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Partial Credit Model (PCM / GPCM)×Explorativ faktoriell analys (EFA)×
ÄmnesområdePsykometriStatistik
FamiljLatent structureLatent structure
Ursprungsår1982
UpphovspersonGeoff N. Masters (PCM, 1982); Eiji Muraki (GPCM, 1992)
TypItem Response Theory / Polytomous IRTLatent variable / dimension reduction
UrsprungskällaMasters, G. N. (1982). A Rasch model for partial credit scoring. Psychometrika, 47(2), 149–174. DOI ↗Fabrigar, L. R., Wegener, D. T., MacCallum, R. C. & Strahan, E. J. (1999). Evaluating the use of exploratory factor analysis in psychological research. Psychological Methods, 4(3), 272–299. DOI ↗
AliasKısmi Kredi Modeli (PCM / GPCM), Generalized Partial Credit Model, GPCM, PCMcommon factor analysis, açımlayıcı faktör analizi, factor analysis
Närliggande54
SammanfattningThe Partial Credit Model is an extension of the Rasch measurement framework designed for ordered polytomous items — items whose responses fall into more than two ordered categories, such as partial-credit tasks in performance assessment or open-ended scoring rubrics. Proposed by Geoff Masters in 1982 and later generalised by Eiji Muraki in 1992, the model estimates a separate threshold (step) parameter for each adjacent-category transition within every item, allowing fine-grained calibration of how much each additional credit level contributes to locating a person on the latent trait.Exploratory factor analysis reduces a large set of observed variables into a smaller number of latent common factors. It is widely used in scale development and psychometrics to uncover the dimensional structure that underlies a set of correlated items, without specifying that structure in advance.
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ScholarGateJämför metoder: PCM / GPCM · EFA. Hämtad 2026-06-17 från https://scholargate.app/sv/compare