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Resource Allocation for Intelligent Reflecting Surface-Assisted Cognitive Radio Networks

机译:智能反射表面辅助认知无线电网络的资源分配

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In this paper, we investigate resource allocation algorithm design for intelligent reflecting surface (IRS)-assisted multiuser cognitive radio (CR) systems. In particular, an IRS is deployed to mitigate the interference caused by the secondary network to the primary users. The beamforming vectors at the base station (BS) and the phase shift matrix at the IRS are jointly optimized for maximization of the sum rate of the secondary system. The algorithm design is formulated as a non-convex optimization problem taking into account the maximum interference tolerance of the primary users. To tackle the resulting non-convex optimization problem, we propose an alternating optimization-based suboptimal algorithm exploiting semidefinite relaxation, the penalty method, and successive convex approximation. Our simulation results show that the system sum rate is dramatically improved by our proposed scheme compared to two baseline schemes. Moreover, our results also illustrate the benefits of deploying IRSs in CR networks.
机译:在本文中,我们研究了智能反射面(IRS)辅助的多用户认知无线电(CR)系统的资源分配算法设计。特别是,部署了IRS来减轻由辅助网络引起的对主要用户的干扰。联合优化基站(BS)上的波束成形矢量和IRS上的相移矩阵,以使二次系统的总速率最大化。考虑到主要用户的最大干扰容忍度,将算法设计公式化为非凸优化问题。为了解决由此产生的非凸优化问题,我们提出了一种基于交替优化的次优算法,该算法利用半定松弛,惩罚方法和连续凸逼近。我们的仿真结果表明,与两个基线方案相比,我们提出的方案显着提高了系统求和率。此外,我们的结果还说明了在CR网络中部署IRS的好处。

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