DocumentCode :
3639688
Title :
Estimating behavior of a GA-based topology control for self-spreading nodes in MANETs
Author :
Elkin Urrea;Cem Şafak Şahin;M. Umit Uyar;Michael Conner;Giorgio Bertoli;Christian Pizzo
Author_Institution :
Department of Elec. Eng., Graduate Center of The City University of New York, NY, USA
fYear :
2010
Firstpage :
1405
Lastpage :
1410
Abstract :
This paper presents a dynamical system model for FGA, a force-based genetic algorithm, which is used as decentralized topology control mechanism among active running software agents to achieve a uniform spread of autonomous mobile nodes over an unknown geographical area. Using only local information, FGA guides each node to select a fitter location, speed and direction among exponentially large number of choices, converging towards a uniform node distribution. By treating a genetic algorithm (GA) as a dynamical system we can analyze it in terms of its trajectory in the space of possible populations. We use Vose´s theoretical model to calculate the cumulative effects of GA operators of selection, mutation, and crossover as a population evolves through generations. We show that FGA converges toward a significantly higher area coverage as it evolves.
Keywords :
"Biological cells","Nickel","Artificial neural networks","Mobile communication","Gallium","Force","Ad hoc networks"
Publisher :
ieee
Conference_Titel :
MILITARY COMMUNICATIONS CONFERENCE, 2010 - MILCOM 2010
ISSN :
2155-7578
Print_ISBN :
978-1-4244-8178-1
Electronic_ISBN :
2155-7586
Type :
conf
DOI :
10.1109/MILCOM.2010.5680143
Filename :
5680143
Link To Document :
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