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Sensor Selection for Target Tracking in Wireless Sensor Networks With Uncertainty

机译:具有不确定性的无线传感器网络中用于目标跟踪的传感器选择

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摘要

In this paper, we propose a multiobjective optimization framework for the sensor selection problem in uncertain Wireless Sensor Networks (WSNs). The uncertainties of the WSNs result in a set of sensor observations with insufficient information about the target. We propose a novel mutual information upper bound (MIUB)-based sensor selection scheme, which has a low computational complexity, same as the Fisher information (FI)-based sensor selection scheme, and gives an estimation performance similar to the mutual information-based sensor selection scheme. Without knowing the number of sensors to be selected a priori, the multiobjective optimization problem (MOP) gives a set of sensor selection strategies that reveal different tradeoffs between two conflicting objectives: minimization of the number of selected sensors and minimization of the gap between the performance metric (MIUB and FI) when all the sensors transmit measurements and when only the selected sensors transmit their measurements based on the sensor selection strategy. Illustrative numerical results that provide valuable insights are presented.
机译:在本文中,我们针对不确定的无线传感器网络(WSN)中的传感器选择问题提出了一个多目标优化框架。 WSN的不确定性会导致一组传感器观测结果,而有关目标的信息不足。我们提出了一种新颖的基于互信息上界(MIUB)的传感器选择方案,该方案具有较低的计算复杂度,与基于Fisher信息(FI)的传感器选择方案相同,并且提供了与基于互信息的相似的估计性能传感器选择方案。在不知道先验选择传感器的数量的情况下,多目标优化问题(MOP)提供了一组传感器选择策略,这些策略揭示了两个相互矛盾的目标之间的不同权衡:最小化所选传感器的数量,以及最小化性能之间的差距当所有传感器都发送测量值并且仅基于传感器选择策略选择的传感器发送其测量值时,可以使用“公制”(MIUB和FI)度量。给出了提供有价值的见解的说明性数值结果。

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