Robustness of Bayesian Analyses

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Series: Studies in Bayesian econometrics 4

ISBN: 0444862099, 9780444862099

Size: 4 MB (3694771 bytes)

Pages: 326/326

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Joseph B. Kadane0444862099, 9780444862099

This paper presents algorithms for robustness analysis of Bayesian networks with global neighborhoods. Robust Bayesian inference is the calculation of bounds on posterior valuesgiven perturbations in a probabilistic model. We present algorithms for robust inference (including expected utility, expected value and variance bounds) with global perturbations that can be modeled by ffl-contaminated, constant density ratio, constant density bounded and total variation classes of distributions.

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