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Learning Conditional Information by Jeffrey Imaging on Stalnaker Conditionals
Authors:Mario Günther
Affiliation:1.Munich Center for Mathematical Philosophy, Graduate School of Systemic Neurosciences,Ludwig-Maximilians-Universit?t,München,Germany
Abstract:We propose a method of learning indicative conditional information. An agent learns conditional information by Jeffrey imaging on the minimally informative proposition expressed by a Stalnaker conditional. We show that the predictions of the proposed method align with the intuitions in Douven (Mind & Language, 27(3), 239–263 2012)’s benchmark examples. Jeffrey imaging on Stalnaker conditionals can also capture the learning of uncertain conditional information, which we illustrate by generating predictions for the Judy Benjamin Problem.
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