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"Ideal Parent" Structure Learning for Continuous Variable Bayesian Networks
2007
Journal of machine learning research
Bayesian networks in general, and continuous variable networks in particular, have become increasingly popular in recent years, largely due to advances in methods that facilitate automatic learning from data. Yet, despite these advances, the key task of learning the structure of such models remains a computationally intensive procedure, which limits most applications to parameter learning. This problem is even more acute when learning networks in the presence of missing values or hidden
dblp:journals/jmlr/ElidanNF07
fatcat:rtz2alszp5b57p4ntghhdhpvyq