Author of the publication

A novel millimeter-wave channel simulator and applications for 5G wireless communications.

, , and . ICC, page 1-7. IEEE, (2017)

Please choose a person to relate this publication to

To differ between persons with the same name, the academic degree and the title of an important publication will be displayed. You can also use the button next to the name to display some publications already assigned to the person.

 

Other publications of authors with the same name

Probabilistic Omnidirectional Path Loss Models for Millimeter-Wave Outdoor Communications., , and . IEEE Wirel. Commun. Lett., 4 (4): 357-360 (2015)Rural Macrocell Path Loss Models for Millimeter Wave Wireless Communications., and . IEEE J. Sel. Areas Commun., 35 (7): 1663-1677 (2017)A novel millimeter-wave channel simulator and applications for 5G wireless communications., , and . ICC, page 1-7. IEEE, (2017)3D mmWave Channel Model Proposal., , , and . VTC Fall, page 1-6. IEEE, (2014)Omnidirectional path loss models in New York City at 28 GHz and 73 GHz., , and . PIMRC, page 227-231. IEEE, (2014)Indoor Office Plan Environment and Layout-Based mmWave Path Loss Models for 28 GHz and 73 GHz., , and . VTC Spring, page 1-6. IEEE, (2016)A flexible wideband millimeter-wave channel sounder with local area and NLOS to LOS transition measurements., , , and . ICC, page 1-7. IEEE, (2017)28 GHz Millimeter-Wave Ultrawideband Small-Scale Fading Models in Wireless Channels., , , and . VTC Spring, page 1-6. IEEE, (2016)28 GHz and 73 GHz signal outage study for millimeter wave cellular and backhaul communications., , , and . ICC, page 4856-4861. IEEE, (2014)Radio propagation path loss models for 5G cellular networks in the 28 GHZ and 38 GHZ millimeter-wave bands., , , , , and . IEEE Communications Magazine, 52 (9): 78-86 (2014)