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import whisper | |
import gradio as gr | |
model = whisper.load_model("medium") | |
def transcribe(audio): | |
# load audio and pad/trim it to fit 30 seconds | |
audio = whisper.load_audio(audio) | |
audio = whisper.pad_or_trim(audio) | |
# make log-Mel spectrogram and move to the same device as the model | |
mel = whisper.log_mel_spectrogram(audio).to(model.device) | |
# detect the spoken language | |
_, probs = model.detect_language(mel) | |
detected_language = max(probs, key=probs.get) | |
task = 'transcribe' if detected_language == 'en' else 'translate' | |
print(f"Detected language: {detected_language}") | |
# decode the audio | |
options = whisper.DecodingOptions(task = task, fp16 = False, language=detected_language) | |
result = whisper.decode(model, mel, options) | |
return result.text | |
gr.Interface( | |
title = 'Whisper ASR With Auto Punctuation and Auto Translation Into En', | |
fn=transcribe, | |
inputs=[ | |
gr.inputs.Audio(source="microphone", type="filepath") | |
], | |
outputs=[ | |
"textbox" | |
] | |
).launch() |