DocumentCode
67587
Title
Delay-Dependent Doppler Probability Density Functions for Vehicle-to-Vehicle Scatter Channels
Author
Walter, Michael ; Shutin, Dmitriy ; Fiebig, Uwe-Carsten
Author_Institution
German Aerosp. Center (DLR), Inst. of Commun. & Navig., Wessling, Germany
Volume
62
Issue
4
fYear
2014
fDate
Apr-14
Firstpage
2238
Lastpage
2249
Abstract
Novel joint delay Doppler probability density functions for vehicle-to-vehicle communications channels are introduced. Prior measurements of vehicle-to-vehicle channels have unveiled their nonstationarity; thus, the wide-sense stationary and also the uncorrelated scattering assumption for such channels is often violated, which makes their modeling challenging. In this work it is proposed to exploit geometry-based stochastic modeling to cope with the nonstationarity of vehicle-to-vehicle channels. To this end, delay-dependent Doppler pdfs are derived for arbitrary times. It is assumed that scatterers are randomly distributed on an ellipse with two moving vehicles being in its foci. The proposed approach allows reducing the dimensionality of the resulting problem. This in turn leads to a significantly simplified derivation of the delay-dependent Doppler pdfs for general vehicle-to-vehicle propagation environments; moreover, the resulting computations can be performed almost fully analytically. By combining the calculated Doppler pdf with a delay pdf, the joint pdf of delay and Doppler is obtained. The joint pdf then can be put into relation with the generalized local scattering function. The presented modeling approach is simple yet very scalable and accurate, which allows its application in different vehicular scenarios. The obtained modeling results correspond very well with measurement data reported in prior works.
Keywords
Doppler effect; electromagnetic wave propagation; electromagnetic wave scattering; probability; arbitrary times; delay-dependent Doppler probability density functions; generalized local scattering function; geometry-based stochastic modeling; moving vehicles; uncorrelated scattering; vehicle-to-vehicle communications channels; vehicle-to-vehicle propagation; vehicle-to-vehicle scatter channels; vehicular scenarios; wide-sense stationary; Delays; Doppler effect; Joints; Receivers; Scattering; Transmitters; Vehicles; Geometric-stochastic channel modeling; nonstationary modeling; scatter channel; vehicle-to-vehicle channel; wideband channel model;
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2014.2301432
Filename
6716968
Link To Document