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Анализ мощности для структурного моделирования уравнений×Структурное моделирование (Structural Equation Modeling)×
ОбластьСтатистикаСтатистика исследований
СемействоHypothesis testProcess / pipeline
Год появления19961921
Автор методаMacCallum, Browne & SugawaraSewall Wright
ТипSample size planning (multivariate / SEM)Method
Основополагающий источникMacCallum, R. C., Browne, M. W., & Sugawara, H. M. (1996). Power analysis and determination of sample size for covariance structure modeling. Psychological Methods, 1(2), 130–149. DOI ↗Jöreskog, K. G., & Sörbom, D. (1973). LISREL: A general computer program for estimating a linear structural equation system. Research Bulletin 73-5. University of Stockholm. link ↗
Другие названияSEM sample size planning, covariance structure power analysis, MANOVA power analysis, SEM / Çok Değişkenli Güç AnaliziSEM, path analysis, latent variable modeling, causal modeling
Связанные63
СводкаPower analysis for SEM and other multivariate procedures determines the minimum sample size required to detect a model misfit of a specified magnitude with adequate probability. The dominant approach, introduced by MacCallum, Browne, and Sugawara in 1996, expresses effect size as the Root Mean Square Error of Approximation (RMSEA) and derives power from the noncentral chi-square distribution.Structural equation modeling (SEM) is a comprehensive statistical framework combining path analysis (Sewall Wright, 1921) and confirmatory factor analysis to test complex causal models linking observed and latent variables. Formalized by Jöreskog (1973) with LISREL software, SEM enables simultaneous estimation of measurement relationships (how variables measure latent constructs) and structural relationships (how constructs influence outcomes), making it powerful for theory testing in psychology, epidemiology, organizational research, and health sciences where complex mediation, moderation, and latent processes require integrated analysis.
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ScholarGateСравнение методов: SEM Power Analysis · Structural Equation Modeling. Получено 2026-06-17 из https://scholargate.app/ru/compare