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Zelfgesuperviseerde One-class SVM×Zelf-gesuperviseerd Leren×
VakgebiedMachine learningMachine learning
FamilieMachine learningMachine learning
Jaar van ontstaan20182018–2020
GrondleggerGolan & El-Yaniv; Ruff et al.LeCun, Y. and community (formalized ~2018–2020)
TypeSelf-supervised anomaly/novelty detectionRepresentation learning paradigm
Oorspronkelijke bronGolan, I. & El-Yaniv, R. (2018). Deep One-Class Classification. Proceedings of the 35th International Conference on Machine Learning (ICML), PMLR 80, 1747–1756. link ↗LeCun, Y. & Misra, I. (2022). Self-supervised learning: The dark matter of intelligence. Meta AI Blog. https://ai.facebook.com/blog/self-supervised-learning-the-dark-matter-of-intelligence/ link ↗
AliassenSS-OCSVM, Self-supervised SVDD, Self-supervised novelty detection, Pretext-task OC-SVMSSL, self-supervised pre-training, pretext-task learning, unsupervised representation learning
Verwant63
SamenvattingSelf-supervised One-class SVM combines pretext-task-based representation learning with One-class SVM to detect anomalies and novelties without requiring labeled anomaly examples. The model first learns expressive feature embeddings from normal data alone, then fits an OC-SVM boundary in the learned feature space to flag out-of-distribution samples.Self-supervised learning (SSL) is a machine-learning paradigm that generates its own supervisory signal directly from unlabeled data by defining an auxiliary pretext task — such as predicting masked words, rotating images, or contrasting augmented views — and uses the learned representations as a powerful starting point for downstream tasks with minimal labeled examples.
ScholarGateGegevensset
  1. v1
  2. 2 Bronnen
  3. PUBLISHED
  1. v1
  2. 2 Bronnen
  3. PUBLISHED

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ScholarGateMethoden vergelijken: Self-supervised One-class SVM · Self-supervised Learning. Geraadpleegd op 2026-06-15 via https://scholargate.app/nl/compare