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Machine Learning Challenges: Evaluating Predictive Uncertainty, Visual Object Classification, and Recognizing Textual Entailment, First Pascal Machine

Contributor(s): Quinonero-Candela, Joaquin (Editor), Dagan, Ido (Editor), Magnini, Bernardo (Editor), D'Alché-Buc, Florence (Editor)

ISBN: 9783540334279

Publisher: Springer

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Pub Date: May 11, 2006

Dewey: 006.31

LCCN: 2006924677

Lexile Code: 0000

Features: Bibliography, Illustrated, Index

Target Age Group: NA to NA

Physical Info: 0.97" H x 9.21" L x 6.14" W ( 1.48 lbs) 462 pages

Series: Lecture Notes in Computer Science

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Description:

This book constitutes the refereed post-proceedings of the First PASCAL Machine Learning Challenges Workshop, MLCW 2005. 25 papers address three challenges: finding an assessment base on the uncertainty of predictions using classical statistics, Bayesian inference, and statistical learning theory; second, recognizing objects from a number of visual object classes in realistic scenes; third, recognizing textual entailment addresses semantic analysis of language to form a generic framework for applied semantic inference in text understanding.

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