Title :
Modelling of MIMO vehicle-to-vehicle fading channels in T-junction scattering environments
Author :
Zhiyi, He ; Wei, Chen ; Wei, Zhou ; Pätzold, Matthias ; Chelli, Ali
Author_Institution :
Sch. of Inf. Eng., WuHan Univ. of Technol., Wuhan
Abstract :
In this paper, a new wideband multiple-input multiple-output (MIMO) fading channel model for vehicle-to-vehicle (V2V) communications is proposed. The MIMO V2V channel model, called for brevity T-model, captures the propagation effects that occur if vehicles move towards a junction with a side road and corner buildings. The starting point for the derivation of the T-model is a new geometric T-junction scattering model, where both single- and double-bounce scattering mechanisms are assumed. Our geometry-based channel model takes into account the exact relationship between the angle-of-arrival (AOA) and the angle-of-departure (AOD). The statistical properties of the T-model are studied under the assumption of non-isotropic scattering. An analytical solution is provided for the space-time-frequency cross-correlation function (STF-CCF) from which several other important characteristic quantities like the temporal autocorrelation function (ACF) can directly be obtained. The achieved theoretical results are illustrated for a typical T-junction propagation scenario. This research work provides designers of MIMO V2V communication systems an important tool in form of a wideband spatial channel model enabling the performance analysis of new high data rate transmission schemes under propagation conditions occurring at T-junctions.
Keywords :
MIMO communication; broadband networks; correlation methods; direction-of-arrival estimation; electromagnetic wave scattering; fading channels; mobile radio; radiowave propagation; statistical analysis; MIMO V2V channel model; angle-of-arrival estimation; angle-of-departure estimation; brevity T-model; double-bounce scattering mechanism; geometric T-junction scattering environment; geometry-based channel model; high-data rate transmission scheme; nonisotropic scattering; single-bounce scattering mechanism; space-time-frequency cross-correlation function; statistical properties; vehicle-to-vehicle fading channel; wideband multiple-input multiple-output model; wideband spatial channel model; Automotive engineering; Communication systems; Context modeling; Fading; Intelligent transportation systems; MIMO; Mobile communication; Scattering; Solid modeling; Wideband;
Conference_Titel :
Antennas and Propagation, 2009. EuCAP 2009. 3rd European Conference on
Conference_Location :
Berlin
Print_ISBN :
978-1-4244-4753-4
Electronic_ISBN :
978-3-00-024573-2