DocumentCode
827776
Title
Distance Reduction in Mobile Wireless Communication: Lower Bound Analysis and Practical Attainment
Author
Dong, Yu ; Hon, Wing-Kai ; Yau, David K Y ; Chin, Jren-Chit
Author_Institution
IBM, Silicon Valley Lab., San Jose, CA
Volume
8
Issue
2
fYear
2009
Firstpage
276
Lastpage
287
Abstract
The transmission energy required for a wireless communication increases superlinearly with the communication distance. In a mobile wireless network, nodal movement can be exploited to greatly reduce the energy required by postponing communication until the sender moves close to a target receiver, subject to application deadline constraints. In this paper, we characterize the fundamental performance limit, namely the lower bound expected communication distance, achievable by any postponement algorithm within given deadline constraints. Our analytical results concern mainly the random waypoint (RWP) model. Specifically, we develop a tight analytical lower bound of the achievable expected communication distance under the model. In addition, we define a more general map-based movement model, and characterize its lower bound distance by simulations. We also address the practical attainment of distance reduction through movement-predicted communication. Specifically, whereas prior work has experimentally demonstrated the effectiveness a least distance (LD) algorithm, we provide an absolute performance measure of how closely LD can match the theoretical optimum. We show that LD achieves an average reduction in the expected communication distance within 62% to 94% of the optimal, over a realistic range of nodal speeds, for both the RWP and map-based models.
Keywords
mobile radio; random processes; telecommunication network routing; least distance algorithm; lower bound expected communication distance; map-based movement model; mobile wireless network; movement-predicted communication; network selection routing; nodal movement; postponement algorithm; random waypoint model; transmission energy; wireless communication distance reduction; Ad hoc networks; Business communication; Delay; Energy efficiency; Legged locomotion; Mobile communication; Roads; Traffic control; Wireless communication; Wireless networks;
fLanguage
English
Journal_Title
Mobile Computing, IEEE Transactions on
Publisher
ieee
ISSN
1536-1233
Type
jour
DOI
10.1109/TMC.2008.113
Filename
4589211
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