论文标题

封闭形式的全球优化对角线可重新配置的智能表面

Closed-Form Global Optimization of Beyond Diagonal Reconfigurable Intelligent Surfaces

论文作者

Nerini, Matteo, Shen, Shanpu, Clerckx, Bruno

论文摘要

可重新配置的智能表面(RISS)允许通过调整多个反射元素来控制无线网络中的传播环境。传统上,RIS是通过单个连接的架构来实现的,在数学上以对角线散射矩阵为特征。最近,除了对角线Riss(BD-Riss)外,已经提出是Riss的一个新颖的分支,其散射矩阵不限于对角线,这为Riss创造了新的好处和机会。有效的BD-RIS架构已基于组和完全连接的可重构阻抗网络实现。但是,尚无针对这些体系结构的全局最佳散射矩阵的封闭式解决方案。在本文中,我们提供了这样的封闭形式解决方案,证明了理论性能上限可以完全实现。我们首先考虑在单用户单输入单输出(SISO)系统中获得的接收信号功率最大化,该系统在反射性或传播模式下的BD-ris提供了帮助。然后,我们将解决方案扩展到单用户多输入多输出(MIMO)和多用户多输入单输出(MISO)系统。我们表明,我们的算法不如先前文献中使用的迭代优化算法复杂。在组(完全)连接的架构的情况下,我们算法的复杂性随RIS元素的数量线性增长(立方体)。

Reconfigurable intelligent surfaces (RISs) allow controlling the propagation environment in wireless networks by tuning multiple reflecting elements. RISs have been traditionally realized through single connected architectures, mathematically characterized by a diagonal scattering matrix. Recently, beyond diagonal RISs (BD-RISs) have been proposed as a novel branch of RISs whose scattering matrix is not limited to be diagonal, which creates new benefits and opportunities for RISs. Efficient BD-RIS architectures have been realized based on group and fully connected reconfigurable impedance networks. However, a closed-form solution for the global optimal scattering matrix of these architectures is not yet available. In this paper, we provide such a closed-form solution proving that the theoretical performance upper bounds can be exactly achieved for any channel realization. We first consider the received signal power maximization in single-user single-input single-output (SISO) systems aided by a BD-RIS working in reflective or transmissive mode. Then, we extend our solution to single-user multiple-input multiple-output (MIMO) and multi-user multiple-input single-output (MISO) systems. We show that our algorithm is less complex than the iterative optimization algorithms employed in the previous literature. The complexity of our algorithm grows linearly (resp. cubically) with the number of RIS elements in the case of group (resp. fully) connected architectures.

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