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Numerical methods and programming, 2010, Volume 11, Issue 4, Pages 94–107
(Mi vmp344)
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Программирование
Bayesian network prediction: algorithm and software implementation
E. D. Maslennikov, V. B. Sulimov Lomonosov Moscow State University, Research Computing Center
Abstract:
This paper is devoted to the clustering belief updating algorithm using the junction
tree as a tree graph representation of Bayesian networks. The algorithm is
applicable for predictions based on a learned Bayesian network as well as
for supporting an exact network learning process, for example, the EM algorithm.
The constructing steps and the principles of work with the junction tree are
specified. The software implementation of the algorithm is also considered.
Keywords:
Bayesian network; belief network; belief update; expert system; join tree; junction tree; probabilistic interference; probabilistic propagation.
Citation:
E. D. Maslennikov, V. B. Sulimov, “Bayesian network prediction: algorithm and software implementation”, Num. Meth. Prog., 11:4 (2010), 94–107
Linking options:
https://www.mathnet.ru/eng/vmp344 https://www.mathnet.ru/eng/vmp/v11/i4/p94
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