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首页> 外文期刊>Circuits and Systems II: Express Briefs, IEEE Transactions on >Weighted Improved Multiband-Structured Sub-Band Adaptive Filter Algorithms
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Weighted Improved Multiband-Structured Sub-Band Adaptive Filter Algorithms

机译:加权改进了多频带结构的子带自适应滤波算法

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An improved multiband-structured sub-band adaptive filter (IMSAF) applies the input regressors at each sub-band to increase the convergence speed of multiband-structured sub-band adaptive filter. In the conventional IMSAF algorithm, the effect of all regressors and sub-bands in updating the filter coefficients is the same. In this brief, we present three weighted IMSAF (WIMSAF) algorithms so that the regressors or sub-bands are weighted through the adaptation. In the weighted sub-band IMSAF algorithm, the sub-bands can be weighted at each iteration. In weighted regressor IMSAF, the input regressors at each sub-band are weighted. In weighted sub-band and regressor IMSAF, the sub-bands and the regressors are jointly weighted at each adaptation. Weights in all versions of WIMSAF algorithms are selected in order to decrease the mean-square deviation during the iterations. At each adaptation, the weights are set between zero and one. When the weight in the sub-band/regressor is set to one, it means the maximum effect of that sub-band/regressor in updating the filter coefficients. The coefficients update is not performed in sub-bands/regressors with zero weights. Assigning appropriate weights leads to the fast convergence speed and low misadjustment error. Furthermore, the elimination of zero-weight sub-bands/regressors achieves lower computational complexity than conventional IMSAF algorithm. The mean-square performance analysis of the proposed algorithms is studied and theoretical expressions for learning curve is derived. The simulation results justify the good performance of the proposed algorithms.
机译:改进的多频带结构的子带自适应滤波器(IMSAF)在每个子频带处应用输入回归器,以增加多频带结构的子带自适应滤波器的收敛速度。在传统的IMSAF算法中,在更新滤波器系数时,所有回归器和子带对的效果是相同的。在此简介中,我们提出了三个加权IMSAF(WIMSAF)算法,以便回归或子带进行加权。在加权子带IMSAF算法中,可以在每次迭代时加权子带。在加权回归IMSAF中,每个子频带的输入回归被加权。在加权子频带和回归IMSAF中,子带和回归位在每个自适应时共同加权。选择所有版本的WIMSAF算法中的权重,以便在迭代期间降低均方偏差。在每个适应时,重量在零和一个之间设置。当子频带/回归的权重被设置为一个时,它意味着该子带/回归在更新滤波器系数时的最大效果。在具有零权重的子频带/回归器中不执行系数更新。分配适当的权重导致快速收敛速度和低误解误差。此外,消除零权重子频带/回归终点的计算复杂性比传统的IMSAF算法更低。研究了所提出的算法的平均方形性能分析,得到了学习曲线的理论表达。仿真结果证明了所提出的算法的良好性能。

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