Filtered-s normalized maximum mixture correntropy criterion algorithm for nonlinear active noise control

Pucha Song, Haiquan Zhao, Yingying Zhu
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引用次数: 2

Abstract

In order to deal with impulsive noise, the traditional filtered-s normalized maximum correntropy criterion (FsNMCC) adaptive algorithm has good robustness in nonlinear active noise control (ANC) systems. However, the FsNMCC algorithm has a single Gaussian kernel, of which the noise reduction performance is susceptible to the value of the kernel width. To surmount this shortcoming, the filtered-s normalized maximum mixture correntropy criterion (FsNMMCC) algorithm is designed for a functional link artificial neural network (FLANN) based on ANC systems. Simulation results show that the proposed FsNMMCC algorithm in this paper has better noise reduction performance than the FsNMCC algorithm in active noise control of impulsive noise with standard symmetric α-stable (SαS) distribution.
非线性主动噪声控制的滤波归一化最大混合熵准则算法
为了处理脉冲噪声,传统的滤波归一化最大熵准则(FsNMCC)自适应算法在非线性主动噪声控制(ANC)系统中具有良好的鲁棒性。然而,FsNMCC算法具有单个高斯核,其降噪性能容易受到核宽度值的影响。为了克服这一缺点,设计了一种滤波归一化最大混合熵准则(FsNMMCC)算法,用于基于ANC系统的功能链路人工神经网络(FLANN)。仿真结果表明,对于标准对称α-稳定(s - α s)分布的脉冲噪声,本文提出的FsNMMCC算法比FsNMCC算法具有更好的降噪性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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