DocumentCode :
383890
Title :
Applicability of rough surface scattering to 3D radio planning
Author :
Pettersen, Magne ; Stette, Gunnar ; Noll, Josef
Author_Institution :
Telenor R&D, Fornebu, Norway
Volume :
1
fYear :
2002
fDate :
15-18 Sept. 2002
Firstpage :
468
Abstract :
A demonstration 3D channel prediction model was used in example scenarios in hilly terrain and undulating rural terrain. The model is comprised of a 2D vertical Tx-Rx-plane component as well as 3D components due to off-axis scattering. The latter components are found using rough surface scattering estimation. In the implementation a novel high performance scattering model called the amplitude/phase model was used. It was shown than when the vertical plane 2D prediction was attenuated more than typically 15 dB compared to free space a 3D channel model is necessary. This value was exceeded in approximately 40% of the coverage area in the hilly terrain, and in about 15% of the area in undulating rural. This leads to the conclusion that in a hilly terrain traditional 2D models are not sufficient. When the 3D components were dominating the distribution was approximately Rayleigh, with a typical difference between the 5 and 95 percentiles in the distribution of more than 15 dB. Weather and seasonal variation may change the mean received signal level by up to 4-5 dB. An erroneous assumption about the permittivity or surface roughness by a factor of two could change the mean of the received radio signal by up to 10 dB.
Keywords :
Rayleigh channels; electromagnetic wave scattering; land mobile radio; meteorology; parameter estimation; permittivity; radio networks; radiowave propagation; rough surfaces; surface scattering; telecommunication network planning; 2D vertical Tx-Rx-plane component; 3D channel prediction model; 3D radio planning; Rayleigh distribution; amplitude/phase model; coverage area; high performance scattering model; hilly terrain; mean received signal level; mobile radio communications; off-axis scattering; permittivity; radiowave propagation; rough surface scattering estimation; seasonal variation; undulating rural terrain; vertical plane 2D prediction; weather variation; Amplitude estimation; Electromagnetic scattering; Phase estimation; Predictive models; Radar scattering; Rayleigh scattering; Research and development; Rough surfaces; Surface roughness; Weather forecasting;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Personal, Indoor and Mobile Radio Communications, 2002. The 13th IEEE International Symposium on
Print_ISBN :
0-7803-7589-0
Type :
conf
DOI :
10.1109/PIMRC.2002.1046745
Filename :
1046745
Link To Document :
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