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Wiener variable step size and gradient spectral variance smoothing for double-talk-robust acoustic echo cancellation and acoustic feedback cancellation

机译:Wiener可变步长和梯度频谱方差平滑,用于双重通话鲁棒声回声消除和声反馈消除

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摘要

Double-talk (DT)-robust acoustic echo cancellation (AEC) and acoustic feedback cancellation (AFC) are needed in speech communication systems, e.g., in hands-free communication systems and hearing aids. In this paper, we derive a practical and computationally efficient algorithm based on the frequency-domain adaptive filter prediction error method using row operations (FDAF-PEM-AFROW) for DT-robust AEC and AFC. The proposed algorithm features two main modifications: (a) the Wiener variable step size (WVSS) and (b) the gradient spectral variance smoothing (GSVS). In AEC simulations, the WVSS-GSVS-FDAF-PEM-AFROW algorithm obtains outstanding robustness and smooth adaptation in highly adverse scenarios such as in bursting DT at high levels, and in a change of acoustic path during continuous DT. Similarly, in AFC simulations, the algorithm outperforms state-of-the-art algorithms when using a low-order near-end speech model and in colored nonstationary noise.
机译:在语音通信系统中,例如在免提通信系统和助听器中,需要双向通话(DT)-鲁棒的声学回声消除(AEC)和声学反馈消除(AFC)。在本文中,我们基于DT鲁棒AEC和AFC的行操作(FDAF-PEM-AFROW),基于频域自适应滤波器预测误差方法,导出了一种实用且计算效率高的算法。提出的算法具有两个主要修改:(a)维纳可变步长(WVSS)和(b)梯度谱方差平滑(GSVS)。在AEC仿真中,WVSS-GSVS-FDAF-PEM-AFROW算法可在极不利的情况下(例如高水平的DT爆破以及连续DT期间的声程变化)获得出色的鲁棒性和平滑适应性。类似地,在AFC模拟中,当使用低阶近端语音模型和有色非平稳噪声时,该算法的性能优于最新算法。

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