Title of article :
Identification of Hammerstein–Wiener models
Author/Authors :
Wills، نويسنده , , Adrian and Schِn، نويسنده , , Thomas B. and Ljung، نويسنده , , Lennart and Ninness، نويسنده , , Brett، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2013
Pages :
12
From page :
70
To page :
81
Abstract :
This paper develops and illustrates a new maximum-likelihood based method for the identification of Hammerstein–Wiener model structures. A central aspect is that a very general situation is considered wherein multivariable data, non-invertible Hammerstein and Wiener nonlinearities, and colored stochastic disturbances both before and after the Wiener nonlinearity are all catered for. The method developed here addresses the blind Wiener estimation problem as a special case.
Keywords :
System identification , Hammerstein , Wiener , Block-oriented models , nonlinear models , dynamic systems , Smoothing , Monte Carlo Method , Expectation maximization algorithm , particle methods , Maximum likelihood
Journal title :
Automatica
Serial Year :
2013
Journal title :
Automatica
Record number :
1448967
Link To Document :
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