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M-max partial update leaky bilinear filter-error least mean square algorithm for nonlinear active noise control

机译:非线性主动噪声控制的M-max局部更新泄漏双线性滤波器误差最小均方算法

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摘要

To reduce the computational burden of the bilinear FLANN (BFLANN) filter for active noise control (ANC), an M-max partial update leaky bilinear filtered-error least mean square (MmLBFE-LMS) algorithm is proposed in this paper. Unlike the algorithm based on filtered-reference technique in BFLANN-based ANC system, the proposed MmLBFE-LMS algorithm uses the filtered-error method and data-dependence partial update strategy to reduce computational complexity, and employs a leaky technique to mitigate the instability problem as in bilinear filters. The simulation results and computational complexity analysis indicate that the proposed algorithm can significantly reduce the computational burden of the BFLANN-based ANC system without suffering from noise-canceling performance degradation. (C) 2019 Elsevier Ltd. All rights reserved.
机译:为了减轻用于主动噪声控制(ANC)的双线性FLANN(BFLANN)滤波器的计算负担,提出了一种M-max部分更新泄漏双线性滤波误差最小均方(MmLBFE-LMS)算法。与基于BFLANN的ANC系统中基于过滤参考技术的算法不同,所提出的MmLBFE-LMS算法使用过滤错误方法和数据相关的部分更新策略来降低计算复杂度,并采用泄漏技术缓解不稳定问题。如在双线性滤波器中。仿真结果和计算复杂度分析表明,该算法可以显着减少基于BFLANN的ANC系统的计算负担,而不会出现降噪性能下降的情况。 (C)2019 Elsevier Ltd.保留所有权利。

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