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Krahasoni metodat

Shqyrtoni metodat e zgjedhura krah për krah; rreshtat që ndryshojnë janë të theksuar.

Izolimi vetë-mbikëqyrës×Faktori Lokal i Anomalive (LOF)×
FushaMësimi i makinësMësimi i makinës
FamiljaMachine learningMachine learning
Viti i origjinës2008–2020s2000
KrijuesiLiu, F. T., Ting, K. M., & Zhou, Z.-H. (iForest); SSL extensions by multiple authorsBreunig, M. M.; Kriegel, H.-P.; Ng, R. T.; Sander, J.
LlojiEnsemble anomaly detector with self-supervised pre-trainingDensity-based anomaly detection (unsupervised)
Burimi themeluesLiu, F. T., Ting, K. M., & Zhou, Z.-H. (2008). Isolation Forest. In Proceedings of the 8th IEEE International Conference on Data Mining (ICDM), pp. 413–422. DOI ↗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 ↗
Emërtime të tjeraSSL Isolation Forest, self-supervised iForest, semi-supervised isolation forest, contrastive isolation forestLOF, local outlier factor, density-based outlier detection, local density deviation
Të lidhura44
PërmbledhjaSelf-supervised Isolation Forest augments the classic Isolation Forest anomaly detector with a self-supervised pre-training stage. A pretext task — such as predicting rotation, masked features, or contrastive pairs — is solved without labels to learn a richer feature representation, which is then used when building the isolation trees, yielding sharper anomaly scores on complex, high-dimensional tabular data.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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ScholarGateKrahasoni metodat: Self-supervised Isolation Forest · Local Outlier Factor. Marrë më 2026-06-17 nga https://scholargate.app/sq/compare