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#98 Fusing Statistical Physics, Machine Learning & Adaptive MCMC, with Marylou Gabrié

Learning Bayesian Statistics

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Using Machine Learning for Scientific Computing

This chapter delves into the speaker's work in developing machine learning methods for scientific computing, specifically focusing on high dimensional probabilistic models. They discuss their background in physics, their journey into machine learning, and how generative models can be used to study large systems probabilistically. The chapter also explores the implementation of adaptive Monte Carlo algorithms and a new algorithm for efficient sampling and modeling in physical systems.

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