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Entropic Inference

In this tutorial we review the essential arguments behing entropic inference. We focus on the epistemological notion of information and its relation to the Bayesian beliefs of rational agents. The problem of updating from a prior to a posterior probability distribution is tackled through an eliminative induction process that singles out the logarithmic relative entropy as the unique tool for inference. The resulting method of Maximum relative Entropy (ME), includes as special cases both MaxEnt and Bayes' rule, and therefore unifies the two themes of these workshops -- the Maximum Entropy and the Bayesian methods -- into a single general inference scheme.

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AuthorshipTopic signalTopic signalTopic signalRelated contextRelated contextWEntropic Inferencepreprint / 2010AAriel CatichaResearcherTcond-mat.stat-mech6570 worksTMethodology5119 worksTphysics.data-an1229 works
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Entropic Inference

preprint / 2010

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