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컴퓨터 적응형 검사 문항 기능차 (CAT-DIF)×문항 반응 이론 (IRT)×
분야심리측정학심리측정학
계열Latent structureLatent structure
기원 연도1990s–2000s1952–1968
창시자Wainer, Zwick, and colleagues in the CAT and DIF literaturesFrederic M. Lord (and Allan Birnbaum for the 2PL/3PL models)
유형Item bias detection in adaptive testingProbabilistic measurement model
원전Zwick, R., Thayer, D. T., & Mazzeo, J. (1997). Describing and categorizing DIF in polytomous items. Journal of Educational Measurement, 34(4), 261–285. DOI ↗Lord, F. M. & Novick, M. R. (1968). Statistical Theories of Mental Test Scores. Addison-Wesley. link ↗
별칭CAT DIF analysis, adaptive test DIF, DIF in computerized adaptive testing, CAT item bias detectionIRT, latent trait theory, item characteristic curve theory, modern test theory
관련65
요약CAT-DIF identifies items in a computerized adaptive test that behave differently across demographic or group subpopulations after controlling for overall ability. Because adaptive algorithms select items non-randomly based on each examinee's estimated proficiency, standard DIF detection methods require adjustment before they can be validly applied in this context.Item response theory models the probability that a respondent answers an item correctly (or endorses it) as a function of the respondent's latent trait level and the item's own statistical properties — difficulty, discrimination, and guessing. Unlike classical test theory, IRT places persons and items on the same scale, yielding measurement that is sample-independent for items and test-independent for persons.
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ScholarGate방법 비교: CAT-DIF · Item Response Theory. 2026-06-17에 다음에서 검색함: https://scholargate.app/ko/compare