JOURNAL ARTICLE

Learning Bayesian Networks from Incomplete Databases

Marco RamoniPaola Sebastiani

Year: 2013 Journal:   arXiv (Cornell University)   Publisher: Cornell University

Abstract

Bayesian approaches to learn the graphical structure of Bayesian Belief Networks (BBNs) from databases share the assumption that the database is complete, that is, no entry is reported as unknown. Attempts to relax this assumption involve the use of expensive iterative methods to discriminate among different structures. This paper introduces a deterministic method to learn the graphical structure of a BBN from a possibly incomplete database. Experimental evaluations show a significant robustness of this method and a remarkable independence of its execution time from the number of missing data.

Keywords:
Robustness (evolution) Computer science Bayesian network Graphical model Bayesian probability Conditional independence Data mining Distributed database Machine learning Database Artificial intelligence Independence (probability theory) Missing data Mathematics Statistics

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Citation History

Topics

Bayesian Modeling and Causal Inference
Physical Sciences →  Computer Science →  Artificial Intelligence
Data Quality and Management
Social Sciences →  Decision Sciences →  Management Science and Operations Research
Data Management and Algorithms
Physical Sciences →  Computer Science →  Signal Processing

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