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Krahasoni metodat

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

One-Class SVM e Shpjegueshme×Isolation Forest×
FushaMësimi i makinësMësimi i makinës
FamiljaMachine learningMachine learning
Viti i origjinës1999 (OCSVM); 2017–present (explainability integration)2008
KrijuesiSchölkopf, B. et al. (OCSVM); explainability layer via Lundberg & Lee (SHAP, 2017) and related worksLiu, F.T., Ting, K.M. & Zhou, Z.-H.
LlojiAnomaly/novelty detection with post-hoc or intrinsic explainabilityUnsupervised ensemble (random partitioning trees)
Burimi themeluesSchölkopf, B., Williamson, R., Smola, A., Shawe-Taylor, J., & Platt, J. (1999). Support vector method for novelty detection. Advances in Neural Information Processing Systems, 12, 582–588. link ↗Liu, F.T., Ting, K.M. & Zhou, Z.-H. (2008). Isolation Forest. IEEE ICDM, 413–422. DOI ↗
Emërtime të tjeraXOC-SVM, Interpretable One-Class SVM, SHAP-augmented OCSVM, Explainable Novelty Detection SVMIsolation Forest (Aykırı Değer Tespiti), iForest, isolation forest anomaly detection
Të lidhura45
PërmbledhjaExplainable One-Class SVM pairs the classic One-Class Support Vector Machine anomaly detector — which learns a tight boundary around normal data without requiring labeled anomalies — with post-hoc explainability methods such as SHAP or LIME to reveal which features drive each novelty or anomaly score, converting an opaque decision boundary into an auditable, feature-attributable signal.Isolation Forest is an unsupervised machine-learning method for anomaly and outlier detection, introduced by Liu, Ting and Zhou in 2008, that isolates anomalies through random partitioning of the data. It works without any labelled anomaly data and scales to high-dimensional datasets.
ScholarGateSeti i të dhënave
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  1. v1
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  3. PUBLISHED

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ScholarGateKrahasoni metodat: Explainable One-Class SVM · Isolation Forest. Marrë më 2026-06-17 nga https://scholargate.app/sq/compare