DocumentCode :
1168088
Title :
Microcellular radio-channel propagation prediction
Author :
Schaubach, Kurt R. ; Davis, Nathaniel J., IV
Author_Institution :
Southwestern Bell Technol. Resources Inc., St. Louis, MO, USA
Volume :
36
Issue :
4
fYear :
1994
Firstpage :
25
Lastpage :
34
Abstract :
Designers of wireless-communications networks require detailed understanding of radio-propagation in complicated, multi-path channels. Unlike conventional cellular systems, emerging wireless personal-communication networks will most likely operate in confined, urban environments (microcells). The application of broad-band-digital modulation to these networks requires careful consideration of the dispersive nature of the urban radio channel. This paper presents a ray-tracing simulation technique which incorporates site-specific environmental data, such as the location, the orientation, and the electrical properties of buildings, to predict path loss and delay spread in urban microcells. Using simplified geometric-optics assumptions, rays are traced in three dimensions. This determines the paths by which direct, specularly reflected and transmitted, diffusely scattered, and diffracted rays arrive at a receiver. The received rays are combined noncoherently as a function of delay, to estimate the channel power-delay profile. The power-delay profile is used for verification of model accuracy, via qualitative and statistical comparisons of measured and predicted data, for receiver locations on the Virginia Tech campus. The comparisons conclusively show the simulation´s ability to accurately model urban microcellular propagation.<>
Keywords :
cellular radio; delays; personal communication networks; radio receivers; radiowave propagation; ray tracing; telecommunication channels; Virginia Tech campus; broadband digital modulation; buildings; channel propagation prediction; delay spread; electrical properties; environmental data; geometric-optics; measured data; microcellular radio; model accuracy; path loss; power-delay profile; predicted data; radio propagation; ray-tracing simulation; receiver locations; urban environments; urban microcells; urban radio channel; wireless personal communication networks; Base stations; Buildings; Cellular networks; Delay estimation; Dispersion; Microcell networks; Personal communication networks; Predictive models; Propagation losses; Ray tracing;
fLanguage :
English
Journal_Title :
Antennas and Propagation Magazine, IEEE
Publisher :
ieee
ISSN :
1045-9243
Type :
jour
DOI :
10.1109/74.317764
Filename :
317764
Link To Document :
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