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Stochastic Sensor Scheduling for Energy Constrained Estimation in Multi-Hop Wireless Sensor Networks

机译:多跳无线传感器网络中能量受限估计的随机传感器调度

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Wireless Sensor Networks (WSNs) enable a wealth of new applications where remote estimation is essential. Individual sensors simultaneously sense a dynamic process and transmit measured information over a shared channel to a central fusion center. The fusion center computes an estimate of the process state by means of a Kalman filter. In this technical note we assume that the WSN admits a tree topology with one fusion center at the root. At each time step only a subset of sensors can be selected to transmit observations to the fusion center due to a limited energy budget. We propose a stochastic sensor selection algorithm that randomly selects a subset of sensors according to a certain probability distribution, which is opportunely designed to minimize the asymptotic expected covariance matrix of the estimation error. We show that the optimal stochastic sensor selection problem can be relaxed into a convex optimization problem and thus efficiently solved. We also provide a possible implementation of our algorithm which does not introduce any communication overhead. The technical note ends with some numerical examples that show the effectiveness of the proposed approach.
机译:无线传感器网络(WSN)支持大量需要远程估计的新应用。各个传感器同时感测动态过程,并通过共享通道将测量的信息传输到中央融合中心。融合中心通过卡尔曼滤波器计算过程状态的估计值。在本技术说明中,我们假设WSN接受树形拓扑,其根部有一个融合中心。由于能量预算有限,在每个时间步长只能选择传感器子集以将观测结果传输到融合中心。我们提出一种随机传感器选择算法,该算法根据一定的概率分布随机选择传感器的子集,该算法的设计目的是最大程度地减少估计误差的渐近期望协方差矩阵。我们表明,最优随机传感器选择问题可以放宽为凸优化问题,从而得到有效解决。我们还提供了一种可能的算法实现方式,不会带来任何通信开销。该技术说明以一些数字示例结尾,这些示例说明了该方法的有效性。

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