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OdborStrojové učenieStrojové učenie
RodinaMachine learningMachine learning
Rok vzniku2000s–2010s2003 (foundational); refined 2009 (LMNN)
TvorcaMultiple contributors (Weinberger, Saul, et al.)Xing, E. P.; Jordan, M. I.; Russell, S.; Ng, A. Y.
TypEnsemble of learned distance metricsRepresentation learning / supervised distance optimization
Pôvodný zdrojWang, J., Kalousis, A., & Woznica, A. (2012). Parametric local metric learning for nearest neighbor classification. Advances in Neural Information Processing Systems, 25. link ↗Xing, E. P., Jordan, M. I., Russell, S., & Ng, A. Y. (2003). Distance metric learning with application to clustering with side-information. In Advances in Neural Information Processing Systems (NIPS), 16, 505–512. link ↗
Ďalšie názvyEML, ensemble distance metric learning, multiple metric fusion, combined metric learningDistance Metric Learning, Similarity Learning, DML, Representation Learning via Distance
Príbuzné55
ZhrnutieEnsemble Metric Learning trains multiple distance metric learners — each on a different data view, feature subspace, or with a different objective — and combines the resulting metrics to produce a single, more robust similarity function. Combining diverse metrics reduces the variance of any individual metric and improves performance in tasks such as nearest-neighbor classification, retrieval, and few-shot learning.Metric learning is a machine-learning framework that trains a distance or similarity function from data so that semantically similar examples end up close together in the learned space while dissimilar examples are pushed apart. Unlike fixed distances such as Euclidean, the learned metric adapts to the structure of the task, making downstream classifiers, clusterers, and retrieval systems significantly more accurate.
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ScholarGatePorovnať metódy: Ensemble Metric Learning · Metric Learning. Získané 2026-06-18 z https://scholargate.app/sk/compare