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A Probabilistic Theory of Pattern Recognition

A Probabilistic Theory of Pattern Recognition - Stochastic Modelling and Applied Probability

1st ed. 1996. Corr. 2nd printing 1997

Hardback (01 Mar 1997)

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Publisher's Synopsis

Pattern recognition presents one of the most significant challenges for scientists and engineers, and many different approaches have been proposed. The aim of this book is to provide a self-contained account of probabilistic analysis of these approaches. The book includes a discussion of distance measures, nonparametric methods based on kernels or nearest neighbors, Vapnik-Chervonenkis theory, epsilon entropy, parametric classification, error estimation, free classifiers, and neural networks. Wherever possible, distribution-free properties and inequalities are derived. A substantial portion of the results or the analysis is new. Over 430 problems and exercises complement the material.

Book information

ISBN: 9780387946184
Publisher: Springer New York
Imprint: Springer
Pub date:
Edition: 1st ed. 1996. Corr. 2nd printing 1997
DEWEY: 003.52015192
DEWEY edition: 20
Language: English
Number of pages: 636
Weight: 1122g
Height: 166mm
Width: 243mm
Spine width: 39mm