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Meet P. Vadera

1 accepted papers

2021

Post-hoc loss-calibration for Bayesian neural networks

UAI 2021poster

Bayesian decision theory provides an elegant framework for acting optimally under uncertainty when tractable posterior distributions are available. Modern Bayesian models, however, typically involve intractable posteriors that are approximated with, potentially crude, surrogates. This difficulty has…

Cited by 12SourcePDFScholar