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Event-triggered distributed state estimation over wireless sensor networks

机译:无线传感器网络的事件触发分布式状态估计

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This paper focuses on the event-triggered distributed state estimation over sensor networks, in which each sensor node selectively transmits the local information to its neighbors for the reduced communication bandwidth and the prolonged network lifetime. Based on an individual stochastic triggering condition, an event-triggered minimum mean square error (MMSE) estimator is proposed in a recursive form, and then an event-triggered distributed state estimation algorithm is developed by repeatedly fusing the local information and the event-triggered information. It is shown that, under network connectivity, collective observability and large enough triggering parameters, the distributed estimator in each sensor node is stable with the uniformly bounded estimation error in mean square. Finally, a target tracking example is provided to illustrate the practical effectiveness of the proposed technique. (C) 2020 Elsevier Ltd. All rights reserved.
机译:本文侧重于传感器网络的事件触发的分布式状态估计,其中每个传感器节点选择性地将本地信息发送到其邻居,以减少通信带宽和延长的网络寿命。 基于单独的随机触发条件,以递归形式提出事件触发的最小均方误差(MMSE)估计器,然后通过重复融合本地信息和事件触发,开发了事件触发的分布式状态估计算法 信息。 结果表明,在网络连接,集体可观察性和足够大的触发参数下,每个传感器节点中的分布式估计器在均匀方形中具有均匀有界估计误差稳定。 最后,提供了目标跟踪示例以说明所提出的技术的实际效果。 (c)2020 elestvier有限公司保留所有权利。

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