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The Accurate Estimations of Distances Among Nodes in Wireless Sensor Networks in a Complex Environment Based on an Adaptive Kalman Filter

机译:基于自适应卡尔曼滤波器的复杂环境中无线传感器网络节点间距离的准确估计

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The accurate estimations of distances among nodes in wireless sensor networks(WSN) are premises for the accurate estimations of nodes'' positions and the accurate reconstruction of the networks'' topology. In a complex environment, nodes stochastically move, and the variance of state noise is unknown and variable, and obstacles possibly exist among nodes. Now, the accurate estimations of distances among nodes in the WSN in a complex environment are still unresolved. In this paper, an adaptive Kalman filter(AKF) is used to solve the accurate estimations of distances among nodes in the WSN. Through simulations, the results indicate that the AKF is capable of accurate estimations of distances among nodes. Therefore, the AKF is a very effective method to solve the accurate estimations of distances among nodes in the WSN in a complex environment.
机译:无线传感器网络(WSN)中节点之间的距离的准确估计是用于节点“位置的准确估计和网络拓扑的准确重建的场所。在一个复杂的环境中,节点随机移动,并且状态噪声的变化是未知的,并且节点中可能存在障碍物。现在,复杂环境中WSN中的节点之间的距离的准确估计仍未得到解决。在本文中,使用自适应卡尔曼滤波器(AKF)来解决WSN中节点之间的距离的准确估计。通过仿真,结果表明AKF能够准确地估计节点之间的距离。因此,AKF是一种非常有效的方法,用于解决复杂环境中WSN中节点中的节点之间的距离准确估计的非常有效的方法。

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