DocumentCode
1208838
Title
A nash game algorithm for SIR-based power control in 3G wireless CDMA networks
Author
Koskie, Sarah ; Gajic, Zoran
Author_Institution
Dept. of Electr. & Comput. Eng., Indiana Univ.-Purdue Univ. Indianapolis, IN, USA
Volume
13
Issue
5
fYear
2005
Firstpage
1017
Lastpage
1026
Abstract
We propose a new algorithm for distributed power control in cellular communication systems. We define a cost for each mobile that consists of a weighted sum of power and square of signal-to-interference ratio (SIR) error and obtain the static Nash equilibrium for the resulting costs. The algorithm requires only interference power measurements and/or SIR measurements from the base station and converges even in cases where limits on available power render the target SIRs unattainable. Examples generated using realistic data demonstrate that, in demanding environments, the Nash equilibrium power provides substantial power savings as compared to the power balancing algorithm while reducing the achieved SIR only slightly. Additional simulations show that the benefit of the Nash equilibrium power control over the power balancing solution increases as the receiver noise power or number of users in the cell increases. The algorithm has the advantage that it can be implemented distributively. An additional benefit of the algorithm is that, based on their chosen cost function, mobiles may choose to "opt out", i.e., stop transmitting, if they determine that the power required to achieve their SIR objectives is more expensive to them than not transmitting at all.
Keywords
3G mobile communication; cellular radio; code division multiple access; distributed control; game theory; interference (signal); power consumption; power control; power measurement; 3G wireless CDMA network; Nash equilibrium; SIR-based power control; base station; cellular communication system; cost function; distributed power control; game algorithm; interference power measurement; noncooperative game; power saving; signal-to-interference ratio; weighted power sum; Base stations; Cost function; Interference; Multiaccess communication; Nash equilibrium; Optimized production technology; Power control; Power generation; Power measurement; Working environment noise; Nash equilibrium; noncooperative games; power control; wireless communications;
fLanguage
English
Journal_Title
Networking, IEEE/ACM Transactions on
Publisher
ieee
ISSN
1063-6692
Type
jour
DOI
10.1109/TNET.2005.857068
Filename
1528491
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