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Examine os métodos selecionados lado a lado; as linhas que diferem ficam destacadas.

Modelo Rasch Robusto×Análise Fatorial Confirmatória Robusta×
ÁreaPsicometriaEstatística
FamíliaLatent structureLatent structure
Ano de origem19821984–1994
Autor originalMislevy & Bock (robust ability estimation); broader robust IRT formalized through 1980s–2000sSatorra & Bentler (robust SE/chi-square corrections); Browne (ADF estimator)
TipoRobust item calibration modelConfirmatory latent variable model with robust estimation
Fonte seminalStrobl, C., Wickelmaier, F., & Zeileis, A. (2011). Accounting for individual differences in Bradley-Terry models by means of recursive partitioning. Journal of Educational and Behavioral Statistics, 36(2), 135–153. DOI ↗Satorra, A. & Bentler, P. M. (1994). Corrections to test statistics and standard errors in covariance structure analysis. In A. von Eye & C. C. Clogg (Eds.), Latent variables analysis: Applications for developmental research (pp. 399–419). Sage. link ↗
Outros nomesrobust IRT Rasch, robust dichotomous Rasch, outlier-resistant Rasch model, robust item calibrationRobust CFA, CFA with robust standard errors, Satorra-Bentler CFA, non-normal CFA
Relacionados56
ResumoThe robust Rasch model applies the standard one-parameter logistic Rasch framework with estimation procedures designed to limit the influence of outlying item responses, aberrant respondents, or mild model violations, producing stable item and person parameter estimates that are less sensitive to data contamination than ordinary maximum likelihood or conditional maximum likelihood Rasch estimation.Robust confirmatory factor analysis fits a pre-specified factor structure to observed data while correcting standard errors and goodness-of-fit statistics for violations of multivariate normality. It is the preferred variant of CFA whenever Likert-type, skewed, or kurtotic indicators make the classical normal-theory estimator unreliable.
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ScholarGateComparar métodos: Robust Rasch Model · Robust Confirmatory Factor Analysis. Recuperado em 2026-06-17 de https://scholargate.app/pt/compare