Maximizing the Geometric Mean of User-Rates to Improve Rate-Fairness in Double RIS-Assisted System

Yufeng Chen, Y. Fang, Wenbo Zhu, Guannan Tan, Hongwen Yu
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Abstract

This paper proposes a double reconfigurable intelligent surface (RIS)-assisted multi-user downlink communication network with two RISs deployed symmetrically about the base station (BS) for enhancing communication signals. We aim to jointly optimize the beamformers at the BS and the reflection coefficient matrices of the two RISs to maximize the geometric mean (GM) of the users’ rates. An efficient alternating descent iteration algorithm based on closed-forms is proposed to address this non-convex problem. Simulation results show that the advantages of the conceived double-RIS system and the viability of the proposed algorithm. Furthermore, our results unveil that the proposed algorithm can significantly improve rate fairness.
最大化用户速率几何均值以提高双ris辅助系统的速率公平性
本文提出了一种双可重构智能面(RIS)辅助的多用户下行通信网络,在基站(BS)周围对称部署两个RIS以增强通信信号。我们的目标是共同优化两个RISs的波束形成器和反射系数矩阵,以最大化用户速率的几何平均值(GM)。针对这一非凸问题,提出了一种基于闭形式的交替下降迭代算法。仿真结果表明了所构想的双ris系统的优点和所提算法的可行性。此外,我们的研究结果表明,该算法可以显著提高速率公平性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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