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from transformers import pipeline
import gradio as gr
pipe = pipeline(model="Yuyang2022/yue") # change to "your-username/the-name-you-picked"
def transcribe(audio):
text = pipe(audio)["text"]
return text
def transcribe_video(link):
video=link
data=pytube.YouTube(video)
audio=data.streams.get_audio_only()
audio.download()
pattern=r".mp4$"
content=os.listdir()
for i in content:
if re.search(pattern,i) is not None:
video=i
text = pipe(video)["text"]
return text
iface1 = gr.Interface(
fn=transcribe,
inputs=gr.Audio(source="microphone", type="filepath"),
outputs="text",
title="Whisper Base",
description="Realtime demo for speech recognition using a fine-tuned Whisper-base model.",
)
iface2 = gr.Interface(
fn=transcribe_video,
inputs=gr.Textbox(label="Youtube Link",placeholder="Youtube Link"),
outputs=["text"],
title="Whisper Base",
description="Asynchronous demo for youtube speech recognition using a fine-tuned Whisper-base model.",
)
iface1.launch() |