RDARS Empowered Massive MIMO System: Two-Timescale Transceiver Design With Imperfect CSI

IF 10.7 1区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Wireless Communications Pub Date : 2024-10-22 DOI:10.1109/TWC.2024.3476676
Chengzhi Ma;Jintao Wang;Xi Yang;Guanghua Yang;Wei Zhang;Shaodan Ma
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Abstract

In this paper, we investigate a novel reconfigurable distributed antennas and reflecting surface (RDARS) aided multi-user massive multiple-input multiple-output (MIMO) system with imperfect channel state information (CSI) and propose a practical two-timescale (TTS) transceiver design to reduce the communication overhead and computational complexity of the system. In the RDARS-aided system, not only distribution gain but also reflection gain can be obtained by a flexible combination of the distributed antennas and reflecting surface, which differentiates the system from the others and also makes the TTS design challenging. To enable the optimal TTS transceiver design, the achievable rate of the system is first derived in closed-form. The rate expression is general and covers that of the distributed antenna systems (DAS) and reconfigurable intelligent surface (RIS) aided systems as special cases. Then the TTS design aiming at the weighted sum rate maximization is considered. To solve the challenging non-convex optimization problem with high order design variables, i.e., the transmit powers and the phase shifts at the RDARS, a block coordinate descent based method is proposed to find the optimal solutions in semi-closed forms iteratively. Specifically, two efficient algorithms are proposed with provable convergence for the optimal phase shift design, i.e., Riemannian Gradient Ascent based algorithm by exploiting the unit-modulus constraints, and Two-Tier Majorization-Minimization based algorithm with closed-form optimal solutions in each iteration. Simulation results validate the effectiveness of the proposed algorithm and demonstrate the superiority of deploying RDARS in massive MIMO systems to provide substantial rate improvement with a significantly reduced total number of active antennas/RF chains and lower transmit power when compared to the DAS and RIS-aided systems.
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RDARS 增强型大规模多输入多输出系统:具有不完美 CSI 的两倍级收发器设计
本文研究了一种具有不完全信道状态信息(CSI)的新型可重构分布式天线和反射面(RDARS)辅助多用户大规模多输入多输出(MIMO)系统,并提出了一种实用的双时间标度(TTS)收发器设计,以降低系统的通信开销和计算复杂度。在rdars辅助系统中,通过对分布式天线和反射面的灵活组合,不仅可以获得分布增益,还可以获得反射增益,这使得该系统与其他系统区别开来,也给TTS的设计带来了挑战。为了实现最佳的TTS收发器设计,首先以封闭形式推导了系统的可实现速率。该速率表达式具有通用性,并将分布式天线系统(DAS)和可重构智能表面辅助系统(RIS)的速率表达式作为特例加以考虑。然后考虑了以加权和速率最大化为目标的TTS设计。为了解决具有高阶设计变量(发射功率和相移)的非凸优化问题,提出了一种基于分块坐标下降的方法,迭代求解半封闭形式的最优解。具体而言,提出了两种收敛性可证明的最优相移设计算法,即利用单位模约束的riemanian Gradient Ascent算法和每次迭代都具有闭型最优解的两层优化最小化算法。仿真结果验证了所提出算法的有效性,并证明了与DAS和ris辅助系统相比,在大规模MIMO系统中部署RDARS的优势,可以在显著减少有源天线/RF链总数和更低发射功率的情况下提供实质性的速率提高。
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来源期刊
CiteScore
18.60
自引率
10.60%
发文量
708
审稿时长
5.6 months
期刊介绍: The IEEE Transactions on Wireless Communications is a prestigious publication that showcases cutting-edge advancements in wireless communications. It welcomes both theoretical and practical contributions in various areas. The scope of the Transactions encompasses a wide range of topics, including modulation and coding, detection and estimation, propagation and channel characterization, and diversity techniques. The journal also emphasizes the physical and link layer communication aspects of network architectures and protocols. The journal is open to papers on specific topics or non-traditional topics related to specific application areas. This includes simulation tools and methodologies, orthogonal frequency division multiplexing, MIMO systems, and wireless over optical technologies. Overall, the IEEE Transactions on Wireless Communications serves as a platform for high-quality manuscripts that push the boundaries of wireless communications and contribute to advancements in the field.
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