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Power Control By Geometric Programming

IEEE Transactions on Wireless Communications · 2007 · Vol. 6(7) · pp. 2640–2651
Mung ChiangChee Wei TanDaniel P. PalomarDaniel O’NeillDavid Julián

Abstract

In wireless cellular or ad hoc networks where Quality of Service (QoS) is interference-limited, a variety of power control problems can be formulated as nonlinear optimization with a system-wide objective, e.g., maximizing the total system throughput or the worst user throughput, subject to QoS constraints from individual users, e.g., on data rate, delay, and outage probability. We show that in the high Signal-to- interference Ratios (SIR) regime, these nonlinear and apparently difficult, nonconvex optimization problems can be transformed into convex optimization problems in the form of geometric programming; hence they can be very efficiently solved for global optimality even with a large number of users. In the medium to low SIR regime, some of these constrained nonlinear optimization of power control cannot be turned into tractable convex formulations, but a heuristic can be used to compute in most cases the optimal solution by solving a series of geometric programs through the approach of successive convex approximation. While efficient and robust algorithms have been extensively studied for centralized solutions of geometric programs, distributed algorithms have not been explored before. We present a systematic method of distributed algorithms for power control that is geometric-programming-based. These techniques for power control, together with their implications to admission control and pricing in wireless networks, are illustrated through several numerical examples.

Wireless Communication Networks ResearchAdvanced Wireless Network OptimizationAdvanced MIMO Systems OptimizationGeometric programmingComputer scienceMathematical optimizationPower controlNonlinear programmingOptimization problemHeuristicConvex optimizationQuality of serviceThroughput

Funding

  • National Science Foundation
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904
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References
A simple distributed autonomous power control algorithm and its convergence
IEEE Transactions on Vehicular Technology · 1993 · 1,741 citations
A framework for uplink power control in cellular radio systems
IEEE Journal on Selected Areas in Communications · 1995 · 2,474 citations
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Choice Reviews Online · 2006 · 8,302 citations
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