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Energy Efficient Information-Driven Target Location Estimation in Wireless Sensor Networks

机译:无线传感器网络中的高能效信息驱动目标位置估计

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This paper describes a technique to save energy in the distributed Information_Driven maximum likelihood algorithm used for the localization of a diffusive source in Wireless Sensor Networks. First, the accurate Information_driven maximum likelihood distributed estimation based on the Gauss- Newton method is derived and called Modified Information-driven Collaborative Processing (MIDCP). In this method, a neighborhood region is defined and the information of all sensor nodes in this area is used to increase the algorithm accuracy. Then, a method for decreasing the energy consumption of this algorithm is proposed and called Energy Efficient MIDCP (EFMIDCP). In this algorithm, for estimation update, first, the neighboring radius is set to communication range of sensor nodes. After that, based on the covariance of estimation error in each iteration, this radius is decreased. Therefore, the amount of energy consumption is abated because of less transmission. Simulation results show the low energy consumption in the second proposed algorithm while its accuracy is rather well.
机译:本文介绍了一种在分布式信息驱动最大似然算法中节省能量的技术,该算法用于无线传感器网络中扩散源的定位。首先,推导基于高斯-牛顿法的准确的信息驱动最大似然分布估计,并将其称为修正信息驱动协同处理(MIDCP)。在这种方法中,定义了一个邻域,并使用该区域中所有传感器节点的信息来提高算法的准确性。然后,提出了一种降低该算法能耗的方法,称为节能高效MIDCP(EFMIDCP)。在该算法中,为了进行估计更新,首先,将邻近半径设置为传感器节点的通信范围。之后,基于每次迭代中估计误差的协方差,减小该半径。因此,由于较少的传输而减少了能量消耗量。仿真结果表明,第二种算法的能耗较低,但精度较高。

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