Iterative UAV Trajectory Optimization for Physical Layer Secure Mobile Relaying

Lingfeng Shen, Ning Wang, X. Mu
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引用次数: 15

Abstract

With the rapid development and growth of unmanned arial vehicle (UAV) technology and industry, there is increasing research interests in UAV communications. In this work, the mobility and deployment flexibility of UAV is used to provide assistance to terrestrial point-to-point communications. In particular, design of the UAV-enabled mobile relaying system is investigated from the physical layer security perspective to achieve higher overall secrecy capacity. A dynamic channel model that changes with the trajectory is established based on the UAV relay's mobility. By optimizing the UAV's moving trajectory, secrecy capacity of the relay-assisted wireless communication system is maximized. The problem formulated is shown to be non-convex, which is difficult to solve in general. To make the problem tractable, we decompose the original problem and optimize the trajectory to approximate the optimal flight path by optimizing the increments at each trajectory iteration. Simulation results show that the method of finding the optimal trajectory based on the displacement updating iteration is effective and fast converging. When the number of iterations is sufficiently large, the trajectory of the UAV converges, and the optimized trajectory significantly improves the system's secrecy capacity performance. Based on the optimized trajectory, it is investigated through numerical results how the overall secrecy capacity is impacted by the total flight time and the maximum instantaneous UAV speed. It is revealed that higher flight speed is desirable in finding a secure UAV trajectory, and there exists a minimum total flight time to achieve the best average secrecy rate performance
基于物理层安全移动中继的迭代无人机轨迹优化
随着无人飞行器(UAV)技术和产业的快速发展和壮大,无人机通信领域的研究日益受到关注。利用无人机的机动性和部署灵活性为地面点对点通信提供辅助。特别从物理层安全角度研究了无人机移动中继系统的设计,以实现更高的整体保密能力。基于无人机中继机动性,建立了随轨迹变化的动态信道模型。通过优化无人机的运动轨迹,使中继辅助无线通信系统的保密能力最大化。所提出的问题是非凸的,一般来说是难以解决的。为了使问题易于处理,我们对原始问题进行分解,并通过优化每次轨迹迭代的增量来优化轨迹以逼近最优飞行路径。仿真结果表明,基于位移更新迭代寻找最优轨迹的方法是有效的,收敛速度快。当迭代次数足够大时,无人机的轨迹收敛,优化后的轨迹显著提高了系统的保密能力性能。基于优化后的弹道,通过数值结果研究了总飞行时间和最大瞬时速度对总体保密能力的影响。研究表明,在寻找安全飞行轨迹时需要较高的飞行速度,并且存在最小的总飞行时间以达到最佳的平均保密率性能
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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