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Iterative Trajectory Optimization for Physical-Layer Secure Buffer-Aided UAV Mobile Relaying

机译:物理层安全缓冲辅助无人机移动中继的迭代轨迹优化

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摘要

With the fast development of commercial unmanned aerial vehicle (UAV) technology, there are increasing research interests on UAV communications. In this work, the mobility and deployment flexibility of UAVs are exploited to form a buffer-aided relaying system assisting terrestrial communication that is blocked. Optimal UAV trajectory design of the UAV-enabled mobile relaying system with a randomly located eavesdropper is investigated from the physical-layer security perspective to improve the overall secrecy rate. Based on the mobility of the UAV relay, a wireless channel model that changes with the trajectory and is exploited for improved secrecy is established. The secrecy rate is maximized by optimizing the discretized trajectory anchor points based on the information causality and UAV mobility constraints. However, the problem is non-convex and therefore difficult to solve. To make the problem tractable, we alternatively optimize the increments of the trajectory anchor points iteratively in a two-dimensional space and decompose the problem into progressive convex approximate problems through the iterative procedure. Convergence of the proposed iterative trajectory optimization technique is proved analytically by the squeeze principle. Simulation results show that finding the optimal trajectory by iteratively updating the displacements is effective and fast converging. It is also shown by the simulation results that the distribution of the eavesdropper location influences the security performance of the system. Specifically, an eavesdropper further away from the destination is beneficial to the system’s overall secrecy rate. Furthermore, it is observed that eavesdropper being further away from the destination also results in shorter trajectories, which implies it being energy-efficient as well.
机译:随着商用无人机技术的飞速发展,对无人机通信的研究兴趣越来越大。在这项工作中,无人机的移动性和部署灵活性被利用来形成一个缓冲辅助的中继系统,以协助被阻塞的地面通信。从物理层安全性的角度研究了具有随机位置的窃听者的,支持无人机的移动中继系统的最优无人机轨迹设计,以提高总体保密率。基于无人机中继的移动性,建立了随轨迹变化的无线信道模型,并利用该模型来提高机密性。通过基于信息因果关系和无人飞行器移动性约束优化离散化的轨迹锚点,可以最大程度地提高保密率。但是,该问题是非凸的,因此难以解决。为了使问题易于处理,我们可以选择在二维空间中迭代优化轨迹锚点的增量,然后通过迭代过程将问题分解为渐进凸近似问题。通过挤压原理分析证明了所提出的迭代轨迹优化技术的收敛性。仿真结果表明,通过迭代更新位移来寻找最优轨迹是有效且快速收敛的。仿真结果还表明,窃听者位置的分布会影响系统的安全性能。具体来说,距离目的地较远的窃听者对系统的整体保密率有利。此外,可以发现,窃听者距离目的地越远,其轨迹也越短,这也意味着它是节能的。

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