论文标题

用于发电的IRS辅助无人机通信的资源分配和3D轨迹设计

Resource Allocation and 3D Trajectory Design for Power-Efficient IRS-Assisted UAV-NOMA Communications

论文作者

Cai, Yuanxin, Wei, Zhiqiang, Hu, Shaokang, Liu, Chang, Ng, Derrick Wing Kwan, Yuan, Jinhong

论文摘要

在本文中,引入了智能反射表面(IRS),以协助基于非正交多重访问(NOMA)的无人机通信系统,用于为多个地面用户提供服务。我们的目的是通过共同设计资源分配策略,无人机的三维(3D)轨迹以及IRS的相位控制来最大程度地减少总系统能量消耗。考虑到最大可忍受的出现概率约束和单个最小数据率要求,该设计被称为非凸优化问题。 To circumvent the intractability of the design problem due to the altitude-dependent Rician fading in UAV-to-user links, we adopt the deep neural network (DNN) approach to accurately approximate the corresponding effective channel gains, which facilitates the development of a low-complexity suboptimal iterative algorithm via dividing the formulated problem into two subproblems and address them alternatingly.数值结果表明,所提出的算法可以在少量迭代中收敛到有效的解决方案,并说明了一些有趣的见解:(1)IRS通过回收耗散的无线电信号来提高可实现的系统数据速率并降低UAV的飞行功率,实现了高度灵活的无人机的3D轨迹设计。 (2)IRS通过在反射链路中的被动式上的构造提供丰富的阵列增益,这可以大大降低所需的通信能力,以保证所需的服务质量(QoS); (3)优化无人机轨迹的海拔高度可以有效利用断电保证的有效渠道增益,以节省所需的总沟通功率,从而实现功率效率的无人机通信。

In this paper, an intelligent reflecting surface (IRS) is introduced to assist an unmanned aerial vehicle (UAV) communication system based on non-orthogonal multiple access (NOMA) for serving multiple ground users. We aim to minimize the average total system energy consumption by jointly designing the resource allocation strategy, the three dimensional (3D) trajectory of the UAV, as well as the phase control at the IRS. The design is formulated as a non-convex optimization problem taking into account the maximum tolerable outage probability constraint and the individual minimum data rate requirement. To circumvent the intractability of the design problem due to the altitude-dependent Rician fading in UAV-to-user links, we adopt the deep neural network (DNN) approach to accurately approximate the corresponding effective channel gains, which facilitates the development of a low-complexity suboptimal iterative algorithm via dividing the formulated problem into two subproblems and address them alternatingly. Numerical results demonstrate that the proposed algorithm can converge to an effective solution within a small number of iterations and illustrate some interesting insights: (1) IRS enables a highly flexible UAV's 3D trajectory design via recycling the dissipated radio signal for improving the achievable system data rate and reducing the flight power consumption of the UAV; (2) IRS provides a rich array gain through passive beamforming in the reflection link, which can substantially reduce the required communication power for guaranteeing the required quality-of-service (QoS); (3) Optimizing the altitude of UAV's trajectory can effectively exploit the outage-guaranteed effective channel gain to save the total required communication power enabling power-efficient UAV communications.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源