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Murdepunkti analüüs×Robustne diskriminantanalüüs×
ValdkondStatistikaStatistika
PerekondRegression modelRegression model
Tekkeaasta19831997
LoojaHampel (1971); Donoho & Huber (1983)Hawkins & McLachlan (high-breakdown LDA); Croux & Dehon (S-estimator robust LDA)
TüüpRobustness diagnostic for estimatorsRobust classification / discriminant analysis
AlgallikasDonoho, D. L. & Huber, P. J. (1983). The Notion of Breakdown Point. In A Festschrift for Erich L. Lehmann (pp. 157-184). Wadsworth. link ↗Hawkins, D. M. & McLachlan, G. J. (1997). High Breakdown Linear Discriminant Analysis. Journal of the American Statistical Association, 92(437), 136-143. DOI ↗
Rööpnimetusedbreakdown point, finite-sample breakdown point, robustness breakdown analysis, Bozunma Noktası Analizirobust LDA, high-breakdown discriminant analysis, MCD-based discriminant analysis, Robust Diskriminant Analizi
Seotud55
KokkuvõteBreakdown point analysis quantifies the fraction of outliers an estimator can tolerate before it produces meaningless results. Formalised by Hampel (1971) and Donoho and Huber (1983), it is the standard tool for comparing the robustness of competing estimators.Robust Discriminant Analysis is a classification method that separates groups with a linear discriminant function while resisting the influence of outliers. It replaces the classical mean and covariance with a high-breakdown estimator such as the Minimum Covariance Determinant (MCD), an approach developed by Hawkins & McLachlan (1997) and Croux & Dehon (2001).
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ScholarGateVõrdle meetodeid: Breakdown Point Analysis · Robust Discriminant Analysis. Loetud 2026-06-17 aadressilt https://scholargate.app/et/compare