Publication | Open Access
A Transformational Characterization of Equivalent Bayesian Network Structures
300
Citations
9
References
2013
Year
Bayesian StatisticEngineeringNetwork AnalysisCausal InferenceBayesian Network StructuresData ScienceProbabilistic Graph TheorySimple CharacterizationSocial Network AnalysisGraphical ModelBayesian NetworkComputer ScienceNetwork TheoryBayesian NetworksTransformational CharacterizationNetwork ScienceGraph TheoryLocal TransformationsBusinessHigh-dimensional Network
We present a simple characterization of equivalent Bayesian network structures based on local transformations. The significance of the characterization is twofold. First, we are able to easily prove several new invariant properties of theoretical interest for equivalent structures. Second, we use the characterization to derive an efficient algorithm that identifies all of the compelled edges in a structure. Compelled edge identification is of particular importance for learning Bayesian network structures from data because these edges indicate causal relationships when certain assumptions hold.
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