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Modélisation par équations structurelles robuste×Analyse de chemin×
DomaineStatistiqueStatistique
FamilleLatent structureLatent structure
Année d'origine19941921
Auteur d'origineAlbert Satorra & Peter M. BentlerSewall Wright
TypeLatent variable / path model with robust inferenceCausal / mediation model
Source fondatriceSatorra, 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 ↗Wright, S. (1921). Correlation and causation. Journal of Agricultural Research, 20(7), 557–585. link ↗
AliasRobust SEM, SEM with robust standard errors, Satorra-Bentler SEM, non-normal SEMPA, path coefficient analysis, observed-variable SEM, causal path modeling
Apparentées55
RésuméRobust 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.Path analysis tests a researcher-specified causal diagram among observed variables by decomposing their intercorrelations into direct effects, indirect (mediated) effects, and spurious associations. Developed by Sewall Wright in 1921, it is the observed-variable special case of structural equation modeling and remains a standard tool for theory-driven multivariate causal inference.
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ScholarGateComparer des méthodes: Robust Structural Equation Modeling · Path Analysis. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare