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1. 东南大学信息科学与工程学院移动通信国家重点实验室,江苏 南京 210096
2. 紫金山实验室,江苏 南京 211111
3. 东南大学信息科学与工程学院毫米波国家重点实验室,江苏 南京 210096
4. 伦敦玛丽女王大学电子工程与计算机科学学院,英国 伦敦 E1 4NS
Published:30 March 2020,
Published Online:2020-03,
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CHENGXIANG WANG, JIE HUANG, HAIMING WANG, et al. 6G oriented wireless communication channel characteristics analysis and modeling. [J]. Chinese journal on internet of things, 2020, 4(1): 19-32.
CHENGXIANG WANG, JIE HUANG, HAIMING WANG, et al. 6G oriented wireless communication channel characteristics analysis and modeling. [J]. Chinese journal on internet of things, 2020, 4(1): 19-32. DOI: 10.11959/j.issn.2096-3750.2020.00155.
针对 6G 全覆盖、全频谱、全应用的发展愿景,对面向 6G 的全频谱全场景无线信道测量、信道特性与信道模型方面的进展进行了全面概述,侧重于毫米波、太赫兹、光波段、卫星、无人机、海洋、水声、高铁、车对车、大规模/超大规模天线、轨道角动量以及工业物联网等通信信道,并展示了6G信道的相关测量与建模结果。最后,指出了6G无线信道测量与建模研究的未来挑战。
Based on the vision on the 6G wireless communication network
i.e.
global coverage
all spectrums and all applications
we comprehensively survey 6G related wireless channel measurements
channel characteristics
and channel models for all frequency bands and all scenarios.Millimeter wave (mmWave)
terahertz (THz)
optical band
satellite
unmanned aerial vehicle (UAV)
maritime
underwater acoustic
high-speed train (HST)
vehicle-to-vehicle (V2V)
massive/ultra-massive multiple-input multiple-output (MIMO)
orbital angular momentum (OAM)
and industry Internet of things (IoT) communication channels were particularly investigated.The related 6G channel measurement and modeling results were also given.Finally
future research challenges on 6G channel measurements and modeling were pointed out.
6G无线通信网络信道测量信道特性信道建模信道模型性能评估
6G wireless communication networkchannel measurementchannel characteristicchannel modeling
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