论文标题

连接3D操纵和功率适应,以与Comp Tockion进行安全无人机通信

Joint 3D Maneuver and Power Adaptation for Secure UAV Communication with CoMP Reception

论文作者

Yao, Jianping, Xu, Jie

论文摘要

本文研究了一个秘密无人驾驶飞机(UAV)通信系统,并配合了多点(COMP)接收,其中一个无人机将机密信息发送给一组合作地面接收器(GRS),在有几个可疑的窃听者的情况下。特别是,我们考虑了两种类型的窃听者,分别是非批准和勾结的。在此设置下,我们在三维(3D)空间中利用无人机的操纵以及传输功率适应来优化保密通信性能。首先,我们考虑了准平台无人机方案,在该场景中,我们共同优化了无人机的3D放置并传输功率控制以最大化秘密率。在非批准和勾结的窃听器下,我们获得了连接3D放置的最佳解决方案,并在井结构中传输功率控制问题。接下来,我们考虑移动无人机方案,在该场景中,我们共同优化了无人机的3D轨迹并传输功率分配,以最大程度地提高整个通信期间的平均保密率。为了处理困难的联合3D轨迹和传输功率分配问题,我们提出了基于优化的方法来获得高质量解决方案。最后,我们提供数值结果来验证我们提出的设计的性能。结果表明,由于考虑了COMP接收,我们提出的3D操作的设计仅通过利用海拔高度的额外自由度来优于使用二维(2D)(2d)(水平)操作的传统设计。还表明,非批准和串通的窃听者导致了不同的3D无人机操纵行为。

This paper studies a secrecy unmanned aerial vehicle (UAV) communication system with coordinated multi-point (CoMP) reception, in which one UAV sends confidential messages to a set of cooperative ground receivers (GRs), in the presence of several suspicious eavesdroppers. In particular, we consider two types of eavesdroppers that are non-colluding and colluding, respectively. Under this setup, we exploit the UAV's maneuver in three dimensional (3D) space together with transmit power adaptation for optimizing the secrecy communication performance. First, we consider the quasi-stationary UAV scenario, where we jointly optimize the UAV's 3D placement and transmit power control to maximize the secrecy rate. Under both non-colluding and colluding eavesdroppers, we obtain the optimal solutions to the joint 3D placement and transmit power control problems in well structures. Next, we consider the mobile UAV scenario, where we jointly optimize the UAV's 3D trajectory and transmit power allocation to maximize the average secrecy rate during the whole communication period. To deal with the difficult joint 3D trajectory and transmit power allocation problems, we present alternating-optimization-based approaches to obtain high-quality solutions. Finally, we provide numerical results to validate the performance of our proposed designs. It is shown that due to the consideration of CoMP reception, our proposed design with 3D maneuver significantly outperforms the conventional design with two dimensional (2D) (horizontal) maneuver only, by exploiting the additional degrees of freedom in altitudes. It is also shown that the non-colluding and colluding eavesdroppers lead to distinct 3D UAV maneuver behaviors.

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