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#136 Bayesian Inference at Scale: Unveiling INLA, with Haavard Rue & Janet van Niekerk

Learning Bayesian Statistics

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Advancements in Bayesian Inference with INLA

This chapter explores the development and evolution of the Integrated Nested Laplace Approximations (INLA) methodology, emphasizing its advantages over traditional MCMC methods for statistical inference. It discusses the challenges faced in Bayesian statistics and highlights the applicability of INLA across various domains, particularly in public health and survival analysis. The speakers also describe the practical implementations of INLA in R and the ongoing enhancements that facilitate its use in complex modeling scenarios.

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