DocumentCode :
1762768
Title :
Self-optimising intelligent distributed antenna system for geographic load balancing
Author :
Hejazi, Seyed Amin ; Stapleton, Shawn P.
Author_Institution :
Sch. of Eng. Sci., Simon Fraser Univ., Burnaby, BC, Canada
Volume :
8
Issue :
15
fYear :
2014
fDate :
October 16 2014
Firstpage :
2751
Lastpage :
2761
Abstract :
Increase in number of mobile users, generates unbalanced load traffic in wireless network. In this study, a load-balancing solution is investigated in order to optimise quality of service. An intelligent distributed antenna system (IDAS) fed by a base transceiver station (BTS) has the ability to distribute the cellular capacity over a given geographic area depending on the time-varying traffic. A virtual cell network is an IDAS with capacity routing capability. To enable load balancing among distributed antenna modules, the authors dynamically allocate the remote antenna modules to the BTS sectors. A self-organised network of virtual cells is formulated as an optimisation problem, which attempts to balance traffic load and minimises the hand-offs as two important cost factors in the network. Two evolutionary algorithms are proposed for optimisation: genetic algorithm and estimation distribution algorithm. Computational results of different traffic scenarios after performing the algorithms, demonstrate that the two algorithms attain excellent key performance indicators for small-scale networks.
Keywords :
Long Term Evolution; antenna arrays; cellular radio; genetic algorithms; BTS; IDAS; LTE DAS network; base transceiver station; cellular capacity; estimation distribution algorithm; evolutionary algorithms; genetic algorithm; geographic load balancing; optimisation problem; remote antenna modules; self-optimising intelligent distributed antenna system; unbalanced load traffic; virtual cell network;
fLanguage :
English
Journal_Title :
Communications, IET
Publisher :
iet
ISSN :
1751-8628
Type :
jour
DOI :
10.1049/iet-com.2014.0012
Filename :
6917125
Link To Document :
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