The simultaneously transmitting and reflecting reconfigurable intelligent surface (STAR-RIS) is capable of providing full-space coverage of smart radio environments. This work investigates STAR-RIS aided downlink non-orthogonal multiple access (NOMA) multi-cell networks, where the energy of incident signals at STAR-RISs is split into two portions for transmitting and reflecting. We first propose a fitting method to model the distribution of composite small-scale fading power as the tractable Gamma distribution. Then, a unified analytical framework based on stochastic geometry is provided to capture the random locations of RIS-RISs, base stations (BSs), and user equipments (UEs). Based on this framework, we derive the coverage probability and ergodic rate of both the typical UE and the connected UE. In particular, we obtain closed-form expressions of the coverage probability in interference-limited scenarios. We also deduce theoretical expressions in conventional RIS aided networks for comparison. The analytical results show that optimal energy splitting coefficients of STAR-RISs exist to simultaneously maximize the system coverage and ergodic rate. The numerical results demonstrate that: 1) STAR-RISs are able to meet different demands of UEs located on different sides; 2) STAR-RISs with appropriate energy splitting coefficients outperform conventional RISs in the coverage and the rate performance.
翻译:同时传送和反映可重新配置的智能表面(STAR-RIS)能够提供智能无线电环境的完整空间覆盖。这项工作调查了STAR-RIS辅助的低端连接非横向多重访问(NOMA)多细胞网络,将STAR-RIS事件信号的能量分成两个部分进行传输和反映。我们首先提出一个适当的方法,以模拟以可移动的伽玛分布为模式的复合小型淡化功率的分布。然后,提供了基于随机几何测量的统一分析框架,以捕捉RIS、基站和用户设备的随机位置。基于这个框架,我们得出典型的 UE 和连接的 UE 的覆盖概率和垂直速度。特别是,我们获得了干扰有限假设情景中覆盖概率的封闭式表达方式。我们还推断出常规的RIS辅助网络的理论表达方式以进行比较。分析结果表明,STRA-RIS有最佳的分化系数,以同时最大限度地扩大系统覆盖范围,使TRISBS 和用户结构结构的覆盖率(UE) 。我们从SAR-RISA的数值显示,S-RISRA的数值能够达到不同要求的数值。