DocumentCode :
3306534
Title :
A comparative survey of WLAN location fingerprinting methods
Author :
Honkavirta, V. ; Perälä, Tommi ; Ali-Löytty, Simo ; Piché, Robert
Author_Institution :
Tampere Univ. of Technol., Tampere
fYear :
2009
fDate :
19-19 March 2009
Firstpage :
243
Lastpage :
251
Abstract :
The term ldquolocation fingerprintingrdquo covers a wide variety of methods for determining receiver position using databases of radio signal strength measurements from different sources. In this work we present a survey of location fingerprinting methods, including deterministic and probabilistic methods for static estimation, as well as filtering methods based on Bayesian filter and Kalman filter. We present a unified mathematical formulation of radio map database and location estimation, point out the equivalence of some methods from the literature, and present some new variants. A set of tests in an indoor positioning scenario using WLAN signal strengths is performed to determine the influence of different calibration and location method parameters. In the tests, the probabilistic method with the kernel function approximation of signal strength histograms was the best static positioning method. Moreover, all filters improved the results significantly over the static methods.
Keywords :
Kalman filters; mathematical analysis; probability; wireless LAN; Bayesian filter; Kalman filter; WLAN; filtering methods; location estimation; location fingerprinting methods survey; mathematical formulation; radio map database; radio signal strength measurements; static estimation; Bayesian methods; Databases; Filtering; Filters; Fingerprint recognition; Performance evaluation; Position measurement; RAKE receivers; Testing; Wireless LAN;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Positioning, Navigation and Communication, 2009. WPNC 2009. 6th Workshop on
Conference_Location :
Hannover
Print_ISBN :
978-1-4244-3292-9
Electronic_ISBN :
978-1-4244-3293-6
Type :
conf
DOI :
10.1109/WPNC.2009.4907834
Filename :
4907834
Link To Document :
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