Improved Initialization for Nonlinear State-Space Modeling

Anna Marconato, J. Sjoberg, Johan Suykens, Joannes Schoukens

Onderzoeksoutput: Articlepeer review

28 Citaten (Scopus)

Samenvatting

This paper discusses a novel initialization algorithm for the estimation of nonlinear state-space models. Good initial values for the model parameters are obtained by identifying separately the linear dynamics and the nonlinear terms in the model. In particular, the nonlinear dynamic problem is transformed into an approximate static formulation, and simple regression methods are applied to obtain the solution in a fast and efficient way. The proposed method is validated by means of two measurement examples: the Wiener-Hammerstein benchmark problem and the identification of a crystal detector.
Originele taal-2English
Pagina's (van-tot)972-980
Aantal pagina's9
TijdschriftIEEE Transactions on Instrumentation and Measurement
Volume63
StatusPublished - 1 apr. 2014

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