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A Novel Robust Mel-Energy Based Voice Activity Detector For Nonstationary Noise And Its Application For Speech Waveform Compression, Syed, Q. Waheeduddin
A Novel Robust Mel-Energy Based Voice Activity Detector For Nonstationary Noise And Its Application For Speech Waveform Compression, Syed, Q. Waheeduddin
LSU Master's Theses
The voice activity detection (VAD) is crucial in all kinds of speech applications. However, almost all existing VAD algorithms suffer from the nonstationarity of both speech and noise. To combat this difficulty, we propose a new voice activity detector, which is based on the Mel-energy features and an adaptive threshold related to the signal-to-noise ratio (SNR) estimates. In this thesis, we first justify the robustness of the Bayes classifier using the Mel-energy features over that using the Fourier spectral features in various noise environments. Then, we design an algorithm using the dynamic Mel-energy estimator and the adaptive threshold which depends …