edge-tts --text "{answer}" --voice {voice} --write-media answer.wav --write-subtitles answer.vtt') |
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elif voice == "克隆烟嗓音": |
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gpt_path = "../GPT-SoVITS/GPT_weights/yansang-e15.ckpt" |
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sovits_path = "../GPT-SoVITS/SoVITS_weights/yansang_e16_s144.pth" |
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vits.load_model(gpt_path, sovits_path) |
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vits.predict(ref_wav_path = "examples/slicer_opt/vocal_output.wav_10.wav_0000846400_0000957760.wav", |
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prompt_text = "你为什么要一次一次的伤我的心啊?", |
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prompt_language = "中文", |
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text = answer, |
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text_language = "中英混合", |
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how_to_cut = "按标点符号切", |
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save_path = 'answer.wav') |
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elif voice == "克隆声音": |
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if question_audio is None: |
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print("无声音输入,无法克隆声音") |
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return None, None, None |
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gpt_path = "GPT_SoVITS/pretrained_models/s1bert25hz-2kh-longer-epoch=68e-step=50232.ckpt" |
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sovits_path = "GPT_SoVITS/pretrained_models/s2G488k.pth" |
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vits.load_model(gpt_path, sovits_path) |
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vits.predict(ref_wav_path = question_audio, |
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prompt_text = question, |
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prompt_language = "中文", |
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text = answer, |
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text_language = "中英混合", |
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how_to_cut = "凑四句一切", |
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save_path = 'answer.wav') |
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return 'answer.wav', None, answer |
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@calculate_time |
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def Talker_response(question_audio, text, voice = 'zh-CN-XiaoxiaoNeural', rate = 0, volume = 100, pitch = 0, batch_size = 2): |
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driven_audio, driven_vtt, _ = LLM_response(question_audio, text, voice, rate, volume, pitch) |
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pose_style = random.randint(0, 45) |
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video = talker.test(pic_path, |
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crop_pic_path, |
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first_coeff_path, |
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crop_info, |
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source_image, |
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driven_audio, |
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preprocess_type, |
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is_still_mode, |
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enhancer, |
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batch_size, |
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size_of_image, |
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pose_style, |
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facerender, |
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exp_weight, |
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use_ref_video, |
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ref_video, |
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ref_info, |
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use_idle_mode, |
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length_of_audio, |
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blink_every, |
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fps=20) |
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if driven_vtt: |
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return video, driven_vtt |
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else: |
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return video |
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def main(): |
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with gr.Blocks(analytics_enabled=False, title = 'Linly-Talker') as inference: |
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gr.HTML(description) |
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with gr.Row(equal_height=False): |
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with gr.Column(variant='panel'): |
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with gr.Tabs(elem_id="question_audio"): |
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with gr.TabItem('对话'): |
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with gr.Column(variant='panel'): |
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question_audio = gr.Audio(sources=['microphone','upload'], type="filepath", label = '语音对话') |
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input_text = gr.Textbox(label="Input Text", lines=3) |
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with gr.Accordion("Advanced Settings(高级设置语音参数) ", |
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open=False): |
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gr.Markdown("若进行克隆声音,声音需要大于3s,小于10s,语音识别后可点击语音对话,否则无法克隆声音") |
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voice = gr.Dropdown(["克隆声音", "克隆烟嗓音"] + tts.SUPPORTED_VOICE, |
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value='克隆声音', |
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label="Voice") |
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rate = gr.Slider(minimum=-100, |
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maximum=100, |
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value=0, |
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step=1.0, |
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label='Rate') |
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volume = gr.Slider(minimum=0, |
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maximum=100, |
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value=100, |
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step=1, |
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label='Volume') |
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pitch = gr.Slider(minimum=-100, |
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maximum=100, |
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value=0, |
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step=1, |
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label='Pitch') |
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batch_size = gr.Slider(minimum=1, |
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maximum=10, |
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value=2, |
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step=1, |
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label='Talker Batch size') |
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asr_text = gr.Button('语音识别(语音对话后点击)') |
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asr_text.click(fn=Asr,inputs=[question_audio],outputs=[input_text]) |
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with gr.Column(variant='panel'): |
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with gr.Tabs(): |
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with gr.TabItem('数字人问答'): |
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gen_video = gr.Video(label="Generated video", format="mp4", scale=1, autoplay=True) |
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video_button = gr.Button("提交", variant='primary') |
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video_button.click(fn=Talker_response,inputs=[question_audio, input_text,voice, rate, volume, pitch, batch_size],outputs=[gen_video]) |
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with gr.Row(): |
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with gr.Column(variant='panel'): |
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gr.Markdown("## Text Examples") |
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examples = ['应对压力最有效的方法是什么?', |
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'如何进行时间管理?', |
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'为什么有些人选择使用纸质地图或寻求方向,而不是依赖GPS设备或智能手机应用程序?', |
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'近日,苹果公司起诉高通公司,状告其未按照相关合约进行合作,高通方面尚未回应。这句话中“其”指的是谁?', |
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'三年级同学种树80颗,四、五年级种的棵树比三年级种的2倍多14棵,三个年级共种树多少棵?', |
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'撰写一篇交响乐音乐会评论,讨论乐团的表演和观众的整体体验。', |
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'翻译成中文:Luck is a dividend of sweat. The more you sweat, the luckier you get.', |
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] |
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gr.Examples( |
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examples = examples, |
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fn = Talker_response, |
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inputs = [input_text], |
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outputs=[gen_video], |
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) |
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return inference |
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if __name__ == "__main__": |
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llm = LLM(mode=mode).init_model('Qwen', 'Qwen/Qwen-1_8B-Chat') |
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talker = SadTalker(lazy_load=True) |
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asr = FunASR() |
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tts = EdgeTTS() |
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vits = GPT_SoVITS() |
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gr.close_all() |
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demo = main() |
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demo.queue() |
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demo.launch(server_name=ip, |
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server_port=port, |
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ssl_certfile=ssl_certfile, |
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ssl_keyfile=ssl_keyfile, |
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ssl_verify=False, |
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debug=True) |