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Stability and Performance of Wireless Sensor Networks during the Tracking of Dynamic Targets

机译:动态目标追踪期间无线传感器网络的稳定性和性能

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The performance of Wireless Sensor Networks (WSNs) during the tracking of dynamic targets is addressed in this paper. The strategy outlined in this paper uses a Distributed implementation of a Kalman Filter to track dynamic targets. In contrast to the results reported in the literature, the approach in this paper has the Kalman Filter running on only one network node at any given time. The knowledge learned by this node, i.e. the system state and the covariance matrix, is passed on to the subsequent node running the filter. Since a finite subset of the sensor nodes is active at any given time, target tracking can be accomplished using lower power compared to centralized implementations of the Kalman Filter. The tracking problem in WSNs is formulated mathematically and the stability and tracking error of the proposed strategy is rigorously analyzed. Numerical simulations are then used to demonstrate the utility of the proposed technique. The results in this paper show that the proposed technique for target tracking will result in significant savings in power consumption and will extend the useful life of the WSN.
机译:本文解决了在跟踪动态目标期间的无线传感器网络(WSN)的性能。本文概述的策略使用了卡尔曼滤波器的分布式实现来跟踪动态目标。与文献中报告的结果相比,本文中的方法具有在任何给定时间的一个网络节点上运行的卡尔曼滤波器。该节点学习的知识,即系统状态和协方差矩阵,传递给运行过滤器的后续节点。由于传感器节点的有限子集在任何给定的时间处于活动状态,而与卡尔曼滤波器的集中实施方式相比,可以使用较低功率来完成目标跟踪。 WSN中的跟踪问题是数学制定的,并且分析了所提出的策略的稳定性和跟踪误差。然后使用数值模拟来证明所提出的技术的效用。本文的结果表明,拟议的目标跟踪技术将导致功耗的显着节省,并将延长WSN的使用寿命。

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