KNN-VC / app.py
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Update app.py
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import torch
import torchaudio
import gradio as gr
from scipy.io import wavfile
from scipy.io.wavfile import write
knn_vc = torch.hub.load('bshall/knn-vc', 'knn_vc', prematched=True, trust_repo=True, pretrained=True, device='cpu')
def voice_change(audio_in, audio_ref):
samplerate1, data1 = wavfile.read(audio_in)
samplerate2, data2 = wavfile.read(audio_ref)
write("./audio_in.wav", samplerate1, data1)
write("./audio_ref.wav", samplerate2, data2)
query_seq = knn_vc.get_features("./audio_in.wav")
matching_set = knn_vc.get_matching_set(["./audio_ref.wav"])
out_wav = knn_vc.match(query_seq, matching_set, topk=4)
torchaudio.save('output.wav', out_wav[None], 16000)
return 'output.wav'
app = gr.Blocks()
with app:
gr.Markdown("# <center>🥳🎶🎡 - KNN-VC AI变声</center>")
gr.Markdown("### <center>🌟 - 3秒实时AI变声,支持中日英在内的所有语言!无需训练、一键变声!🍻 </center>")
gr.Markdown("### <center>🌊 - 更多精彩应用,敬请关注[滔滔AI](http://www.talktalkai.com);滔滔AI,为爱滔滔!💕</center>")
with gr.Row():
with gr.Column():
inp1 = gr.Audio(type="filepath", label="请上传AI变声的原音频(决定变声后的语音内容)")
inp2 = gr.Audio(type="filepath", label="请上传AI变声的参照音频(决定变声后的语音音色)")
btn1 = gr.Button("一键开启AI变声吧", variant="primary")
with gr.Column():
out1 = gr.Audio(type="filepath", label="AI变声后的专属音频")
btn1.click(voice_change, [inp1, inp2], out1)
gr.Markdown("### <center>注意❗:请不要生成会对个人以及组织造成侵害的内容,此程序仅供科研、学习及个人娱乐使用。</center>")
gr.HTML('''
<div class="footer">
<p>🌊🏞️🎶 - 江水东流急,滔滔无尽声。 明·顾璘
</p>
</div>
''')
app.launch(show_error=True)