Title :
Competitive design of multiuser MIMO interference systems based on game theory: A unified framework
Author :
Scutari, Gesualdo ; Palomar, Daniel P. ; Barbarossa, Sergio
Author_Institution :
Dept. INFOCOM, Univ. of Rome "La Sapienza", Rome
fDate :
March 31 2008-April 4 2008
Abstract :
In this paper we focus on the maximization of the information rates subject to transmit power constraints for noncooperative multiple-input multiple-output (MIMO) systems, using the same physical resources, i.e., time, bandwidth and space. To derive decentralized solutions that do not require any cooperation among the systems, the optimization problem is formulated as a static noncooperative game. The analysis of the game for arbitrary MIMO interference channels is quite involved, since it requires the study of a set of nonlinear nondifferentiable matrix-valued equations, based on the MIMO waterfilling solution. To overcome this difficulty, we provide a new interpretation of the waterfilling operator, for the general MIMO multiuser case, as a matrix projection. This key result allows us to simplify the study of the game and to obtain sufficient conditions for both uniqueness of the Nash equilibrium (NE) and convergence of the proposed totally asynchronous distributed algorithms. The proposed approach provides a general framework that encompasses all previous works, mostly concerned with the particular case of SISO Gaussian frequency-selective interference channel.
Keywords :
MIMO communication; game theory; interference (signal); telecommunication channels; MIMO waterfilling solution; Nash equilibrium; convergence; game theory; information rate maximization; interference channels; matrix projection; multiple-input multiple-output systems; multiuser MIMO interference systems; nondifferentiable matrix-valued equations; nonlinear matrix-valued equations; optimization problem; static noncooperative game; totally asynchronous distributed algorithms; Bandwidth; Distributed algorithms; Game theory; Information rates; Interference channels; Interference constraints; MIMO; Nash equilibrium; Nonlinear equations; Sufficient conditions; Asynchronous iterative waterfilling; Interference Channel; MIMO; Nash equilibria;
Conference_Titel :
Acoustics, Speech and Signal Processing, 2008. ICASSP 2008. IEEE International Conference on
Conference_Location :
Las Vegas, NV
Print_ISBN :
978-1-4244-1483-3
Electronic_ISBN :
1520-6149
DOI :
10.1109/ICASSP.2008.4518875