Physical layer security via maximal ratio combining and relay selection over Rayleigh fading channels

被引:0
|
作者
Bin ZHONG [1 ,2 ]
Minggang WU [3 ]
Tong LI [2 ]
Zhongshan ZHANG [2 ]
机构
[1] School of Information and Electrical Engineering, Hunan University of Science and Technology
[2] Beijing Engineering and Technology Center for Convergence Networks and Ubiquitous Services,University of Science and Technology Beijing
基金
中国国家自然科学基金; 国家高技术研究发展计划(863计划);
关键词
average secrecy capacity; cooperative communication; maximal ratio combining; outage probability; physical layer security;
D O I
暂无
中图分类号
TN92 [无线通信];
学科分类号
080402 ; 080904 ; 0810 ; 081001 ;
摘要
In this paper, the impact of both maximal ratio combining(MRC) and relay selection on the physical layer security in wireless communication systems is investigated by analyzing critical issues such as the probability characteristics of the legitimate receiver(Bob) and malicious eavesdropper(Eve)’s end-to-end signal-to-noise ratio(SNR), the secrecy outage probability and the average secrecy channel capacity over Rayleigh fading Channel, etc. Unlike the conventional physical layer security schemes, we assume that Bob receives its data from both the relay and the source via cooperative relay, provided that MRC is employed at the receiver.Particularly, compared to the conventional MRC methods, the proposed method is capable of achieving a higher spatial diversity order by performing relay selection, as validated by performing the theoretical analysis as well as numerical simulation. Furthermore, the closed-form expressions in terms of secrecy outage probability and average secrecy capacity are all consistent with the numerical results. Finally, the proposed scheme may be substantially affected by a number of parameters such as the number of relays, the SNR of links and the ratio of main-to-eavesdropper ratio(MER) λME.
引用
收藏
页码:167 / 176
页数:10
相关论文
共 50 条
  • [21] Two-Layer J-Best Selection / Maximal-Ratio Combining in Rayleigh Fading
    Roy, Sebastien
    2020 54TH ASILOMAR CONFERENCE ON SIGNALS, SYSTEMS, AND COMPUTERS, 2020, : 1075 - 1082
  • [22] Asymptotic performance of hybrid-selection/maximal-ratio combining over fading channels
    Ma, Yao
    Wang, Zhengdao
    Pasupathy, Subbarayan
    IEEE TRANSACTIONS ON COMMUNICATIONS, 2006, 54 (05) : 770 - 777
  • [23] Physical Layer Security for MIMO Wireless System Using MRC over Rayleigh Fading Channels
    Bamel I.
    Devi P.
    Bharti M.R.
    SN Computer Science, 4 (5)
  • [24] Physical-Layer Security for Cognitive Radio Networks over Cascaded Rayleigh Fading Channels
    Tashman, Deemah H.
    Hamouda, Walaa
    2020 IEEE GLOBAL COMMUNICATIONS CONFERENCE (GLOBECOM), 2020,
  • [25] Capacity Analysis of Highly Correlated Rayleigh Fading Channels for Maximal Ratio Combining Diversity
    Subhashini, J.
    Bhaskar, Vidhyacharan
    PROCEEDINGS OF THE 2012 WORLD CONGRESS ON INFORMATION AND COMMUNICATION TECHNOLOGIES, 2012, : 356 - 360
  • [26] On Physical Layer Security of Double Rayleigh Fading Channels for Vehicular Communications
    Ai, Yun
    Cheffena, Michael
    Mathur, Aashish
    Lei, Hongjiang
    IEEE WIRELESS COMMUNICATIONS LETTERS, 2018, 7 (06) : 1038 - 1041
  • [27] Threshold-based hybrid selection/maximal-ratio combining over generalized fading channels
    Zhang, XD
    Beaulieu, NC
    GLOBECOM '04: IEEE GLOBAL TELECOMMUNICATIONS CONFERENCE, VOLS 1-6, 2004, : 462 - 468
  • [28] Switch-and-stay partial relay selection over Rayleigh fading channels
    Gharanjik, A.
    Mohamed-pour, K.
    IET COMMUNICATIONS, 2011, 5 (09) : 1199 - 1203
  • [29] SEP formula for single relay selection in a multiple relay environment over Rayleigh fading channels
    Gunawardena, Subodha
    Rajatheva, Nandana
    2008 CANADIAN CONFERENCE ON ELECTRICAL AND COMPUTER ENGINEERING, VOLS 1-4, 2008, : 1844 - 1848
  • [30] Error Performance of Transmit Antenna Selection/Maximal Ratio Combining in Two Hop Amplify-and-Forward Relay System over Rayleigh Fading Channel
    Yilmaz, Ahmet
    Kucur, Oguz
    2010 IEEE 21ST INTERNATIONAL SYMPOSIUM ON PERSONAL INDOOR AND MOBILE RADIO COMMUNICATIONS (PIMRC), 2010, : 357 - 361