Large Intelligent Surface Aided Physical Layer Security Transmission

Biqian Feng, Yongpeng Wu*, Mengfan Zheng, Xiang Gen Xia, Yongjian Wang*, Chengshan Xiao

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

32 Citations (Scopus)

Abstract

In this paper, we investigate a large intelligent surface-enhanced (LIS-enhanced) system, where a LIS is deployed to assist secure transmission. Our design aims to maximize the achievable secrecy rates in different channel models, i.e., Rician fading, and (or) independent, and identically distributed Gaussian fading for the legitimate, and eavesdropper channels. In addition, we take into consideration an artificial noise-aided transmission structure for further improving system performance. The difficulties of tackling the aforementioned problems are the structure of the expected secrecy rate expressions, and the non-convex phase shift constraint. To facilitate the design, we propose two frameworks, namely the sample average approximation based (SAA-based) algorithm, and the hybrid stochastic projected gradient-convergent policy (hybrid SPG-CP) algorithm, to calculate the expectation terms in the secrecy rate expressions. Meanwhile, majorization minimization (MM) is adopted to address the non-convexity of the phase shift constraint. In addition, we give some analyses on two special scenarios by making full use of the expectation terms. Simulation results show that the proposed algorithms effectively optimize the secrecy communication rate for the considered setup, and the LIS-enhanced system greatly improves secrecy performance compared to conventional architectures without LIS.

Original languageEnglish
Article number9187230
Pages (from-to)5276-5291
Number of pages16
JournalIEEE Transactions on Signal Processing
Volume68
DOIs
Publication statusPublished - 2020
Externally publishedYes

Keywords

  • AN-aided
  • LIS-enhanced system
  • SAA-based algorithm
  • hybrid SPG-CP algorithm
  • secure transmission

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