4.7 Article

Intelligent Reflecting Surface Aided MIMO Cognitive Radio Systems

期刊

IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY
卷 69, 期 10, 页码 11445-11457

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TVT.2020.3011308

关键词

Intelligent reflecting surface (IRS); cognitive radio; MIMO systems; reconfigurable intelligent surfaces (RIS)

资金

  1. National Natural Science Foundation of China [61701202, 61901196]
  2. Open Research Fund of National Mobile Communications Research Laboratory, Southeast University [2019D17]
  3. Natural Science Foundation of the Higher Education Institutions of Jiangsu Province [19KJB510026]
  4. Jiangsu Overseas Visiting Scholar Program for University Prominent Young and Middle-aged Teachers and Presidents
  5. Key Researched Development Program of Jiangsu Province of China [BE2019317]

向作者/读者索取更多资源

In cognitive radio (CR) systems, the spectrum efficiency (SE) of the secondary users (SUs) is always limited by the interference temperature constraint imposed on the primary users (PUs). Intelligent reflecting surface (IRS) has been recently proposed as a revolutionary technique which can help to enhance the SE of wireless communications. In this paper, we propose to employ an IRS to assist the SUs' data transmission in the multiple-input multiple-output (MIMO) CR system. By jointly optimizing the transmit precoding (TPC) of the SU transmitter (ST) and the phase shifts of the IRS, we aim to maximize the achievable weighted sum rate (WSR) of SUs subject to the ST's total power, the PU's interference temperature and unit modulus constraints. To solve this complicated optimization problem in which the variables are coupled, the block coordinate descent (BCD) algorithm is introduced to alternately solve the subproblems. For each subproblem, the Lagrange dual or inner approximation method is adopted with a lowcomplexity. Simulation results confirm the benefits of employing IRS in a MIMO CR system. The performance comparisons of the proposed algorithm with several other benchmarks are carried out by evaluating the impacts of various parameters on theWSR.

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