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Bayesiläinen verkko mittausvirheellä×Latent Class Analysis (LCA)×
TieteenalaBayesilainen tilastotiedeTilastotiede
MenetelmäperheBayesian methodsLatent structure
Syntyvuosi1988 (Bayesian networks); measurement-error extension: 1990s1950s–1968
KehittäjäJudea Pearl (Bayesian networks); measurement-error extension developed in epidemiology and psychometrics through the 1990s–2000sPaul F. Lazarsfeld
TyyppiProbabilistic graphical model with latent variablesLatent variable / person-centered classification
AlkuperäislähdePearl, J. (1988). Probabilistic Reasoning in Intelligent Systems: Networks of Plausible Inference. Morgan Kaufmann. ISBN: 978-1558604797Goodman, L. A. (1974). Exploratory latent structure analysis using both identifiable and unidentifiable models. Biometrika, 61(2), 215–231. DOI ↗
RinnakkaisnimetBN-ME, errors-in-variables Bayesian network, Bayesian graphical model with measurement error, latent variable Bayesian networkLCA, latent class model, latent categorical analysis, finite mixture of multinomials
Liittyvät56
TiivistelmäA Bayesian network with measurement error is a probabilistic directed acyclic graphical model in which one or more node variables are observed with error rather than exactly. Latent true-value nodes are introduced for mismeasured variables, and the model jointly infers the network's conditional probability parameters and the unobserved true values from the noisy observations.Latent 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.
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ScholarGateVertaile menetelmiä: Bayesian Network with Measurement Error · Latent Class Analysis. Haettu 2026-06-17 osoitteesta https://scholargate.app/fi/compare