JOURNAL ARTICLE

A Tractable First-Order Probabilistic Logic

Pedro DomingosWilliam Webb

Year: 2021 Journal:   Proceedings of the AAAI Conference on Artificial Intelligence Vol: 26 (1)Pages: 1902-1909   Publisher: Association for the Advancement of Artificial Intelligence

Abstract

Tractable subsets of first-order logic are a central topic in AI research. Several of these formalisms have been used as the basis for first-order probabilistic languages. However, these are intractable, losing the original motivation. Here we propose the first non-trivially tractable first-order probabilistic language. It is a subset of Markov logic, and uses probabilistic class and part hierarchies to control complexity. We call it TML (Tractable Markov Logic). We show that TML knowledge bases allow for efficient inference even when the corresponding graphical models have very high treewidth. We also show how probabilistic inheritance, default reasoning, and other inference patterns can be carried out in TML. TML opens up the prospect of efficient large-scale first-order probabilistic inference.

Keywords:
Probabilistic CTL Probabilistic logic Graphical model Probabilistic argumentation Rotation formalisms in three dimensions Probabilistic logic network Computer science Inference Theoretical computer science Probabilistic relevance model Markov chain Class (philosophy) Artificial intelligence Description logic Probabilistic analysis of algorithms Machine learning Mathematics Multimodal logic Autoepistemic logic

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0.37
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44
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0.56
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Citation History

Topics

Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence
Semantic Web and Ontologies
Physical Sciences →  Computer Science →  Artificial Intelligence
Logic, Reasoning, and Knowledge
Physical Sciences →  Computer Science →  Artificial Intelligence

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