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Robust Differential Item Functioning×Phân tích mục mạnh mẽ×
Lĩnh vựcTrắc lượng tâm lýTrắc lượng tâm lý
HọLatent structureLatent structure
Năm ra đời1990s–2000s1980s–2000s
Người khởi xướngBuilding on DIF work by Cleary & Hilton (1968) and Mantel-Haenszel by Holland & Thayer (1988); robust extensions developed through 1990s–2000sRobust methods tradition (Huber, Hampel, Tukey); applied to item analysis by Wilcox and colleagues
LoạiItem bias / fairness analysisDiagnostic / item-level evaluation
Công trình gốcMagis, D., Beland, S., Tuerlinckx, F., & De Boeck, P. (2011). A general framework and an R package for the detection of dichotomous differential item functioning. Behavior Research Methods, 43(3), 847–862. DOI ↗Wilcox, R. R. (2012). Introduction to Robust Estimation and Hypothesis Testing (3rd ed.). Academic Press. ISBN: 978-0123869838
Tên gọi khácRobust DIF, outlier-resistant DIF detection, robust item bias analysis, DIF with robust estimationrobust item statistics, outlier-resistant item analysis, robust classical item analysis
Liên quan65
Tóm tắtRobust differential item functioning analysis detects items that behave differently across demographic groups after matching respondents on the underlying trait, while protecting the procedure against distortion by outliers, model misfit, or contaminated anchor items. It is applied in educational testing, clinical assessment, and survey research to ensure that a scale measures the same construct equally fairly for all groups.Robust item analysis applies outlier-resistant statistical methods to the evaluation of individual test or scale items. Instead of classical means and Pearson correlations — both sensitive to extreme scores — it uses trimmed means, Winsorized correlations, or M-estimators to obtain item difficulty and item-total discrimination indices that remain stable when respondent distributions are skewed or contaminated by outliers.
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ScholarGateSo sánh phương pháp: Robust Differential Item Functioning · Robust Item Analysis. Truy cập ngày 2026-06-17 từ https://scholargate.app/vi/compare