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HDBSCAN semi-supervisé×K-means semi-supervisé×
DomaineApprentissage automatiqueApprentissage automatique
FamilleMachine learningMachine learning
Année d'origine2017–present2001–2002
Auteur d'origineMcInnes, L.; Healy, J. (base HDBSCAN); semi-supervised extensions by various authorsWagstaff, K. et al. (constrained); Basu, S. et al. (seeded)
TypeSemi-supervised density-based clusteringSemi-supervised clustering
Source fondatriceMcInnes, L., Healy, J., & Astels, S. (2017). hdbscan: Hierarchical density based clustering. Journal of Open Source Software, 2(11), 205. DOI ↗Wagstaff, K., Cardie, C., Rogers, S., & Schroedl, S. (2001). Constrained K-means Clustering with Background Knowledge. In Proceedings of the 18th International Conference on Machine Learning (ICML 2001), pp. 577–584. link ↗
AliasConstrained HDBSCAN, Semi-supervised hierarchical density clustering, HDBSCAN with partial labels, SS-HDBSCANconstrained K-means, seeded K-means, partially supervised K-means, SS-K-means
Apparentées65
RésuméSemi-supervised HDBSCAN extends the Hierarchical Density-Based Spatial Clustering of Applications with Noise (HDBSCAN) algorithm by incorporating partial supervision — such as must-link and cannot-link pairwise constraints or a small set of labeled examples — to guide the density-based cluster hierarchy toward cluster assignments that are consistent with available domain knowledge.Semi-supervised K-means extends standard K-means clustering by incorporating partial supervision — either a small set of labeled seed points or pairwise must-link and cannot-link constraints — to guide cluster formation. It bridges unsupervised clustering and fully supervised classification, enabling more meaningful clusters when labels are scarce but costly to obtain in full.
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ScholarGateComparer des méthodes: Semi-supervised HDBSCAN · Semi-supervised K-means. Consulté le 2026-06-18 sur https://scholargate.app/fr/compare