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#102 Bayesian Structural Equation Modeling & Causal Inference in Psychometrics, with Ed Merkle

Learning Bayesian Statistics

NOTE

Understanding Structural Equation Models

Bayesian structural equation modeling is an advanced statistical framework that integrates various modeling approaches, including item response theory and factor analysis, to assess measurement effectiveness. It fundamentally consists of a collection of regression models linked within a comprehensive structure. This methodology aligns closely with causal research models, particularly those represented as directed acyclic graphs, providing a powerful tool for estimating complex relationships in data.

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