Title :
Finite Diversity Multiplexing Tradeoff Over Spatially Correlated Channels
Author :
Rezki, Z. ; Cotruta, B. ; Haccoun, David ; Gagnon, François
Author_Institution :
Ecole Polytech. de Montreal, Montreal, QC
Abstract :
We present a tight lower bound on the outage probability of a spatially correlated multielement antenna (MEA) channel. Using this lower bound, an accurate flnite-SNR estimate of the diversity-multiplexing tradeoff over a spatially correlated Rayleigh fading channel is derived. This estimate allows gaining insight on the impact of spatial correlation on the diversity-multiplexing tradeoff at finite SNR. As expected, the diversity multiplexing tradeoff is severely degraded as the spatial correlation increases. For example, a MIMO system operating at a transmission rate of R = rlog2(1+ g ldr eta) bps/Hz, where r is the multiplexing gain, g is the array gain and eta is the SNR at each receive antenna, and an SNR of 5 dB in a moderately correlated channel, achieves a better diversity gain than a system operating at an SNR of 10 dB in a highly correlated channel, when r ges 0.8. Another interesting point is that the maximum diversity gain is unaffected by the correlation, provided that the spatial channel correlation matrix is of full rank.
Keywords :
Rayleigh channels; antenna arrays; correlation methods; diversity reception; matrix algebra; multiplexing; probability; MIMO system; Rayleigh fading channel; correlation matrix; finite diversity multiplexing tradeoff; flnite-SNR estimate; outage probability; spatially correlated multielement antenna channels; Antenna arrays; Degradation; Diversity methods; Fading; MIMO; Performance gain; Rayleigh channels; Receiving antennas; Transmitters; Transmitting antennas;
Conference_Titel :
Vehicular Technology Conference, 2006. VTC-2006 Fall. 2006 IEEE 64th
Conference_Location :
Montreal, Que.
Print_ISBN :
1-4244-0062-7
Electronic_ISBN :
1-4244-0063-5
DOI :
10.1109/VTCF.2006.111