Title :
Spatial multiplexing in correlated fading via the virtual channel representation
Author :
Hong, Zhihong ; Liu, Ke ; Heath, Robert W., Jr. ; Sayeed, Akbar M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Wisconsin-Madison, Madison, WI, USA
fDate :
6/1/2003 12:00:00 AM
Abstract :
Spatial multiplexing techniques send independent data streams on different transmit antennas to maximally exploit the capacity of multiple-input multiple-output (MIMO) fading channels. Most existing multiplexing techniques are based on an idealized MIMO channel model representing a rich scattering environment. Realistic channels corresponding to scattering clusters exhibit correlated fading and can significantly compromise the performance of such techniques. In this paper, we study the design and performance of spatial multiplexing techniques based on a virtual representation of realistic MIMO fading channels. Since the nonvanishing elements of the virtual channel matrix are uncorrelated, they capture the essential degrees of freedom in the channel and provide a simple characterization of channel statistics. In particular, the pairwise-error probability (PEP) analysis for correlated channels is greatly simplified in the virtual representation. Using the PEP analysis, various precoding schemes are introduced to improve performance in virtual channels. Unitary precoding is proposed to provide robustness to unknown channel statistics. Nonunitary precoding techniques are proposed to exploit channel structure when channel statistics are known at the transmitter. Numerical results are presented to illustrate the attractive performance of the precoding techniques.
Keywords :
MIMO systems; channel capacity; correlation theory; eigenvalues and eigenfunctions; fading channels; multiplexing; probability; transmitting antennas; PEP analysis; capacity; channel statistics; channel structure; correlated fading; idealized MIMO channel model; independent data streams; multiple-input multiple-output fading channels; nonvanishing elements; pairwise-error probability; precoding schemes; rich scattering environment; robustness; spatial multiplexing; transmit antennas; unitary precoding; unknown channel statistics; virtual channel matrix; virtual channel representation; virtual representation; Antennas and propagation; Channel capacity; Fading; MIMO; Performance analysis; Probability; Scattering; Statistics; Transmitters; Transmitting antennas;
Journal_Title :
Selected Areas in Communications, IEEE Journal on
DOI :
10.1109/JSAC.2003.810361