DocumentCode :
3243861
Title :
Recursive orthogonal least squares method and its application in non-linear adaptive filtering
Author :
Chang, Shue-Lee ; Ogunfunmi, Tokunbo
Author_Institution :
Dept. of Electr. Eng., Santa Clara Univ., CA, USA
Volume :
3
fYear :
1997
fDate :
2-5 Nov 1997
Firstpage :
1392
Abstract :
An OLS (orthogonal least squares) algorithm which efficiently combines structure and parameter estimation has been studied and applied to system identification for general NARMAX (nonlinear autoregressive moving average with exogenous input) stochastic systems by Chen et al. (1989). Based on QR decomposition, we present here how the OLS algorithm can be implemented recursively for general nonlinear stochastic systems. In such a way, the computation procedure can be performed in real time theoretically and save huge amounts of memory usage. Also because of the numerical stability of QR decomposition, we can expect to achieve good numerical performance. Volterra adaptive filtering is implemented to verify the algorithm. The results of computer simulation for two cases are shown. This algorithm may also be applied to other nonlinear signal processing problems
Keywords :
adaptive filters; autoregressive moving average processes; least squares approximations; nonlinear filters; recursive estimation; recursive filters; OLS; QR decomposition; Volterra adaptive filtering; general NARMAX stochastic systems; general nonlinear stochastic systems; nonlinear adaptive filtering; nonlinear autoregressive moving average with exogenous input; nonlinear signal processing problems; numerical stability; recursive orthogonal least squares method; Adaptive filters; Computer simulation; Filtering algorithms; Least squares approximation; Least squares methods; Numerical stability; Parameter estimation; Signal processing algorithms; Stochastic systems; System identification;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
MILCOM 97 Proceedings
Conference_Location :
Monterey, CA
Print_ISBN :
0-7803-4249-6
Type :
conf
DOI :
10.1109/MILCOM.1997.644996
Filename :
644996
Link To Document :
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