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Variations on the Expectation Due to Changes in the Probability Measure

Perlaza, Samir M., Bisson, Gaetan

arXiv.org Artificial Intelligence

Closed-form expressions are presented for the variation of the expectation of a given function due to changes in the probability measure used for the expectation. They unveil interesting connections with Gibbs probability measures, the mutual information, and the lautum information.


Characterizations of Decomposable Dependency Models

de Campos, L. M.

Journal of Artificial Intelligence Research

Decomposable dependency models possess a number of interesting and useful properties. This paper presents new characterizations of decomposable models in terms of independence relationships, which are obtained by adding a single axiom to the well-known set characterizing dependency models that are isomorphic to undirected graphs. We also briefly discuss a potential application of our results to the problem of learning graphical models from data.