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Latente Klassenanalyse (LCA)×Diskriminanzanalyse×
FachgebietStatistikStatistik
FamilieLatent structureLatent structure
Entstehungsjahr1950s–19681936
UrheberPaul F. LazarsfeldRonald A. Fisher
TypLatent variable / person-centered classificationSupervised classification and dimension reduction
Wegweisende QuelleGoodman, L. A. (1974). Exploratory latent structure analysis using both identifiable and unidentifiable models. Biometrika, 61(2), 215–231. DOI ↗Fisher, R. A. (1936). The use of multiple measurements in taxonomic problems. Annals of Eugenics, 7(2), 179–188. DOI ↗
AliasnamenLCA, latent class model, latent categorical analysis, finite mixture of multinomialsLDA, Fisher discriminant analysis, discriminant function analysis, canonical discriminant analysis
Verwandt64
ZusammenfassungLatent class analysis identifies unobserved subgroups — latent classes — within a population by finding patterns of responses across a set of categorical observed indicators. It is the categorical-variable counterpart of cluster analysis, but grounded in an explicit probabilistic model, and is widely used in social, health, and behavioral sciences to discover typologies in survey or diagnostic data.Discriminant analysis finds linear combinations of predictor variables that best separate two or more known groups. It is used both to understand which predictors distinguish the groups and to classify new observations into those groups with minimum error.
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ScholarGateMethoden vergleichen: Latent Class Analysis · Discriminant Analysis. Abgerufen am 2026-06-17 von https://scholargate.app/de/compare