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Pattern Recognition and Machine Learning

Pattern Recognition and Machine Learning

by Christopher M. Bishop

Published
2006
ISBN
9780387310732
Pages
738
Publisher
Springer
Format
Hardcover
Language
English
HB

Note from Helen B.

About this copy · Very Good

No writing or highlighting

Softcover, 2 volumes. Excellent condition (no sign that they've been read, except on volume 1, slight wear marks on the corners of the cover.

About this book

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.

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Helen B.

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