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Lecture 10 - Counts and ConfoundsLecture 12 - Multilevel Models This lecture has been an introduction to the motivation, implementation, and interpretation of basic multilevel
Lecture 10 - Counts and ConfoundsLecture 12 - Multilevel Models This lecture has been an introduction to the motivation, implementation, and interpretation of basic multilevel models. It focused on varying intercepts, which achieve better estimates of baseline differences among clusters in the data. They achieve better estimates, because they simultaneously model the population of clusters and use inferences about the population to pool information among parameters. From another perspective, varying intercepts are adaptively regularized parameters, relying upon a prior that is itself learned from the data
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