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Normalisoitu keskinäinen informaatio×Davies-Bouldin-indeksi×
TieteenalaMallien arviointiMallien arviointi
MenetelmäperheMCDMMCDM
Syntyvuosi20051979
KehittäjäDanon, Diaz-Guilera, Duch, ArenasDavid L. Davies, Donald W. Bouldin
TyyppiInformation-theoretic metricCluster quality metric
AlkuperäislähdeDanon, L., Diaz-Guilera, A., Duch, J., & Arenas, A. (2005). Comparing community structure identification. Journal of Statistical Mechanics: Theory and Experiment, 2005(09), P09008. DOI ↗Davies, D. L., & Bouldin, D. W. (1979). A cluster separation measure. IEEE Transactions on Pattern Analysis and Machine Intelligence, 1(2), 224-227. DOI ↗
RinnakkaisnimetNMI, mutual information, information criterionDBI, Davies Bouldin index
Liittyvät55
TiivistelmäNormalized Mutual Information (NMI), popularized by Danon et al. in 2005, is an external clustering evaluation metric based on information theory. It measures the amount of information shared between a predicted clustering and ground truth labels, normalized to a scale between 0 and 1. A value of 1 indicates perfect agreement, while 0 indicates independence.The Davies-Bouldin Index, introduced by Davies and Bouldin in 1979, is a metric for evaluating clustering quality based on the average similarity between each cluster and its most similar neighboring cluster. Lower values indicate better clustering, with a minimum of 0 representing perfectly separated, non-overlapping clusters.
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ScholarGateVertaile menetelmiä: Normalized Mutual Information · Davies-Bouldin Index. Haettu 2026-06-19 osoitteesta https://scholargate.app/fi/compare