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Runtime error
Runtime error
a.pourmand
commited on
Commit
·
0d83c55
1
Parent(s):
3e79246
add seamlessm4t
Browse files- .idea/.gitignore +8 -0
- .idea/Seamlessm4t_diarization_VAD.iml +8 -0
- .idea/inspectionProfiles/profiles_settings.xml +6 -0
- .idea/modules.xml +8 -0
- .idea/vcs.xml +6 -0
- app.py +40 -12
.idea/.gitignore
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# Default ignored files
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/shelf/
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/workspace.xml
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# Editor-based HTTP Client requests
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/httpRequests/
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# Datasource local storage ignored files
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/dataSources/
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/dataSources.local.xml
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.idea/Seamlessm4t_diarization_VAD.iml
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<?xml version="1.0" encoding="UTF-8"?>
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<module type="PYTHON_MODULE" version="4">
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<component name="NewModuleRootManager">
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<content url="file://$MODULE_DIR$" />
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<orderEntry type="inheritedJdk" />
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<orderEntry type="sourceFolder" forTests="false" />
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</component>
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</module>
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.idea/inspectionProfiles/profiles_settings.xml
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<component name="InspectionProjectProfileManager">
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<settings>
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<option name="USE_PROJECT_PROFILE" value="false" />
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<version value="1.0" />
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</settings>
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</component>
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.idea/modules.xml
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<?xml version="1.0" encoding="UTF-8"?>
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<project version="4">
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<component name="ProjectModuleManager">
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<modules>
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<module fileurl="file://$PROJECT_DIR$/.idea/Seamlessm4t_diarization_VAD.iml" filepath="$PROJECT_DIR$/.idea/Seamlessm4t_diarization_VAD.iml" />
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</modules>
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</component>
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</project>
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.idea/vcs.xml
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<?xml version="1.0" encoding="UTF-8"?>
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<project version="4">
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<component name="VcsDirectoryMappings">
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<mapping directory="" vcs="Git" />
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</component>
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</project>
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app.py
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@@ -29,8 +29,15 @@ To duplicate this repo, you have to give permission from three reopsitories and
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"""
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from pyannote.audio import Pipeline
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if audio_source == "microphone":
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input_data = input_audio_mic
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else:
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for turn, value, speaker in diarization.itertracks(yield_label=True):
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print(turn)
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try:
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clipped = song[turn.start * 1000: turn.end * 1000]
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clipped.export(f
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_, result = client.predict(
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"ASR (Automatic Speech Recognition)",
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"text",
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target_language,
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target_language,
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api_name="/run"
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)
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current_text = f
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if current_text is not None:
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output_text = output_text + "\n" + current_text
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yield output_text
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-
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except Exception as e:
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print(e)
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#return output_text
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def update_audio_ui(audio_source: str) -> tuple[dict, dict]:
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mic = audio_source == "microphone"
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label="Output Language",
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value=DEFAULT_TARGET_LANGUAGE,
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interactive=True,
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info="Select your target language"
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)
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number_of_speakers=gr.Number(label="Number of Speakers",info="Keep it zero, if you want the model to automatically detect the number of speakers")
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with gr.Row() as audio_box:
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audio_source = gr.Radio(
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choices=["file", "microphone"], value="file", interactive=True
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input_audio_mic.change(lambda x: x, input_audio_mic, final_audio)
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input_audio_file.change(lambda x: x, input_audio_file, final_audio)
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submit = gr.Button("Submit")
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text_output = gr.Textbox(
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submit.click(
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gr.Markdown(DUPLICATE)
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"""
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from pyannote.audio import Pipeline
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pipeline = Pipeline.from_pretrained(
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"pyannote/speaker-diarization", use_auth_token=HF_API
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)
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def predict(
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target_language, number_of_speakers, audio_source, input_audio_mic, input_audio_file
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):
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if audio_source == "microphone":
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input_data = input_audio_mic
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else:
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for turn, value, speaker in diarization.itertracks(yield_label=True):
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print(turn)
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try:
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clipped = song[turn.start * 1000 : turn.end * 1000]
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clipped.export(f"my.wav", format="wav", bitrate=16000)
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_, result = client.predict(
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"ASR (Automatic Speech Recognition)",
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"text",
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target_language,
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target_language,
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api_name="/run",
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)
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current_text = f"start: {turn.start:.1f} end: {turn.end:.1f} text: {result} speaker: {speaker}"
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if current_text is not None:
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output_text = output_text + "\n" + current_text
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yield output_text
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except Exception as e:
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print(e)
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# return output_text
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def update_audio_ui(audio_source: str) -> tuple[dict, dict]:
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mic = audio_source == "microphone"
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label="Output Language",
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value=DEFAULT_TARGET_LANGUAGE,
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interactive=True,
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info="Select your target language",
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)
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number_of_speakers = gr.Number(
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label="Number of Speakers",
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info="Keep it zero, if you want the model to automatically detect the number of speakers",
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)
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with gr.Row() as audio_box:
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audio_source = gr.Radio(
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choices=["file", "microphone"], value="file", interactive=True
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input_audio_mic.change(lambda x: x, input_audio_mic, final_audio)
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input_audio_file.change(lambda x: x, input_audio_file, final_audio)
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submit = gr.Button("Submit")
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text_output = gr.Textbox(
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label="Transcribed Text",
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value="",
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interactive=False,
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lines=10,
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scale=10,
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max_lines=10,
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)
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submit.click(
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fn=predict,
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inputs=[
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target_language,
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number_of_speakers,
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audio_source,
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input_audio_mic,
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input_audio_file,
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],
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outputs=[text_output],
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api_name="predict",
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)
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gr.Markdown(DUPLICATE)
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