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Sparse Representation, Modeling and Learning in Visual Recognition: Theory, Algorithms and Applications
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Sparse Representation, Modeling and Learning in Visual Recognition: Theory, Algorithms and Applications

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PublisherSpringer; Softcover Reprint of the Original 1st 2015 ed. edition
ISBN 101447172515
Book DescriptionThis unique text/reference presents a comprehensive review of the state of the art in sparse representations, modeling and learning. The book examines both the theoretical foundations and details of algorithm implementation, highlighting the practical application of compressed sensing research in visual recognition and computer vision. Topics and features: describes sparse recovery approaches, robust and efficient sparse representation, and large-scale visual recognition; covers feature representation and learning, sparsity induced similarity, and sparse representation and learning-based classifiers; discusses low-rank matrix approximation, graphical models in compressed sensing, collaborative representation-based classification, and high-dimensional nonlinear learning; includes appendices outlining additional computer programming resources, and explaining the essential mathematics required to understand the book.
Book FormatPaperback
Publication Date9 October 2016
ISBN 139781447172512
About the AuthorDr. Hong Cheng is Professor in the School of Automation Engineering, and Deputy Executive Director of the Center for Robotics at the University of Electronic Science and Technology of China. His other publications include the Springer book Autonomous Intelligent Vehicles.
AuthorHong Cheng
LanguageEnglish
Number of Pages272 pages
Sparse Representation, Modeling and Learning in Visual Recognition: Theory, Algorithms and Applications
Sparse Representation, Modeling and Learning in Visual Recognition: Theory, Algorithms and Applications
402.00
0

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