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import gradio as gr | |
import torch | |
from icon import generate_icon | |
from transformers import pipeline | |
from timestamp import format_timestamp | |
MODEL_NAME = "openai/whisper-medium" | |
BATCH_SIZE = 8 | |
device = 0 if torch.cuda.is_available() else "cpu" | |
pipe = pipeline( | |
task="automatic-speech-recognition", | |
model=MODEL_NAME, | |
chunk_length_s=30, | |
device=device, | |
) | |
def transcribe(file, task, return_timestamps): | |
outputs = pipe(file, batch_size=BATCH_SIZE, generate_kwargs={"task": task}, return_timestamps=True) | |
text = outputs["text"] | |
timestamps = outputs["chunks"] | |
if return_timestamps==True: | |
timestamps = [f"[{format_timestamp(chunk['timestamp'][0])} -> {format_timestamp(chunk['timestamp'][1])}] {chunk['text']}" for chunk in timestamps] | |
else: | |
timestamps = [f"{chunk['text']}" for chunk in timestamps] | |
text = "<br>".join(str(feature) for feature in timestamps) | |
text = f"<h4>Transcription</h4><div style='overflow-y: scroll; height: 250px;'>{text}</div>" | |
return file, text | |
inputs = [gr.Audio(source="upload", label="Audio file", type="filepath"), | |
gr.Radio(["transcribe"], label="Task", value="transcribe"), | |
gr.Checkbox(value=True, label="Return timestamps")] | |
outputs = [gr.Audio(label="Processed Audio", type="filepath"), | |
gr.outputs.HTML("text")] | |
title = "Whisper Demo: Transcribe Audio" | |
MODEL_NAME1 = "jpdiazpardo/whisper-tiny-metal" | |
description = ("Transcribe long-form audio inputs with the click of a button! Demo uses the" | |
f" checkpoint [{MODEL_NAME}](https://huggingface.co/{MODEL_NAME}) and 🤗 Transformers to transcribe audio files" | |
" of arbitrary length. Check some of the 'cool' examples below") | |
examples = [["When a Demon Defiles a Witch.wav","transcribe",True]] | |
linkedin = generate_icon("linkedin") | |
github = generate_icon("github") | |
article = ("<div style='text-align: center; max-width:800px; margin:10px auto;'>" | |
f"<p>{linkedin} <a href='https://www.linkedin.com/in/juanpablodiazp/' target='_blank'>Juan Pablo Díaz Pardo</a><br>" | |
f"{github} <a href='https://github.com/jpdiazpardo' target='_blank'>jpdiazpardo</a></p>" | |
) | |
title = "Scream: Fine-Tuned Whisper model for automatic gutural speech recognition 🤟🤟🤟" | |
demo = gr.Interface(title = title, fn=transcribe, inputs = inputs, outputs = outputs, description=description, cache_examples=True, | |
allow_flagging="never", article = article , examples=examples) | |
demo.queue(concurrency_count=3) | |
demo.launch(debug = True) |