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      From Type Spaces to Probability Frames and Back, via Language

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          Abstract

          We investigate the connection between the two major mathematical frameworks for modeling interactive beliefs: Harsanyi type spaces and possible-worlds style probability frames. While translating the former into the latter is straightforward, we demonstrate that the reverse translation relies implicitly on a background logical language. Once this "language parameter" is made explicit, it reveals a close relationship between universal type spaces and canonical models: namely, that they are essentially the same construct. As the nature of a canonical model depends heavily on the background logic used to generate it, this work suggests a new view into a corresponding landscape of universal type spaces.

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          Most cited references13

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          Games with Incomplete Information Played by “Bayesian” Players, I–III Part I. The Basic Model

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            A logic for reasoning about probabilities

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              Formulation of Bayesian analysis for games with incomplete information

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                Author and article information

                Journal
                27 July 2017
                Article
                10.4204/EPTCS.251.6
                1707.08738
                9399aa0a-94db-4a44-b68b-861db0da5a06

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Custom metadata
                EPTCS 251, 2017, pp. 75-87
                In Proceedings TARK 2017, arXiv:1707.08250
                cs.LO cs.GT
                EPTCS

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