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Kognitiivse diagnoosimise mudelid (DINA / G-DINA)×Latent Class Analysis (LCA)×
ValdkondPsühhomeetriaStatistika
PerekondLatent structureLatent structure
Tekkeaasta20111950s–1968
LoojaJimmy de la TorrePaul F. Lazarsfeld
TüüpLatent variable diagnostic classification modelLatent variable / person-centered classification
Algallikasde la Torre, J. (2011). The generalized DINA model framework. Psychometrika, 76(2), 179–199. DOI ↗Goodman, L. A. (1974). Exploratory latent structure analysis using both identifiable and unidentifiable models. Biometrika, 61(2), 215–231. DOI ↗
RööpnimetusedDiagnostic Classification Model, Skills Assessment Model, Attribute Mastery Model, Bilişsel Tanı ModeliLCA, latent class model, latent categorical analysis, finite mixture of multinomials
Seotud26
KokkuvõteCognitive Diagnosis Models (CDMs) are a family of latent variable models designed to classify examinees according to their mastery of a set of discrete cognitive attributes or skills. The Generalized DINA (G-DINA) framework, introduced by Jimmy de la Torre in 2011, provides a unifying structure that encompasses many specific CDMs — including the DINA, DINO, ACDM, and LLM models — as special cases, enabling fine-grained diagnostic feedback beyond a single total score.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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ScholarGateVõrdle meetodeid: Cognitive Diagnosis Model · Latent Class Analysis. Loetud 2026-06-18 aadressilt https://scholargate.app/et/compare