This paper considers the minimization of transmit power in Gaussian parallel interference channels, subject to a rate constraint for each user. To derive decentralized solutions that do not require any cooperation among the users, we formulate this power control problem as a (generalized) Nash equilibrium (NE) game. We obtain sufficient conditions that guarantee the existence and nonemptiness of the solution set to our problem. Then, to compute the solutions of the game, we propose two distributed algorithms based on the single user water-filling solution: The sequential and the simultaneous iterative water-filling algorithms, wherein the users update their own strategies sequentially and simultaneously, respectively. We derive a unified set of sufficient conditions that guarantee the uniqueness of the solution and global convergence of both algorithms. Our results are applicable to all practical distributed multipoint-to-multipoint interference systems, either wired or wireless, where a quality of service in (QoS) terms of information rate must be guaranteed for each link.

Distributed power allocation with rate constraints in Gaussian parallel interference channels / Jong Shi, Pang; Scutari, Gesualdo; Facchinei, Francisco; Chaoxiong, Wang. - In: IEEE TRANSACTIONS ON INFORMATION THEORY. - ISSN 0018-9448. - 54:8(2008), pp. 3471-3489. [10.1109/tit.2008.926399]

Distributed power allocation with rate constraints in Gaussian parallel interference channels

SCUTARI, GESUALDO;FACCHINEI, Francisco;
2008

Abstract

This paper considers the minimization of transmit power in Gaussian parallel interference channels, subject to a rate constraint for each user. To derive decentralized solutions that do not require any cooperation among the users, we formulate this power control problem as a (generalized) Nash equilibrium (NE) game. We obtain sufficient conditions that guarantee the existence and nonemptiness of the solution set to our problem. Then, to compute the solutions of the game, we propose two distributed algorithms based on the single user water-filling solution: The sequential and the simultaneous iterative water-filling algorithms, wherein the users update their own strategies sequentially and simultaneously, respectively. We derive a unified set of sufficient conditions that guarantee the uniqueness of the solution and global convergence of both algorithms. Our results are applicable to all practical distributed multipoint-to-multipoint interference systems, either wired or wireless, where a quality of service in (QoS) terms of information rate must be guaranteed for each link.
2008
ad hoc networks; additive noise; additives; analytical models; centralized control; chaotic communication; color; colored noise; communication systems; complexity theory; computers; convergence; couplings; decoding; distributed algorithms; dsl; encoding; frequency division multiaccess; gain; game theory; games; gaussian parallel interference channel; generalized nash equilibrium (ne); helium; indexes; information rates; interference; iterative algorithm; iterative water-filling algorithm; jacobian matrices; mathematical model; measurement uncertainty; minimization; mutual information; noise; noise measurement; nonlinear equations; nonlinear systems; object recognition; optimization; power control; power distribution; power measurement; propagation losses; quality of service; receivers; resource management; sections; signal to noise ratio; spectrum sharing; sufficient conditions; time frequency analysis; transmitters; wireless communication
01 Pubblicazione su rivista::01a Articolo in rivista
Distributed power allocation with rate constraints in Gaussian parallel interference channels / Jong Shi, Pang; Scutari, Gesualdo; Facchinei, Francisco; Chaoxiong, Wang. - In: IEEE TRANSACTIONS ON INFORMATION THEORY. - ISSN 0018-9448. - 54:8(2008), pp. 3471-3489. [10.1109/tit.2008.926399]
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