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SIMPRA
2008

Identification of Wiener models using optimal local linear models

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Identification of Wiener models using optimal local linear models
The Wiener model is a versatile nonlinear block oriented model structure for miscellaneous applications. In this paper a method for identifying the parameters of such a model using optimal local linear models is presented. The linear model part is represented by a discretetime transfer function and the non-linear characteristic is represented by piece-wise linear functions. Parameter estimation as well as partitioning of the local linear models is simultaneously accomplished by the identification procedure. The optimality of the proposed algorithm is threefold: First, each local model is linear in the parameters and therefore optimal parameter estimation methods like Recursive Least-Squares can be applied, thus leading to a robust solution. Second, the region of validity of each local model is adaptively optimized using the Chi-squared distribution of the estimated residual. This approach not only enables an automatic choice of the model size but it also incorporates the measurement n...
Martin Kozek, Sabina Sinanovic
Added 15 Dec 2010
Updated 15 Dec 2010
Type Journal
Year 2008
Where SIMPRA
Authors Martin Kozek, Sabina Sinanovic
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