Identifying Independence in Relational Models
–arXiv.org Artificial Intelligence
The rules of d-separation provide a framework for deriving conditional independence facts from model structure. However, this theory only applies to simple directed graphical models. We introduce relational d-separation, a theory for deriving conditional independence in relational models. We provide a sound, complete, and computationally efficient method for relational d-separation, and we present empirical results that demonstrate effectiveness.
arXiv.org Artificial Intelligence
Apr-15-2013
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