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The comparison of various VAD models across different languages.

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Voice-Activity-Detection

Voice Activity Detection (VAD) is a critical component in many speech processing applications. It involves distinguishing between segments of audio that contain speech and those that contain non-speech (silence, background noise, etc.). This project aims to evaluate and compare the performance of several state-of-the-art VAD models on a diverse set of languages.

Compares the performance of various VAD models across different languages. The models evaluated include:

  • pyannote.audio
  • SpeechBrain
  • FunASR
  • Silero

It includes the full implementation of their inference.

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The comparison of various VAD models across different languages.

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