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Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts
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...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Science China Press
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7714900/ http://dx.doi.org/10.1007/s11432-020-2955-6 |
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author | You, Xiaohu Wang, Cheng-Xiang Huang, Jie Gao, Xiqi Zhang, Zaichen Wang, Mao Huang, Yongming Zhang, Chuan Jiang, Yanxiang Wang, Jiaheng Zhu, Min Sheng, Bin Wang, Dongming Pan, Zhiwen Zhu, Pengcheng Yang, Yang Liu, Zening Zhang, Ping Tao, Xiaofeng Li, Shaoqian Chen, Zhi Ma, Xinying I, Chih-Lin Han, Shuangfeng Li, Ke Pan, Chengkang Zheng, Zhimin Hanzo, Lajos Shen, Xuemin (Sherman) Guo, Yingjie Jay Ding, Zhiguo Haas, Harald Tong, Wen Zhu, Peiying Yang, Ganghua Wang, Jun Larsson, Erik G. Ngo, Hien Quoc Hong, Wei Wang, Haiming Hou, Debin Chen, Jixin Chen, Zhe Hao, Zhangcheng Li, Geoffrey Ye Tafazolli, Rahim Gao, Yue Poor, H. Vincent Fettweis, Gerhard P. Liang, Ying-Chang |
author_facet | You, Xiaohu Wang, Cheng-Xiang Huang, Jie Gao, Xiqi Zhang, Zaichen Wang, Mao Huang, Yongming Zhang, Chuan Jiang, Yanxiang Wang, Jiaheng Zhu, Min Sheng, Bin Wang, Dongming Pan, Zhiwen Zhu, Pengcheng Yang, Yang Liu, Zening Zhang, Ping Tao, Xiaofeng Li, Shaoqian Chen, Zhi Ma, Xinying I, Chih-Lin Han, Shuangfeng Li, Ke Pan, Chengkang Zheng, Zhimin Hanzo, Lajos Shen, Xuemin (Sherman) Guo, Yingjie Jay Ding, Zhiguo Haas, Harald Tong, Wen Zhu, Peiying Yang, Ganghua Wang, Jun Larsson, Erik G. Ngo, Hien Quoc Hong, Wei Wang, Haiming Hou, Debin Chen, Jixin Chen, Zhe Hao, Zhangcheng Li, Geoffrey Ye Tafazolli, Rahim Gao, Yue Poor, H. Vincent Fettweis, Gerhard P. Liang, Ying-Chang |
author_sort | You, Xiaohu |
collection | PubMed |
description | 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. |
format | Online Article Text |
id | pubmed-7714900 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | Science China Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-77149002020-12-04 Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts You, Xiaohu Wang, Cheng-Xiang Huang, Jie Gao, Xiqi Zhang, Zaichen Wang, Mao Huang, Yongming Zhang, Chuan Jiang, Yanxiang Wang, Jiaheng Zhu, Min Sheng, Bin Wang, Dongming Pan, Zhiwen Zhu, Pengcheng Yang, Yang Liu, Zening Zhang, Ping Tao, Xiaofeng Li, Shaoqian Chen, Zhi Ma, Xinying I, Chih-Lin Han, Shuangfeng Li, Ke Pan, Chengkang Zheng, Zhimin Hanzo, Lajos Shen, Xuemin (Sherman) Guo, Yingjie Jay Ding, Zhiguo Haas, Harald Tong, Wen Zhu, Peiying Yang, Ganghua Wang, Jun Larsson, Erik G. Ngo, Hien Quoc Hong, Wei Wang, Haiming Hou, Debin Chen, Jixin Chen, Zhe Hao, Zhangcheng Li, Geoffrey Ye Tafazolli, Rahim Gao, Yue Poor, H. Vincent Fettweis, Gerhard P. Liang, Ying-Chang Sci. China Inf. Sci. Review 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. Science China Press 2020-11-24 2021 /pmc/articles/PMC7714900/ http://dx.doi.org/10.1007/s11432-020-2955-6 Text en © The Author(s) 2020 Open access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. |
spellingShingle | Review You, Xiaohu Wang, Cheng-Xiang Huang, Jie Gao, Xiqi Zhang, Zaichen Wang, Mao Huang, Yongming Zhang, Chuan Jiang, Yanxiang Wang, Jiaheng Zhu, Min Sheng, Bin Wang, Dongming Pan, Zhiwen Zhu, Pengcheng Yang, Yang Liu, Zening Zhang, Ping Tao, Xiaofeng Li, Shaoqian Chen, Zhi Ma, Xinying I, Chih-Lin Han, Shuangfeng Li, Ke Pan, Chengkang Zheng, Zhimin Hanzo, Lajos Shen, Xuemin (Sherman) Guo, Yingjie Jay Ding, Zhiguo Haas, Harald Tong, Wen Zhu, Peiying Yang, Ganghua Wang, Jun Larsson, Erik G. Ngo, Hien Quoc Hong, Wei Wang, Haiming Hou, Debin Chen, Jixin Chen, Zhe Hao, Zhangcheng Li, Geoffrey Ye Tafazolli, Rahim Gao, Yue Poor, H. Vincent Fettweis, Gerhard P. Liang, Ying-Chang Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title | Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title_full | Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title_fullStr | Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title_full_unstemmed | Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title_short | Towards 6G wireless communication networks: vision, enabling technologies, and new paradigm shifts |
title_sort | towards 6g wireless communication networks: vision, enabling technologies, and new paradigm shifts |
topic | Review |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7714900/ http://dx.doi.org/10.1007/s11432-020-2955-6 |
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