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تحليل القوة للنمذجة بالمعادلات الهيكلية×تحليل التباين متعدد المتغيرات (MANOVA)×
المجالالإحصاءالإحصاء
العائلةHypothesis testHypothesis test
سنة النشأة19961932
صاحب الطريقةMacCallum, Browne & SugawaraSamuel Stanley Wilks (Wilks' Lambda, 1932); Roy, Hotelling, Pillai (mid-20th c.)
النوعSample size planning (multivariate / SEM)Parametric multivariate mean comparison
المصدر التأسيسيMacCallum, 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 ↗Tabachnick, B.G. & Fidell, L.S. (2013). Using Multivariate Statistics (6th ed.). Pearson. ISBN: 978-0205849574
الأسماء البديلةSEM sample size planning, covariance structure power analysis, MANOVA power analysis, SEM / Çok Değişkenli Güç AnaliziMultivariate ANOVA, Çok Değişkenli ANOVA (MANOVA)
ذات صلة65
الملخصPower 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.MANOVA is a parametric hypothesis test that simultaneously compares group means across multiple continuous dependent variables, controlling the inflation of Type I error that would result from running separate ANOVAs. Key multivariate test statistics — Wilks' Lambda, Pillai's Trace, Hotelling-Lawley Trace, and Roy's Greatest Root — were developed between the 1930s and 1950s, with Wilks' Lambda formalised by Samuel Stanley Wilks in 1932.
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ScholarGateقارن الطرق: SEM Power Analysis · MANOVA. استُرجع بتاريخ 2026-06-18 من https://scholargate.app/ar/compare