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Detecting Model Misfit in Structural Equation Modeling with Machine Learning-A Proof of Concept.
Melanie Viola Partsch1, David Goretzko1,2
1Department of Methodology and Statistics, University of Utrecht, Utrecht, The Netherlands.
Evaluating structural equation model fit is challenging. A new machine learning (ML) approach shows promise for accurately assessing multi-factorial measurement model fit, outperforming traditional methods.
Area of Science:
- Psychometrics
- Statistical Modeling
Background:
- Structural equation modeling (SEM) is widely used in psychological research.
- Evaluating SEM fit using fixed index cutoffs is problematic due to nuisance parameters.
- Researchers often rely on these cutoffs, risking incorrect model acceptance or rejection.
Purpose of the Study:
- To develop a machine learning (ML)-based method for evaluating multi-factorial measurement model fit.
- To create a broadly applicable method that minimizes dependence on nuisance parameters.
Main Methods:
- Trained an ML model using 173 features from 1,323,866 simulated datasets and confirmatory factor analysis models.
- Evaluated ML model performance on 1,659,386 independent test observations.
Main Results:
- The ML model demonstrated high accuracy in detecting model (mis-)fit across various conditions.
- The ML approach outperformed traditional fixed fit index cutoffs.
- Minor misspecifications, like single residual correlations, were challenging for the ML model.
Conclusions:
- Machine learning offers a promising avenue for improving SEM model fit evaluation.
- The developed ML method shows superior performance compared to conventional techniques.
- Further research is needed to address detection of subtle model misspecifications.
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