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Filtering approaches to accelerated consensus in diffusion sensor networks

机译:扩散传感器网络中加速共识的过滤方法

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摘要

The main objective in distributed sensor networks is to reach agreement or consensus on values acquired by the sensors. A common methodology to approach this problem is using the iterative and weighted linear combination of those values to which each sensor has access. Different methods to compute appropriate weights have been extensively studied, but the resulting iterative algorithm still requires many iterations to provide a fairly good estimate of the consensus value. In this paper, different accelerating consensus approaches based on adaptive and non-adaptive filtering techniques are studied and applied on the problem of acoustic source localization using the adaptive projected subgradient method. A comparative simulation study shows that the non-adaptive polynomial filters based on Newton's interpolating polynomials and semi-definite programming can provide more accelerated consensus and better estimation accuracy than adaptive filters evaluated using constrained affine projection algorithm or stochastic gradient algorithm provided that the network topology is known beforehand. Copyright (c) 2013 John Wiley & Sons, Ltd.
机译:分布式传感器网络的主要目标是就传感器获取的值达成共识或共识。解决此问题的常用方法是使用每个传感器可访问的那些值的迭代和加权线性组合。已经广泛研究了计算适当权重的不同方法,但是所得的迭代算法仍需要进行多次迭代才能对共识值提供一个相当不错的估计。本文研究了基于自适应和非自适应滤波技术的不同加速共识方法,并将其应用于采用自适应投影次梯度法的声源定位问题。对比仿真研究表明,与使用约束仿射投影算法或随机梯度算法评估的自适应滤波器相比,基于牛顿插值多项式和半定规划的非自适应多项式滤波器可以提供更快的加速一致性和更好的估计精度,前提是网络拓扑是事先知道。版权所有(c)2013 John Wiley&Sons,Ltd.

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