Title :
Optimal fixed-point algorithms for service differentiation in wireless networks
Author :
Liang Zheng ; Chee Wei Tan
Author_Institution :
City Univ. of Hong Kong, Hong Kong, China
Abstract :
We study network utility maximization problems in wireless networks for service differentiation that optimize the Signal-to-Interference-plus-Noise Radio (SINR) and reliability under Rayleigh fading. Though seemingly nonconvex, we show that these problems can be solved using an optimization decomposition where each user calculates a payment for a given resource allocation, and the network uses the payment to optimize the performance of the user. We study three important examples of this utility maximization, namely the weighted sum logarithmic SINR maximization, the weighted sum inverse SINR minimization and the weighted sum logarithmic reliability maximization. These problems have hitherto been solved suboptimally in the literature. By exploiting the positivity, quasi-concavity and homogeneity properties in these problems using the nonlinear Perron-Frobenius theory, we propose fixed-point algorithms that converge geometrically fast to the globally optimal solution. Numerical evaluations show that our algorithms are stable (free of parameter configuration) and computationally fast.
Keywords :
Rayleigh channels; concave programming; interference (signal); radio networks; resource allocation; telecommunication network reliability; Perron-Frobenius theory; Rayleigh fading; fixed-point algorithms; homogeneity properties; network utility maximization problems; nonconvex; optimal fixed-point algorithms; optimization decomposition; parameter configuration; quasi-concavity properties; reliability; resource allocation; service differentiation; signal-to-interference-plus-noise radio; weighted sum inverse SINR minimization; weighted sum logarithmic SINR maximization; wireless networks; Interference; Optimization; Rayleigh channels; Signal to noise ratio; Vectors; Wireless networks; Optimization; network utility maximization; nonlinear Perron-Frobenius theory; resource allocation;
Conference_Titel :
Modeling & Optimization in Mobile, Ad Hoc & Wireless Networks (WiOpt), 2013 11th International Symposium on
Conference_Location :
Tsukuba Science City
Print_ISBN :
978-1-61284-824-2