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Modelagem de Equações Estruturais (MEE)×Análise Fatorial Exploratória (AFE)×
ÁreaEstatísticaEstatística
FamíliaLatent structureLatent structure
Ano de origem1970
Autor originalKarl Jöreskog (LISREL framework, 1970s)
TipoLatent variable / causal modelingLatent variable / dimension reduction
Fonte seminalHair, J. F., Black, W. C., Babin, B. J. & Anderson, R. E. (2019). Multivariate Data Analysis (8th ed.). Cengage Learning. ISBN: 978-1473756540Fabrigar, L. R., Wegener, D. T., MacCallum, R. C. & Strahan, E. J. (1999). Evaluating the use of exploratory factor analysis in psychological research. Psychological Methods, 4(3), 272–299. DOI ↗
Outros nomesYapısal Eşitlik Modellemesi (SEM), structural equation modelling, covariance structure analysis, latent variable modelingcommon factor analysis, açımlayıcı faktör analizi, factor analysis
Relacionados54
ResumoStructural equation modeling is a multivariate statistical framework that simultaneously estimates a measurement model — relating observed indicators to latent constructs — and a structural model specifying directional or reciprocal relationships among those constructs. Rooted in the LISREL tradition developed by Karl Jöreskog in the 1970s, SEM is the standard tool for testing complex theoretical models in the social, behavioural, and management sciences.Exploratory factor analysis reduces a large set of observed variables into a smaller number of latent common factors. It is widely used in scale development and psychometrics to uncover the dimensional structure that underlies a set of correlated items, without specifying that structure in advance.
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ScholarGateComparar métodos: SEM · EFA. Recuperado em 2026-06-15 de https://scholargate.app/pt/compare