论文标题

具有可重构智能表面的近场中的空间多路复用

Spatial Multiplexing in Near Field MIMO Channels with Reconfigurable Intelligent Surfaces

论文作者

Bartoli, Giulio, Abrardo, Andrea, Decarli, Nicolo, Dardari, Davide, Di Renzo, Marco

论文摘要

在存在可重构智能表面(RIS)的情况下,我们考虑多输入多输出(MIMO)通道。具体而言,我们的重点是分析近场的视线和低散射的MIMO通道中的空间多路复用增长。我们证明,通道容量是通过对角到端发射器-RIS接收器通道进行对角线来实现的,并将水功率分配应用于发射机 - RIS和RIS-RIS接收器通道的单数值的有序产物。获得的能力方面的解决方案需要具有反射系数的非对抗基质的RI。在近乎通用的RI的假设下,即在RIS时不需要功率放大,只有在发射器处需要进行水功率分配。我们将RIS的设计称为线性,几乎可以进行的,可重新配置的电磁物体(EMO)。此外,我们为RIS引入了封闭形式和低复杂的设计,其反射系数矩阵具有对角线,具有单位模子条目。反射系数由两个焦点函数的乘积给出:一个将RIS辅助信号转向MIMO发射器的中点,一个将RIS ADAID信号转向MIMO接收器的中点。我们证明,此解决方案在近距离设置下的视线通道中精确。借助在视线(自由空间)通道中的广泛数值模拟,我们表明,所提出的方法提供了通过数值求解高计算复杂性的非convex优化问题而获得的性能(速率和自由度)。另外,我们表明,在大多数考虑的案例研究中,它提供了emo(非对角线RIS)接近的性能。

We consider a multiple-input multiple-output (MIMO) channel in the presence of a reconfigurable intelligent surface (RIS). Specifically, our focus is on analyzing the spatial multiplexing gains in line-of-sight and low-scattering MIMO channels in the near field. We prove that the channel capacity is achieved by diagonalizing the end-to-end transmitter-RIS-receiver channel, and applying the water-filling power allocation to the ordered product of the singular values of the transmitter-RIS and RIS-receiver channels. The obtained capacity-achieving solution requires an RIS with a non-diagonal matrix of reflection coefficients. Under the assumption of nearly-passive RIS, i.e., no power amplification is needed at the RIS, the water-filling power allocation is necessary only at the transmitter. We refer to this design of RIS as a linear, nearly-passive, reconfigurable electromagnetic object (EMO). In addition, we introduce a closed-form and low-complexity design for RIS, whose matrix of reflection coefficients is diagonal with unit-modulus entries. The reflection coefficients are given by the product of two focusing functions: one steering the RIS-aided signal towards the mid-point of the MIMO transmitter and one steering the RIS-aided signal towards the mid-point of the MIMO receiver. We prove that this solution is exact in line-of-sight channels under the paraxial setup. With the aid of extensive numerical simulations in line-of-sight (free-space) channels, we show that the proposed approach offers performance (rate and degrees of freedom) close to that obtained by numerically solving non-convex optimization problems at a high computational complexity. Also, we show that it provides performance close to that achieved by the EMO (non-diagonal RIS) in most of the considered case studies.

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