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Gradient based iterative parameter identification for Wiener nonlinear systems
Authors:Lincheng Zhou  Xiangli Li  Feng Pan
Affiliation:Key Laboratory of Advanced Process Control for Light Industry (Ministry of Education), Jiangnan University, Wuxi 214122, PR China
Abstract:
This paper focuses on the identification problem of Wiener nonlinear output error systems. The application of the key-term decomposition technique provides a special form of the Wiener model with polynomials, where all the model parameters to be estimated are separated. To solve the identification problem of Wiener nonlinear output error systems with the unmeasurable variables in the information vector, an auxiliary model-based gradient iterative algorithm is presented by replacing the unmeasurable variables with their corresponding iterative estimates. The performances of the proposed algorithm are analyzed and compared by using numerical examples.
Keywords:Wiener model  Gradient search  Key-term decomposition  Parameter estimates  Auxiliary model identification
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