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Two improved multiband structured subband adaptive filter algorithms with reduced computational complexity

机译:两种改进的具有降低的计算复杂度的改进的多带结构子带自适应滤波器算法

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The improved multiband structured subband adaptive filter (IMSAF) utilizes the input regressors at each subband to speed up the convergence rate of MSAF. When the number of input regressors is increased, the convergence rate of the IMSAF algorithm improves at the cost of increased complexity. The current study introduces two new IMSAF algorithms with low computational complexity feature. In the first algorithm, a subset of input regressors at each subband is optimally picked out during the adaptation. In the second approach, the number of selected input regressors is dynamically changed at each subband for every iteration. The introduced algorithms are called selective regressor IMSAF (SR-IMSAF) and dynamic selective regressor IMSAF (DSR-IMSAF). The SR-IMSAF and DSR-IMSAF are shown to be capable of outperforming the full-update IMSAF while the computational complexity is kept low. In the following, the general update equation to establishment of the family of IMSAF algorithms is presented. Accordingly, the mean-square performance analysis of the algorithms is studied in a unified way and the general theoretical expressions for transient, steady-state, and the stability bounds for IMSAF, SR-IMSAF, and DSR-IMSAF are derived. The good performance of the introduced algorithms and the validity of the derived theoretical relations are justified by presenting various experimental results. (C) 2018 Elsevier B.V. All rights reserved.
机译:改进的多带结构子带自适应滤波器(IMSAF)利用每个子带的输入回归器来加快MSAF的收敛速度。当输入回归变量的数量增加时,IMSAF算法的收敛速度提高,但代价是复杂性增加。当前的研究引入了两种新的具有低计算复杂度特征的IMSAF算法。在第一种算法中,在自适应期间,每个子带的输入回归子的一个子集被最佳地挑选出来。在第二种方法中,每次迭代在每个子带上动态更改所选输入回归变量的数量。引入的算法称为选择性回归IMSAF(SR-IMSAF)和动态选择性回归IMSAF(DSR-IMSAF)。示出了SR-IMSAF和DSR-IMSAF能够胜过完全更新的IMSA,同时保持较低的计算复杂度。在下文中,提出了建立IMSAF算法族的一般更新方程。因此,对算法的均方性能分析进行了统一的研究,得出了瞬态,稳态的一般理论表达式,并推导出了IMSAF,SR-IMSAF和DSR-IMSAF的稳定性范围。通过给出各种实验结果证明了所引入算法的良好性能和所推导的理论关系的有效性。 (C)2018 Elsevier B.V.保留所有权利。

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