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import gradio as gr | |
from whisper import generate | |
from AinaTheme import theme | |
MODEL_NAME = "openai/whisper-large-v3" | |
def transcribe(inputs, model_version): | |
if inputs is None: | |
raise gr.Error("Cap fitxer d'脿udio introduit! Si us plau pengeu un fitxer "\ | |
"o enregistreu un 脿udio abans d'enviar la vostra sol路licitud") | |
usev4 = model_version=="v0.4" | |
return generate(audio_path=inputs, use_v4=usev4) | |
description_string = "Transcripci贸 autom脿tica de micr貌fon o de fitxers d'脿udio.\n Aquest demostrador s'ha desenvolupat per"\ | |
" comprovar els models de reconeixement de parla per a m贸bils. Per ara utilitza el checkpoint "\ | |
f"[{MODEL_NAME}](https://huggingface.co/{MODEL_NAME}) i la llibreria de 馃 Transformers per a la transcripci贸." | |
def clear(): | |
return ( | |
None, | |
"v0.3" | |
) | |
with gr.Blocks(theme=theme) as demo: | |
gr.Markdown(description_string) | |
with gr.Row(): | |
with gr.Column(scale=1): | |
model_version = gr.Dropdown(label="Model Version", choices=["v0.3", "v0.4"], value="v0.3") | |
input = gr.Audio(sources=["upload", "microphone"], type="filepath", label="Audio") | |
with gr.Column(scale=1): | |
output = gr.Textbox(label="Output", lines=8) | |
with gr.Row(variant="panel"): | |
clear_btn = gr.Button("Clear") | |
submit_btn = gr.Button("Submit", variant="primary") | |
submit_btn.click(fn=transcribe, inputs=[input, model_version], outputs=[output]) | |
clear_btn.click(fn=clear,inputs=[], outputs=[input, model_version], queue=False,) | |
if __name__ == "__main__": | |
demo.launch() | |