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基于奇异值阈值处理的绿色无线局域网室内定位系统中的接收信号强度恢复

Received signal strength recovery in green WLAN indoor positioning system using singular value thresholding.

作者信息

Ma Lin, Xu Yubin

机构信息

Harbin Institute of Technology, Communication Research Center, 92 West Dazhi Street, Nan Gang District, Harbin 150001, China.

出版信息

Sensors (Basel). 2015 Jan 12;15(1):1292-311. doi: 10.3390/s150101292.

Abstract

Green WLAN is a promising technique for accessing future indoor Internet services. It is designed not only for high-speed data communication purposes but also for energy efficiency. The basic strategy of green WLAN is that all the access points are not always powered on, but rather work on-demand. Though powering off idle access points does not affect data communication, a serious asymmetric matching problem will arise in a WLAN indoor positioning system due to the fact the received signal strength (RSS) readings from the available access points are different in their offline and online phases. This asymmetry problem will no doubt invalidate the fingerprint algorithm used to estimate the mobile device location. Therefore, in this paper we propose a green WLAN indoor positioning system, which can recover RSS readings and achieve good localization performance based on singular value thresholding (SVT) theory. By solving the nuclear norm minimization problem, SVT recovers not only the radio map, but also online RSS readings from a sparse matrix by sensing only a fraction of the RSS readings. We have implemented the method in our lab and evaluated its performances. The experimental results indicate the proposed system could recover the RSS readings and achieve good localization performance.

摘要

绿色无线局域网是一种用于接入未来室内互联网服务的很有前景的技术。它不仅是为高速数据通信目的而设计,也是为了实现能源效率。绿色无线局域网的基本策略是并非所有接入点都始终处于开启状态,而是按需工作。虽然关闭空闲接入点不会影响数据通信,但在无线局域网室内定位系统中会出现一个严重的非对称匹配问题,因为从可用接入点获取的接收信号强度(RSS)读数在离线和在线阶段是不同的。这个非对称问题无疑会使用于估计移动设备位置的指纹算法失效。因此,在本文中我们提出一种绿色无线局域网室内定位系统,它可以恢复RSS读数并基于奇异值阈值化(SVT)理论实现良好的定位性能。通过解决核范数最小化问题,SVT不仅可以恢复无线电地图,还可以通过仅感知一部分RSS读数从稀疏矩阵中恢复在线RSS读数。我们已在实验室中实现了该方法并评估了其性能。实验结果表明所提出的系统可以恢复RSS读数并实现良好的定位性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e7c5/4327077/8c24b392ed42/sensors-15-01292f1.jpg

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