DocumentCode
30994
Title
Spatial Spectrum Access Game
Author
Xu Chen ; Jianwei Huang
Author_Institution
Sch. of Electr., Comput. & Energy Eng., Arizona State Univ., Tempe, AZ, USA
Volume
14
Issue
3
fYear
2015
fDate
March 1 2015
Firstpage
646
Lastpage
659
Abstract
A key feature of wireless communications is the spatial reuse. However, the spatial aspect is not yet well understood for the purpose of designing efficient spectrum sharing mechanisms. In this paper, we propose a framework of spatial spectrum access games on directed interference graphs, which can model quite general interference relationship with spatial reuse in wireless networks. We show that a pure Nash equilibrium exists for the two classes of games: (1) any spatial spectrum access games on directed acyclic graphs, and (2) any games satisfying the congestion property on directed trees and directed forests. Under mild technical conditions, the spatial spectrum access games with random backoff and Aloha channel contention mechanisms on undirected graphs also have a pure Nash equilibrium. We also quantify the price of anarchy of the spatial spectrum access game. We then propose a distributed learning algorithm, which only utilizes users´ local observations to adaptively adjust the spectrum access strategies. We show that the distributed learning algorithm can converge to an approximate mixed-strategy Nash equilibrium for any spatial spectrum access games. Numerical results demonstrate that the distributed learning algorithm achieves up to 100 percent performance improvement over a random access algorithm.
Keywords
cognitive radio; directed graphs; game theory; radio spectrum management; Aloha channel contention mechanisms; Nash equilibrium; directed acyclic graphs; directed interference graphs; distributed learning algorithm; random backoff; spatial spectrum access game; spectrum sharing; wireless communications; Approximation algorithms; Games; Interference; Nash equilibrium; Throughput; Vegetation; Wireless communication; Distributed spectrum access; Nash equilibrium; distributed learning; game theory; spatial reuse;
fLanguage
English
Journal_Title
Mobile Computing, IEEE Transactions on
Publisher
ieee
ISSN
1536-1233
Type
jour
DOI
10.1109/TMC.2014.2326673
Filename
6824206
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