Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts

На пути к беспроводным сетям связи 6G: видение, обеспечивающие технологии и новые парадигмальные сдвиги
Ping Zhang, Chuan Zhang, Xiaohu You, Zaichen Zhang, Wei Hong, H. Vincent Poor, Peiying Zhu, Zhiguo Ding, Jixin Chen, Y. Jay Guo, Yue Gao, Harald Haas, Ying‐Chang Liang, Xuemin Shen, Lajos Hanzo, Zhang‐Cheng Hao, Geoffrey Ye Li, Lajos Hanzo, Gerhard Fettweis, Dongming Wang, Pengcheng Zhu, Cheng‐Xiang Wang, Shaoqian Li, Rahim Tafazolli, Jun Wang, Yongming Huang, Min Zhu, Jie Huang, Xiqi Gao, Mao Wang, Yanxiang Jiang, Jiaheng Wang, Bin Sheng, Zhiwen Pan, Yang Yang, Zening Liu, Xiaofeng Tao, Zhi Chen, Xinying Ma, I Chih‐Lin, Shuangfeng Han, Ke Li, Chengkang Pan, Zhimin Zheng, Wen Tong, Ganghua Yang, Erik G. Larsson, Hien Quoc Ngo, Haiming Wang, Debin Hou, Zhe Chen, Yingjie Jay Guo
2020-11-24

6G wireless networksartificial intelligencecell-free architecturenon-terrestrial networksterahertz communications
Abstract The fifth generation (5G) wireless communication networks are being deployed worldwide from 2020 and more capabilities are in the process of being standardized, such as mass connectivity, ultra-reliability, and guaranteed low latency. However, 5G will not meet all requirements of the future in 2030 and beyond, and sixth generation (6G) wireless communication networks are expected to provide global coverage, enhanced spectral/energy/cost efficiency, better intelligence level and security, etc. To meet these requirements, 6G networks will rely on new enabling technologies, i.e., air interface and transmission technologies and novel network architecture, such as waveform design, multiple access, channel coding schemes, multi-antenna technologies, network slicing, cell-free architecture, and cloud/fog/edge computing. Our vision on 6G is that it will have four new paradigm shifts. First, to satisfy the requirement of global coverage, 6G will not be limited to terrestrial communication networks, which will need to be complemented with non-terrestrial networks such as satellite and unmanned aerial vehicle (UAV) communication networks, thus achieving a space-air-ground-sea integrated communication network. Second, all spectra will be fully explored to further increase data rates and connection density, including the sub-6 GHz, millimeter wave (mmWave), terahertz (THz), and optical frequency bands. Third, facing the big datasets generated by the use of extremely heterogeneous networks, diverse communication scenarios, large numbers of antennas, wide bandwidths, and new service requirements, 6G networks will enable a new range of smart applications with the aid of artificial intelligence (AI) and big data technologies. Fourth, network security will have to be strengthened when developing 6G networks. This article provides a comprehensive survey of recent advances and future trends in these four aspects. Clearly, 6G with additional technical requirements beyond those of 5G will enable faster and further communications to the extent that the boundary between physical and cyber worlds disappears.
1
6G is envisioned to address requirements beyond 5G, including global coverage, improved spectral, energy, and cost efficiency, greater intelligence, and stronger security.
2
6G will combine terrestrial and non-terrestrial networks, including satellite and UAV systems, to create integrated space-air-ground-sea communication coverage.
3
6G will exploit a broad range of frequency bands, from sub-6 GHz and millimeter waves to terahertz and optical frequencies, to increase data rates and connection density.
4
AI and big-data technologies will support intelligent applications and network operation amid highly heterogeneous networks, while enhanced security will be essential for 6G deployment.
5
Key enabling technologies include new waveforms, multiple access and channel coding schemes, multi-antenna systems, network slicing, cell-free architectures, and cloud/fog/edge computing.

Sixth-generation (6G) wireless communication networks

the enabling technologies, architectural paradigms, spectrum utilization, intelligent applications, and security requirements of 6G networks

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2020-11-24
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Authors
Ping Zhang
Chuan Zhang
Xiaohu You
Zaichen Zhang
Wei Hong
H. Vincent Poor
Peiying Zhu
Zhiguo Ding
Jixin Chen
Y. Jay Guo
Yue Gao
Harald Haas
Ying‐Chang Liang
Xuemin Shen
Lajos Hanzo
Zhang‐Cheng Hao
Geoffrey Ye Li
Lajos Hanzo
Gerhard Fettweis
Dongming Wang
Pengcheng Zhu
Cheng‐Xiang Wang
Shaoqian Li
Rahim Tafazolli
Jun Wang
Yongming Huang
Min Zhu
Jie Huang
Xiqi Gao
Mao Wang
Yanxiang Jiang
Jiaheng Wang
Bin Sheng
Zhiwen Pan
Yang Yang
Zening Liu
Xiaofeng Tao
Zhi Chen
Xinying Ma
I Chih‐Lin
Shuangfeng Han
Ke Li
Chengkang Pan
Zhimin Zheng
Wen Tong
Ganghua Yang
Erik G. Larsson
Hien Quoc Ngo
Haiming Wang
Debin Hou
Zhe Chen
Yingjie Jay Guo
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