论文标题

节能无人机安装的RIS辅助移动边缘计算

Energy-Efficient UAV-Mounted RIS Assisted Mobile Edge Computing

论文作者

Zhai, Zhiyuan, Dai, Xinhong, Duo, Bin, Wang, Xin, Yuan, Xiaojun

论文摘要

最近在移动边缘计算领域(MEC)应用了无人机(UAV)和可重构智能表面(RIS),以通过分别通过可操纵的位置部署和智能信号反射来主动更改无线通道来改善数据交换环境。然而,在实际情况下,它们可能会受到固有的局限性。无人机安装的RI(U-RIS)作为一种有希望的综合方法,可以结合无人机和RI的优势以打破极限。受此启发,我们考虑了一个新颖的U-RIS辅助MEC系统,在该系统中部署了U-RIS来协助地面用户与MEC服务器之间的通信。开发了关节无人机轨迹,RIS无源波束成形和MEC资源分配设计,以最大程度地提高系统的能效(EE)。为了解决棘手的非凸问题,我们将其分为两个子问题,并基于连续的凸近似(SCA)和Dinkelbach方法在迭代中迭代。最后,我们获得了高性能的次优溶液。仿真结果表明,所提出的算法显着提高了MEC系统的能效。

Unmanned aerial vehicle (UAV) and reconfigurable intelligent surface (RIS) have been recently applied in the field of mobile edge computing (MEC) to improve the data exchange environment by proactively changing the wireless channels through maneuverable location deployment and intelligent signals reflection, respectively. Nevertheless, they may suffer from inherent limitations in practical scenarios. UAV-mounted RIS (U-RIS), as a promising integrated approach, can combine the advantages of UAV and RIS to break the limit. Inspired by this, we consider a novel U-RIS assisted MEC system, where a U-RIS is deployed to assist the communication between the ground users and an MEC server. The joint UAV trajectory, RIS passive beamforming and MEC resource allocation design is developed to maximize the energy efficiency (EE) of the system. To tackle the intractable non-convex problem, we divide it into two subproblems and solve them iteratively based on successive convex approximation (SCA) and the Dinkelbach method. Finally we obtain a high-performance suboptimal solution. Simulation results show that the proposed algorithm significantly improves the energy efficiency of the MEC system.

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