Face Image Analysis by Unsupervised Learning

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February 27, 2022 | History

Face Image Analysis by Unsupervised Learning

Face Image Analysis by Unsupervised Learning explores adaptive approaches to image analysis. It draws upon principles of unsupervised learning and information theory to adapt processing to the immediate task environment. In contrast to more traditional approaches to image analysis in which relevant structure is determined in advance and extracted using hand-engineered techniques, Face Image Analysis by Unsupervised Learning explores methods that have roots in biological vision and/or learn about the image structure directly from the image ensemble. Particular attention is paid to unsupervised learning techniques for encoding the statistical dependencies in the image ensemble. The first part of this volume reviews unsupervised learning, information theory, independent component analysis, and their relation to biological vision. Next, a face image representation using independent component analysis (ICA) is developed, which is an unsupervised learning technique based on optimal information transfer between neurons. The ICA representation is compared to a number of other face representations including eigenfaces and Gabor wavelets on tasks of identity recognition and expression analysis. Finally, methods for learning features that are robust to changes in viewpoint and lighting are presented. These studies provide evidence that encoding input dependencies through unsupervised learning is an effective strategy for face recognition. Face Image Analysis by Unsupervised Learning is suitable as a secondary text for a graduate-level course, and as a reference for researchers and practitioners in industry.

Publish Date
Publisher
Springer US
Language
English
Pages
173

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Previews available in: English

Edition Availability
Cover of: Face Image Analysis by Unsupervised Learning
Face Image Analysis by Unsupervised Learning
2001, Springer US
electronic resource / in English

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Book Details


Edition Notes

Online full text is restricted to subscribers.

Also available in print.

Mode of access: World Wide Web.

Published in
Boston, MA
Series
The Springer International Series in Engineering and Computer Science -- 612, International series in engineering and computer science -- 612.

Classifications

Dewey Decimal Class
005.437, 4.019
Library of Congress
QA76.9.U83, QA76.9.H85, QA76.9.U83QA76.9.H85

The Physical Object

Format
[electronic resource] /
Pagination
1 online resource (xv, 173 pages).
Number of pages
173

ID Numbers

Open Library
OL27038023M
Internet Archive
faceimageanalysi00bart
ISBN 10
1461356539, 1461516374
ISBN 13
9781461356530, 9781461516378
OCLC/WorldCat
852788674

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History

Download catalog record: RDF / JSON / OPDS | Wikipedia citation
February 27, 2022 Edited by ImportBot import existing book
October 10, 2020 Edited by ImportBot import existing book
August 3, 2020 Edited by ImportBot import existing book
June 30, 2019 Created by MARC Bot Imported from Internet Archive item record