Probabilistic Graphical Models: Principles and Techniques (Adaptive Computation and Machine Learning series) Hardback - 2009
by Daphne Koller, Nir Friedman
- Used
- Hardback
Standard delivery: 7 to 14 days
Details
- Title Probabilistic Graphical Models: Principles and Techniques (Adaptive Computation and Machine Learning series)
- Author Daphne Koller, Nir Friedman
- Binding Hardback
- Edition [ Edition: first
- Condition Used - VG
- Pages 1208
- Volumes 1
- Language ENG
- Publisher The MIT Press, Cambridge, MA, U.S.A.
- Publication date August 2009
- Illustrated Yes
- Features Bibliography, Illustrated, Index, Table of Contents
- Bookseller's Inventory # 1014607
- ISBN 9780262013192 / 0262013193
- Weight 4.65 lbs (2.11 kg)
- Dimensions 9.22 x 8.18 x 2.05 in (23.42 x 20.78 x 5.21 cm)
- Age range 18 to UP years
- Grade levels 13 - UP
- Category Mathematics
- Library of Congress subjects Bayesian statistical decision theory -, Graphical modeling (Statistics)
- Library of Congress Catalogue Number 2009008615
- Dewey Decimal Code 519.542
- Quantity available 1
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Reader reviews for Probabilistic Graphical Models: Principles and Techniques (Adaptive Computation and Machine Learning series)
Review summary
Readers broadly view this as an authoritative, exhaustive treatment of probabilistic graphical models, best approached as a reference or alongside a course. Many also judge it punishingly dense and math-heavy, with unconventional notation, sparse examples, and uneven organization, making it ill-suited to beginners compared with gentler alternatives.
Readers say this book is:
comprehensiverigorousdensechallengingauthoritativeinsightfulnot beginner-friendlydryreference-worthyoverwhelmingWrite a review for this book
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