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he ran; hu baogang; yuan xiaotong; wang liang - robust recognition via information theoretic learning

Robust Recognition via Information Theoretic Learning

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Dettagli

Genere:Libro
Lingua: Inglese
Editore:

Springer

Pubblicazione: 09/2014
Edizione: 2014





Trama

This Springer Brief represents a comprehensive review of information theoretic methods for robust recognition. A variety of information theoretic methods have been proffered in the past decade, in a large variety of computer vision applications; this work brings them together, attempts to impart the theory, optimization and usage of information entropy.

The authors resort to a new information theoretic concept, correntropy, as a robust measure and apply it to solve robust face recognition and object recognition problems. For computational efficiency, the brief introduces the additive and multiplicative forms of half-quadratic optimization to efficiently minimize entropy problems and a two-stage sparse presentation framework for large scale recognition problems. It also describes the strengths and deficiencies of different robust measures in solving robust recognition problems.





Sommario

Introduction.- M-estimators and Half-quadratic Minimization.- Information Measures.- Correntropy and Linear Representation.- l1 Regularized Correntropy.- Correntropy with Nonnegative Constraint.










Altre Informazioni

ISBN:

9783319074153

Condizione: Nuovo
Collana: SpringerBriefs in Computer Science
Dimensioni: 235 x 155 mm Ø 454 gr
Formato: Brossura
Illustration Notes:XI, 110 p. 29 illus., 25 illus. in color.
Pagine Arabe: 110
Pagine Romane: xi


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