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Consensus-based recursive distributed filtering with stochastic nonlinearities over sensor networks

机译:传感器网络上基于随机非线性的基于共识的递归分布式滤波

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In this paper, the distributed filtering problem is addressed for a class of discrete time-varying systems in sensor networks. The stochastic nonlinearities, which are described by first and second-order statistics, enter into both the target plant and the sensor measurements. The goal of the proposed problem is to develop a distributed filter for each sensor node by making use of the topological information of the sensor networks. The consensus process subjected to a given directed graph is proposed to accelerate the information fusion, and then sub-optimal filer gain matrices are obtained by employing the least square method to minimize certain upper bound of the estimation error covariance. Finally, a numerical example is provided to demonstrate the effectiveness of the proposed consensus-based filters.
机译:本文针对传感器网络中一类离散时变系统解决了分布式滤波问题。由一阶和二阶统计量描述的随机非线性会同时进入目标工厂和传感器测量。提出的问题的目的是通过利用传感器网络的拓扑信息为每个传感器节点开发分布式滤波器。提出了给定有向图的共识过程,以加速信息融合,然后采用最小二乘法最小化估计误差协方差的上限,得到次优滤波器增益矩阵。最后,提供了一个数值示例来证明所提出的基于共识的过滤器的有效性。

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