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Pattern Recognition and Machine Learning (Information Science and Statistics)

 
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Pattern Recognition and Machine Learning (Information Science and Statistics)

Description

This is the first textbook on pattern recognition to present the Bayesian viewpoint. The book presents approximate inference algorithms that permit fast approximate answers in situations where exact answers are not feasible. It uses graphical models to describe probability distributions when no other books apply graphical models to machine learning. No previous knowledge of pattern recognition or machine learning concepts is assumed. Familiarity with multivariate calculus and basic linear algebra is required, and some experience in the use of probabilities would be helpful though not essential as the book includes a self-contained introduction to basic probability theory.

Product details

EAN/ISBN:
9780387310732
Edition:
1st ed. 2006. Corr. 2nd printing 2011
Medium:
Bound edition
Number of pages:
740
Publication date:
2007-01-01
Publisher:
Springer
Languages:
english
EAN/ISBN:
9780387310732
Edition:
1st ed. 2006. Corr. 2nd printing 2011
Medium:
Bound edition
Number of pages:
740
Publication date:
2007-01-01
Publisher:
Springer
Languages:
english

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