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Total Array Gains of Millimeter-Wave Mobile Phone Antennas under Practical Conditions.

, , and . VTC Spring, page 1-6. IEEE, (2018)

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Modeling the Multipath Cross-Polarization Ratio for Above-6 GHz Radio Links., , , and . CoRR, (2018)Massive Multiple Input Massive Multiple Output for 5G Wireless Backhauling., , , , , , , , , and 3 other author(s). GLOBECOM Workshops, page 1-6. IEEE, (2017)Total Array Gains of Millimeter-Wave Mobile Phone Antennas under Practical Conditions., , and . VTC Spring, page 1-6. IEEE, (2018)Modeling the Multipath Cross-Polarization Ratio for 5-80-GHz Radio Links., , , and . IEEE Trans. Wireless Communications, 18 (10): 4768-4778 (2019)Total Array Gains of Polarized Millimeter-Wave Mobile Phone Antennas., , and . EuCNC, page 167-171. IEEE, (2018)Spatio-temporal channel sounding in a street canyon at 15, 28 and 60 GHz., , , , and . PIMRC, page 1-6. IEEE, (2016)Propagation Path Loss Models for 5G Urban Micro- and Macro-Cellular Scenarios., , , , , , , , , and . CoRR, (2015)Self-Interference Channel Measurements for In-Band Full-Duplex Street-Level Backhaul Relays at 70 GHz., , , and . PIMRC, page 199-204. IEEE, (2018)Evaluation of Millimeter-Wave Line-of-Sight Probability With Point Cloud Data., , , , and . IEEE Wireless Commun. Letters, 5 (3): 228-231 (2016)Comparing Radio Propagation Channels Between 28 and 140 GHz Bands in a Shopping Mall., , , , and . CoRR, (2017)