Neural based orthogonal data fitting

the EXIN neural networks

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Last edited by ImportBot
November 9, 2010 | History

Neural based orthogonal data fitting

the EXIN neural networks

"Written by three leaders in the field of neural based algorithms, Neural Based Orthogonal Data Fitting proposes several neural networks, all endowed with a complete theory which not only explains their behavior, but also compares them with the existing neural and traditional algorithms. The algorithms are studied from different points of view, including: as a differential geometry problem, as a dynamic problem, as a stochastic problem, and as a numerical problem. All algorithms have also been analyzed on real time problems (large dimensional data matrices) and have shown accurate solutions. Where most books on the subject are dedicated to PCA (principal component analysis) and consider MCA (minor component analysis) as simply a consequence, this is the fist book to start from the MCA problem and arrive at important conclusions about the PCA problem."--

Publish Date
Publisher
Wiley
Language
English

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Previews available in: English

Book Details


Edition Notes

Includes bibliographical references and index.

Published in
Hoboken, NJ
Series
Wiley series in Adaptive & learning systems for signal processing, communications and control

Classifications

Dewey Decimal Class
006.3/2
Library of Congress
QA76.87 .C525 2010

The Physical Object

Pagination
p. cm.

ID Numbers

Open Library
OL24412055M
Internet Archive
neuralbasedortho00cirr
ISBN 13
9780471322702
LCCN
2010033317

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November 9, 2010 Created by ImportBot initial import