论文标题
超越对角线可重构智能表面:多部门模式可实现高度方向的全空间覆盖范围
Beyond Diagonal Reconfigurable Intelligent Surfaces: A Multi-Sector Mode Enabling Highly Directional Full-Space Wireless Coverage
论文作者
论文摘要
可重新配置的智能表面(RIS)由于其通过几乎可弥补的可重新配置元素来操纵繁殖环境的潜力而获得了很多吸引力。在我们以前的工作中,我们分析并提出了超越对角线(BD-RIS)模型,该模型不限于传统的对角线相移矩阵,以统一不同的RIS模式/体系结构。在本文中,我们创建了支持多部门模式的BD-RIS的新分支。多部门BD-RIS被建模为连接到多端口组连接的可重新配置阻抗网络的多个天线。更具体地说,天线分为$ L $($ L \ ge 2 $)部门,并作为多边形棱镜安排,每个部门覆盖$ 1/L $空间。不同于最近引入的智能全面表面概念(或同时传输和反映RIS),多部门BD-RIS不仅可以实现全空间的覆盖范围,而且由于每个扇区的高度方向光束都具有显着的性能,因此我们得出了每个部门BD-RIS的约束,并与相关的频道模型之间的相关性和相关型号的关系。通过提出的模型,我们首先得出了由多扇区BD-RIS辅助单用户系统的接收信号功率的缩放定律。然后,我们提出有效的波束形成设计算法,以最大化多扇区BD-RIS辅助多源系统的总和率。仿真结果验证了提出的设计的有效性,并证明了提出的多扇区BD-RIS的性能增强。
Reconfigurable intelligent surface (RIS) has gained much traction due to its potential to manipulate the propagation environment via nearly-passive reconfigurable elements. In our previous work, we have analyzed and proposed a beyond diagonal RIS (BD-RIS) model, which is not limited to traditional diagonal phase shift matrices, to unify different RIS modes/architectures. In this paper, we create a new branch of BD-RIS supporting a multi-sector mode. A multi-sector BD-RIS is modeled as multiple antennas connected to a multi-port group-connected reconfigurable impedance network. More specifically, antennas are divided into $L$ ($L \ge 2$) sectors and arranged as a polygon prism with each sector covering $1/L$ space. Different from the recently introduced concept of intelligent omni-surface (or simultaneously transmitting and reflecting RIS), the multi-sector BD-RIS not only achieves a full-space coverage, but also has significant performance gains thanks to the highly directional beam of each sector.We derive the constraint of the multi-sector BD-RIS and the corresponding channel model taking into account the relationship between antenna beamwidth and gain. With the proposed model, we first derive the scaling law of the received signal power for a multi-sector BD-RIS-assisted single-user system. We then propose efficient beamforming design algorithms to maximize the sum-rate of the multi-sector BD-RIS-assisted multiuser system. Simulation results verify the effectiveness of the proposed design and demonstrate the performance enhancement of the proposed multi-sector BD-RIS.