Maneuverable-Jamming-Aided Secure Communication and Sensing in A2G-ISAC Systems

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Hauptverfasser: Lou, Libiao, Liu, Yuan, Foukalas, Fotis, Lei, Hongjiang, Pan, Gaofeng, Tsiftsis, Theodoros A., Liu, Hongwu
Format: Preprint
Veröffentlicht: 2026
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author Lou, Libiao
Liu, Yuan
Foukalas, Fotis
Lei, Hongjiang
Pan, Gaofeng
Tsiftsis, Theodoros A.
Liu, Hongwu
author_facet Lou, Libiao
Liu, Yuan
Foukalas, Fotis
Lei, Hongjiang
Pan, Gaofeng
Tsiftsis, Theodoros A.
Liu, Hongwu
contents In this paper, we propose a maneuverablejamming-aided secure communication and sensing (SCS) scheme for an air-to-ground integrated sensing and communication (A2G-ISAC) system, where a dual-functional source UAV and a maneuverable jamming UAV operate collaboratively in a hybrid monostatic-bistatic radar configuration. The maneuverable jamming UAV emits artificial noise to assist the source UAV in detecting multiple ground targets while interfering with an eavesdropper. The effects of residual interference caused by imperfect successive interference cancellation on the received signal-to-interference-plus-noise ratio are considered, which degrades the system performance. To maximize the average secrecy rate (ASR) under transmit power budget, UAV maneuvering constraints, and sensing requirements, the dual-UAV trajectory and beamforming are jointly optimized. Given that secure communication and sensing fundamentally conflict in terms of resource allocation, making it difficult to achieve optimal performance for both simultaneously, we adopt a two-phase design to address this challenge. By dividing the mission into the secure communication (SC) phase and the SCS phase, the A2G-ISAC system can focus on optimizing distinct objectives separately. In the SC phase, a block coordinate descent algorithm employing the trust-region successive convex approximation and semidefinite relaxation iteratively optimizes dual-UAV trajectory and beamforming. For the SCS phase, a weighted distance minimization problem determines the suitable dual-UAV sensing positions by a greedy algorithm, followed by the joint optimization of source beamforming and jamming beamforming. Simulation results demonstrate that the proposed scheme achieves the highest ASR among benchmarks while maintaining robust sensing performance, and confirm the impact of the SIC residual interference on both secure communication and sensing.
format Preprint
id arxiv_https___arxiv_org_abs_2602_04209
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Maneuverable-Jamming-Aided Secure Communication and Sensing in A2G-ISAC Systems
Lou, Libiao
Liu, Yuan
Foukalas, Fotis
Lei, Hongjiang
Pan, Gaofeng
Tsiftsis, Theodoros A.
Liu, Hongwu
Signal Processing
In this paper, we propose a maneuverablejamming-aided secure communication and sensing (SCS) scheme for an air-to-ground integrated sensing and communication (A2G-ISAC) system, where a dual-functional source UAV and a maneuverable jamming UAV operate collaboratively in a hybrid monostatic-bistatic radar configuration. The maneuverable jamming UAV emits artificial noise to assist the source UAV in detecting multiple ground targets while interfering with an eavesdropper. The effects of residual interference caused by imperfect successive interference cancellation on the received signal-to-interference-plus-noise ratio are considered, which degrades the system performance. To maximize the average secrecy rate (ASR) under transmit power budget, UAV maneuvering constraints, and sensing requirements, the dual-UAV trajectory and beamforming are jointly optimized. Given that secure communication and sensing fundamentally conflict in terms of resource allocation, making it difficult to achieve optimal performance for both simultaneously, we adopt a two-phase design to address this challenge. By dividing the mission into the secure communication (SC) phase and the SCS phase, the A2G-ISAC system can focus on optimizing distinct objectives separately. In the SC phase, a block coordinate descent algorithm employing the trust-region successive convex approximation and semidefinite relaxation iteratively optimizes dual-UAV trajectory and beamforming. For the SCS phase, a weighted distance minimization problem determines the suitable dual-UAV sensing positions by a greedy algorithm, followed by the joint optimization of source beamforming and jamming beamforming. Simulation results demonstrate that the proposed scheme achieves the highest ASR among benchmarks while maintaining robust sensing performance, and confirm the impact of the SIC residual interference on both secure communication and sensing.
title Maneuverable-Jamming-Aided Secure Communication and Sensing in A2G-ISAC Systems
topic Signal Processing
url https://arxiv.org/abs/2602.04209