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| 1 | Towards 6G wireless communication networks:vision,enabling technologies,and new paradigm shifts显示文摘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-airground-sea integrated communication network.Second,all spectra will be fully explored to further increase data rates and connection density,including the sub-6GHz,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. | Xiaohu YOU Cheng-Xiang WANG Jie HUANG Xiqi GAO Zaichen ZHANG Mao WANG Yongming HUANG Chuan ZHANG Yanxiang JIANG Jiaheng WANG Min ZHU Bin SHENG Dongming WANG Zhiwen PAN Pengcheng ZHU Yang YANG Zening LIU Ping ZHANG Xiaofeng TAO Shaoqian LI Zhi CHEN Xinying MA Chih-Lin I Shuangfeng HAN Ke LI Chengkang PAN Zhimin ZHENG Lajos HANZO Xuemin(Sherman)SHEN Yingjie Jay GUO Zhiguo DING Harald HAAS Wen TONG Peiying ZHU Ganghua YANG Jun WANG Erik GLARSSON Hien Quoc NGO Wei HONG Haiming WANG Debin HOU Jixin CHEN Zhe CHEN Zhangcheng HAO Geoffrey Ye LI Rahim TAFAZOLLI Yue GAO HVincent POOR Gerhard P.FETTWEIS Ying-Chang LIANG | 2021 | Science China(Information Sciences)2021,64,1: | 122 |
| 2 | The development of a railway dynamics modeling and simulation package to cater for current industrial trends显示文摘 | Shen G Pratt I | 2001 | Journal of Rapid Transit2001,215,3: | 2 |
| 3 | Comparing diffusion-weighted and T2-weighted MR imaging for the quantification of infarct size in a neonatal rat hypoxic-ischemic model at 24 h post-injury显示文摘 | Wang, YX Cheung, PT Shen, GX Bhatia, I Wu, EX Qiu, DQ Khong, PL | 2007 | 中国生物学文摘2007,21,11: | 2 |
| 4 | Fuzzy rrDFCSP and Planning 显示文摘 | Miguel I SHEN Qiang | 2003 | Artificial Intelligence2003,148,12: | 1 |
| 5 | Genomic structure ofthree long QT syndrome genes: KVLQT1, HERG, and KCNE1 显示文摘 | Splawski I Shen J Timothy KW | 1998 | Genomics1998,51,: | 1 |
| 6 | On the light variations of seyfert galaxy 3C120显示文摘 | Jurkevich I Usher P D Shen B S P | | 0,,03: | 1 |
| 7 | Microbial synthesis of poly(ε-lysine) and its various applications 显示文摘 | Shih I L Shen M H Van Y T | 2006 | Bioresour Technol2006,,97: | 1 |
| 8 | Improving tunneling junction in amorphous silicon tandem solar cells 显示文摘 | Shen D S Schropp R E I Chathem H | 1990 | Applied Physics Letters1990,56,: | 1 |
| 9 | Synthesis and characterization of S-doped ZnO nanowires produced by a simple solution conversion process 显示文摘 | SHEN G Z CHO J H JUNG S I | 2005 | Chem Phys Lett2005,401,456: | 1 |
| 10 | Genomic structure of three long QT syndrome genes: KVLQT1, HERG, and KCNE1显示文摘 | Splawski I Shen J Timothy KW | 1998 | Genomics1998,51,1: | 1 |
| 11 | Comparison of Methylene Chloride and Chloroformfor the Extraction of Fats from Food Products显示文摘 | Chen I S Shen C S J Sheppard A J | 1981 | JAOCS,1981,58:599~6011981,58,59: | 1 |
| 12 | Identification and validation of differences in protein levels in normal, premalignant, and malignant lung cells and tissues using high-throughput Western Array and immunohistochemistry 显示文摘 | Shen J Behrens C Wistuba I I | 2006 | Cancer Res2006,66,11: | 1 |
| 13 | A data mining-based method for the incremental update of supporting personalized information filtering显示文摘 | Chang Y I Shen J H Chen T I | 2008 | Journal of Information Science and Engineering2008,24,1: | 1 |
| 14 | Partial sequencing and mapping of slones from maize cDNA library显示文摘 | Shen B Carneiro N Torres-Jerez I | 1994 | Plant Mol Biol1994,26,4: | 1 |
| 15 | SCN5A mutations associated with an inherited cardiac arrhythmia, long QT syndrome显示文摘 | Wang Q Shen J Splawski I | 1995 | Cell1995,80,5: | 1 |
| 16 | Analysis of Laterally Loaded Pile Soil with Stiffness Increasing with Depth 显示文摘 | Shen W Y The C I | 2004 | Journal of Geotechnical and Geoenvironmental Engineering ASCE2004,130,8: | 1 |
| 17 | Spectrum of mutation in long QT syndrome gene KvLQT1,HERG,SCN5A,KCNE1,and KCNE2显示文摘 | Shen JX Timothy KW | 2000 | Circulation2000,102,: | 1 |
| 18 | SCN5A mutations associated with an inherited cardiac arrhythmia,long QT syndrome显示文摘 | WANG Q SHEN J SPLAWSKI I | 1995 | Cell1995,80,5: | 1 |
| 19 | Spectrum of mutations in long QT syndrome genes: KVLQT1, HERG, SCN5A, KCNE1, and KCNE2显示文摘 | Splawski I Shen J Timothy KW | 2000 | Circulation2000,102,: | 1 |
| 20 | Surface oxidation activates indium tin oxide for hole injection显示文摘 | Milliron D J Hill I G Shen C | 2000 | J Appl Phys2000,87,1: | 1 |