DocumentCode :
786833
Title :
Fast adaptive algorithms for multichannel filtering and system identification
Author :
Glentis, George-Othon A. ; Kalouptsidis, Nicholas
Author_Institution :
Dept. of Inf., Athens Univ., Greece
Volume :
40
Issue :
10
fYear :
1992
fDate :
10/1/1992 12:00:00 AM
Firstpage :
2433
Lastpage :
2458
Abstract :
Fast transversal and lattice least squares algorithms for adaptive multichannel filtering and system identification are developed. Models with different orders for input and output channels are allowed. Four topics are considered: multichannel FIR filtering, rational IIR filtering, ARX multichannel system identification, and general linear system identification possessing a certain shift invariance structure. The resulting algorithms can be viewed as fast realizations of the recursive prediction error algorithm. Computational complexity is then reduced by an order of magnitude as compared to standard recursive least squares and stochastic Gauss-Newton methods. The proposed transversal and lattice algorithms rely on suitable order step-up-step-down updating procedures for the computation of the Kalman gain. Stabilizing feedback for the control of numerical errors together with long run simulations are included
Keywords :
adaptive filters; digital filters; filtering and prediction theory; identification; least squares approximations; linear systems; multivariable systems; ARX multichannel system identification; FIR filtering; Kalman gain; adaptive multichannel filtering; computational complexity; fast transversal adaptive algorithms; general linear system identification; input channels; lattice least squares algorithms; long run simulations; numerical error control; order step-up-step-down updating; output channels; rational IIR filtering; recursive prediction error algorithm; shift invariance structure; Adaptive algorithm; Adaptive filters; Filtering; Finite impulse response filter; IIR filters; Lattices; Least squares methods; Nonlinear filters; System identification; Transversal filters;
fLanguage :
English
Journal_Title :
Signal Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1053-587X
Type :
jour
DOI :
10.1109/78.157288
Filename :
157288
Link To Document :
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