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xJuuzouYTx
commited on
Commit
•
a87192b
1
Parent(s):
6238bd4
[ADD] basic functions to inference
Browse files- app.py +32 -5
- inference.py +1 -1
- models/model.py +7 -2
app.py
CHANGED
@@ -46,19 +46,46 @@ def convert_yt_to_wav(url):
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with gr.Blocks() as app:
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gr.HTML("<h1> Simple RVC Inference - by Juuxn 💻 </h1>")
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with gr.Tab("Inferencia"):
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model_url = gr.Textbox(placeholder="https://huggingface.co/AIVER-SE/BillieEilish/resolve/main/BillieEilish.zip", label="Url del modelo", show_label=True)
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# Salida
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with gr.Row():
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vc_output1 = gr.Textbox(label="Salida")
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vc_output2 = gr.Audio(label="Audio de salida")
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btn = gr.Button(value="Convertir")
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btn.click(infer, inputs=[model_url, f0_method, audio_path], outputs=[vc_output1, vc_output2])
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with gr.TabItem("TTS"):
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with gr.Row():
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with gr.Blocks() as app:
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gr.HTML("<h1> Simple RVC Inference - by Juuxn 💻 </h1>")
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gr.HTML("<h4> El espacio actual usa solo cpu, así que es solo para inferencia. Se recomienda duplicar el espacio para no tener problemas con las colas de procesamiento. </h4>")
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gr.Markdown(
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"[![Duplicate this Space](https://huggingface.co/datasets/huggingface/badges/raw/main/duplicate-this-space-sm-dark.svg)](https://huggingface.co/spaces/juuxn/SimpleRVC?duplicate=true)\n\n"
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)
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gr.Markdown("Recopilación de modelos que puedes usar: RVC + Kits ai. **[RVC Community Models](https://docs.google.com/spreadsheets/d/1owfUtQuLW9ReiIwg6U9UkkDmPOTkuNHf0OKQtWu1iaI)**")
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with gr.Tab("Inferencia"):
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model_url = gr.Textbox(placeholder="https://huggingface.co/AIVER-SE/BillieEilish/resolve/main/BillieEilish.zip", label="Url del modelo", show_label=True)
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with gr.Row():
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with gr.Column():
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audio_path = gr.Audio(label="Archivo de audio", show_label=True, type="filepath",)
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index_rate = gr.Slider(minimum=0, maximum=1, label="Search feature ratio:", value=0.75, interactive=True,)
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filter_radius1 = gr.Slider(minimum=0, maximum=7, label="Filtro (reducción de asperezas respiración)", value=3, step=1, interactive=True,)
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with gr.Column():
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f0_method = gr.Dropdown(choices=["harvest", "pm", "crepe", "crepe-tiny", "mangio-crepe", "mangio-crepe-tiny", "rmvpe"],
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value="rmvpe",
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label="Algoritmo", show_label=True)
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vc_transform0 = gr.Slider(minimum=-12, label="Número de semitonos, subir una octava: 12, bajar una octava: -12", value=0, maximum=12, step=1)
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protect0 = gr.Slider(
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minimum=0, maximum=0.5, label="Protejer las consonantes sordas y los sonidos respiratorios. 0.5 para desactivarlo.", value=0.33,
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step=0.01,
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interactive=True,
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)
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resample_sr1 = gr.Slider(
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minimum=0,
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maximum=48000,
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label="Re-muestreo sobre el audio de salida hasta la frecuencia de muestreo final. 0 para no re-muestrear.",
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value=0,
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step=1,
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interactive=True,
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)
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# Salida
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with gr.Row():
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vc_output1 = gr.Textbox(label="Salida")
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vc_output2 = gr.Audio(label="Audio de salida")
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btn = gr.Button(value="Convertir")
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btn.click(infer, inputs=[model_url, f0_method, audio_path, index_rate, vc_transform0, protect0, resample_sr1, filter_radius1], outputs=[vc_output1, vc_output2])
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with gr.TabItem("TTS"):
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with gr.Row():
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inference.py
CHANGED
@@ -18,7 +18,7 @@ class Inference:
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feature_index_path="",
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f0_file=None,
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speaker_id=0,
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transposition
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f0_method="harvest",
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crepe_hop_length=160,
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harvest_median_filter=3,
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feature_index_path="",
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f0_file=None,
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speaker_id=0,
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transposition=0,
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f0_method="harvest",
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crepe_hop_length=160,
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harvest_median_filter=3,
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models/model.py
CHANGED
@@ -65,19 +65,24 @@ def compress(modelname, files):
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return file_path
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def infer(model, f0_method, audio_file):
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print("****", audio_file)
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inference = Inference(
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model_name=model,
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f0_method=f0_method,
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source_audio_path=audio_file,
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output_file_name=os.path.join("./audio-outputs", os.path.basename(audio_file))
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)
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output = inference.run()
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if 'success' in output and output['success']:
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return output, output['file']
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else:
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return
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def post_model(name, model_url, version, creator):
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return file_path
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def infer(model, f0_method, audio_file, index_rate, vc_transform0, protect0, resample_sr1, filter_radius1):
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print("****", audio_file)
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inference = Inference(
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model_name=model,
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f0_method=f0_method,
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source_audio_path=audio_file,
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feature_ratio=index_rate,
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transposition=vc_transform0,
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protection_amnt=protect0,
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resample=resample_sr1,
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harvest_median_filter=filter_radius1,
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output_file_name=os.path.join("./audio-outputs", os.path.basename(audio_file))
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)
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output = inference.run()
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if 'success' in output and output['success']:
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return output, output['file']
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else:
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return "Failed", None
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def post_model(name, model_url, version, creator):
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