论文标题
用于多个RIS辅助通信系统的合作波束形成设计
Cooperative Beamforming Design for Multiple RIS-Assisted Communication Systems
论文作者
论文摘要
可重新配置的智能表面(RIS)提供了构建可编程无线传输环境的有前途的方法。由于表面上有大量可控反射元件的数量,RIS能够提供相当大的被动式波束形成增长。目前,大多数相关作品主要考虑单轮辅助系统的建模,设计,性能分析和优化。尽管有一些作品调查了多个RIS的单独为其相关用户提供服务,但尚未很好地考虑多个RIS之间的合作。为了填补空白,本文研究了用于多个辅助通信系统的合作波束形成设计,其中部署了多个RIS,以协助从基站到其用户的下行链路通信。为此,我们首先将一般渠道从基站到用户建模,以进行任意数量的反射链接。然后,我们制定一个优化问题,以最大化所有用户的总和。分析表明,由于其非凸度性以及决策变量之间的相互作用,该法式问题很难解决。为了有效地解决它,我们首先将问题分解为三个不相交的子问题。然后,通过引入适当的辅助变量,我们得出了决策变量的闭合形式表达式,并提出了低复杂性协作束构成算法。通过与各种基线方法进行比较,模拟结果验证了所提出的算法的有效性。此外,这些结果还公布了,对于总和最大化,在多个RIS中分配反射元件的分布优于将它们部署在一个单个RI中。
Reconfigurable intelligent surface (RIS) provides a promising way to build programmable wireless transmission environments. Owing to the massive number of controllable reflecting elements on the surface, RIS is capable of providing considerable passive beamforming gains. At present, most related works mainly consider the modeling, design, performance analysis and optimization of single-RIS-assisted systems. Although there are a few of works that investigate multiple RISs individually serving their associated users, the cooperation among multiple RISs is not well considered as yet. To fill the gap, this paper studies a cooperative beamforming design for multi-RIS-assisted communication systems, where multiple RISs are deployed to assist the downlink communications from a base station to its users. To do so, we first model the general channel from the base station to the users for arbitrary number of reflection links. Then, we formulate an optimization problem to maximize the sum rate of all users. Analysis shows that the formulated problem is difficult to solve due to its non-convexity and the interactions among the decision variables. To solve it effectively, we first decouple the problem into three disjoint subproblems. Then, by introducing appropriate auxiliary variables, we derive the closed-form expressions for the decision variables and propose a low-complexity cooperative beamforming algorithm. Simulation results have verified the effectiveness of the proposed algorithm through comparison with various baseline methods. Furthermore, these results also unveil that, for the sum rate maximization, distributing the reflecting elements among multiple RISs is superior to deploying them at one single RIS.