DocumentCode :
2959478
Title :
Volterra kernels identification using higher order moments for different input signals
Author :
Cherif, Imen ; Abid, Sabeur ; Fnaiech, Farhat ; Favier, GCrard
Author_Institution :
Centre de Recherche en Productique, ESSTT, Tunisia
fYear :
2004
fDate :
21-24 March 2004
Firstpage :
845
Lastpage :
848
Abstract :
This paper deals with a comparison analysis between a couples of Volterra kernels identification algorithms, namely an iterative algorithm (IA) of Tummala (May,1991) and a cubic i.i.d (C.i.i.d) algorithm proposed by Tseng et al. (July, 1995). The input signal is chosen to be an i.i.d. signal. The comparison analysis is performed using a Monte Carlo test showing that the Cubic i.i.d. algorithm is superior in terms of accurate estimation despite the outliers encountered for some input signal realizations. Moreover, the (IA) may handle other type of input signals such as non Gaussian independent input and Gaussian signal.
Keywords :
Monte Carlo methods; identification; iterative methods; signal processing; Gaussian independent input; Gaussian signal; Monte Carlo test; Volterra kernels identification; iterative algorithm; Algorithm design and analysis; Covariance matrix; Iterative algorithms; Kernel; Matrices; Monte Carlo methods; Nonlinear equations; Nonlinear systems; Signal processing; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control, Communications and Signal Processing, 2004. First International Symposium on
Print_ISBN :
0-7803-8379-6
Type :
conf
DOI :
10.1109/ISCCSP.2004.1296578
Filename :
1296578
Link To Document :
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