DocumentCode
737625
Title
Probabilistic Omnidirectional Path Loss Models for Millimeter-Wave Outdoor Communications
Author
Samimi, Mathew K. ; Rappaport, Theodore S. ; MacCartney, George R.
Author_Institution
Polytech. Sch. of Eng., Wireless Res. Center, NYU, New York, NY, USA
Volume
4
Issue
4
fYear
2015
Firstpage
357
Lastpage
360
Abstract
This letter presents a probabilistic omnidirectional millimeter-wave path loss model based on real-world 28 GHz and 73 GHz measurements collected in New York City. The probabilistic path loss approach uses a free space line-of-sight propagation model, and for non-line-of-sight conditions uses either a close-in free space reference distance path loss model or a floating-intercept path loss model. The probabilistic model employs a weighting function that specifies the line-of-sight probability for a given transmitter-receiver separation distance. Results show that the probabilistic path loss model offers virtually identical results whether one uses a non-line-of-sight close-in free space reference distance path loss model, with a reference distance of 1 meter, or a floating-intercept path loss model. This letter also shows that site-specific environmental information may be used to yield the probabilistic weighting function for choosing between line-of-sight and non-line-of-sight conditions.
Keywords
radio networks; receivers; transmitters; New York City; floating intercept path loss model; free space line-of-sight propagation model; free space reference distance path loss model; millimeter wave outdoor communications; probabilistic omnidirectional millimeter wave path loss model; probabilistic omnidirectional path loss models; Cities and towns; Data models; Loss measurement; Mathematical model; Millimeter wave measurements; Probabilistic logic; Propagation losses; close-in free space reference distance; floating-intercept; mmWave; probabilistic path loss; ray-tracing; site-specific;
fLanguage
English
Journal_Title
Wireless Communications Letters, IEEE
Publisher
ieee
ISSN
2162-2337
Type
jour
DOI
10.1109/LWC.2015.2417559
Filename
7070688
Link To Document