Distributed Incremental Leaky LMS

M. Sowjanya, A. Sahoo, Sananda Kumar
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引用次数: 18

Abstract

Adaptive algorithms are applied to distributed networks to endow the network with adaptation capabilities. Incremental Strategy is the simplest mode of cooperation as it needs less amount of communication between the nodes. The adaptive incremental strategy which is developed for distributed networks using LMS algorithm, suffers from drift problem, where the parameter estimate will go unbounded in non ideal or practical implementations. Drift problem or divergence of the parameter estimate occurs due to continuous accumulation of quantization errors, finite precision errors and insufficient spectral excitation or ill conditioning of input sequence. They result in overflow and near singular auto correlation matrix, which provokes slow escape of parameter estimate to go unbound. The proposed method uses the Leaky LMS algorithm, which introduces a leakage factor in the update equation, and so prevents the weights to go unbounded by leaking energy out.
分布式增量泄漏LMS
将自适应算法应用于分布式网络,赋予网络自适应能力。增量策略是最简单的合作模式,因为它需要较少的节点之间的通信。采用LMS算法开发的分布式网络自适应增量策略存在漂移问题,在非理想或实际实现中参数估计会无界。由于量化误差的不断累积、精度误差的有限以及输入序列的谱激励不足或调节不良,会导致参数估计出现漂移或发散问题。它们导致了自相关矩阵的溢出和近奇异性,引起了参数估计的缓慢逃逸。该方法采用了Leaky LMS算法,该算法在更新方程中引入了泄漏因子,从而防止了由于能量泄漏而导致的权值无界。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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