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Information Theory in Computer Vision and Pattern Recognition

von Boyán Ivanov Bonev, Francisco Escolano Ruiz und Pablo Suau Pérez
Softcover - 9781447156932
106,99 €
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Hardcover - 9781848822962
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Weitere Formate

Hardcover - 9781848822962
106,99 €

Beschreibung

Information theory has proved to be effective for solving many computer vision and pattern recognition (CVPR) problems (such as image matching, clustering and segmentation, saliency detection, feature selection, optimal classifier design and many others). Nowadays, researchers are widely bringing information theory elements to the CVPR arena. Among these elements there are measures (entropy, mutual information…), principles (maximum entropy, minimax entropy…) and theories (rate distortion theory, method of types…).

This book explores and introduces the latter elements through an incremental complexity approach at the same time where CVPR problems are formulated and the most representative algorithms are presented. Interesting connections between information theory principles when applied to different problems are highlighted, seeking a comprehensive research roadmap. The result is a novel tool both for CVPR and machine learning researchers, and contributes to across-fertilization of both areas.

Details

Verlag Springer London
Ersterscheinung 02. November 2014
Maße 23.5 cm x 15.5 cm
Gewicht 581 Gramm
Format Softcover
ISBN-13 9781447156932
Auflage 2009
Seiten 364