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Tiešsaistes vienas klases SVM×Lokālā novirzes faktors (LOF)×
NozareMašīnmācīšanāsMašīnmācīšanās
SaimeMachine learningMachine learning
Izcelsmes gads2006 (incremental/online variant); 1999 (base method)2000
AutorsLaskov, P. et al. (incremental extension); Scholkopf, B. et al. (original OC-SVM)Breunig, M. M.; Kriegel, H.-P.; Ng, R. T.; Sander, J.
TipsOnline anomaly detection / novelty detectionDensity-based anomaly detection (unsupervised)
PirmavotsLaskov, P., Gehl, C., Krueger, S., & Muller, K.-R. (2006). Incremental support vector learning: Analysis, implementation and applications. Journal of Machine Learning Research, 7, 1909–1936. link ↗Breunig, M. M., Kriegel, H.-P., Ng, R. T., & Sander, J. (2000). LOF: Identifying density-based local outliers. Proceedings of the 2000 ACM SIGMOD International Conference on Management of Data, 93–104. DOI ↗
Citi nosaukumiOnline OC-SVM, Incremental One-Class SVM, Online SVDD, Sequential One-Class SVMLOF, local outlier factor, density-based outlier detection, local density deviation
Saistītās44
KopsavilkumsOnline One-Class SVM is an incremental extension of the classical One-Class Support Vector Machine that updates its decision boundary as new data arrive one sample at a time, making it suitable for streaming environments and real-time anomaly or novelty detection without retraining from scratch.Local Outlier Factor (LOF) is a density-based, unsupervised anomaly detection algorithm introduced by Breunig, Kriegel, Ng, and Sander in 2000. It assigns each data point a continuous outlier score that quantifies how isolated that point is relative to its local neighborhood, enabling detection of anomalies that global methods miss because they blend into dense clusters elsewhere in the space.
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ScholarGateSalīdzināt metodes: Online One-class SVM · Local Outlier Factor. Izgūts 2026-06-19 no https://scholargate.app/lv/compare