无线传感器网络中目标跟踪的能量平衡调度

Xiaoqing Hu, Y. Hu, Bugong Xu
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引用次数: 29

摘要

提出了一种利用无气味卡尔曼滤波(UKF)算法延长无线传感器网络协同目标跟踪寿命的能量平衡任务调度方法。结果表明,跟踪精度与参与协同跟踪的主动传感器节点数近似成正比。因此,如果有足够数量的活动传感器节点,则可以将过多的传感器节点置于休眠模式以节省能量。结果表明,传感器网络的寿命取决于传感器节点剩余能量的分布。具体来说,我们已经证明了能量平衡的WSN可能会最大化其使用寿命。因此,在跟踪任务的每一步,头节点必须在感知范围内的所有传感器中明智地选择活动节点,以最小化剩余能量变化(能量平衡),同时达到期望的跟踪精度。这被表述为一个子集选择问题,它具有np困难的复杂性。针对这一执行复杂度为多项式的问题,提出了几种能量平衡跟踪调度启发式算法。已经进行了大量的仿真来比较EBaST与一些最先进的调度算法。与竞争算法相比,EBaST更有能力显著延长wsn的使用寿命,同时提供相当或更好的跟踪精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy-Balanced Scheduling for Target Tracking in Wireless Sensor Networks
A novel energy-balanced task-scheduling method is proposed that extends the lifespan of wireless sensor networks (WSNs) for collaborative target tracking using an unscented Kalman filter (UKF) algorithm. It is shown that the tracking accuracy is approximately proportional to the number of active sensor nodes participating in collaborative tracking. Excessive sensor nodes thus may be put to sleep mode to conserve energy provided there are a sufficient number of active sensor nodes. It is then shown that the lifespan of a WSN is dictated by the distribution of residue energy of sensor nodes. Specifically, we have shown that an energy-balanced WSN is likely to maximize its lifespan. As such, at each step of the tracking task, the head node must judiciously select active nodes from all sensors within the sensing range to minimize residue energy variations (energy balanced) while achieving desired tracking accuracy. This is formulated as a subset selection problem, which is shown to have a complexity that is NP-hard. Several energy-balanced scheduling for tracking (EBaST) heuristic algorithms are proposed to solve this problem with polynomial execution complexities. Extensive simulations have been conducted to compare EBaST against some state-of-the-art scheduling algorithms. It is observed that EBaST is more capable of significantly extending the WSNs lifespan than competing algorithms while delivering comparable or better tracking accuracy.
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