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Исследовательское моделирование структурными уравнениями×Метод структурных уравнений на основе частичных наименьших квадратов×
ОбластьПсихометрияПсихометрия
СемействоLatent structureLatent structure
Год появления20091985
Автор методаTihomir Asparouhov, Bengt MuthénHerman Wold
ТипHybrid exploratory-confirmatory factor modelingComponent-based structural equation model
Основополагающий источникAsparouhov, T., & Muthén, B. (2009). Exploratory structural equation modeling. Structural Equation Modeling, 16(3), 397-438. DOI ↗Hair, J. F., Hult, G. T. M., Ringle, C. M., & Sarstedt, M. (2017). A Primer on Partial Least Squares Structural Equation Modeling (PLS-SEM) (2nd ed.). Sage Publications. ISBN: 9781483377445
Другие названияESEMPLS-SEM, PLS path modeling
Связанные55
СводкаExploratory Structural Equation Modeling (ESEM) is a hybrid approach that combines exploratory factor analysis (EFA) with confirmatory factor analysis (CFA) and path modeling, developed by Asparouhov and Muthén (2009). ESEM relaxes restrictive zero-loading assumptions of traditional CFA, allowing all indicators to load on all factors, which can reveal cross-factor complexity and improve model fit while retaining the ability to test substantive structural theories.PLS-SEM is a variance-based approach to structural equation modeling developed by Herman Wold (1985) that estimates latent variable models by maximizing the variance explained in dependent variables. Unlike covariance-based SEM, PLS-SEM is particularly useful for exploratory research, small to medium samples, complex models with many constructs, and non-normal data.
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ScholarGateСравнение методов: Exploratory Structural Equation Modeling · Partial Least Squares Structural Equation Modeling. Получено 2026-06-17 из https://scholargate.app/ru/compare