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Focused Bayesian Prediction

We propose a new method for conducting Bayesian prediction that delivers accurate predictions without correctly specifying the unknown true data generating process. A prior is defined over a class of plausible predictive models. After observing data, we update the prior to a posterior over these models, via a criterion that captures a user-specified measure of predictive accuracy. Under regularity, this update yields posterior concentration onto the element of the predictive class that maximizes the expectation of the accuracy measure. In a series of simulation experiments and empirical examples we find notable gains in predictive accuracy relative to conventional likelihood-based prediction.

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Related contextRelated contextWorks onCo-authorshipCo-authorshipCo-authorshipAuthorshipAuthorshipAuthorshipTopic signalTopic signalTopic signalTopic signalWFocused Bayesian Predictionpreprint / 2020ARuben Loaiza-MayaResearcherAGael M. MartinResearcherADavid T. FrazierResearcherTMethodology5119 worksTApplications3567 worksTq-fin.EC1147 worksTecon.GN1138 works
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Focused Bayesian Prediction

preprint / 2020

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