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Modelado de Ecuaciones Estructurales Robusto×Análisis Factorial Confirmatorio (AFC)×
CampoEstadísticaPsicometría
FamiliaLatent structureLatent structure
Año de origen19941969
Autor originalAlbert Satorra & Peter M. BentlerKarl Gustav Jöreskog
TipoLatent variable / path model with robust inferenceHypothesis-testing latent variable model
Fuente seminalSatorra, A. & Bentler, P. M. (1994). Corrections to test statistics and standard errors in covariance structure analysis. In A. von Eye & C. C. Clogg (Eds.), Latent variables analysis (pp. 399–419). Sage. link ↗Jöreskog, K. G. (1969). A general approach to confirmatory maximum likelihood factor analysis. Psychometrika, 34(2), 183–202. DOI ↗
AliasRobust SEM, SEM with robust standard errors, Satorra-Bentler SEM, non-normal SEMCFA, confirmatory FA, measurement model, restricted factor analysis
Relacionados54
ResumenRobust structural equation modeling (Robust SEM) applies the full SEM framework — simultaneous estimation of measurement and structural relations among latent variables — while using corrected test statistics and sandwich standard errors that remain valid when observed data depart from multivariate normality. The Satorra-Bentler scaled chi-square is the most widely used correction.Confirmatory factor analysis tests a researcher-specified factor structure against observed data. Unlike exploratory approaches, the researcher decides in advance which indicators load on which latent factor, and the model is evaluated by how closely the implied covariance matrix reproduces the sample covariance matrix. CFA is central to scale validation, construct validity assessment, and measurement invariance testing.
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ScholarGateComparar métodos: Robust Structural Equation Modeling · Confirmatory factor analysis. Recuperado el 2026-06-17 de https://scholargate.app/es/compare