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Robustne hierarhiline klastreerimine×Hierarchical Clustering×
ValdkondStatistikaMasinõpe
PerekondLatent structureMachine learning
Tekkeaasta19901963
LoojaKaufman & Rousseeuw (building on Ward, 1963 and others)Ward, J. H.
TüüpRobust unsupervised clusteringUnsupervised clustering (agglomerative)
AlgallikasKaufman, L. & Rousseeuw, P. J. (1990). Finding Groups in Data: An Introduction to Cluster Analysis. Wiley. ISBN: 978-0471878766Ward, J. H. (1963). Hierarchical Grouping to Optimize an Objective Function. Journal of the American Statistical Association, 58(301), 236–244. DOI ↗
Rööpnimetusedrobust agglomerative clustering, outlier-resistant hierarchical clustering, robust linkage clustering, RHCHiyerarşik Kümeleme, hiyerarşik kümeleme, agglomerative clustering, hierarchical agglomerative clustering
Seotud54
KokkuvõteRobust hierarchical clustering extends classical agglomerative or divisive hierarchical clustering by replacing sensitive distance measures and linkage criteria with outlier-resistant alternatives, preserving cluster structure even when data contain anomalous observations or heavy-tailed distributions.Hierarchical clustering is an unsupervised method that groups observations into nested clusters and draws the result as a dendrogram, so the number of clusters need not be fixed in advance. Its agglomerative form rests on the objective-function grouping criterion introduced by Joe Ward in 1963.
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ScholarGateVõrdle meetodeid: Robust Hierarchical Clustering · Hierarchical Clustering. Loetud 2026-06-19 aadressilt https://scholargate.app/et/compare