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Partial-Diffusion Least Mean-Square Estimation Over Networks Under Noisy Information Exchange

机译:噪声信息交换下的网络部分扩散最小均线估计

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摘要

Partial diffusion scheme is an effective method for reducing computational load and power consumption in adaptive network implementation. The Information is exchanged among the nodes, usually over noisy links. In this paper, we consider a general version of Partial-Diffusion Least-Mean-Square (PDLMS) algorithm in the presence of various sources of imperfect information exchanges. Like the established PDLMS, we consider two different schemes to select the entries, sequential and stochastic, for transmission at each iteration. Our objective is to analyze the aggregate effect of these perturbations on general PDLMS strategies. Simulation results demonstrate that considering noisy link assumption adds a new complexity to the related optimization problem and the trade-off between communication cost and estimation performance in comparison to ideal case becomes unbalanced. Our simulation results substantiate the effect of noisy links on PDLMS algorithm and verify the theoretical analysis.
机译:部分扩散方案是用于降低自适应网络实现中的计算负荷和功耗的有效方法。这些信息在节点之间交换,通常在嘈杂的链接上。在本文中,我们考虑在存在不完美信息交换的各种源的存在下部分扩散最小均方(PDLMS)算法的一般版本。与已建立的PDLM一样,我们考虑两个不同的方案来选择条目,顺序和随机,用于在每次迭代时传输。我们的目标是分析这些扰动对一般PDLMS战略的总效应。仿真结果表明,考虑嘈杂的链接假设对相关优化问题增加了新的复杂性,并且与理想情况相比,通信成本与估计性能之间的权衡变得不平衡。我们的仿真结果证实了噪声链路对PDLMS算法的影响,并验证了理论分析。

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