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BITESIZE | Why Your Models Might Be Wrong & How to Fix it, with Sean Pinkney & Adrian Seyboldt

Learning Bayesian Statistics

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Exploring Advanced Hierarchical Modeling Techniques in Bayesian Statistics

This chapter explores advanced modeling techniques in Bayesian statistics, specifically how to derive population effects from hierarchical normal models. It emphasizes the importance of marginalization, the advantages of a zero-sum normal approach, and the speaker’s call for automated tools to enhance model accuracy.

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