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Joint Dereverberation and Noise Reduction Based on Acoustic Multi-Channel Equalization

机译:基于声学多通道均衡的联合混响和降噪

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Regularized acoustic multi-channel equalization techniques, such as regularized partial multi-channel equalization based on the multiple-input/output inverse theorem (RPMINT), are able to achieve a high dereverberation performance in the presence of room impulse response perturbations but may lead to amplification of the additive noise. In this paper, two time-domain techniques aiming at joint dereverberation and noise reduction based on acoustic multi-channel equalization are proposed. The first technique, namely RPMINT for joint dereverberation and noise reduction (RPM-DNR), extends RPMINT by explicitly taking the noise statistics into account. In addition to the regularization parameter used in RPMINT, the RPM-DNR technique introduces an additional weighting parameter, enabling a trade-off between dereverberation and noise reduction. The second technique, namely multi-channel Wiener filter for joint dereverberation and noise reduction (MWF-DNR), takes both the speech and the noise statistics into account and uses the RPMINT filter to compute a dereverberated reference signal for the multi-channel Wiener filter. The MWF-DNR technique also introduces an additional weighting parameter, which now provides a trade-off between speech distortion and noise reduction. To automatically select the regularization and weighting parameters, for the RPM-DNR technique a novel procedure based on the L-hypersurface is proposed, whereas for the MWF-DNR technique two decoupled optimization procedures based on the L-curve are used. Extensive simulations demonstrate using instrumental measures that the RPM-DNR technique maintains the dereverberation performance of the RPMINT technique while improving its noise reduction performance. Furthermore, it is shown that the MWF-DNR technique yields a significantly better noise reduction performance than the RPM-DNR technique at the expense of a worse dereverberation performance.
机译:正则化声学多通道均衡技术,例如基于多输入/输出逆定理(RPMINT)的正则部分多通道均衡,能够在存在房间脉冲响应扰动的情况下实现较高的去混响性能,但可能导致附加噪声的放大。提出了两种基于声学多通道均衡的联合去混响和降噪的时域技术。第一种技术,即用于联合去混响和降噪的RPMINT(RPM-DNR),通过明确考虑噪声统计信息来扩展RPMINT。除了RPMINT中使用的正则化参数外,RPM-DNR技术还引入了一个额外的加权参数,从而可以在混响和降噪之间进行权衡。第二种技术,即用于联合去混响和降噪的多通道维纳滤波器(MWF-DNR),同时考虑了语音和噪声统计信息,并使用RPMINT滤波器来计算多通道维纳滤波器的去耦参考信号。 MWF-DNR技术还引入了一个额外的加权参数,现在可以在语音失真和降噪之间进行权衡。为了自动选择正则化和加权参数,对于RPM-DNR技术,提出了一种基于L超曲面的新颖过程,而对于MWF-DNR技术,则使用了两种基于L曲线的解耦优化过程。大量的仿真表明,使用仪器测量值可以看出,RPM-DNR技术可保持RPMINT技术的去混响性能,同时还能提高其降噪性能。此外,已经表明,MWF-DNR技术比RPM-DNR技术产生了显着更好的降噪性能,但有较差的混响性能。

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