English

Reconfigurable Intelligent Surface-Aided Secure Integrated Radar and Communication Systems

Signal Processing 2024-12-17 v1

Abstract

Despite the enhanced spectral efficiency brought by the integrated radar and communication technique, it poses significant risks to communication security when confronted with malicious radar targets. To address this issue, a reconfigurable intelligent surface (RIS)-aided transmission scheme is proposed to improve secure communication in two systems, i.e., the radar and communication co-existing (RCCE) system, where a single transmitter is utilized for both radar sensing and communication, and the dual-functional radar and communication (DFRC) system. At the design stage, optimization problems are formulated to maximize the secrecy rate while satisfying the radar detection constraint via joint active beamforming at the base station and passive beamforming of RIS in both systems. Particularly, a zero-forcing-based block coordinate descent (BCD) algorithm is developed for the RCCE system. Besides, the Dinkelbach method combined with semidefinite relaxation is employed for the DFRC system, and to further reduce the computational complexity, a Riemannian conjugate gradient-based alternating optimization algorithm is proposed. Moreover, the RIS-aided robust secure communication in the DFRC system is investigated by considering the eavesdropper's imperfect channel state information (CSI), where a bounded uncertainty model is adopted to capture the angle error and fading channel error of the eavesdropper, and a tractable bound for their joint uncertainty is derived. Simulation results confirm the effectiveness of the developed RIS-aided transmission scheme to improve the secrecy rate even with the eavesdropper's imperfect CSI, and comparisons between both systems reveal that the RCCE system can provide a higher secrecy rate than the DFRC system.

Keywords

Cite

@article{arxiv.2412.11020,
  title  = {Reconfigurable Intelligent Surface-Aided Secure Integrated Radar and Communication Systems},
  author = {Tong-Xing Zheng and Xin Chen and Lan Lan and Ying Ju and Xiaoyan Hu and Rongke Liu and Derrick Wing Kwan Ng and Tiejun Cui},
  journal= {arXiv preprint arXiv:2412.11020},
  year   = {2024}
}

Comments

15 pages, 7 figures; To be published on IEEE Transactions on Wireless Communications

R2 v1 2026-06-28T20:35:34.241Z