Smart radio environments aided by reconfigurable intelligent reflecting surfaces (RIS) have attracted much research attention recently. We propose a joint optimization strategy for beamforming, RIS phases, and power allocation to maximize the minimum SINR of an uplink RIS-aided communication system. The users are subject to constraints on their transmit power. We derive a closed-form expression for the beam forming vectors and a geometric programming-based solution for power allocation. We also propose two solutions for optimizing the phase shifts at the RIS, one based on the matrix lifting method and one using an approximation for the minimum function. We also propose a heuristic algorithm for optimizing quantized phase shift values. The proposed algorithms are of practical interest for systems with constraints on the maximum allowable electromagnetic field exposure. For instance, considering $24$-element RIS, $12$-antenna BS, and $6$ users, numerical results show that the proposed algorithm achieves close to $300 \%$ gain in terms of minimum SINR compared to a scheme with random RIS phases.
翻译:在智能智能反射表面(RIS)的帮助下,智能无线电环境最近引起了许多研究关注。我们提出了一个关于波束成形、RIS阶段和动力分配的联合优化战略,以最大限度地实现RIS辅助通信系统上链通信系统的最低SINR的最小性SINR;用户的传输能力受到制约;我们为光束成矢量制作一个封闭式表达方式,并为动力分配提出一个基于几何编程的解决方案。我们还提出了优化RIS阶段转移的两个解决方案,一个基于矩阵提升方法,一个基于最起码功能的近似值。我们还提出了优化四分化阶段转移值的超标准算法。提议的算法对限制最大允许电磁场接触的系统具有实际意义。例如,考虑到24美元的元素RIS、12美元的Nentenna BS和6美元的用户,数字结果显示,拟议的算法在最低SINR与随机的RIS阶段计划相比,在最低SINR收益接近300美元。