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nithinraok
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7c6ede0
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Parent(s):
badd660
Create app.py
Browse files
app.py
ADDED
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from nemo.collections.asr.models import EncDecRNNTBPEModel
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import gradio as gr
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from pydub import AudioSegment
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device = "cuda" if torch.cuda.is_available() else "cpu"
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MODEL_NAME="nvidia/parakeet-rnnt-1.1b"
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def get_transcripts(audio_path):
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model = EncDecRNNTBPEModel.from_pretrained(model_name="nvidia/parakeet-rnnt-1.1b").to(device)
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model.eval()
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text = model.transcribe([audio_path])[0][0]
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return text
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article = (
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"<p style='text-align: center'>"
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"<a href='https://huggingface.co/nvidia/parakeet-rnnt-1.1b' target='_blank'>🎙️ Learn more about Parakeet model</a> | "
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"<a href='https://arxiv.org/abs/2305.05084' target='_blank'>📚 FastConformer paper</a> | "
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"<a href='https://github.com/NVIDIA/NeMo' target='_blank'>🧑💻 Repository</a>"
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"</p>"
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)
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examples = [
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["data/conversation.wav"],
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["data/id10270_5r0dWxy17C8-00001.wav"],
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]
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def _return_yt_html_embed(yt_url):
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video_id = yt_url.split("?v=")[-1]
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HTML_str = (
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f'<center> <iframe width="500" height="320" src="https://www.youtube.com/embed/{video_id}"> </iframe>'
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" </center>"
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)
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return HTML_str
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def download_yt_audio(yt_url, filename):
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info_loader = youtube_dl.YoutubeDL()
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try:
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info = info_loader.extract_info(yt_url, download=False)
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except youtube_dl.utils.DownloadError as err:
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raise gr.Error(str(err))
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file_length = info["duration_string"]
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file_h_m_s = file_length.split(":")
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file_h_m_s = [int(sub_length) for sub_length in file_h_m_s]
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if len(file_h_m_s) == 1:
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file_h_m_s.insert(0, 0)
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if len(file_h_m_s) == 2:
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file_h_m_s.insert(0, 0)
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file_length_s = file_h_m_s[0] * 3600 + file_h_m_s[1] * 60 + file_h_m_s[2]
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if file_length_s > YT_LENGTH_LIMIT_S:
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yt_length_limit_hms = time.strftime("%HH:%MM:%SS", time.gmtime(YT_LENGTH_LIMIT_S))
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file_length_hms = time.strftime("%HH:%MM:%SS", time.gmtime(file_length_s))
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raise gr.Error(f"Maximum YouTube length is {yt_length_limit_hms}, got {file_length_hms} YouTube video.")
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ydl_opts = {"outtmpl": filename, "format": "worstvideo[ext=mp4]+bestaudio[ext=m4a]/best[ext=mp4]/best"}
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with youtube_dl.YoutubeDL(ydl_opts) as ydl:
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try:
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ydl.download([yt_url])
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except youtube_dl.utils.ExtractorError as err:
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raise gr.Error(str(err))
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def yt_transcribe(yt_url, task, max_filesize=75.0):
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html_embed_str = _return_yt_html_embed(yt_url)
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with tempfile.TemporaryDirectory() as tmpdirname:
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filepath = os.path.join(tmpdirname, "video.mp4")
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download_yt_audio(yt_url, filepath)
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audio = AudioSegment.from_file(filepath)
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wav_filepath = os.path.join(tmpdirname, "audio.wav")
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audio.export(wav_filepath, format="wav")
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text = get_transcripts(wav_filepath)
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return html_embed_str, text
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demo = gr.Blocks()
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mf_transcribe = gr.Interface(
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fn=transcribe,
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inputs=[
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gr.inputs.Audio(source="microphone", type="filepath", optional=True)
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],
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outputs="text",
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layout="horizontal",
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theme="huggingface",
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title="Parakeet RNNT 1.1B: Transcribe Audio",
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description=(
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"Transcribe microphone or audio inputs with the click of a button! Demo uses the"
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f" checkpoint [{MODEL_NAME}](https://huggingface.co/{MODEL_NAME}) and NVIDIA NeMo to transcribe audio files"
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" of arbitrary length."
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),
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allow_flagging="never",
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)
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file_transcribe = gr.Interface(
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fn=transcribe,
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inputs=[
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gr.inputs.Audio(source="upload", type="filepath", optional=True, label="Audio file"),
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],
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outputs="text",
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layout="horizontal",
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theme="huggingface",
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title="Parakeet RNNT 1.1B: Transcribe Audio",
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description=(
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"Transcribe microphone or audio inputs with the click of a button! Demo uses the"
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f" checkpoint [{MODEL_NAME}](https://huggingface.co/{MODEL_NAME}) and NVIDIA NeMo to transcribe audio files"
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" of arbitrary length."
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),
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allow_flagging="never",
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)
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yt_transcribe = gr.Interface(
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fn=yt_transcribe,
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inputs=[
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gr.inputs.Textbox(lines=1, placeholder="Paste the URL to a YouTube video here", label="YouTube URL"),
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],
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outputs=["html", "text"],
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layout="horizontal",
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theme="huggingface",
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title="Parakeet RNNT 1.1B: Transcribe Audio",
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description=(
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"Transcribe microphone or audio inputs with the click of a button! Demo uses the"
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f" checkpoint [{MODEL_NAME}](https://huggingface.co/{MODEL_NAME}) and NVIDIA NeMo to transcribe audio files"
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" of arbitrary length."
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),
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allow_flagging="never",
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)
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with demo:
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gr.TabbedInterface([mf_transcribe, file_transcribe], ["Microphone", "Audio file"])
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demo.launch(enable_queue=True)
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