论文标题

毫米波全双工无人机继电器:联合定位,波束形成和功率控制

Millimeter-Wave Full-Duplex UAV Relay: Joint Positioning, Beamforming, and Power Control

论文作者

Zhu, Lipeng, Zhang, Jun, Xiao, Zhenyu, Cao, Xianbin, Xia, Xiang-Gen, Schober, Robert

论文摘要

在本文中,采用了全双工无人机(FD-UAV)继电器来增加毫米波(MMWAVE)网络的通信能力。大型天线阵列在源节点(SN),目标节点(DN)和FD-UAV继电器上配备,以克服MMWAVE通道的高路径损失,并帮助减轻FD-UAV继电器的自身解释。具体而言,我们为从SN到DN的可实现速率最大化的问题提出了一个问题,在该速度中,无人机位置,模拟波束成形和功率控制被共同优化。由于该问题是高度非凸,并且涉及高维,高度耦合的变量向量,因此我们首先获得了FD-UAV继电器的条件最佳位置,以最大化近似上限的近似上限,这是在封闭形式的可实现的速率上,假设是封闭式(LOS)环境(LOS)环境和理想的光束成分。然后,将无人机部署到最接近有条件的最佳位置的位置,并为两个空对地面链路产生LOS路径。随后,我们提出了一种交替的干扰抑制(AIS)算法,用于射线成式矢量和功率控制变量的关节设计。在每次迭代中,优化波束形成向量,以最大化目标信号的光束成型增长,并连续减少干扰,其中最佳功率控制变量以封闭形式获得。我们的仿真结果证实了与三个基准方案相比,提出的定位,波束形成和功率控制方法的优越性。此外,我们的结果表明,所提出的解决方案密切接近MMWave FD-UAV系统的性能上限。

In this paper, a full-duplex unmanned aerial vehicle (FD-UAV) relay is employed to increase the communication capacity of millimeter-wave (mmWave) networks. Large antenna arrays are equipped at the source node (SN), destination node (DN), and FD-UAV relay to overcome the high path loss of mmWave channels and to help mitigate the self-interference at the FD-UAV relay. Specifically, we formulate a problem for maximization of the achievable rate from the SN to the DN, where the UAV position, analog beamforming, and power control are jointly optimized. Since the problem is highly non-convex and involves high-dimensional, highly coupled variable vectors, we first obtain the conditional optimal position of the FD-UAV relay for maximization of an approximate upper bound on the achievable rate in closed form, under the assumption of a line-of-sight (LoS) environment and ideal beamforming. Then, the UAV is deployed to the position which is closest to the conditional optimal position and yields LoS paths for both air-to-ground links. Subsequently, we propose an alternating interference suppression (AIS) algorithm for the joint design of the beamforming vectors and the power control variables. In each iteration, the beamforming vectors are optimized for maximization of the beamforming gains of the target signals and the successive reduction of the interference, where the optimal power control variables are obtained in closed form. Our simulation results confirm the superiority of the proposed positioning, beamforming, and power control method compared to three benchmark schemes. Furthermore, our results show that the proposed solution closely approaches a performance upper bound for mmWave FD-UAV systems.

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