DocumentCode
16247
Title
Optimal Base Station Sleeping in Green Cellular Networks: A Distributed Cooperative Framework Based on Game Theory
Author
Jianchao Zheng ; Yueming Cai ; Xianfu Chen ; Rongpeng Li ; Honggang Zhang
Author_Institution
Coll. of Commun. Eng., PLA Univ. of Sci. & Technol., Nanjing, China
Volume
14
Issue
8
fYear
2015
fDate
Aug. 2015
Firstpage
4391
Lastpage
4406
Abstract
This paper proposes a distributed cooperative framework for improving the energy efficiency of green cellular networks. Based on the traffic load, neighboring base stations (BSs) cooperate to optimize the BS switching (sleeping) strategies so as to maximize the energy saving while guaranteeing users´ minimal service requirements. The inter-BS cooperation is formulated following the principle of ecological self-organization. An interaction graph is defined to capture the network impact of the BS switching operation. Then, we formulate the problem of energy saving as a constrained graphical game, where each BS acts as a game player with the constraint of traffic load. The constrained graphical game is proved to be an exact constrained potential game. Furthermore, we prove the existence of a generalized Nash equilibrium (GNE), and the best GNE coincides with the optimal solution of total energy consumption minimization. Accordingly, we design a decentralized iterative algorithm to find the best GNE (i.e., the global optimum), where only local information exchange among the neighboring BSs is needed. Theoretical analysis and simulation results finally illustrate the convergence and optimality of the proposed algorithm.
Keywords
cellular radio; convergence; cooperative communication; energy conservation; environmental factors; game theory; graph theory; telecommunication power management; telecommunication traffic; BS switching strategy; GNE; constrained graphical game theory; convergence method; distributed cooperative framework; ecological self-organization; energy efficiency improvement; energy saving problem; generalized Nash equilibrium; green cellular network; interBS cooperation; interaction graph; local information exchange; neighboring base station; optimal base station sleeping; total energy consumption minimization; traffic load; Algorithm design and analysis; Energy consumption; Games; Joints; Power demand; Switches; Wireless communication; Base station sleeping; decentralized algorithm; distributed cooperation; energy efficiency; generalized Nash equilibrium; green cellular networks; potential game;
fLanguage
English
Journal_Title
Wireless Communications, IEEE Transactions on
Publisher
ieee
ISSN
1536-1276
Type
jour
DOI
10.1109/TWC.2015.2420233
Filename
7080927
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