DocumentCode
1521581
Title
Blind channel equalization with colored sources based on second-order statistics: a linear prediction approach
Author
López-Valcarce, Roberto ; Dasgupta, Soura
Author_Institution
Dept. of Electr. & Comput. Eng., Iowa Univ., Iowa City, IA, USA
Volume
49
Issue
9
fYear
2001
fDate
9/1/2001 12:00:00 AM
Firstpage
2050
Lastpage
2059
Abstract
We consider the blind equalization and estimation of single-user, multichannel models from the second-order statistics of the channel output when the channel input statistics are colored but known. By exploiting certain results from linear prediction theory, we generalize the algorithm of Tong et al. (1994), which was derived under the assumption of a white transmitted sequence. In particular, we show that all one needs to estimate the channel to within an unitary scaling constant, and thus to find its equalizers, is (a) that a standard channel matrix have full column rank, and (b) a vector of the input signal and its delays have positive definite lag zero autocorrelation. An algorithm is provided to determine the equalizer under these conditions. We argue that because this algorithm makes explicit use of the input statistics, the equalizers thus obtained should outperform those obtained by other methods that neither require, nor exploit, the knowledge of the input statistics. Simulation results are provided to verify this fact
Keywords
blind equalisers; correlation methods; delays; matrix algebra; multiuser channels; parameter estimation; prediction theory; statistical analysis; ISI; blind channel equalization; blind channel estimation; channel input statistics; channel output; colored sources; delays; full column rank matrix; generalized algorithm; input signal vector; intersymbol interference; linear prediction theory; multichannel models; positive definite lag zero autocorrelation; second-order statistics; simulation results; single-user model; standard channel matrix; unitary scaling constant; white transmitted sequence; Autocorrelation; Blind equalizers; Channel estimation; Cities and towns; Delay estimation; Digital communication; Finite impulse response filter; Prediction theory; Predictive models; Statistics;
fLanguage
English
Journal_Title
Signal Processing, IEEE Transactions on
Publisher
ieee
ISSN
1053-587X
Type
jour
DOI
10.1109/78.942633
Filename
942633
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