Reconfigurable intelligent surfaces (RISs) allow controlling the propagation environment in wireless networks through reconfigurable elements. Recently, beyond diagonal RISs (BD-RISs) have been proposed as novel RIS architectures whose scattering matrix is not limited to being diagonal. However, BDRISs have been studied assuming continuous-value scattering matrices, which are hard to implement in practice. In this paper, we address this problem by proposing two solutions to realize discrete-value group and fully connected RISs. First, we propose scalar-discrete RISs, in which each entry of the RIS impedance matrix is independently discretized. Second, we propose vector-discrete RISs, where the entries in each group of the RIS impedance matrix are jointly discretized. In both solutions, the codebook is designed offline such as to minimize the distortion caused in the RIS impedance matrix by the discretization operation. Numerical results show that vector-discrete RISs achieve higher performance than scalar discrete RISs at the cost of increased optimization complexity. Furthermore, fewer resolution bits per impedance are necessary to achieve the performance upper bound as the group size of the group connected architecture increases. In particular, only a single resolution bit is sufficient in fully connected RISs to approximately achieve the performance upper bound.
翻译:重新配置的智能表面(RIS)能够通过可重新配置的元素控制无线网络的传播环境。 最近,除了对角的RIS(BD-RIS)之外,还提出了新的RIS结构,其分布矩阵不限于对角。然而,对BDRIS进行了研究,假设连续值的分布矩阵,这些矩阵在实践中难以执行。在本文件中,我们通过提出实现离散值组和完全连接的RIS的两种解决方案来解决这个问题。首先,我们提出了卡路里分解的RIS(Calarar-dicrete RIS),其中的每个条目都是独立分离的。第二,我们提出了新的RIS结构结构,其中的矢量分解矩阵的条目不仅限于对角的分布。在这两个解决方案中,编码设计离线,以尽可能减少离散操作导致的干扰矩阵中的扭曲。 量化结果显示,矢量分解-分解的RIS的性能比质量分立度矩阵的每个条目都独立分立。 其次,我们提出的矢量分解分解的分立性矩阵的分解度分解度的分解度的分解度的分解度,在最小的组合中,在最大分解的大小的大小中,只有一定的分解的分解的大小的分解性能的大小的分解的分解的分解的分解性能,只有比分解的分解的分解的分解的分解的分解的分解的分解的分解性能的分解的分解的分解的分解的分解性体的分解的分解的分解性体的分解性能的分解的分解的分解的分解性体的分解的分解的分解的分解性的分解的分解的分解的分解的分解的分解的分解的分解的组的分解性, 的组的分解的分解的分解性体体体体体体的分解体体体体体体体体体的分形体的分形体的分形体的分形体的分形体的分形体的分形体体体体的分形体体的分形体体体体体体体体体体体体体体体体