Distributed Sum-Rate Maximization of Cellular Communications with Multiple Reconfigurable Intelligent Surfaces

Konstantinos D. Katsanos, P. Lorenzo, G. Alexandropoulos
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引用次数: 2

Abstract

The technology of Reconfigurable Intelligent Surfaces (RISs) has lately attracted considerable interest from both academia and industry as a low-cost solution for coverage extension and signal propagation control. In this paper, we study the downlink of a multi-cell wideband communication system comprising single-antenna Base Stations (BSs) and their associated single-antenna users, as well as multiple passive RISs. We assume that each BS controls a separate RIS and performs Orthogonal Frequency Division Multiplexing (OFDM) transmissions. Differently from various previous works where the RIS unit elements are considered as frequency-flat phase shifters, we model them as Lorentzian resonators and present a joint design of the BSs’ power allocation, as well as the phase profiles of the multiple RISs, targeting the sum-rate maximization of the multi-cell system. We formulate a challenging distributed nonconvex optimization problem, which is solved via successive concave approximation. The distributed implementation of the proposed design is discussed, and the presented simulation results showcase the interplay of the various system parameters on the sum rate, verifying the performance boosting role of RISs.
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具有多个可重构智能表面的蜂窝通信的分布式和速率最大化
可重构智能表面(RISs)技术作为一种低成本的覆盖扩展和信号传播控制解决方案,最近引起了学术界和工业界的极大兴趣。在本文中,我们研究了由单天线基站(BSs)及其相关的单天线用户以及多个无源RISs组成的多小区宽带通信系统的下行链路。我们假设每个BS控制一个单独的RIS并执行正交频分复用(OFDM)传输。与以往将RIS单元元件视为频率平坦移相器的各种工作不同,我们将其建模为洛伦兹谐振器,并提出了BSs功率分配的联合设计,以及多个RISs的相位曲线,目标是多单元系统的和速率最大化。提出了一个具有挑战性的分布非凸优化问题,该问题通过逐次凹逼近求解。讨论了所提出的设计的分布式实现,并给出了仿真结果,展示了各种系统参数对求和速率的相互作用,验证了RISs的性能提升作用。
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