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Vysvětlitelný HDBSCAN×HDBSCAN×
OborStrojové učeníStrojové učení
RodinaMachine learningMachine learning
Rok vzniku2017–20202013
TvůrceMcInnes, L.; Healy, J. (HDBSCAN); Lundberg & Lee (SHAP-based explanation)Campello, R. J. G. B.; Moulavi, D.; Sander, J.
TypExplainable clusteringHierarchical density-based clustering
Původní zdrojMcInnes, L., Healy, J., & Astels, S. (2017). hdbscan: Hierarchical density based clustering. Journal of Open Source Software, 2(11), 205. DOI ↗Campello, R. J. G. B., Moulavi, D., & Sander, J. (2013). Density-Based Clustering Based on Hierarchical Density Estimates. In J. Pei et al. (Eds.), Advances in Knowledge Discovery and Data Mining. PAKDD 2013. Lecture Notes in Computer Science, vol. 7819 (pp. 160–172). Springer, Berlin, Heidelberg. DOI ↗
Další názvyXAI-HDBSCAN, Interpretable HDBSCAN, Explainable Hierarchical DBSCAN, HDBSCAN with XAIHDBSCAN, Hierarchical DBSCAN, hierarchical density-based clustering, HDBSCAN*
Příbuzné63
ShrnutíExplainable HDBSCAN combines the hierarchical density-based clustering algorithm HDBSCAN with post-hoc explainability methods — primarily SHAP — to reveal which input features drive cluster membership and separation. It retains HDBSCAN's ability to find clusters of varying shape and density while adding a principled, auditable explanation layer.HDBSCAN (Hierarchical Density-Based Spatial Clustering of Applications with Noise) is a density-based clustering algorithm introduced by Campello, Moulavi, and Sander in 2013. It extends DBSCAN by building a full hierarchy of density-based clusters across all density scales and then extracting a stable flat partition, making it robust to datasets where cluster densities vary substantially across regions.
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ScholarGatePorovnat metody: Explainable HDBSCAN · HDBSCAN. Získáno 2026-06-15 z https://scholargate.app/cs/compare