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Sensor selection with correlated measurements for target tracking in wireless sensor networks

机译:具有相关测量值的传感器选择,用于无线传感器网络中的目标跟踪

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We study the problem of adaptive sensor management for target tracking, where at every instant we search for the best sensors to be activated at the next time step. In our problem formulation, the measurements may be corrupted by correlated noises, and the impact of correlated measurements on sensor selection is studied. Specifically, we adopt an alternative conditional posterior Cramér-Rao lower bound (C-PCRLB) as the optimization criterion for sensor selection, where the trace of the conditional Fisher information matrix is maximized subject to an energy constraint. We demonstrate that the proposed sensor selection problem can be transformed into the problem of maximizing a convex quadratic function over a bounded polyhedron. This optimization problem is NP-hard in nature, and thus we employ a linearization method and a bilinear programming approach to obtain locally optimal sensor schedules in a computationally efficient manner.
机译:我们研究了用于目标跟踪的自适应传感器管理问题,在该问题中,我们每时每刻都在寻找下一个步骤要激活的最佳传感器。在我们的问题表述中,相关的噪声可能会破坏测量结果,并研究相关的测量结果对传感器选择的影响。具体而言,我们采用替代性条件后验Cramér-Rao下界(C-PCRLB)作为传感器选择的优化标准,其中条件Fisher信息矩阵的轨迹在受到能量约束的情况下最大化。我们证明了提出的传感器选择问题可以转化为有界多面体上最大化凸二次函数的问题。该优化问题本质上是NP难题,因此我们采用线性化方法和双线性编程方法以计算有效的方式获得局部最优传感器计划。

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