Beamforming techniques for massive MIMO systems in 5G: overview, classification, and trends for future research

被引:0
作者
Ehab Ali
Mahamod Ismail
Rosdiadee Nordin
Nor Fadzilah Abdulah
机构
[1] Universiti Kebangsaan Malaysia (UKM),Department of Electrical, Electronic and System Engineering
来源
Frontiers of Information Technology & Electronic Engineering | 2017年 / 18卷
关键词
Beamforming classifications; Massive MIMO; Hybrid beamforming; Millimetre-wave beamforming; TN92;
D O I
暂无
中图分类号
学科分类号
摘要
Massive multiple-input multiple-output (MIMO) systems combined with beamforming antenna array technologies are expected to play a key role in next-generation wireless communication systems (5G), which will be deployed in 2020 and beyond. The main objective of this review paper is to discuss the state-of-the-art research on the most favourable types of beamforming techniques that can be deployed in massive MIMO systems and to clarify the importance of beamforming techniques in massive MIMO systems for eliminating and resolving the many technical hitches that massive MIMO system implementation faces. Classifications of optimal beamforming techniques that are used in wireless communication systems are reviewed in detail to determine which techniques are more suitable for deployment in massive MIMO systems to improve system throughput and reduce intra- and inter-cell interference. To overcome the limitations in the literature, we have suggested an optimal beamforming technique that can provide the highest performance in massive MIMO systems, satisfying the requirements of next-generation wireless communication systems.
引用
收藏
页码:753 / 772
页数:19
相关论文
共 145 条
[41]  
Bengtsson M.(2016)Training sequence design for feedback assisted hybrid beamforming in massive MIMO systems IEEE Trans. Commun. 64 187-200
[42]  
Gozalves J.(2013)Millimeter wave mobile communications for 5G cellular: it will work IEEE Access 1 335-349
[43]  
Guney K.(2014)Design of an adaptive wideband beamforming algorithm for conformal arrays IEEE Commun. Lett. 18 1955-1958
[44]  
Onay M.(2016)A novel design of 4 × 4 Butler matrix with relatively flexible phase differences IEEE Antennas Wirel. Propag. Lett. 15 1277-1280
[45]  
He S.W.(2014)Millimeter-wave beamforming as an enabling technology for 5G cellular communications: theoretical feasibility and prototype results IEEE Commun. Mag. 52 106-113
[46]  
Huang Y.M.(2013)Scaling up MIMO: opportunities and challenges with very large arrays IEEE Signal Process. Mag. 30 40-60
[47]  
Yang L.X.(2016)Hybrid digital and analog beamforming design for large-scale antenna arrays IEEE J. Sel. Topics Signal Process. 10 501-513
[48]  
Heath R.W.(2014)MIMO for millimeter-wave wireless communications: beamforming, spatial multiplexing, or both IEEE Commun. Mag. 52 110-121
[49]  
Gonzalez-Prelcic N.(2014)Millimeter-wave massive MIMO: the next wireless revolution IEEE Commun. Mag. 52 56-62
[50]  
Rangan S.(2010)Analog beamforming in MIMO communications with phase shift networks and online channel estimation IEEE Trans. Signal Process. 58 4131-4143