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Poweranalyse für Mehrebenen- und gemischte Modelle×Mixed Effects Model×
FachgebietStatistikStatistik
FamilieHypothesis testRegression model
Entstehungsjahr19931982
UrheberSnijders & Bosker; Hox, Moerbeek & van de SchootLaird & Ware
TypSample-size planning for hierarchical designsMixed effects regression
Wegweisende QuelleSnijders, T.A.B. & Bosker, R.J. (2012). Multilevel Analysis: An Introduction to Basic and Advanced Multilevel Modeling (2nd ed.). SAGE. ISBN: 978-1849202015Laird, N. M., & Ware, J. H. (1982). Random-effects models for longitudinal data. Biometrics, 38(4), 963–974. DOI ↗
AliasnamenHLM power analysis, mixed-effects power analysis, clustered design power analysis, Çok Düzeyli / Karma Model Güç AnaliziLME, LMM, mixed model, random effects model
Verwandt44
ZusammenfassungMultilevel power analysis is a sample-size planning procedure designed for hierarchical, clustered, or longitudinal study designs in which observations are nested within higher-level units such as students within schools or patients within clinics. Formalized in the multilevel modeling literature by Snijders and Bosker (1993, expanded 2012) and Hox, Moerbeek, and van de Schoot (2017), it accounts for the intraclass correlation (ICC) and the design effect that arises when data are clustered, ensuring that both the number of clusters and the cluster size are adequate to detect a target effect.A mixed effects model (or linear mixed model) extends ordinary regression by including both fixed effects — population-level parameters shared by all observations — and random effects that capture subject-, group-, or cluster-level variability. It is the standard tool for repeated-measures, longitudinal, and multilevel data where observations within the same unit are correlated.
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ScholarGateMethoden vergleichen: Multilevel Power Analysis · Mixed Effects Model. Abgerufen am 2026-06-17 von https://scholargate.app/de/compare