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Memory Distributed LMS for Wireless Sensor Networks

机译:用于无线传感器网络的内存分布式LMS

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摘要

Due to the limited communication resource and power, it is usually infeasible for sensor networks to gather data to a central processing node. Distributed algorithms are an efficient way to resolve this problem. In the algorithms, each sensor node deals with its own input data and transmits the local results to its neighbors. Each node fuses the information from neighbors and its own to get the final results. Different from the existing work, in this paper, we present an approach for distributed parameter estimation in wireless sensor networks based on the use of memory. The proposed approach consists of modifying the cost function by adding extra statistical information. A distributed least-mean squares (d-LMS) algorithm, called memory d-LMS, is then derived based on the cost function and analyzed. The theoretical performances of mean and mean square are analyzed. Moreover, simulation results show that the proposed algorithm outperforms the traditional d-LMS algorithm in terms of convergence rate and mean square error (MSE) performance.
机译:由于通信资源和功率的限制,传感器网络通常无法将数据收集到中央处理节点。分布式算法是解决此问题的有效方法。在算法中,每个传感器节点处理自己的输入数据,并将本地结果传输到其邻居。每个节点融合来自邻居及其自身的信息,以获得最终结果。与现有工作不同,本文提出了一种基于内存使用的无线传感器网络中分布式参数估计方法。所提出的方法包括通过添加额外的统计信息来修改成本函数。然后,基于成本函数推导了称为内存d-LMS的分布式最小均方(d-LMS)算法并进行了分析。分析了均值和均方根的理论性能。仿真结果表明,该算法在收敛速度和均方误差(MSE)性能上均优于传统的d-LMS算法。

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  • 来源
    《Mathematical Problems in Engineering 》 |2018年第3期| 9831378.1-9831378.8| 共8页
  • 作者单位

    Hangzhou Dianzi Univ, Sch Commun Engn, Hangzhou, Zhejiang, Peoples R China;

    Hangzhou Dianzi Univ, Sch Commun Engn, Hangzhou, Zhejiang, Peoples R China;

    Hangzhou Dianzi Univ, Sch Commun Engn, Hangzhou, Zhejiang, Peoples R China;

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