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Neighborhood-Based Information Costs
Author(s) -
Benjamin Hébert,
Michael Woodford
Publication year - 2021
Publication title -
american economic review
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 16.936
H-Index - 297
eISSN - 1944-7981
pISSN - 0002-8282
DOI - 10.1257/aer.20200154
Subject(s) - separable space , mutual information , perception , quadratic equation , property (philosophy) , binary number , gaussian , computer science , economics , mathematical optimization , mathematical economics , mathematics , econometrics , artificial intelligence , psychology , mathematical analysis , philosophy , physics , geometry , arithmetic , epistemology , quantum mechanics , neuroscience
We derive a new cost of information in rational inattention problems, the neighborhood-based cost functions, starting from the observation that many settings involve exogenous states with a topological structure. These cost functions are uniformly posterior separable and capture notions of perceptual distance. This second property ensures that neighborhood-based costs, unlike mutual information, make accurate predictions about behavior in perceptual experiments. We compare the implications of our neighborhood-based cost functions with those of the mutual information in a series of applications: perceptual judgments, the general environment of binary choice, regime-change games, and linear-quadratic-Gaussian settings. (JEL C70, D11, D82, D83, D91)

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