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Recursive identification of errors-in-variables Wiener systems
Authors:Bi-Qiang Mu  Han-Fu Chen
Affiliation:Key Laboratory of Systems and Control, Institute of Systems Science, Academy of Mathematics and Systems Science, Chinese Academy of Sciences, Beijing, China
Abstract:This paper considers the recursive identification of errors-in-variables (EIV) Wiener systems composed of a linear dynamic system followed by a static nonlinearity. Both the system input and output are observed with additive noises being ARMA processes with unknown coefficients. By a stochastic approximation incorporated with the deconvolution kernel functions, the recursive algorithms are proposed for estimating the coefficients of the linear subsystem and for the values of the nonlinear function. All the estimates are proved to converge to the true values with probability one. A simulation example is given to verify the theoretical analysis.
Keywords:Wiener systems  Errors-in-variables  Stochastic approximation  Recursive estimation  αα-mixing" target="_blank">gif" overflow="scroll">α-mixing  Strong consistency
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