Title :
A novel and efficient hybrid model of radio multipath-fading channels in indoor environments
Author :
Tarng, J.H. ; Liu, Wen-Shun ; Huang, Yeh-Fong ; Huang, Jiunn-Ming
Author_Institution :
Dept. of Commun. Eng., Nat. Chiao Tung Univ., Hsin-Chu, Taiwan
fDate :
3/1/2003 12:00:00 AM
Abstract :
Presents a novel and efficient hybrid model combining a two-dimensional (2-D) site-specific model and a statistical model to characterize multipath fading in indoor environments. The site-specific model describes the propagation effects of interior walls and building walls. The latter model characterizes the effect of scattering due to rough surface boundaries and/or randomly positioned scatterers such as furniture and personnel, which significantly affects small-scale fading. The hybrid model is computationally efficient since only the 2-D site-specific model is needed. In addition to accurately predicting mean field strength, the model can effectively quantify the relative mean contribution of diffused scattering with a factor r. The factor is also an effective index to quantify the cluttering strength of the propagation environment: 1) light-cluttering situation r≤0.35 and 2) heavycluttering situation r≥0.65. Some blind tests validate the effectiveness of the model. A large amount of experimental data for 2.44-GHz radio at many different sites shows that a Nakagami distribution describes the fading distribution well.
Keywords :
UHF radio propagation; clutter; electromagnetic wave scattering; fading channels; indoor radio; multipath channels; rough surfaces; 2.44 GHz; 2D site-specific model; Nakagami distribution; building walls; cluttering strength; furniture; heavy-cluttering situation; hybrid model; indoor environments; interior walls; light-cluttering situation; mean field strength; personnel; propagation effects; radio multipath-fading channels; randomly positioned scatterers; relative mean contribution; rough surface boundaries; statistical model; Computational modeling; Fading; Indoor environments; Light scattering; Optical propagation; Personnel; Predictive models; Rough surfaces; Surface roughness; Two dimensional displays;
Journal_Title :
Antennas and Propagation, IEEE Transactions on
DOI :
10.1109/TAP.2003.809822