DocumentCode
1992222
Title
Hybrid GNSS-Terrestrial Cooperative Positioning via Distributed Belief Propagation
Author
Caceres, Mauricio A. ; Penna, Federico ; Wymeersch, Henk ; Garello, Roberto
Author_Institution
Dept. of Electron., Politec. di Torino, Turin, Italy
fYear
2010
fDate
6-10 Dec. 2010
Firstpage
1
Lastpage
5
Abstract
Cooperative positioning algorithms have been recently introduced to overcome the limitations of traditional methods, relying on GNSS or other terrestrial infrastructure. In particular, SPAWN (Sum- Product Algorithm over a Wireless Network) was shown to provide accurate position estimate even in challenged indoor environments, thanks to exchange of local information among peers. In this paper we extend the SPAWN framework by considering a hybrid scenario, where agents combine satellite and peer-to-peer terrestrial measurements. The novel hybrid SPAWN (H-SPAWN) approach allows increased availability and robustness compared to GNSS- only positioning in light and deep indoor scenarios, while keeping the advantages of a distributed implementation of the original SPAWN. A parametric message representation is proposed to reduce the communication overhead, and to improve the estimation accuracy. Simulation results show that the proposed solution outperforms traditional algorithms such as cooperative least squares and the extended Kalman filter.
Keywords
Kalman filters; belief networks; estimation theory; indoor radio; least squares approximations; message passing; peer-to-peer computing; radio networks; satellite navigation; GNSS-only positioning; H-SPAWN approach; SPAWN framework; communication overhead; cooperative least squares; cooperative positioning algorithms; distributed belief propagation; distributed implementation; estimation accuracy; extended Kalman filter; hybrid GNSS-terrestrial cooperative positioning; hybrid SPAWN; indoor environments; indoor scenarios; parametric message representation; peer-to-peer terrestrial measurements; position estimate; satellite measurements; sum- product algorithm over a wireless network; terrestrial infrastructure; Convergence; Global Navigation Satellite Systems; Noise; Noise measurement; Peer to peer computing; Satellites; Wireless networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Global Telecommunications Conference (GLOBECOM 2010), 2010 IEEE
Conference_Location
Miami, FL
ISSN
1930-529X
Print_ISBN
978-1-4244-5636-9
Electronic_ISBN
1930-529X
Type
conf
DOI
10.1109/GLOCOM.2010.5683684
Filename
5683684
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