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K-means Kendiri-selia×K-means Atar (Online K-means)×
BidangPembelajaran MesinPembelajaran Mesin
KeluargaMachine learningMachine learning
Tahun asal20181967 (online update rule); 2010 (mini-batch variant)
PengasasCaron, M. et al. (DeepCluster framework)MacQueen, J. (batch); Sculley, D. (mini-batch web-scale variant)
JenisSelf-supervised clusteringUnsupervised clustering (online/streaming)
Sumber perintisCaron, M., Bojanowski, P., Joulin, A., & Douze, M. (2018). Deep Clustering for Unsupervised Learning of Visual Features. In Proceedings of the European Conference on Computer Vision (ECCV), 132–149. link ↗MacQueen, J. (1967). Some methods for classification and analysis of multivariate observations. In Proceedings of the Fifth Berkeley Symposium on Mathematical Statistics and Probability, Vol. 1, pp. 281–297. University of California Press. link ↗
Aliasself-supervised clustering with K-means, deep clustering with K-means, unsupervised K-means with pseudo-labels, SSL K-meanssequential k-means, streaming k-means, incremental k-means, online clustering
Berkaitan54
RingkasanSelf-supervised K-means is a clustering technique that combines K-means assignment with self-supervised representation learning. The model alternates between clustering unlabeled data points into K groups and using those cluster assignments as pseudo-labels to refine an underlying feature representation, yielding increasingly coherent clusters without any human-annotated ground truth.Online K-means is a streaming variant of the classical K-means algorithm that updates cluster centroids one observation at a time — or in small mini-batches — without storing the entire dataset in memory. It is particularly suited to large-scale, real-time, or continuously arriving data where batch recomputation would be too slow or impractical.
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ScholarGateBandingkan kaedah: Self-supervised K-means · Online K-means. Dicapai 2026-06-18 daripada https://scholargate.app/ms/compare