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#78 Exploring MCMC Sampler Algorithms, with Matt D. Hoffman

Learning Bayesian Statistics

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When Do You Need Fully Bayesian Inference in a Decision Making Model?

I think the answer that I sort of gravitate towards is decision problems. If you want to make decisions that lead to good outcomes, then you have to maximize your expected utility under some distribution over possible with respect to your degrees of belief. That to me is what is the clearest use case for Bayesian methods. But there are situations or there will be that people will find ways to make the Bayesian framework really, really pay off where it's just about being right.

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