Max-Min Fairness Optimization in Uplink Cell-Free Massive MIMO Using Meta-Heuristics

被引:25
|
作者
Conceicao, Filipe [1 ,2 ]
Antunes, Carlos Henggeler [1 ,3 ]
Gomes, Marco [1 ,2 ]
Silva, Vitor [1 ,2 ]
Dinis, Rui [2 ,4 ]
机构
[1] Univ Coimbra, Dept Elect & Comp Engn DEEC, P-3030290 Coimbra, Portugal
[2] Inst Telecomunicacoes IT, P-3030290 Coimbra, Portugal
[3] Inst Syst Engn & Comp Coimbra INESC, P-3030290 Coimbra, Portugal
[4] Univ Nova Lisboa UNL, Fac Ciencias & Tecnol FCT, P-2829516 Caparica, Portugal
关键词
Optimization; Resource management; Power control; Receivers; Computational complexity; Scalability; Programming; Massive MIMO (mMIMO); cell-free (CF); power optimization; max-min fairness; meta-heuristics (MHs); simulated annealing (SA); differential evolution (DE); particle swarm optimization (PSO); NETWORKS; ENERGY;
D O I
10.1109/TCOMM.2022.3144989
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
One of the most promising technologies to be employed in beyond 5G networks is based on the concept of cell-free (CF) massive MIMO, in which a predetermined set of access points (APs) jointly cooperate in the data transmission and reception to/from the user equipment (UE). In order to efficiently manage radio resources, the CF central processing unit implement uplink power control policies. These policies aim to optimize a given network utility function. In this paper, we investigate the max-min fairness optimization problem, in which the spectral efficiency performance of the UE with the worst channel conditions is prioritized, taking into account a per-UE power constraint and assuming linear maximum ratio combining at APs. Existing solutions have typically relied on second-order cone programming with convex approximations, which exhibit high computational complexity and scalability issues. Therefore, meta-heuristics (MHs) are explored as alternative optimization schemes, capable of providing (near)-optimal solutions with reasonable computational effort. Three MH approaches with different operation principles are compared. Numerical results show that the differential evolution algorithm exhibits the best trade-off between solution quality and run time, being able to reach (near)-optimal solutions faster than the bisection approach while coping with the scalability issues of the geometric programming-based algorithm.
引用
收藏
页码:1792 / 1807
页数:16
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