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SIBTEST×Tests adaptatifs informatisés diagnostiques cognitifs×Modèle DINA×Modèle DINO×
DomainePsychométriePsychométriePsychométriePsychométrie
FamilleLatent structureLatent structureLatent structureLatent structure
Année d'origine1993200720012006
Auteur d'origineRichard Shealy, William F. StoutXueli Xu, Jean-Paul FoxBrian Junker, Klaas SijtsmaJames Templin, Russell Henson
TypeDifferential item functioning (DIF) assessmentSkill-adaptive testing with psychometric diagnostic classificationDiscrete latent class modelDisjunctive latent class model
Source fondatriceShealy, R., & Stout, W. F. (1993). A model-based standardization approach that separates true bias/DIF from group differences and detects test bias/DTF. Psychometrika, 58(2), 159-194. DOI ↗Choi, K. M., Lee, Y. S., & Park, Y. S. (2015). What CDM can tell about examinees' strengths and weaknesses: Cognitive diagnostic information in TIMSS. Journal of Educational Evaluation for Policy Analysis, 24(1), 79-100. link ↗Junker, B. W., & Sijtsma, K. (2001). Cognitive assessment models with few assumptions, and connections with nonparametric item response theory. Applied Psychological Measurement, 25(3), 258-272. DOI ↗Templin, J., & Henson, R. A. (2006). Measurement of psychological disorders using cognitive diagnosis models. Psychological Methods, 11(3), 287-305. DOI ↗
AliasCD-CATDINADINO
Apparentées5544
RésuméSIBTEST (Simultaneous Item Bias Test) is a non-parametric method for detecting differential item functioning (DIF) and differential test functioning (DTF) developed by Shealy and Stout (1993). Unlike parametric approaches, SIBTEST does not assume a particular item response model and directly tests whether groups differ in their probability of correct responses at equal levels of overall ability.Cognitive Diagnostic Computerized Adaptive Testing (CD-CAT) combines computerized adaptive testing (CAT) with cognitive diagnostic models (CDMs) to efficiently assess students' specific skill profiles. Rather than producing a single overall ability score, CD-CAT adaptively selects items to quickly identify which skills a student has mastered and which need development.The DINA Model (Deterministic Inputs, Noisy Outputs) is a cognitive diagnostic model developed by Junker and Sijtsma (2001) that classifies examinees into latent skill classes based on their item response patterns. DINA assumes a deterministic relationship between skill mastery and correct responses, with probabilistic error accounting for guessing and slips.The DINO Model (Deterministic Inputs, Noisy Outputs—Disjunctive) is a cognitive diagnostic model that relaxes DINA's conjunctive (AND) skill requirement logic. DINO assumes an examinee only needs to master one of multiple possible skill pathways to answer an item correctly, making it suitable for scenarios where skills are substitutable or alternative routes to success exist.
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ScholarGateComparer des méthodes: SIBTEST · Cognitive Diagnostic Computerized Adaptive Testing · DINA Model · DINO Model. Consulté le 2026-06-19 sur https://scholargate.app/fr/compare