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Adaptive Dynamic Programming-Based Multi-Sensor Scheduling for Collaborative Target Tracking in Energy Harvesting Wireless Sensor Networks

机译:能量收集无线传感器网络中基于自适应动态规划的多传感器协同目标跟踪调度

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摘要

Collaborative target tracking is one of the most important applications of wireless sensor networks (WSNs), in which the network must rely on sensor scheduling to balance the tracking accuracy and energy consumption, due to the limited network resources for sensing, communication, and computation. With the recent development of energy acquisition technologies, the building of WSNs based on energy harvesting has become possible to overcome the limitation of battery energy in WSNs, where theoretically the lifetime of the network could be extended to infinite. However, energy-harvesting WSNs pose new technical challenges for collaborative target tracking on how to schedule sensors over the infinite horizon under the restriction on limited sensor energy harvesting capabilities. In this paper, we propose a novel adaptive dynamic programming (ADP)-based multi-sensor scheduling algorithm (ADP-MSS) for collaborative target tracking for energy-harvesting WSNs. ADP-MSS can schedule multiple sensors for each time step over an infinite horizon to achieve high tracking accuracy, based on the extended Kalman filter (EKF) for target state prediction and estimation. Theoretical analysis shows the optimality of ADP-MSS, and simulation results demonstrate its superior tracking accuracy compared with an ADP-based single-sensor scheduling scheme and a simulated-annealing based multi-sensor scheduling scheme.
机译:协作目标跟踪是无线传感器网络(WSN)的最重要应用之一,由于传感,通信和计算的网络资源有限,网络必须依靠传感器调度来平衡跟踪精度和能耗。随着能量获取技术的最新发展,基于能量收集的WSN的构建已成为可能,以克服WSN中电池能量的局限性,从理论上讲,网络的寿命可以延长到无限。但是,能量收集WSN对协作目标跟踪提出了新的技术挑战,如何在有限的传感器能​​量收集功能的限制下如何在无限的范围内调度传感器。在本文中,我们提出了一种新的基于自适应动态规划(ADP)的多传感器调度算法(ADP-MSS),用于能量收集WSN的协作目标跟踪。 ADP-MSS可以基于扩展的卡尔曼滤波器(EKF)进行目标状态预测和估计,在无限的地平线上为每个时间段安排多个传感器,以实现较高的跟踪精度。理论分析表明了ADP-MSS的最优性,仿真结果表明,与基于ADP的单传感器调度方案和基于模拟退火的多传感器调度方案相比,其跟踪精度更高。

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