Author :
Zhang, Bijun ; Zhu, Guangxi ; Liu, Wenming ; He, Yejun
Abstract :
Most existing space-time block code (STBC) schemes have been developed based on the assumption that the channels are independently identically distributed (i.i.d.) and show quasi-static fading (QSF). However, realistic wireless channels are either spatially correlated fading (SCF), determined by various physical parameters, e.g., antenna spacing, antenna arrangement, angle spread, angle of arrival, etc., or time-selective fading (TSF), caused by Doppler shifts. We propose a hybrid-model (HM), which combines a first-order autoregression model (ARM), to model the flat TSF Rayleigh channel, with an exponential correlation model (ECM), to model the SCF channel. Based on the HM and the decoder proposed by T.A. Tran and A.B. Sesay (see IEEE Trans. Wireless Commun., vol.3, p.855-64, 2004), we derive the theoretical bit error probability (BEP) of the scheme. Finally, analytical and simulation results are presented to verify the validity of our HM and arrive at a useful conclusion: high SCF dominates the performance loss when the TSF is small, whereas large TSF contributes to the performance loss whatever degree SCF is.
Keywords :
Doppler shift; Rayleigh channels; autoregressive processes; block codes; correlation methods; error statistics; space-time codes; Doppler shifts; Rayleigh channel; STBC; angle of arrival; angle spread; antenna spacing; bit error probability; exponential correlation model; first-order autoregression model; quasistatic fading; space-time block code; space-time code; spatially correlated fading channels; time-selective fading channels; Analytical models; Block codes; Decoding; Doppler shift; Electrochemical machining; Error probability; Fading; Performance analysis; Performance loss; Rayleigh channels;