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Data-reusing-based filtered-reference adaptive algorithms for active control of impulsive noise sources

机译:主动控制脉冲噪声源的基于数据重用的滤波参考自适应算法

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This paper deals with the adaptive algorithms for active noise control (ANC) systems being employed for the impulsive noise sources. The standard filtered-x least mean square (FxLMS) algorithm; based on the minimization of the variance of the error signal; is well suited for attenuation of Gaussian noise sources. For the impulsive noise; modeled as a stable non-Gaussian process; however, the second order moments do not exist and hence the FxLMS algorithm becomes unstable. The filtered-x least mean p-power (FxLMP) algorithm - based on minimizing the fractional lower order moment (FLOM) - gives robust performance for impulsive ANC; however, its convergence speed is very slow. This paper proposes two data-reusing (DR)-based adaptive algorithms for impulsive ANC. The Proposed-Ⅰ DR algorithm is based on the normalized step-size FxLMS (NSS-FxLMS) algorithm, and the Proposed-Ⅱ DR algorithm is based on the Author's recently proposed NSS generalized FxLMP (NSS-GFxLMP) algorithm. Extensive simulations are carried out, which demonstrate the effectiveness of the proposed algorithms in comparison with the existing algorithms.
机译:本文讨论了用于脉冲噪声源的有源噪声控制(ANC)系统的自适应算法。标准过滤的x最小均方(FxLMS)算法;基于最小化误差信号的方差;非常适合衰减高斯噪声源。对于脉冲噪声;建模为稳定的非高斯过程;但是,二阶矩不存在,因此FxLMS算法变得不稳定。基于最小化分数低阶矩(FLOM)的滤波X最小均方p功率(FxLMP)算法为脉冲ANC提供了强大的性能;但是,其收敛速度非常慢。本文针对脉冲ANC提出了两种基于数据重用(DR)的自适应算法。 Proposed-ⅠDR算法基于归一化步长FxLMS(NSS-FxLMS)算法,Proposed-ⅡDR算法基于作者最近提出的NSS广义FxLMP(NSS-GFxLMP)算法。进行了广泛的仿真,与现有算法相比,该算法证明了所提出算法的有效性。

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