LI Mei‑ling,CHEN Qin,YANG Xiao‑xia,et al.Research on Secrecy Outage Performance of Cooperative NOMA System with Residual Hardware Impairment[J].ACTA ELECTRONICA SINICA,2021,49(07):1354-1362.
LI Mei‑ling,CHEN Qin,YANG Xiao‑xia,et al.Research on Secrecy Outage Performance of Cooperative NOMA System with Residual Hardware Impairment[J].ACTA ELECTRONICA SINICA,2021,49(07):1354-1362. DOI: 10.12263/DZXB.20201101.
Research on Secrecy Outage Performance of Cooperative NOMA System with Residual Hardware Impairment
Maximized SNR for Legitimate and Eavesdropping link)中继传输方案下的安全中断概率闭合表达式和渐近表达式.分析和仿真结果表明,所提M‑LaE‑SNR方案相比其他方案可有效提高用户的安全中断性能,且中继数越多所提方案性能优势越明显;同时RHI使得系统安全传输性能降低,且RHI对性能的影响程度主要与主链路信噪比以及协作中继个数有关;且不同节点处的RHI对系统安全性能造成的影响程度不同.研究结果还证明了用户的安全分集阶数等于中继数量
K
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Abstract
Residual hardware impairment (RHI) characteristics exist in actual transceiver which will have an important impact on the cooperative non‑orthogonal multiple access (NOMA) system performance. In this paper
downlink single eavesdropper and multi relay cooperative non‑orthogonal multiple access system with RHI is proposed
and the closed expression and asymptotic expression of secrecy outage probability performance is derived under the relay transmission scheme by maximizing SNR for joint legitimate and eavesdropping link(M‑LaE‑SNR);The analytical and simulation results show that the secrecy outage performance of RHI‑D‑E‑MR‑NOMA system using M‑LaE‑SNR scheme is better than the other schemes
and the more the number of relays
and the performance advantage of the proposed scheme is more obvious with more relay numbers; Meanwhile
RHI can reduce the secrecy transmission performance of the system
and the influence of RHI on the performance is mainly related to the signal‑to‑noise ratio (SNR) of the main link and the number of cooperative relays; And RHI at different nodes have different influences on system secure performance. It is also proved that the order of user’s secrecy diversity order is equal to the number of relays
K
.
关键词
Keywords
references
Wu W , Zhou F H , Hu Q Y , et al . Energy‑efficient resource allocation for secure NOMA‑enabled mobile edge computing networks [J]. IEEE Transactions on Communications , 2020 , 68 ( 1 ): 493 - 505 .
Ding Z G , Peng M , Poor H V . Cooperative non‑orthogonal multiple access in 5G systems [J]. IEEE Communications Letters , 2015 , 19 ( 8 ): 1462 - 1465 .
Ding Z G , Dai H Y , Poor H V . Relay selection for cooperative NOMA [J]. IEEE Wireless Communications Letters , 2016 , 5 ( 4 ): 416 - 419 .
Mukherjee A , Fakoorian S A A , Huang J , et al . Principles of physical layer security in multiuser wireless networks: A survey [J]. IEEE Communications Surveys & Tutorials , 2014 , 16 ( 3 ): 1550 - 1573 .
Chen J , Yang L , Alouini M . Physical layer security for cooperative NOMA systems [J]. IEEE Transactions on Vehicular Technology , 2018 , 67 ( 5 ): 4645 - 4649 .
Zheng B , Wen M , Wang C , et al . Secure NOMA based two‑way relay networks using artificial noise and full duplex [J]. IEEE Journal on Selected Areas in Communications , 2018 , 36 ( 7 ): 1426 - 1440 .
Lei H J , Yang Z X , Park K , et al . Secrecy outage analysis for cooperative NOMA systems with relay selection schemes [J]. IEEE Transactions on Communications , 2019 , 67 ( 9 ): 6282 - 6298 .
Li Mei‑ling , Tian Li‑li , Yang Xiao‑xia , et al . On the secrecy performance of NOMA cognitive radio networks with STBC [J]. Acta Electronica Sinica , 2020 , 48 ( 3 ): 463 - 469 . (in Chinese)
Xiang Z W , Yang W W , Cai Y M , et al . Secure transmission design in HARQ assisted cognitive NOMA networks [J]. IEEE Transactions on Information Forensics and Security , 2020 , 15 : 2528 - 2541 .
Burg A , Studer C , Wenk M . MIMO transmission with residual transmit‑RF impairments [A]. 2010 International ITG Workshop on Smart Antennas [C]. Bremen, Germany : IEEE , 2010 . 189 - 196 .
Bjornson E , Matthaiou M , Debbah M . A new look at dual‑hop relaying: Performance limits with hardware impairments [J]. IEEE Transactions on Communications , 2013 , 61 ( 11 ): 4512 - 4525 .
Ding F , Wang H , Zhang S L , et al . Impact of residual hardware impairments on non‑orthogonal multiple access based amplify‑and‑forward relaying networks [J]. IEEE Access , 2018 , 6 : 15117 - 15131 .
Makarfi A U , Rabie K M , Kaiwartya O , et al . Physical layer security in vehicular networks with reconfigurable intelligent surfaces [A]. 2020 IEEE 91st Vehicular Technology Conference [C]. Antwerp, Belgium : IEEE , 2020 . 1 - 6 .
Li M L , Selim B , Muhaidat S , et al . Effects of residual hardware impairments on secure NOMA‑based cooperative systems [J]. IEEE Access , 2020 , 8 : 2524 - 2536 .
Matthaiou M , Papadogiannis A , Bjornson E , et al . Two‑way relaying under the presence of relay transceiver hardware impairments [J]. IEEE Communications Letters , 2013 , 17 ( 6 ): 1136 - 1139 .
Men J J , Ge J H , Zhang C S . Performance analysis of non‑orthogonal multiple access for relaying networks over Nakagami‑m fading channels [J]. IEEE Transactions on Vehicular Technology , 2017 , 66 ( 2 ): 1200 - 1208 .
Gradshteyn I S , Ryzhik I M . Table of Integrals, Series and Products(7th ed) [M]. San Diego, CA , USA: Academic , 2007 .
Hildebrand F B . Introduction to Numerical Analysis [M]. London : McGraw‑Hill , 1974 .
Yue X W , Liu Y W , Yao Y Y , et al . Secure communications in a unified non‑orthogonal multiple access framework [J]. IEEE Transactions on Wireless Communications , 2020 , 19 ( 3 ): 2163 - 2178 .