On the Performance of IRS-Assisted Multi-User THz-NOMA Under Beam Misalignment

被引:0
作者
Altuwairgi, Khaled Humaid [1 ]
Khel, Ahmad Massud Tota [1 ,2 ]
Hamdi, Khairi Ashour [1 ]
机构
[1] Univ Manchester, Dept Elect & Elect Engn, Manchester M13 9PL, England
[2] Univ Durham, Dept Engn, Durham DH1 3LE, England
关键词
Terahertz communications; Quantization (signal); NOMA; Interference cancellation; MISO communication; Accuracy; Wireless networks; Beam misalignment; intelligent reflecting surface (IRS); non-orthogonal multiple access; phase shift quantization error; terahertz; MIMO-NOMA; TERAHERTZ COMMUNICATIONS; INTELLIGENT SURFACES; MULTIPLE-ACCESS; OPTIMIZATION; SYSTEMS; COMMUNICATION; CAPACITY; DESIGN;
D O I
10.1109/TVT.2024.3443671
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper considers an intelligent reflecting surface (IRS)-assisted multiple-input single-output multi-user non-orthogonal multiple access (NOMA) network operating in the terahertz band subject to co-channel interference (CCI). The IRS is examined under various configurations: i) IRS partitioning with discrete phase shifts, ii) IRS with random phase shifts, and iii) IRS with discrete phase shifts for one user and random phase shifts for the remaining users. It aims to assess the impacts of various factors, including beam misalignment, imperfect successive interference cancellation (SIC), CCI, phase quantization errors, and random phase shifts. Thus, it derives accurate expressions for the ergodic rate, outage probability and diversity order, which are verified via numerical and simulation results. The results show that the impacts of beam misalignment and imperfect SIC are more dominant compared to those resulting from random phase shifts, phase quantization errors and CCI. Despite achieving lower performance compared to the discrete phase shifting scheme, the random phase shifting scheme can be a promising candidate for multi-user NOMA, as it avoids the costly channel estimation and computational complexity that are proportional to the numbers of IRS elements and users. The results also reveal that partitioning the IRS under discrete phase shifts outperforms a combination of discrete and random phase shifts. The system performance in the high-signal-to-noise ratio regime is also analyzed, which shows that the performance reaches a limit due to inter-user interference and CCI.
引用
收藏
页码:19140 / 19155
页数:16
相关论文
共 49 条
[11]  
Pan Y., Wang K., Pan C., Intelligent reflecting surfaces-supported terahertz NOMA communications, Proc. 2022 IEEE Wireless Commun. Net. Conf., pp. 1743-1748, (2022)
[12]  
Kumar M.H., Sharma S., Deka K., Sharma M.K., RIS-assisted user pairingNOMAsystem for THz communications, Proc. 2023 Nat. Conf. Commun., pp. 1-6, (2023)
[13]  
Xu J., Zhu Z., Chu Z., Niu H., Xiao P., Lee I., Sum secrecy rate maximization for IRS-aided multi-cluster MIMO-NOMA terahertz systems, IEEE Trans. Inf. Forensics Secur., 18, pp. 4463-4474, (2023)
[14]  
Chrysologou A.P., Boulogeorgos A.-A.A., Chatzidiamantis N.D., When THz-NOMA meets holographic reconfigurable intelligent surfaces, IEEE Commun. Lett., 27, 9, pp. 2516-2520, (2023)
[15]  
Chrysologou A.P., Boulogeorgos A.-A.A., Chatzidiamantis N.D., Alexiou A., Outage analysis of holographic surface assisted downlink terahertz NOMA, Proc. 2022 IEEE Glob. Commun. Conf., pp. 5249-5254, (2022)
[16]  
Zheng B., Wu Q., Zhang R., Intelligent reflecting surface-assisted multiple access with user pairing: NOMA or OMA?, IEEE Commun. Lett., 24, 4, pp. 753-757, (2020)
[17]  
Zhou G., Pan C., Ren H., Wang K., Nallanathan A., Intelligent reflecting surface aided multigroup multicast MISO communication systems, IEEE Trans. Signal Process., 68, pp. 3236-3251, (2020)
[18]  
ElMossallamy M.A., Seddik K.G., Chen W., Wang L., Li G.Y., Han Z., RIS optimization on the complex circle manifold for interference mitigation in interference channels, IEEE Trans. Veh. Technol., 70, 6, pp. 6184-6189, (2021)
[19]  
Tota Khel A.M., Hamdi K.A., Analytical performance evaluation of STAR-RIS assisted terahertz wireless communications, IEEE Trans. Veh. Technol., 73, 4, pp. 5500-5515, (2024)
[20]  
Gradshteyn I.S., Ryzhik I.M., Table of Integrals, Series, and Products, (2014)