DocumentCode :
581688
Title :
A novel second-order DFP-based volterra filter and its applications to chaotic time series prediction
Author :
Yumei, Zhang ; Shulin, Bai ; Ping, Chen ; Shiru, Qu
Author_Institution :
Dept. of Autom. Control, Northwestern Polytech. Univ., Xi´´an, China
fYear :
2012
fDate :
25-27 July 2012
Firstpage :
1036
Lastpage :
1039
Abstract :
A novel adaptive second-order Volterra filter based on Davidon-Fletcher-Powell (DFPSOVF) technique has been proposed. Recursive update formula of the inverse estimate of auto-correlation matrix in the DFPSOVF filter is presented. In order to avoid some problems caused by using LMS, NLMS or RLS algorithms, a variable convergence factor based on a posteriori error assumption, which can change with input signal changes in real time, is employed. Simulations, which apply the DFPSOVF filter to single step predictions for Rössler chaotic series and compare its results with those using LMS and NLMS algorithms to SOVF filter, respectively, illustrate that the proposed filter can always guarantee its stability and convergence and there haven´t divergence problems caused by selecting inappropriate parameters with LMS and NLMS algorithms. Key Words: Volterra filter, Davidon-Fletcher-Powell, chaotic time series, prediction, variable convergence factor.
Keywords :
adaptive filters; approximation theory; chaos; convergence; matrix algebra; nonlinear filters; recursive filters; time series; DFPSOVF filter; DFPSOVF technique; Davidon-Fletcher-Powell technique; LMS algorithms; NLMS algorithms; RLS algorithms; Rössler chaotic series; SOVF filter; adaptive second-order DFP-based Volterra filter; autocorrelation matrix; chaotic time series prediction; convergence; divergence problems; inverse estimation; posteriori error assumption; recursive update formula; variable convergence factor; Adaptive filters; Convergence; Filtering algorithms; Least squares approximation; Prediction algorithms; Signal processing algorithms; Time series analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2012 31st Chinese
Conference_Location :
Hefei
ISSN :
1934-1768
Print_ISBN :
978-1-4673-2581-3
Type :
conf
Filename :
6390076
Link To Document :
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