Title :
On a whitening approach to partial channel estimation and blind equalization of FIR/IIR multiple-input multiple-output channels
Author :
Tugnait, Jitendra K. ; Huang, Bin
Author_Institution :
Dept. of Electr. & Comput. Eng., Auburn Univ., AL, USA
fDate :
3/1/2000 12:00:00 AM
Abstract :
Channel estimation and blind equalization of multiple-input multiple-output (MIMO) communications channels is considered using primarily the second-order statistics of the data. Such models arise when a single receiver data from multiple sources is fractionally sampled (assuming that there is excess bandwidth) or when an antenna array is used with or without fractional sampling. We consider estimation of (partial) channel impulse response and design of finite-length minimum mean-square error (MMSE) blind equalizers. The basis of the approach is the design of a zero-forcing equalizer that whitens the noise-free data. We allow infinite impulse response (IIR) channels. Moreover, the multichannel transfer function need not be column reduced. Our approaches also work when the “subchannel” transfer functions have common zeros as long as the common zeros are minimum-phase zeros. The channel length or model orders need not be known. The sources are recovered up to a unitary mixing matrix and are further “unmixed” using higher order statistics of the data. A linear prediction approach is also considered under the above conditions of possibly IIR channels, common subchannel zeros/factors, and not-necessarily column reduced channels. Four illustrative simulation examples are provided
Keywords :
MIMO systems; blind equalisers; higher order statistics; least mean squares methods; matrix algebra; multipath channels; parameter estimation; poles and zeros; prediction theory; signal sampling; transfer functions; transient response; FIR/IIR MIMO channels; IIR channels; antenna array; bandwidth; blind equalization; channel impulse response; channel length; common subchannel zeros/factors; common zeros; finite-length MMSE blind equalizers; fractional sampling; higher order statistics; infinite impulse response channels; linear prediction; minimum mean-square error; minimum-phase zeros; model orders; multichannel transfer function; multipath radio channel; multiple sources; multiple-input multiple-output channels; noise-free data; partial channel estimation; receiver data; second-order statistics; simulation; source recovery; subchannel transfer functions; unitary mixing matrix; whitening approach; zero-forcing equalizer; Antenna arrays; Bandwidth; Blind equalizers; Channel estimation; Communication channels; MIMO; Receiving antennas; Sampling methods; Statistics; Transfer functions;
Journal_Title :
Signal Processing, IEEE Transactions on