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Diffusion Sign Subband Adaptive Filtering Algorithm with Individual Weighting Factors for Distributed Estimation

机译:具有独立加权因子的扩散符号子带自适应滤波算法

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摘要

A new diffusion sign subband adaptive filtering algorithm with an individual weighting factor (IWF-DSSAF) for each subband is proposed for distributed estimation in the impulsive noise environment. Since the inherent decorrelating property of subband adaptive filtering is fully used, the proposed algorithm obtains better performance in terms of convergence rate and tracking capability as compared with the diffusion sign subband adaptive filtering (DSSAF) algorithm. In addition, the stability analysis of the IWF-DSSAF algorithm is performed based on Price's theorem. After that, in order to obtain a faster convergence rate in sparse distributed system identification, the improved proportionate IWF-DSSAF algorithm is proposed, in which a gain distribution matrix is incorporated into the IWF-DSSAF algorithm. Finally, simulations are carried out in the distributed system identification context. The results of simulations demonstrate that the proposed algorithms achieve better convergence performance than their counterparts.
机译:针对脉冲噪声环境中的分布式估计,提出了一种新的扩散符号子带自适应滤波算法,该算法对每个子带具有独立的加权因子(IWF-DSSAF)。由于充分利用了子带自适应滤波的固有去相关特性,与扩散符号子带自适应滤波(DSSAF)算法相比,该算法在收敛速度和跟踪能力方面都具有更好的性能。此外,基于Price定理对IWF-DSSAF算法进行了稳定性分析。此后,为了在稀疏分布式系统识别中获得更快的收敛速度,提出了一种改进的比例比例IWF-DSSAF算法,其中将增益分布矩阵纳入了IWF-DSSAF算法。最后,在分布式系统识别环境中进行仿真。仿真结果表明,所提出的算法比同类算法具有更好的收敛性能。

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