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Trajectory Optimization for UAV-Aided IoT Secure Communication Against Multiple Eavesdroppers

delete2025-05-19
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OA
AI
L
Lingfeng Shen
N
Nie, Jiangtao
李明 cover
李明 (Ming Li)
G
Guanghui Wang
张乾坤 (Qiankun Zhang)
何鑫 cover
何鑫 (Xin He) *
DOI:10.3390/fi17050225delete
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Abstract

Abstract

En 中文
This study concentrates on physical layer security (PLS) in UAV-aided Internet of Things (IoT) networks and proposes an innovative approach to enhance security by optimizing the trajectory of unmanned aerial vehicles (UAVs). In an IoT system with multiple eavesdroppers, formulating the optimal UAV trajectory poses a non-convex and non-differentiable optimization challenge. The paper utilizes the successive convex approximation (SCA) method in conjunction with hypograph theory to address this challenge. First, a set of trajectory increment variables is introduced to replace the original UAV trajectory coordinates, thereby converting the original non-convex problem into a sequence of convex subproblems. Subsequently, hypograph theory is employed to convert these non-differentiable subproblems into standard convex forms, which can be solved using the CVX toolbox. Simulation results demonstrate the UAV's trajectory fluctuations under different parameters, affirming that trajectory optimization significantly improves PLS performance in IoT systems.
Keywords:
Internet of Things (IoT)
physical layer security
unmanned aerial vehicle (UAV)
trajectory optimization

Journal

Future Internet cover
Future Internet
IF:
3.6
Papers:
1.2K
Citations:
6.5K

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