JOURNAL ARTICLE

Learning Deterministic Causal Networks from Observational Data

Ben DeverettCharles Kemp

Year: 2012 Journal:   eScholarship (California Digital Library) Vol: 34 (34)   Publisher: California Digital Library

Abstract

Previous work suggests that humans find it difficult to learn the structure of causal systems given observational data alone. We show that structure learning is successful when the causal systems in question are consistent with people’s expectations that causal relationships are deterministic and that each pattern of observations has a single underlying cause. Our data are well explained by a Bayesian model that incorporates a preference for symmetric structures and a preference for structures that make the observed data not only possible but likely

Keywords:
Bayesian network Observational study Conditional independence Artificial intelligence Contrast (vision) Context (archaeology) Computer science Bayesian probability Independence (probability theory) Heuristic Machine learning Causal structure Causal inference Observational learning Bayesian inference Population Causal model Cognitive psychology Psychology Econometrics Mathematics Statistics Geography

Metrics

9
Cited By
1.89
FWCI (Field Weighted Citation Impact)
9
Refs
0.88
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence
Philosophy and History of Science
Social Sciences →  Arts and Humanities →  History and Philosophy of Science
Child and Animal Learning Development
Social Sciences →  Psychology →  Developmental and Educational Psychology

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