{"title":"RIS 辅助放大前向中继网络的波束成形设计","authors":"Xuehui Wang, Feng Shu, Riqing Chen, Peng Zhang, Qi Zhang, Guiyang Xia, Weiping Shi, Jiangzhou Wang","doi":"10.1631/fitee.2300118","DOIUrl":null,"url":null,"abstract":"<p>The use of a reconfigurable intelligent surface (RIS) in the enhancement of the rate performance is considered to involve the limitation of the RIS being a passive reflector. To address this issue, we propose a RIS-aided amplify-and-forward (AF) relay network in this paper. By jointly optimizing the beamforming matrix at AF relay and the phase-shift matrices at RIS, two schemes are put forward to address a maximizing signal-to-noise ratio (SNR) problem. First, aiming at achieving a high rate, a high-performance alternating optimization (AO) method based on Charnes–Cooper transformation and semidefinite programming (CCT-SDP) is proposed, where the optimization problem is decomposed into three subproblems solved using CCT-SDP, and rank-one solutions can be recovered using Gaussian randomization. However, the optimization variables in the CCT-SDP method are matrices, leading to extremely high complexity. To reduce the complexity, a low-complexity AO scheme based on Dinkelbachs transformation and successive convex approximation (DT-SCA) is proposed, where the variables are represented in vector form, and the three decoupling subproblems are solved using DT-SCA. Simulation results verify that compared to three benchmarks (i.e., a RIS-assisted AF relay network with random phase, an AF relay network without RIS, and a RIS-aided network without AF relay), the proposed CCT-SDP and DT-SCA schemes can harvest better rate performance. Furthermore, it is revealed that the rate of the low-complexity DT-SCA method is close to that of the CCT-SDP method.</p>","PeriodicalId":12608,"journal":{"name":"Frontiers of Information Technology & Electronic Engineering","volume":"63 1","pages":""},"PeriodicalIF":2.7000,"publicationDate":"2024-01-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Beamforming design for RIS-aided amplify-and-forward relay networks\",\"authors\":\"Xuehui Wang, Feng Shu, Riqing Chen, Peng Zhang, Qi Zhang, Guiyang Xia, Weiping Shi, Jiangzhou Wang\",\"doi\":\"10.1631/fitee.2300118\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>The use of a reconfigurable intelligent surface (RIS) in the enhancement of the rate performance is considered to involve the limitation of the RIS being a passive reflector. To address this issue, we propose a RIS-aided amplify-and-forward (AF) relay network in this paper. By jointly optimizing the beamforming matrix at AF relay and the phase-shift matrices at RIS, two schemes are put forward to address a maximizing signal-to-noise ratio (SNR) problem. First, aiming at achieving a high rate, a high-performance alternating optimization (AO) method based on Charnes–Cooper transformation and semidefinite programming (CCT-SDP) is proposed, where the optimization problem is decomposed into three subproblems solved using CCT-SDP, and rank-one solutions can be recovered using Gaussian randomization. However, the optimization variables in the CCT-SDP method are matrices, leading to extremely high complexity. To reduce the complexity, a low-complexity AO scheme based on Dinkelbachs transformation and successive convex approximation (DT-SCA) is proposed, where the variables are represented in vector form, and the three decoupling subproblems are solved using DT-SCA. Simulation results verify that compared to three benchmarks (i.e., a RIS-assisted AF relay network with random phase, an AF relay network without RIS, and a RIS-aided network without AF relay), the proposed CCT-SDP and DT-SCA schemes can harvest better rate performance. 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引用次数: 0
摘要
使用可重构智能表面(RIS)来提高速率性能被认为涉及到 RIS 作为无源反射器的局限性。为解决这一问题,我们在本文中提出了一种由 RIS 辅助的放大前向(AF)中继网络。通过联合优化 AF 中继的波束成形矩阵和 RIS 的移相矩阵,提出了两个方案来解决信噪比(SNR)最大化问题。首先,以实现高速率为目标,提出了一种基于 Charnes-Cooper 变换和半定式编程(CCT-SDP)的高性能交替优化(AO)方法,利用 CCT-SDP 将优化问题分解为三个子问题求解,并利用高斯随机化恢复秩一解。然而,CCT-SDP 方法中的优化变量都是矩阵,导致复杂度极高。为了降低复杂度,我们提出了一种基于丁克巴克斯变换和连续凸近似(DT-SCA)的低复杂度 AO 方案,其中变量以向量形式表示,三个解耦子问题使用 DT-SCA 求解。仿真结果证明,与三个基准(即随机相位的 RIS 辅助 AF 中继网络、无 RIS 的 AF 中继网络和无 AF 中继的 RIS 辅助网络)相比,所提出的 CCT-SDP 和 DT-SCA 方案能获得更好的速率性能。此外,低复杂度 DT-SCA 方法的速率接近 CCT-SDP 方法。
Beamforming design for RIS-aided amplify-and-forward relay networks
The use of a reconfigurable intelligent surface (RIS) in the enhancement of the rate performance is considered to involve the limitation of the RIS being a passive reflector. To address this issue, we propose a RIS-aided amplify-and-forward (AF) relay network in this paper. By jointly optimizing the beamforming matrix at AF relay and the phase-shift matrices at RIS, two schemes are put forward to address a maximizing signal-to-noise ratio (SNR) problem. First, aiming at achieving a high rate, a high-performance alternating optimization (AO) method based on Charnes–Cooper transformation and semidefinite programming (CCT-SDP) is proposed, where the optimization problem is decomposed into three subproblems solved using CCT-SDP, and rank-one solutions can be recovered using Gaussian randomization. However, the optimization variables in the CCT-SDP method are matrices, leading to extremely high complexity. To reduce the complexity, a low-complexity AO scheme based on Dinkelbachs transformation and successive convex approximation (DT-SCA) is proposed, where the variables are represented in vector form, and the three decoupling subproblems are solved using DT-SCA. Simulation results verify that compared to three benchmarks (i.e., a RIS-assisted AF relay network with random phase, an AF relay network without RIS, and a RIS-aided network without AF relay), the proposed CCT-SDP and DT-SCA schemes can harvest better rate performance. Furthermore, it is revealed that the rate of the low-complexity DT-SCA method is close to that of the CCT-SDP method.
期刊介绍:
Frontiers of Information Technology & Electronic Engineering (ISSN 2095-9184, monthly), formerly known as Journal of Zhejiang University SCIENCE C (Computers & Electronics) (2010-2014), is an international peer-reviewed journal launched by Chinese Academy of Engineering (CAE) and Zhejiang University, co-published by Springer & Zhejiang University Press. FITEE is aimed to publish the latest implementation of applications, principles, and algorithms in the broad area of Electrical and Electronic Engineering, including but not limited to Computer Science, Information Sciences, Control, Automation, Telecommunications. There are different types of articles for your choice, including research articles, review articles, science letters, perspective, new technical notes and methods, etc.