Title :
Attenuation over distance for indoor propagation topologies at 2.4 GHz
Author :
Chrysikos, Theofilos ; Georgopoulos, Giannis ; Kotsopoulos, Stavros
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Patras, Patras, Greece
fDate :
June 28 2011-July 1 2011
Abstract :
This work presents an analytical calculation and characterization of attenuation over distance. Based on the mathematical formula of the linear attenuation model, the attenuation over distance (in dB/m) was calculated for a set of indoor propagation topologies where extensive measurements have been performed in the context of wireless channel characterization for the 2.4 GHz frequency. Goodness-of-fit was performed in all cases to provide fitting distributions for the fluctuations of the attenuation over distance based on standard mathematical functions. Subsequent calculated values of attenuation over distance were compared to results derived from published works in other frequencies of interest. In addition, they were related to the topology characteristics and their impact on signal propagation and average path loss. Results confirm the significance of accurate knowledge of attenuation over distance for the wireless channel characterization for any given indoor propagation topology. Furthermore, the current topologies classification can be expanded on the basis of these results to provide more reliable recommendations for link budget parameters. This method can be applied to any frequency of interest as long as respective frequency-dependent losses are taken into consideration.
Keywords :
indoor radio; mathematical analysis; radio links; signal processing; telecommunication network topology; wireless channels; attenuation over distance; fitting distributions; frequency-dependent loss; indoor propagation topology; linear attenuation model; link budget parameters; signal propagation; wireless channel characterization; Airports; Attenuation; Attenuation measurement; Floors; Loss measurement; Polynomials; Topology; Attenuation over distance; Goodness-of-fit; Indoor propagation; Linear Attenuation Model; Path Loss; Topologies classification;
Conference_Titel :
Computers and Communications (ISCC), 2011 IEEE Symposium on
Conference_Location :
Kerkyra
Print_ISBN :
978-1-4577-0680-6
Electronic_ISBN :
1530-1346
DOI :
10.1109/ISCC.2011.5983799