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Speech enhancement based on wavelet thresholding the multitaper spectrum

机译:基于小波阈值多谱谱的语音增强

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It is well known that the "musical noise" encountered in most frequency domain speech enhancement algorithms is partially due to the large variance estimates of the spectra. To address this issue, we propose in this paper the use of low-variance spectral estimators based on wavelet thresholding the multitaper spectra for speech enhancement. A short-time spectral amplitude estimator is derived which incorporates the wavelet-thresholded multitaper spectra. Listening tests showed that the use of multitaper spectrum estimation combined with wavelet thresholding suppressed the musical noise and yielded better quality than the subspace and MMSE algorithms.
机译:众所周知,在大多数频域语音增强算法中遇到的“音乐噪声”部分是由于频谱的大方差估计所致。为了解决这个问题,我们建议在本文中使用基于小波阈值的多方谱低方差频谱估计器进行语音增强。推导了一个短时频谱幅度估计器,该估计器结合了小波阈值多峰频谱。听力测试表明,与子空间和MMSE算法相比,多锥频谱估计与小波阈值结合可抑制音乐噪声并产生更好的质量。

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