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Diffusion Sign Subband Adaptive Filtering Algorithm with Enlarged Cooperation and Its Variant

机译:扩展合作的扩散符号子带自适应滤波算法及其变型

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摘要

The recently proposed diffusion sign subband adaptive filtering (DSSAF) algorithm is more robust than most of mean-square error minimization criterion-based diffusion distributed estimation algorithms in an impulsive interference environment. To enhance its convergence rate and steady-state misalignment, this paper proposes a DSSAF algorithm with enlarged cooperation (DSSAF-EC). The DSSAF-EC algorithm exchanges not only the weight information but also measurements within individual neighborhoods. Moreover, a variant of the DSSAF-EC algorithm, called the proportionate DSSAF-EC (PDSSAF-EC) algorithm, is presented. It incorporates an adaptive gain matrix into the DSSAF-EC algorithm to proportionately adapt the weight vectors of agents. Simulation results verify that both the DSSAF-EC and PDSSAF-EC algorithms are robust against impulsive interference and that the PDSSAF-EC algorithm can obtain faster convergence rate than the DSSAF-EC algorithm in estimating a sparse unknown weight vector.
机译:在脉冲干扰环境中,最近提出的扩散符号子带自适应滤波(DSSAF)算法比大多数基于均方误差最小化准则的扩散分布估计算法更健壮。为了提高其收敛速度和稳态失准,本文提出了一种扩展合作的DSSAF算法(DSSAF-EC)。 DSSAF-EC算法不仅交换重量信息,而且还交换各个邻域内的测量值。此外,提出了DSSAF-EC算法的一种变体,称为比例DSSAF-EC(PDSSAF-EC)算法。它将自适应增益矩阵合并到DSSAF-EC算法中,以按比例调整代理的权重向量。仿真结果证明,DSSAF-EC算法和PDSSAF-EC算法均具有较强的抗脉冲干扰能力,并且在估计稀疏未知权重矢量时,PDSSAF-EC算法可比DSSAF-EC算法获得更快的收敛速度。

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