4.7 Article

A General 3D Non-Stationary Wireless Channel Model for 5G and Beyond

期刊

IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS
卷 20, 期 5, 页码 3211-3224

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TWC.2020.3047973

关键词

3D space-time-frequency non-stationary GBSM; massive MIMO; mmWave-THz; high-mobility; multi-mobility communications

资金

  1. National Key Research and Development Program of China [2018YFB1801101]
  2. National Natural Science Foundation of China (NSFC) [61960206006]
  3. Shandong Provincial Natural Science Foundation for Young Scholars of China [ZR2020QF001]
  4. Taishan Scholar Program of Shandong Province
  5. Frontiers Science Center for Mobile Information Communication and Security
  6. High Level Innovation and Entrepreneurial Research Team Program in Jiangsu
  7. High Level Innovation and Entrepreneurial Talent Introduction Program in Jiangsu
  8. Research Fund of National Mobile Communications Research Laboratory, Southeast University [2020B01]
  9. Fundamental Research Funds for the Central Universities [2242020R30001]
  10. EU H2020 RISE TESTBED2 Project [872172]

向作者/读者索取更多资源

A novel 3D non-stationary geometry-based stochastic model for 5G and beyond systems is proposed, capturing various channel characteristics and applicable to multiple frequency bands and scenarios. The proposed model shows generalization and usefulness through comparisons with standard 5G channel models and measurement data.
In this paper, a novel three-dimensional (3D) non-stationary geometry-based stochastic model (GBSM) for the fifth generation (5G) and beyond 5G (B5G) systems is proposed. The proposed B5G channel model (B5GCM) is designed to capture various channel characteristics in (B)5G systems such as space-time-frequency (STF) non-stationarity, spherical wavefront (SWF), high delay resolution, time-variant velocities and directions of motion of the transmitter, receiver, and scatterers, spatial consistency, etc. By combining different channel properties into a general channel model framework, the proposed B5GCM is able to be applied to multiple frequency bands and multiple scenarios, including massive multiple-input multiple-output (MIMO), vehicle-to-vehicle (V2V), high-speed train (HST), and millimeter wave-terahertz (mmWave-THz) communication scenarios. Key statistics of the proposed B5GCM are obtained and compared with those of standard 5G channel models and corresponding measurement data, showing the generalization and usefulness of the proposed model.

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