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An Introduction to Lifted Probabilistic Inference (Neural Information Processing series)

An Introduction to Lifted Probabilistic Inference (Neural Information Processing series)

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About this book

Overview

Recent advances in the area of lifted inference, which exploits the structure inherent in relational probabilistic models.

Statistical relational AI (StaRAI) studies the integration of reasoning under uncertainty with reasoning about individuals and relations. The representations used are often called relational probabilistic models. Lifted inference is about how to exploit the structure inherent in relational probabilistic models, either in the way they are expressed or by extracting structure from observations. This book covers recent significant advances in the area of lifted inference, providing a unifying introduction to this very active field.

After providing necessary background on probabilistic graphical models, relational probabilistic models, and learning inside these models, the book turns to lifted inference, first covering exact inference and then approximate inference. In addition, the book considers the theory of liftability and acting in relational domains, which allows the connection of learning and reasoning in relational domains.

Book details

Book Information

Title
An Introduction to Lifted Probabilistic Inference (Neural Information Processing series)
Condition
Like New
A very clean copy that looks nearly new. Pages are clean, the binding is secure, and only very minor shelf wear or small cosmetic marks may be present.
Publisher
The MIT Press
Published
2021
Cover
Paperback
Dimensions
H 9.06 in / W 7.06 in / T 1.06 in / Weight 1.88 lb
Pages
454
Language
English
Identifiers
ISBN: 0262542595
EAN: 9780262542593

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