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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Beamforming Optimization for Intelligent Reflecting Surface-Aided MISO Communication Systems
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Beamforming Optimization for Intelligent Reflecting Surface-Aided MISO Communication Systems

机译:智能反射表面辅助MISO通信系统的波束成形优化

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This article considers an intelligent reflecting surface (IRS)-assisted point-to-point multiple-input single-output communication system. An IRS implemented by configurable phase shifters is used to assist the transmission from an access point (AP) equipped with multiple antennas to a user having a single antenna. We aim to jointly optimize the transmit beamforming at the AP and the reflect beamforming at the IRS to maximize the spectral efficiency of the system. The considered joint optimization problem can be decoupled into the transmit and reflect beamforming design problems by applying the maximum-ratio transmission strategy. The former has a closed-form expression, whereas the latter requires solving a nonconvex optimization problem. A known solution based on manifold optimization (MO) is proposed to solve the reflect beamforming design problem. Although the MO-based algorithm achieves higher spectral efficiency than the conventional semidefinite relaxation approach, it incurs high time complexity. On this basis, we address this issue by proposing a computationally efficient gradient projection (GP)-based algorithm for the reflect beamforming design problem. When low-resolution (e.g., 1-2 bits) phase shifters are adopted, we leverage an innovative probability learning technique on the basis of the cross-entropy (CE) framework to alleviate the performance loss caused by the use of low-resolution phase shifters. Simulation results demonstrate that the proposed GP-based algorithm nearly obtains the same spectral efficiency as the state-of-the-art MO-based algorithm at a low complexity. However, the running time is significantly reduced. When low-resolution phase shifters are employed, the proposed CE-based algorithm outperforms the test algorithms in terms of spectral and energy efficiency in various system configurations.
机译:本文考虑了智能反射表面(IRS) - 分配点对点多输入单输出通信系统。由可配置相移器实现的IRS用于协助从配备有多个天线的接入点(AP)的传输到具有单个天线的用户。我们的目标是共同优化AP的发射波束成形,并在IRS处的反射波束形成以最大化系统的光谱效率。考虑的联合优化问题可以通过应用最大比率传输策略来分离到发射并反映波束形成设计问题。前者具有封闭形式的表达式,而后者需要解决非渗透优化问题。提出了一种基于歧管优化(Mo)的已知解决方案来解决反射波束形成设计问题。尽管基于MO的算法比传统的半纤维弛豫方法更高,但它会引起高时间复杂性。在此基础上,我们通过提出用于反映波束形成设计问题的计算有效的梯度投影(GP)算法来解决这个问题。当采用低分辨率(例如,1-2位)相移器时,我们基于跨熵(CE)框架来利用创新的概率学习技术,以减轻使用低分辨率阶段引起的性能损失转换器。仿真结果表明,所提出的基于GP的算法几乎获得了在低复杂度的基于最先进的MO的算法相同的光谱效率。但是,运行时间明显减少。当采用低分辨率相移器时,所提出的基于CE的算法在各种系统配置中的光谱和能量效率方面优于测试算法。

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