Title :
Deconstructing multiantenna fading channels
Author :
Sayeed, Akbar M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
fDate :
10/1/2002 12:00:00 AM
Abstract :
Accurate and tractable channel modeling is critical to realizing the full potential of antenna arrays in wireless communications. Current approaches represent two extremes: idealized statistical models representing a rich scattering environment and parameterized physical models that describe realistic scattering environments via the angles and gains associated with different propagation paths. However, simple rules that capture the effects of scattering characteristics on channel capacity and diversity are difficult to infer from existing models. We propose an intermediate virtual channel representation that captures the essence of physical modeling and provides a simple geometric interpretation of the scattering environment. The virtual representation corresponds to a fixed coordinate transformation via spatial basis functions defined by fixed virtual angles. We show that in an uncorrelated scattering environment, the elements of the channel matrix form a segment of a stationary process and that the virtual channel coefficients are approximately uncorrelated samples of the underlying spectral representation. For any scattering environment, the virtual channel matrix clearly reveals the two key factors affecting capacity: the number of parallel channels and the level of diversity. The concepts of spatial zooming and aliasing are introduced to provide a transparent interpretation of the effect of antenna spacing on channel statistics and capacity. Numerical results are presented to illustrate various aspects of the virtual framework.
Keywords :
channel capacity; electromagnetic wave scattering; fading channels; linear antenna arrays; multipath channels; radiowave propagation; statistical analysis; aliasing; antenna arrays; antenna spacing; channel capacity; channel matrix elements; channel modeling; channel statistics; diversity; fixed coordinate transformation; fixed virtual angles; geometric interpretation; idealized statistical models; multiantenna fading channels deconstruction; multipath channel; parallel channels; parameterized physical models; physical modeling; propagation paths; scattering characteristics; scattering environments; spatial basis functions; spatial zooming; spectral representation; stationary process; uncorrelated samples; uncorrelated scattering environment; uniform linear antenna arrays; virtual channel coefficients; virtual channel matrix; virtual channel representation; wireless communications; Antenna arrays; Antennas and propagation; Channel capacity; Fading; MIMO; Receiving antennas; Scattering parameters; Solid modeling; Statistics; Wireless communication;
Journal_Title :
Signal Processing, IEEE Transactions on
DOI :
10.1109/TSP.2002.803324