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Theory-guided exploration with structural equation model forests.

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Structural equation model (SEM) trees offer theory-guided data exploration but can be unstable. SEM forests, an ensemble of SEM trees, improve stability and provide variable importance and case proximity for enhanced model insights.

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Area of Science:

  • Psychometrics
  • Statistical Modeling
  • Data Mining

Background:

  • Structural Equation Models (SEMs) and decision trees are established analytical tools.
  • SEM trees integrate these methods for theory-guided empirical data exploration.
  • SEM trees identify subgroups with similar data patterns within hypothesized multivariate outcome models.

Purpose of the Study:

  • To introduce SEM forests as a stable alternative to SEM trees.
  • To present aggregate measures for model improvement within SEM forests.
  • To illustrate the utility of SEM forests in analyzing intelligence and episodic memory data.

Main Methods:

  • SEM trees recursively partition data to find subgroups with similar patterns.
  • SEM forests aggregate multiple SEM trees built on resampled data for stability.
  • Variable importance (via OOB permutations) and case proximity (for clustering/outlier detection) are key aggregate measures.

Main Results:

  • SEM forests demonstrate increased stability compared to individual SEM trees.
  • Variable importance measures quantify the impact of predictors on model-predicted distributions.
  • Case proximity facilitates clustering and outlier detection within the data.

Conclusions:

  • SEM forests enhance the stability and interpretability of SEM tree analyses.
  • Aggregate measures in SEM forests offer valuable insights for model refinement and data exploration.
  • SEM forests are a promising tool for theory-guided research in psychology and related fields.