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| import openai | |
| import whisper | |
| import gradio as gr | |
| import os | |
| app = gr.Blocks() | |
| def transcribe(aud_inp, whisper_lang): | |
| if aud_inp is None: | |
| return '' | |
| model = whisper.load_audo('base') | |
| #load audo and pad/trim it to fit 30seconds | |
| audio = whisper.load_audio(aud_inp) | |
| audio = whisper.pad_or_trim(audio) | |
| #make log-Mel spectrogram and move to the same devcice as the model | |
| mel = whisper.log_mel_spectogram(audio).to(model.device) | |
| #detect the spoken language | |
| _,probs = model.detect_language(mel) | |
| print(f'Detected language: {max(probs, key=probs.get)}') | |
| #decode the audio | |
| options = whisper.DecodingOptions() | |
| result = whisper.decode(model, mel, options) | |
| print(result.text) | |
| def run(): | |
| with app: | |
| gr.Interface(fn=transcribe, inputs="microphone", outputs="text") | |
| app.launch(server_name='0.0.0.0', server_port=7860) | |
| if __name__ == '__main__': | |
| run() | |