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Kasvusekamalli (GMM)×Hierarkkinen lineaarinen mallinnus (HLM / monitasomallinnus)×
TieteenalaTilastotiedeTilastotiede
MenetelmäperheLatent structureHypothesis test
Syntyvuosi19991986
KehittäjäBengt O. Muthén & Kerby SheddenRaudenbush & Bryk (popularized); Goldstein (parallel development)
TyyppiLatent class / longitudinal growth modelParametric nested-data regression
AlkuperäislähdeMuthén, B. O. & Shedden, K. (1999). Finite Mixture Modeling with Mixture Outcomes Using the EM Algorithm. Biometrics, 55(2), 463–469. DOI ↗Raudenbush, S.W. & Bryk, A.S. (2002). Hierarchical Linear Models: Applications and Data Analysis Methods (2nd ed.). Sage. ISBN: 978-0761919049
RinnakkaisnimetBüyüme Karışım Modeli (Growth Mixture Model — GMM), GMM, latent class growth analysis extension, mixture latent growth curve modelHLM, MLM, multilevel modeling, multilevel analysis
Liittyvät54
TiivistelmäThe Growth Mixture Model, introduced by Muthén and Shedden in 1999, is a longitudinal latent variable method that identifies distinct subpopulations — latent trajectory classes — each following its own growth curve over time. It extends the standard Latent Growth Curve (LGC) model by allowing the sample to be composed of an unknown mixture of classes with different intercepts, slopes, and variance structures.Hierarchical Linear Modeling (HLM), also known as Multilevel Modeling (MLM), is a parametric statistical method for analyzing nested or clustered data — for example students within classrooms, patients within hospitals, or employees within organizations. Formalized by Raudenbush and Bryk in their 2002 seminal text (building on work from the mid-1980s), HLM simultaneously estimates individual-level and group-level effects while correctly partitioning variance across levels.
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ScholarGateVertaile menetelmiä: GMM · Hierarchical Linear Modeling. Haettu 2026-06-18 osoitteesta https://scholargate.app/fi/compare