Propagation Measurement System and Approach at 140 GHz-Moving to 6G and Above 100 GHz
暂无分享,去创建一个
[1] Theodore S. Rappaport,et al. Position Locationing for Millimeter Wave Systems , 2018, 2018 IEEE Global Communications Conference (GLOBECOM).
[2] Theodore S. Rappaport,et al. Propagation Models and Performance Evaluation for 5G Millimeter-Wave Bands , 2018, IEEE Transactions on Vehicular Technology.
[3] Theodore S. Rappaport,et al. Millimeter Wave Mobile Communications for 5G Cellular: It Will Work! , 2013, IEEE Access.
[4] Kyungwhoon Cheun,et al. Millimeter-wave beamforming as an enabling technology for 5G cellular communications: theoretical feasibility and prototype results , 2014, IEEE Communications Magazine.
[5] Theodore S. Rappaport,et al. A novel millimeter-wave channel simulator and applications for 5G wireless communications , 2017, 2017 IEEE International Conference on Communications (ICC).
[6] Theodore S. Rappaport,et al. Investigation and Comparison of 3GPP and NYUSIM Channel Models for 5G Wireless Communications , 2017, 2017 IEEE 86th Vehicular Technology Conference (VTC-Fall).
[7] Xiaodai Dong,et al. Terahertz Communication for Vehicular Networks , 2017, IEEE Trans. Veh. Technol..
[8] Jianjun Ma,et al. Frequency-division multiplexer and demultiplexer for terahertz wireless links , 2017, Nature Communications.
[9] Tadao Nagatsuma,et al. Breakthroughs in Photonics 2013: THz Communications Based on Photonics , 2014, IEEE Photonics Journal.
[10] Katsuyuki Haneda,et al. Comparing Radio Propagation Channels Between 28 and 140 GHz Bands in a Shopping Mall , 2017, ArXiv.
[11] Theodore S. Rappaport,et al. Millimeter-Wave Enhanced Local Area Systems: A High-Data-Rate Approach for Future Wireless Networks , 2014, IEEE Journal on Selected Areas in Communications.
[12] Toshio Morioka,et al. 400-GHz Wireless Transmission of 60-Gb/s Nyquist-QPSK Signals Using UTC-PD and Heterodyne Mixer , 2016, IEEE Transactions on Terahertz Science and Technology.
[13] Theodore S. Rappaport,et al. Simulating Motion - Incorporating Spatial Consistency into NYUSIM Channel Model , 2018, 2018 IEEE 88th Vehicular Technology Conference (VTC-Fall).
[14] Jeffrey G. Andrews,et al. Femtocell networks: a survey , 2008, IEEE Communications Magazine.
[15] Theodore S. Rappaport,et al. Indoor office wideband penetration loss measurements at 73 GHz , 2017, 2017 IEEE International Conference on Communications Workshops (ICC Workshops).
[16] Theodore S. Rappaport,et al. A flexible wideband millimeter-wave channel sounder with local area and NLOS to LOS transition measurements , 2017, 2017 IEEE International Conference on Communications (ICC).
[17] Theodore S. Rappaport,et al. Millimeter wave wireless communications: new results for rural connectivity , 2016, ATC@MobiCom.
[18] Theodore S. Rappaport,et al. Millimeter Wave Wireless Communications , 2014 .
[19] Theodore S. Rappaport,et al. Wireless Communications: Principles and Practice (2nd Edition) by , 2012 .
[20] John Papapolymerou,et al. D-Band Channel Measurements and Characterization for Indoor Applications , 2015, IEEE Transactions on Antennas and Propagation.
[21] Theodore S. Rappaport,et al. Indoor Office Wideband Millimeter-Wave Propagation Measurements and Channel Models at 28 and 73 GHz for Ultra-Dense 5G Wireless Networks , 2015, IEEE Access.
[22] Theodore S. Rappaport,et al. A Flexible Millimeter-Wave Channel Sounder With Absolute Timing , 2017, IEEE Journal on Selected Areas in Communications.
[23] Theodore S. Rappaport,et al. Millimeter-Wave Extended NYUSIM Channel Model for Spatial Consistency , 2018, 2018 IEEE Global Communications Conference (GLOBECOM).
[24] Katsuyuki Haneda,et al. Dual-Band Multipath Cluster Analysis of Small-Cell Backhaul Channels in an Urban Street Environment , 2016, 2016 IEEE Globecom Workshops (GC Wkshps).
[25] Theodore S. Rappaport,et al. The human body and millimeter-wave wireless communication systems: Interactions and implications , 2015, 2015 IEEE International Conference on Communications (ICC).
[26] Theodore S. Rappaport,et al. Overview of Millimeter Wave Communications for Fifth-Generation (5G) Wireless Networks—With a Focus on Propagation Models , 2017, IEEE Transactions on Antennas and Propagation.
[27] Theodore S. Rappaport,et al. Safe for Generations to Come: Considerations of Safety for Millimeter Waves in Wireless Communications , 2015, IEEE Microwave Magazine.
[28] Louis J. Ippolito,et al. Attenuation by Atmospheric Gases , 1986 .
[29] Theodore S. Rappaport,et al. Verification and Calibration of Antenna Cross-Polarization Discrimination and Penetration Loss for Millimeter Wave Communications , 2018, 2018 IEEE 88th Vehicular Technology Conference (VTC-Fall).
[30] Theodore S. Rappaport,et al. Wireless communications - principles and practice , 1996 .
[31] Theodore S. Rappaport,et al. 28 GHz millimeter wave cellular communication measurements for reflection and penetration loss in and around buildings in New York city , 2013, 2013 IEEE International Conference on Communications (ICC).
[32] Seunghwan Kim,et al. Comparison of path loss models for indoor 30 GHz, 140 GHz, and 300 GHz channels , 2017, 2017 11th European Conference on Antennas and Propagation (EUCAP).
[33] Theodore S. Rappaport,et al. Study on 3GPP rural macrocell path loss models for millimeter wave wireless communications , 2017, 2017 IEEE International Conference on Communications (ICC).
[34] Theodore S. Rappaport,et al. State of the Art in 60-GHz Integrated Circuits and Systems for Wireless Communications , 2011, Proceedings of the IEEE.
[35] H.T. Friis,et al. A Note on a Simple Transmission Formula , 1946, Proceedings of the IRE.