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Analisis ROC Robust×Analisis Ukuran Efek Robust×
BidangStatistikaStatistika
KeluargaHypothesis testHypothesis test
Tahun asal1990s–2000s2005 (formalized)
PencetusMultiple contributors (Pepe, Qin, Zhou, and others)Algina, Keselman & Penfield; Wilcox
TipeRobust diagnostic accuracy evaluationRobust effect size estimation
Sumber perintisPepe, M. S. (2000). An interpretation for the ROC curve and inference using GLM procedures. Biometrics, 56(2), 352–359. DOI ↗Algina, J., Keselman, H. J., & Penfield, R. D. (2005). An alternative to Cohen's standardized mean difference effect size: A robust parameter and confidence interval in the two independent groups case. Psychological Methods, 10(3), 317–328. DOI ↗
Aliasrobust AUC analysis, outlier-resistant ROC, robust diagnostic accuracy analysis, robust sensitivity-specificity analysisrobust Cohen's d, trimmed-mean effect size, outlier-resistant effect size, robust standardized mean difference
Terkait35
RingkasanRobust ROC analysis evaluates the diagnostic accuracy of a continuous or ordinal biomarker in distinguishing between two groups (e.g., diseased vs. healthy) while protecting against the distorting effects of outliers, non-normality, or distributional violations that can bias standard parametric ROC estimates and AUC confidence intervals.Robust effect size analysis quantifies the magnitude of a difference or association using estimators that are resistant to outliers and violations of normality. Rather than relying on classical statistics such as Cohen's d based on sample means and standard deviations, robust variants use trimmed means and Winsorized standard deviations to produce effect size estimates that accurately reflect the typical effect rather than being inflated by extreme values.
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ScholarGateBandingkan metode: Robust ROC analysis · Robust Effect Size Analysis. Diakses 2026-06-17 dari https://scholargate.app/id/compare