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Differentially Private Bayesian Inference for Exponential Families

About

The study of private inference has been sparked by growing concern regarding the analysis of data when it stems from sensitive sources. We present the first method for private Bayesian inference in exponential families that properly accounts for noise introduced by the privacy mechanism. It is efficient because it works only with sufficient statistics and not individual data. Unlike other methods, it gives properly calibrated posterior beliefs in the non-asymptotic data regime.

Garrett Bernstein, Daniel Sheldon• 2018

Related benchmarks

TaskDatasetResultRank
Bayesian Linear RegressionBayesian linear regression 10D
RMSE (ε=0.1)301
5
TARP Coverage EstimationDirichlet-Categorical distribution
RMSE0.017
4
TARP Coverage EstimationGamma-Exponential distribution
RMSE0.034
4
TARP Coverage EstimationBeta-Bernoulli distribution
RMSE0.018
4
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