DocumentCode :
811384
Title :
Wideband Power Modeling and Time Dispersion Analysis for UWB Indoor Off-Body Communications
Author :
Goulianos, Angelos A. ; Brown, Tim W C ; Evans, Barry G. ; Stavrou, Stavros
Author_Institution :
Centre for Commun. Syst. Res. (CCSR), Univ. of Surrey, Guildford, UK
Volume :
57
Issue :
7
fYear :
2009
fDate :
7/1/2009 12:00:00 AM
Firstpage :
2162
Lastpage :
2171
Abstract :
A statistical model for ultrawideband (UWB) off-body communication channels is proposed. The presented results are the outcome of extensive real-body measurements carried out in the frequency range between 3.5 and 6.5 GHz in typical indoor environments. The signal power gain is modeled by a log-linear dual-breakpoint model, the parameters of which depend on both the body orientation as well as the distance between the transmitter and the on-body sensor. The general trend implies that in large distances, the received signal strength is less sensitive to changes in the body orientation angle, especially if propagation occurs in dense multipath environments. Furthermore, the small-scale channel variations of the total received signal strength are found to follow a normal distribution. This fact was verified by means of the central limit theorem (CLT), since correlation between multipath components is found to be negligible. Moreover, time dispersion analysis is provided by means of RMS delay spread. Finally, based on the newly estimated parameters, a model implementation for wideband power is proposed and several comparisons between the empirical data and the simulation results are presented.
Keywords :
body area networks; indoor radio; normal distribution; statistical analysis; ultra wideband communication; wireless channels; UWB indoor off-body communication channels; central limit theorem; dense multipath environments; log-linear dual-breakpoint model; normal distribution; small-scale channel variations; statistical model; time dispersion analysis; wideband power modeling; Bandwidth; Body sensor networks; Communication channels; Frequency measurement; Gaussian distribution; Indoor environments; Narrowband; Scattering; Transmitters; Ultra wideband technology; Wireless sensor networks; Body to access point (BAP) channel; total power gain; ultrawideband (UWB); wireless body area networks (WBAN);
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2009.2021928
Filename :
4908945
Link To Document :
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