Title :
A discrete-time model for triply selective MIMO Rayleigh fading channels
Author :
Xiao, Chengshan ; Wu, Jingxian ; Leong, Sang-Yick ; Zheng, Yahong Rosa ; Letaief, Khaled
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Missouri, Columbia, MO, USA
Abstract :
A statistical discrete-time model is proposed for simulating wideband multiple-input multiple-output (MIMO) fading channels which are triply selective due to angle spread, Doppler spread, and delay spread. The new discrete-time MIMO channel model includes the combined effects of the transmit filter, physical MIMO multipath channel fading, and receive filter, and it has the same sampling period as that of the MIMO receiver. This leads to very efficient simulation of physical continuous-time MIMO channels. A new method is also presented to efficiently generate the MIMO channel stochastic coefficients. The statistical accuracy of the discrete-time MIMO channel model is rigorously verified through theoretical analysis and extensive simulations in different conditions. The high computational efficiency of the discrete-time MIMO channel model is illustrated by comparing it to that of the continuous-time MIMO channel model. The new model is further employed to evaluate the channel capacity of MIMO systems in a triply selective Rayleigh fading environment. The simulation results reveal some interesting effects of spatial correlations, multipaths, and number of antennas on the MIMO channel capacity.
Keywords :
MIMO systems; Rayleigh channels; broadband networks; cellular radio; channel capacity; discrete time filters; multipath channels; radio receivers; signal sampling; statistical analysis; stochastic processes; Doppler spread; MIMO channel stochastic coefficient; MIMO receiver; channel capacity; continuous-time channel model; delay spread; multipath channel fading; receive filter; sampling period; statistical discrete-time model; transmit filter; triply selective MIMO Rayleigh fading channels; wideband multiple input multiple output; wireless cellular communication; Channel capacity; Computational modeling; Delay; Fading; Filters; MIMO; Multipath channels; Rayleigh channels; Sampling methods; Wideband; Discrete-time channel model; MIMO; Rayleigh fading; WSSUS; channel; multipath channel; multiple-input multiple-output; multiple-input multiple-output multipath channel capacity; triply selective fading; wide-sense stationary uncorrelated scattering;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2004.833444