Joint Discrete Precoding and RIS Optimization for RIS-Assisted MU-MIMO Communication Systems

IF 8.3 2区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Communications Pub Date : 2024-09-03 DOI:10.1109/TCOMM.2024.3454013
Parisa Ramezani;Yasaman Khorsandmanesh;Emil Björnson
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Abstract

This paper considers a multi-user multiple-input multiple-output (MU-MIMO) system where the downlink communication between a base station (BS) and multiple user equipments (UEs) is aided by a reconfigurable intelligent surface (RIS). We study the sum rate maximization problem with the objective of finding the optimal precoding vectors and RIS configuration. Due to fronthaul limitation, each entry of the precoding vectors must be picked from a finite set of quantization labels. Furthermore, two scenarios for the RIS are investigated, one with continuous infinite-resolution reflection coefficients and another with discrete finite-resolution reflection coefficients. A novel framework is developed which, in contrast to the common literature that only offers sub-optimal solutions for optimization of discrete variables, is able to find the optimal solution to problems involving discrete constraints. Based on the classical weighted minimum mean square error (WMMSE), we transform the original problem into an equivalent weighted sum mean square error (MSE) minimization problem and solve it iteratively. We compute the optimal precoding vectors via an efficient algorithm inspired by sphere decoding (SD). For optimizing the discrete RIS configuration, two solutions based on the SD algorithm are developed: An optimal SD-based algorithm and a low-complexity heuristic method that can efficiently obtain RIS configuration without much loss in optimality. The effectiveness of the presented algorithms is corroborated via numerical simulations where it is shown that the proposed designs are remarkably superior to the commonly used benchmarks.
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针对 RIS 辅助 MU-MIMO 通信系统的联合离散预编码和 RIS 优化
本文研究了一种多用户多输入多输出(MU-MIMO)系统,其中基站(BS)和多用户设备(ue)之间的下行通信由可重构智能曲面(RIS)辅助。我们研究了求和速率最大化问题,目标是找到最优的预编码向量和RIS配置。由于前传的限制,每个预编码向量的条目必须从有限的量化标签集合中挑选出来。在此基础上,研究了具有连续无限分辨率反射系数和具有离散有限分辨率反射系数的两种情况。开发了一个新的框架,与仅提供离散变量优化的次优解的常见文献相反,它能够找到涉及离散约束的问题的最优解。在经典加权最小均方误差(WMMSE)的基础上,将原问题转化为等效加权和均方误差(MSE)最小化问题,并进行迭代求解。我们利用球面解码(SD)的有效算法来计算最优预编码向量。针对离散RIS配置优化问题,提出了基于SD算法的两种优化方案:一种是基于SD的最优算法,另一种是低复杂度的启发式方法,可以在不损失太大最优性的情况下有效地获得RIS配置。通过数值模拟证实了所提出算法的有效性,其中表明所提出的设计明显优于常用的基准。
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来源期刊
IEEE Transactions on Communications
IEEE Transactions on Communications 工程技术-电信学
CiteScore
16.10
自引率
8.40%
发文量
528
审稿时长
4.1 months
期刊介绍: The IEEE Transactions on Communications is dedicated to publishing high-quality manuscripts that showcase advancements in the state-of-the-art of telecommunications. Our scope encompasses all aspects of telecommunications, including telephone, telegraphy, facsimile, and television, facilitated by electromagnetic propagation methods such as radio, wire, aerial, underground, coaxial, and submarine cables, as well as waveguides, communication satellites, and lasers. We cover telecommunications in various settings, including marine, aeronautical, space, and fixed station services, addressing topics such as repeaters, radio relaying, signal storage, regeneration, error detection and correction, multiplexing, carrier techniques, communication switching systems, data communications, and communication theory. Join us in advancing the field of telecommunications through groundbreaking research and innovation.
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