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Silero VAD: pre-trained enterprise-grade Voice Activity Detector

License: MIT License

Python 82.93% Jupyter Notebook 17.07%

silero-vad's Introduction

Mailing list : test Mailing list : test License: CC BY-NC 4.0

Open In Colab

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Silero VAD


Silero VAD - pre-trained enterprise-grade Voice Activity Detector (also see our STT models).


Real Time Example
real-time-example.mp4

Key Features


  • Stellar accuracy

    Silero VAD has excellent results on speech detection tasks.

  • Fast

    One audio chunk (30+ ms) takes less than 1ms to be processed on a single CPU thread. Using batching or GPU can also improve performance considerably. Under certain conditions ONNX may even run up to 4-5x faster.

  • Lightweight

    JIT model is around one megabyte in size.

  • General

    Silero VAD was trained on huge corpora that include over 100 languages and it performs well on audios from different domains with various background noise and quality levels.

  • Flexible sampling rate

    Silero VAD supports 8000 Hz and 16000 Hz sampling rates.

  • Flexible chunk size

    Model was trained on 30 ms. Longer chunks are supported directly, others may work as well.

  • Highly Portable

    Silero VAD reaps benefits from the rich ecosystems built around PyTorch and ONNX running everywhere where these runtimes are available.

  • No Strings Attached

    Published under permissive license (MIT) Silero VAD has zero strings attached - no telemetry, no keys, no registration, no built-in expiration, no keys or vendor lock.


Typical Use Cases


  • Voice activity detection for IOT / edge / mobile use cases
  • Data cleaning and preparation, voice detection in general
  • Telephony and call-center automation, voice bots
  • Voice interfaces

Links



Get In Touch


Try our models, create an issue, start a discussion, join our telegram chat, email us, read our news.

Please see our wiki and tiers for relevant information and email us directly.

Citations

@misc{Silero VAD,
  author = {Silero Team},
  title = {Silero VAD: pre-trained enterprise-grade Voice Activity Detector (VAD), Number Detector and Language Classifier},
  year = {2021},
  publisher = {GitHub},
  journal = {GitHub repository},
  howpublished = {\url{https://github.com/snakers4/silero-vad}},
  commit = {insert_some_commit_here},
  email = {[email protected]}
}

Examples and VAD-based Community Apps


  • Example of VAD ONNX Runtime model usage in C++

  • Voice activity detection for the browser using ONNX Runtime Web

silero-vad's People

Contributors

adamnsandle avatar snakers4 avatar kai-karren avatar bontempogianpaolo1 avatar yugan6 avatar zzzacwork avatar sontref avatar bygreencn avatar kafan1986 avatar saenyakorn avatar gabrielziegler3 avatar pengzhendong avatar streamer45 avatar mhthomsen avatar hoonlight avatar xiaoqiang306 avatar vvvvvgh avatar tomiinek avatar iamsvp94 avatar chenqianhe avatar owlsometech-kenyang avatar bclark-videra avatar alexrainhao avatar

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