DocumentCode
401129
Title
UWB multipath channel model based on time-domain UTD technique
Author
Yao, Richard ; Gao, Grace ; Chen, Zhengqi ; Zhu, Wenwu
Author_Institution
Microsoft Res., Asia, Beijing, China
Volume
3
fYear
2003
fDate
1-5 Dec. 2003
Firstpage
1205
Abstract
In this paper, we develop a deterministic UWB multipath channel model based on time-domain uniform geometrical theory of diffraction (TD-UTD) technique. The solution includes the three basic ray mechanisms of geometrical optics (GO) and UTD, i.e., directed ray, multireflected rays from lossy surfaces, and diffracted ray from lossy edge. Since the analysis is conducted in time-domain electromagnetic field, unlike statistical model, the approach for UWB channel model can determine not only signal attenuation, but also waveform distortion in terms of pulse shape and pulse duration when the UWB signal propagates in multipath environments. Here, a generic impulse response model by taking into account channel impulse response as well as transmitter and receiver antenna impulse responses is given. Then, the analytical description of time-domain single reflected ray and reflection coefficients of horizontal polarization and vertical polarization is provided. The time-domain multiple reflected rays are expressed by the convolution of individual reflection coefficient from lossy surfaces with different electromagnetic properties. The time-domain diffraction ray is described as time-domain diffraction coefficients and reflection coefficient. Finally, the simulation results in a typical office room are presented.
Keywords
electromagnetic fields; electromagnetic pulse; electromagnetic wave polarisation; electromagnetic wave propagation; electromagnetic wave reflection; geometrical optics; geometrical theory of diffraction; multipath channels; receiving antennas; time-domain analysis; transient response; transmitting antennas; UTD; UWB multipath channel model; UWB signal propagation; channel impulse response; convolution; diffracted ray; directed ray; electromagnetic property; generic impulse response model; geometrical optics; lossy surface; multireflected ray; polarization; pulse duration; pulse shaping; receiver antenna; reflection coefficient; signal attenuation; time-domain diffraction coefficient; time-domain electromagnetic field; time-domain single reflected ray; transmitter antenna; uniform geometrical theory of diffraction; waveform distortion; Electromagnetic diffraction; Electromagnetic modeling; Electromagnetic reflection; Electromagnetic transients; Electromagnetic wave polarization; Multipath channels; Optical losses; Optical reflection; Optical surface waves; Time domain analysis;
fLanguage
English
Publisher
ieee
Conference_Titel
Global Telecommunications Conference, 2003. GLOBECOM '03. IEEE
Print_ISBN
0-7803-7974-8
Type
conf
DOI
10.1109/GLOCOM.2003.1258430
Filename
1258430
Link To Document