Nonlinear Modeling: Advanced Black-Box Techniques, (9781461376118) — Readings Books
Nonlinear Modeling: Advanced Black-Box Techniques
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Nonlinear Modeling: Advanced Black-Box Techniques

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This title is printed to order. This book may have been self-published. If so, we cannot guarantee the quality of the content. In the main most books will have gone through the editing process however some may not. We therefore suggest that you be aware of this before ordering this book. If in doubt check either the author or publisher’s details as we are unable to accept any returns unless they are faulty. Please contact us if you have any questions.

Nonlinear Modeling: Advanced Black-Box Techniques discusses methods on

Neural nets and related model structures for nonlinear system identification;
Enhanced multi-stream Kalman filter training for recurrent networks;
The support vector method of function estimation;
Parametric density estimation for the classification of acoustic feature vectors in speech recognition;
Wavelet-based modeling of nonlinear systems;

Nonlinear identification based on fuzzy models;

Statistical learning in control and matrix theory;

Nonlinear time-series analysis.

It also contains the results of the K.U. Leuven time series prediction competition, held within the framework of an international workshop at the K.U. Leuven, Belgium in July 1998.

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Format
Paperback
Publisher
Springer-Verlag New York Inc.
Country
United States
Date
5 November 2012
Pages
256
ISBN
9781461376118

This title is printed to order. This book may have been self-published. If so, we cannot guarantee the quality of the content. In the main most books will have gone through the editing process however some may not. We therefore suggest that you be aware of this before ordering this book. If in doubt check either the author or publisher’s details as we are unable to accept any returns unless they are faulty. Please contact us if you have any questions.

Nonlinear Modeling: Advanced Black-Box Techniques discusses methods on

Neural nets and related model structures for nonlinear system identification;
Enhanced multi-stream Kalman filter training for recurrent networks;
The support vector method of function estimation;
Parametric density estimation for the classification of acoustic feature vectors in speech recognition;
Wavelet-based modeling of nonlinear systems;

Nonlinear identification based on fuzzy models;

Statistical learning in control and matrix theory;

Nonlinear time-series analysis.

It also contains the results of the K.U. Leuven time series prediction competition, held within the framework of an international workshop at the K.U. Leuven, Belgium in July 1998.

Read More
Format
Paperback
Publisher
Springer-Verlag New York Inc.
Country
United States
Date
5 November 2012
Pages
256
ISBN
9781461376118