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Improved variable step-size NLMS adaptive filtering algorithm for acoustic echo cancellation

机译:改进的可变步长NLMS自适应滤波算法,用于回声消除

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Acoustic echo canceller (AEC) is used in communication and teleconferencing systems to reduce undesirable echoes resulting from the coupling between the loudspeaker and the microphone. In this paper, we propose an improved variable step-size normalized least mean square (VSS-NLMS) algorithm for acoustic echo cancellation applications based on adaptive filtering. The steady-state error of the NLMS algorithm with a fixed step-size (FSS-NLMS) is very large for a non-stationary input. Variable step-size (VSS) algorithms can be used to decrease this error. The proposed algorithm, named MESVSS-NLMS (mean error sigmoid VSS-NLMS), combines the generalized sigmoid variable step-size NLMS (GSVSS-NLMS) with the ratio of the estimation error to the mean history of the estimation error values. It is shown from single-talk and double-talk scenarios using speech signals from TIMIT database that the proposed algorithm achieves a better performance, more than 3 dB of attenuation in the misalignment evaluation compared to GSVSS-NLMS, non-parametric VSS-NLMS (NPVSS-NLMS) and standard NLMS algorithms for a non-stationary input in noisy environments. (C) 2015 Elsevier Inc. All rights reserved.
机译:声学回声消除器(AEC)用于通信和电话会议系统中,以减少由于扬声器和麦克风之间的耦合而导致的不良回声。在本文中,我们提出了一种基于自适应滤波的改进的可变步长归一化最小均方(VSS-NLMS)算法,用于声学回声消除应用。固定步长(FSS-NLMS)的NLMS算法的稳态误差对于非平稳输入非常大。可变步长(VSS)算法可用于减少此错误。所提出的算法称为MESVSS-NLMS(平均误差Sigmoid VSS-NLMS),将广义的Sigmoid可变步长NLMS(GSVSS-NLMS)与估计误差与估计误差值的平均历史的比率相结合。从TIMIT数据库的语音信号进行的单通话和双向通话场景中可以看出,与GSVSS-NLMS,非参数VSS-NLMS( NPVSS-NLMS)和标准NLMS算法用于嘈杂环境中的非平稳输入。 (C)2015 Elsevier Inc.保留所有权利。

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