滤波器输入脉冲噪声对LMS和符号回归LMS算法自适应滤波器性能的影响

Shin'ichi Koike
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引用次数: 4

摘要

提出了一种滤波器输入端存在脉冲噪声的自适应滤波系统。为了研究这些脉冲噪声对自适应滤波器性能的不利或有利影响,我们使用LMS算法(LMSA)和符号回归LMS算法(SRA)开发了自适应滤波器的瞬态和稳态分析。通过分析和实验,我们发现SRA对脉冲噪声的鲁棒性明显高于LMSA。对于SRA,我们发现随着脉冲噪声方差的增加,平均方抽头权重偏差(MSTWM)减小,在滤波器发散之前达到最小值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Impulse Noise at Filter Input on Performance of Adaptive Filters Using the LMS and Signed Regressor LMS Algorithms
This paper presents an adaptive filtering system where impulse noise is present at filter input. To study adverse, or favorable, effects of such impulse noise on adaptive filter performance, we develop transient and steady-state analysis of adaptive filters using the LMS algorithm (LMSA) and signed regressor LMS algorithm (SRA). Through analysis and experiment, we find that the SRA exhibits significantly higher robustness against the impulse noise than the LMSA. For the SRA, we find that mean square tap weight misalignment (MSTWM) decreases as the impulse noise variance increases, attaining a minimum before the filter diverges.
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