Probabilistic Radio-Frequency Fingerprinting and Localization on the Run

被引:49
|
作者
Mirowski, Piotr [1 ]
Milioris, Dimitrios [2 ,3 ,4 ,5 ]
Whiting, Philip [6 ]
Ho, Tin Kam [7 ]
机构
[1] Schlumberger Res, Cambridge, MA USA
[2] Alcatel Lucent Bell Labs, Nozay, France
[3] Ecole Polytech ParisTech, Paris, France
[4] Fdn Res & Technol Hellas FORTH, TNL, Iraklion, Greece
[5] INRIA, Hipercom Team, Le Chesnay, France
[6] Univ S Australia, Mobile Res Ctr, Adelaide, SA 5001, Australia
[7] France Telecom, Bell Labs, Study Locat Using RSSI Measurements Wi Fi Signals, Paris, France
关键词
35;
D O I
10.1002/bltj.21649
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Indoor localization is a key enabler for pervasive computing and network optimization. Wireless local area network (WLAN) positioning systems typically rely on fingerprints of received signal strength (RSS) measures from access points. In this paper, we review approaches for modeling full distributions of Wi-Fi signals, including Bayesian graphical models, smoothing, compressive sensing, and random field differentiation and concentrate on the Kullback-Leibler divergence metric that compares multivariate RSS distributions. We provide theoretical insights on the required spatial density of fingerprints and on the number of samples necessary, during tracking or during signal map building, to differentiate among signal distributions and to provide accurate location estimates. We validate our methods on contrasting datasets where we obtain state-of-the-art localization results. Finally, we exploit datasets collected by a self-localizing mobile robot that continuously records Wi-Fi along with ground truth position, where we define increasingly denser fingerprint grids and study asymptotic localization accuracy. (c) 2014 Alcatel-Lucent.
引用
收藏
页码:111 / 133
页数:23
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