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基于残差分析的无线传感器网络移动定位改进粒子滤波算法

A Residual Analysis-Based Improved Particle Filter in Mobile Localization for Wireless Sensor Networks.

机构信息

Department of Computer and Communication Engineering, Northeastern University, Qinhuangdao 066004, China.

出版信息

Sensors (Basel). 2018 Sep 4;18(9):2945. doi: 10.3390/s18092945.

Abstract

Wireless sensor networks (WSNs) have become a popular research subject in recent years. With the data collected by sensors, the information of a monitored area can be easily obtained. As a main contribution of WSN localization is widely applied in many fields. However, when the propagation of signals is obstructed there will be some severe errors which are called Non-Line-of-Sight (NLOS) errors. To overcome this difficulty, we present a residual analysis-based improved particle filter (RAPF) algorithm. Because the particle filter (PF) is a powerful localization algorithm, the proposed algorithm adopts PF as its main body. The idea of residual analysis is also used in the proposed algorithm for its reliability. To test the performance of the proposed algorithm, a simulation is conducted under several conditions. The simulation results show the superiority of the proposed algorithm compared with the Kalman Filter (KF) and PF. In addition, an experiment is designed to verify the effectiveness of the proposed algorithm in an indoors environment. The localization result of the experiment also confirms the fact that the proposed algorithm can achieve a lower localization error compared with KF and PF.

摘要

无线传感器网络(WSN)近年来成为研究热点。通过传感器采集的数据,可以方便地获取被监测区域的信息。作为 WSN 定位的主要贡献之一,它被广泛应用于许多领域。然而,当信号传播受到阻碍时,会产生一些严重的误差,称为非视距(NLOS)误差。为了克服这一困难,我们提出了一种基于残差分析的改进粒子滤波(RAPF)算法。由于粒子滤波(PF)是一种强大的定位算法,因此所提出的算法采用 PF 作为其主体。该算法还使用了残差分析的思想,以提高其可靠性。为了测试所提出算法的性能,在几种情况下进行了仿真。仿真结果表明,与卡尔曼滤波(KF)和 PF 相比,所提出的算法具有优越性。此外,还设计了一个实验来验证该算法在室内环境中的有效性。实验的定位结果也证实了所提出的算法可以实现比 KF 和 PF 更低的定位误差。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dd2c/6163769/1e53c95b37a7/sensors-18-02945-g001.jpg

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