Statistical Relational Artificial Intelligence - Luc De Raedt - 書籍 - Morgan & Claypool Publishers - 9781681732367 - 2016年3月24日
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Statistical Relational Artificial Intelligence


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An intelligent agent interacting with the real world will encounter individual people, courses, test results, drugs prescriptions, chairs, boxes, etc., and needs to reason about properties of these individuals and relations among them as well as cope with uncertainty.

Uncertainty has been studied in probability theory and graphical models, and relations have been studied in logic, in particular in the predicate calculus and its extensions. This book examines the foundations of combining logic and probability into what are called relational probabilistic models. It introduces representations, inference, and learning techniques for probability, logic, and their combinations.

The book focuses on two representations in detail: Markov logic networks, a relational extension of undirected graphical models and weighted first-order predicate calculus formula, and Problog, a probabilistic extension of logic programs that can also be viewed as a Turing-complete relational extension of Bayesian networks.

メディア 書籍     Hardcover Book   (ハードカバー付きの本)
リリース済み 2016年3月24日
ISBN13 9781681732367
出版社 Morgan & Claypool Publishers
ページ数 189
寸法 191 × 235 × 13 mm   ·   544 g
言語 英語  

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