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Variable step-size sign subband adaptive filter with subband filter selection

机译:具有子带滤波器选择的可变步长符号子带自适应滤波器

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摘要

This letter proposes a novel sign subband adaptive filtering (SSAF) algorithm with a subset selection for subband filters, called the SS-SSAF. The proposed algorithm achieves the fast convergence performance and reduces the computational complexity by a proposed sufficient condition. The condition associated with each subband immediately ensures the decrease of the mean square deviation (MSD) value at every iteration. Furthermore, we suggest the variable step-size algorithm for SS-SSAF to achieve both fast convergence speed and small steady-state errors. Simulation results show that the proposed algorithm with fixed step-size performs better than the conventional SSAF and the other improved SSAF algorithms in terms of the convergence rate. In addition, the performance of proposed variable step-size algorithm is demonstrated in the system identification compared with recent variable step-size SSAFs. (C) 2018 Elsevier B.V. All rights reserved.
机译:这封信提出了一种新颖的符号子带自适应滤波(SSAF)算法,该算法具有用于子带滤波器的子集选择,称为SS-SSAF。所提出的算法通过所提出的充分条件来实现快速收敛性能并降低了计算复杂度。与每个子带相关的条件可立即确保每次迭代均方差(MSD)值减小。此外,我们建议SS-SSAF采用可变步长算法,以实现快速收敛速度和较小的稳态误差。仿真结果表明,所提出的步长固定算法在收敛速度方面优于传统的SSAF算法和其他改进的SSAF算法。另外,与最近的可变步长SSAF相比,在系统识别中证明了所提出的可变步长算法的性能。 (C)2018 Elsevier B.V.保留所有权利。

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