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Multi-channel Speech Enhancement Based on the MVDR Beamformer and Postfilter

机译:基于MVDR波束形成器和后置滤波器的多通道语音增强

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摘要

Deep neural network (DNN) based ideal ratio mask (IRM) estimation methods have yielded good performance in monaural speech enhancement. Meanwhile, these methods have also shown considerable potential for beamforming and multichannel speech enhancement. It is crucial for minimum variance distortionless response (MVDR) beamformer to estimate the covariance matrix of the speech and noise accurately. The accurate estimation of time-frequency (T-F) mask has significant impact on the estimation of the covariance matrices. So, in this paper, a complex real and imaginary ratio mask (CRIRM) based MVDR beamformer for speech enhancement using residual network is proposed. First, the real and imaginary masks of speech and noise are estimated by taking advantage of a residual neural network. After that, the estimations of speech and noise are obtained by using the estimated masks. Finally, the covariance matrices of speech and noise are estimated, and applied into the MVDR beamformer. In addition, in order to further reduce residual noise interference, the output of the MVDR beamformer is further processed by an end-to-end monaural speech enhancement module. Experiments show that, the proposed method can better improve the quality and intelligibility of the enhanced speech.
机译:基于深度神经网络(DNN)的理想比率蒙版(IRM)估计方法在单声道语音增强方面取得了良好的性能。同时,这些方法在波束形成和多通道语音增强方面也显示出了巨大的潜力。对于最小方差无失真响应(MVDR)波束形成器,准确估计语音和噪声的协方差矩阵至关重要。时频(T-F)掩码的准确估计对协方差矩阵的估计有重要影响。因此,在本文中,提出了一种基于复杂实部和虚部比掩码(CRIRM)的MVDR波束形成器,用于使用残差网络进行语音增强。首先,利用残差神经网络估计语音和噪声的真实和虚构蒙版。之后,通过使用估计的掩码来获得语音和噪声的估计。最后,估计语音和噪声的协方差矩阵,并将其应用于MVDR波束形成器。另外,为了进一步减少残留噪声干扰,端到端单声道语音增强模块进一步处理了MVDR波束形成器的输出。实验表明,该方法可以更好地提高增强语音的质量和清晰度。

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