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Adaptive Filter Algorithms for Accelerated Discrete-Time Consensus

机译:加速离散时间共识的自适应滤波算法

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摘要

In many distributed systems, the objective is to reach agreement on values acquired by the nodes in a network. A common approach to solve such problems is the iterative, weighted linear combination of those values to which each node has access. Methods to compute appropriate weights have been extensively studied, but the resulting iterative algorithms still require many iterations to provide a fairly good estimate of the consensus value. In this study we show that a good estimate of the consensus value can be obtained with few iterations of conventional consensus algorithms by filtering the output of each node with set-theoretic adaptive filters. We use the adaptive projected subgradient method to derive a set-theoretic filter requiring only local information available to each node and being robust to topology changes and erroneous information about the network. Numerical simulations show the good performance of the proposed method.
机译:在许多分布式系统中,目标是就网络中的节点获取的值达成协议。解决此类问题的常用方法是每个节点可以访问的那些值的迭代加权线性组合。已经广泛研究了计算适当权重的方法,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。在这项研究中,我们表明,通过使用集理论自适应滤波器对每个节点的输出进行滤波,可以用常规共识算法的几次迭代获得良好的共识值估计。我们使用自适应投影次梯度方法来推导仅需每个节点可用的本地信息并且对拓扑变化和有关网络的错误信息具有鲁棒性的集合理论滤波器。数值仿真表明了该方法的良好性能。

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