论文标题
多uav辅助可见光通信的最佳资源分配
Optimal Resource Allocation for Multi-UAV Assisted Visible Light Communication
论文作者
论文摘要
在本文中,研究了通过可重新配置的智能表面(RISS)辅助的可见光通信(VLC)系统的优化部署无人机(UAV)。在考虑的模型中,无人机需要同时为地面用户提供无线服务和照明。为了满足地面用户的流量和照明需求,同时最大程度地减少了无人机的能源消耗,必须优化无人机部署,RISS的相移,用户协会和RIS协会。该问题被提出为优化问题,其目标是通过调整无人机部署,RISS,用户协会和RIS关联来最大程度地降低无人机的发射功率。为了解决此问题,原始优化问题分为四个子问题,并提出了交替的算法。具体而言,提出了阶段比对方法和半决赛程序(SDP)算法来优化RISS的相移。然后,通过连续的凸近似(SCA)算法来解决无人机部署优化。由于用户关联和RIS关联的问题是整数编程,因此在使用双重方法找到最佳解决方案之前,采用了分数松弛方法。为简单起见,提出了一种贪婪算法作为优化RIS关联的替代方法。提出的两个方案表明,通过大量的数值研究,分别在没有RI的情况下,分别具有34:85%和32:11%的能源消耗。
In this paper, the optimization of deploying unmanned aerial vehicles (UAVs) over a reconfigurable intelligent surfaces (RISs)-assisted visible light communication (VLC) system is studied. In the considered model, UAVs are required to simultaneously provide wireless services as well as illumination for ground users. To meet the traffic and illumination demands of the ground users while minimizing the energy consumption of the UAVs, one must optimize UAV deployment, phase shift of RISs, user association and RIS association. This problem is formulated as an optimization problem whose goal is to minimize the transmit power of UAVs via adjusting UAV deployment, phase shift of RISs, user association and RIS association. To solve this problem, the original optimization problem is divided into four subproblems and an alternating algorithm is proposed. Specifically, phases alignment method and semidefinite program (SDP) algorithm are proposed to optimize the phase shift of RISs. Then, the UAV deployment optimization is solved by the successive convex approximation (SCA) algorithm. Since the problems of user association and RIS association are integer programming, the fraction relaxation method is adopted before using dual method to find the optimal solution. For simplicity, a greedy algorithm is proposed as an alternative to optimize RIS association. The proposed two schemes demonstrate the superior performance of 34:85% and 32:11% energy consumption reduction over the case without RIS, respectively, through extensive numerical study.