Stochastic and semidefinite optimization for scheduling in orthogonal frequency division multiple access networks

Adasme, P; Lisser, A

Abstract

In this paper, we propose stochastic binary quadratic programs for the scheduling resource allocation process of a wireless orthogonal frequency division multiple access network. More precisely, we formulate a two-stage stochastic model, then we further extend the two-stage model by introducing a knapsack probabilistic constrained approach, and finally we propose a multi-stage stochastic program for this problem. The models are aimed at minimizing the total power consumption of the network at each time slot of the scheduling process subject to user bit rates, sub-carrier and modulation linear constraints. In order to compute lower bounds, we derive linear and semidefinite programming relaxations for each of the proposed models. The bounds are also compared with a basic variable neighborhood search metaheuristic approach. Numerical results show tight lower bounds for the semidefinite relaxations when compared to the linear ones and with the metaheuristic. Moreover, near optimal solutions are found with the semidefinite relaxations for the two-stage model without using probabilistic constraints and for the multi-stage program as well.

Más información

Título según WOS: Stochastic and semidefinite optimization for scheduling in orthogonal frequency division multiple access networks
Título según SCOPUS: Stochastic and semidefinite optimization for scheduling in orthogonal frequency division multiple access networks
Título de la Revista: JOURNAL OF SCHEDULING
Volumen: 17
Número: 5
Editorial: Springer
Fecha de publicación: 2014
Página de inicio: 445
Página final: 469
Idioma: English
DOI:

10.1007/s10951-013-0333-1

Notas: ISI, SCOPUS