Machine Learning for Computer Vision

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Computer vision is the science and technology of making machines that see. It is concerned with the theory, design and implementation of algorithms that can automatically process visual data to recognize objects, track and recover their shape and spatial layout. The International Computer Vision Summer School - ICVSS was established in 2007 to provide both an objective and clear overview and an in-depth analysis of the state-of-the-art research in Computer Vision. The courses are delivered by world renowned experts in the field, from both academia and industry, and cover both theoretical and practical aspects of real Computer Vision problems. The school is organized every year by University of Cambridge (Computer Vision and Robotics Group) and University of Catania (Image Processing Lab). Different topics are covered each year. A summary of the past Computer Vision Summer Schools can be found at: http://www.dmi.unict.it/icvss This edited volume contains a selection of articles covering some of the talks and tutorials held during the last editions of the school. The chapters provide an in-depth overview of challenging areas with key references to the existing literature.


Recent research on Computer Vision and Machine Learning for Image and Video Analysis Edited outcome of the two International Computer Vision Summer Schools ICVSS taking place in 2009 and 2010 Written by leading experts in the field

Inhalt
Throwing Down the Visual Intelligence Gauntlet.- Actionable Information in Vision.- Learning Binary Hash Codes for Large-Scale Image Search.- Bayesian Painting by Numbers: Flexible Priors for Colour-Invariant Object Recognition.- Real-Time Human Pose Recognition in Parts from Single Depth Images.- Scale-Invariant Vote-based 3D Recognition and Registration from Point Clouds.- Multiple Classifier Boosting and Tree-Structured Classifiers.- Simultaneous detection and tracking with multiple cameras.- Applications of Computer Vision to Vehicles: an extreme test.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783642286605
    • Auflage 2013
    • Editor Roberto Cipolla, Giovanni Maria Farinella, Sebastiano Battiato
    • Sprache Englisch
    • Genre Allgemeines & Lexika
    • Lesemotiv Verstehen
    • Größe H241mm x B160mm x T20mm
    • Jahr 2012
    • EAN 9783642286605
    • Format Fester Einband
    • ISBN 3642286607
    • Veröffentlichung 27.07.2012
    • Titel Machine Learning for Computer Vision
    • Untertitel Studies in Computational Intelligence 411
    • Gewicht 576g
    • Herausgeber Springer Berlin Heidelberg
    • Anzahl Seiten 272

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