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

Learning Bayesian Statistics

CHAPTER

Introduction

Learn Vision Statistics is a fortnightly podcast on Bayesian Infants. This week, Alex and Ora talk with Matt MadHoveman of Google about his work in approximate patient inference algorithms. They discuss the GMC, blocked samplers, why do the samplers he works on have food-based names, etc.

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