DocumentCode
1756184
Title
MODLoc: Localizing Multiple Objects in Dynamic Indoor Environment
Author
Xiaonan Guo ; Dian Zhang ; Kaishun Wu ; Ni, Lionel M.
Author_Institution
Dept. of Comput. Sci. & Eng., HKUST, Hong Kong, China
Volume
25
Issue
11
fYear
2014
fDate
Nov. 2014
Firstpage
2969
Lastpage
2980
Abstract
Radio frequency (RF) based technologies play an important role in indoor localization, since Radio Signal Strength (RSS) can be easily measured by various wireless devices without additional cost. Among these, radio map based technologies (also referred as fingerprinting technologies) are attractive due to high accuracy and easy deployment. However, these technologies have not been extensively applied on real environment for two fatal limitations. First, it is hard to localize multiple objects. When the number of target objects is unknown, constructing a radio map of multiple objects is almost impossible. Second, environment changes will generate different multipath signals and severely disturb the RSS measurement, making laborious retraining inevitable. Motivated by these, in this paper, we propose a novel approach, called Line-of-sight radio map matching, which only reserves the LOS signal among nodes. It leverages frequency diversity to eliminate the multipath behavior, making RSS more reliable than before. We implement our system MODLoc based on TelosB sensor nodes and commercial 802.11 NICs with Channel State Information (CSI) as well. Through extensive experiments, it shows that the accuracy does not decrease when localizing multiple targets in a dynamic environment. Our work outperforms the traditional methods by about 60 percent. More importantly, no calibration is required in such environment. Furthermore, our approach presents attractive flexibility, making it more appropriate for general RF-based localization studies than just the radio map based localization.
Keywords
indoor radio; sensor placement; wireless LAN; 802.11 NIC; CSI; LOS signal; MODLoc; RF-based localization; RSS measurement; TelosB sensor nodes; channel state information; dynamic environment; dynamic indoor environment; fingerprinting technologies; indoor localization; line-of-sight radio map matching; multiple objects localization; radio frequency based technologies; radio map based localization; radio map based technologies; radio signal strength; wireless devices; Accuracy; Educational institutions; Frequency diversity; Radio propagation; Radio transmitters; Receivers; Training; Multiple objects; dynamic environment; localization;
fLanguage
English
Journal_Title
Parallel and Distributed Systems, IEEE Transactions on
Publisher
ieee
ISSN
1045-9219
Type
jour
DOI
10.1109/TPDS.2013.286
Filename
6662344
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