A Bayesian method for the induction of probabilistic networks from data

Machine Learning - Tập 9 - Trang 309-347 - 1992
Gregory F. Cooper1, Edward Herskovits2
1Section of Medical Informatics, Department of Medicine, University of Pittsburgh, Pittsburgh
2Noetic Systems, Incorporated, Baltimore

Tóm tắt

This paper presents a Bayesian method for constructing probabilistic networks from databases. In particular, we focus on constructing Bayesian belief networks. Potential applications include computer-assisted hypothesis testing, automated scientific discovery, and automated construction of probabilistic expert systems. We extend the basic method to handle missing data and hidden (latent) variables. We show how to perform probabilistic inference by averaging over the inferences of multiple belief networks. Results are presented of a preliminary evaluation of an algorithm for constructing a belief network from a database of cases. Finally, we relate the methods in this paper to previous work, and we discuss open problems.

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