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Autoaprenentatge en línia×Aprenentatge autosupervisat×
CampAprenentatge automàticAprenentatge automàtic
FamíliaMachine learningMachine learning
Any d'origen2020s2018–2020
Autor originalMultiple contributors (Gidaris, Fini et al., among others)LeCun, Y. and community (formalized ~2018–2020)
TipusOnline unsupervised representation learningRepresentation learning paradigm
Font seminalGidaris, S., Bursuc, A., Komodakis, N., Perez, P., & Cord, M. (2021). OBoW: Online Bag-of-Visual-Words Generation for Self-Supervised Learning. Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR), 6830–6840. 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 ↗
Àliesonline SSL, continual self-supervised learning, streaming self-supervised learning, incremental self-supervised learningSSL, self-supervised pre-training, pretext-task learning, unsupervised representation learning
Relacionats33
ResumOnline Self-supervised Learning (online SSL) trains neural networks on unlabeled data that arrives sequentially or in streams, using automatically generated supervisory signals (pretext tasks) instead of human labels. By updating the model continuously as new data flows in, it enables perpetually evolving representations without storing the full dataset — critical for real-time systems, edge devices, and privacy-constrained settings.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.
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ScholarGateCompara mètodes: Online Self-supervised Learning · Self-supervised Learning. Recuperat el 2026-06-15 de https://scholargate.app/ca/compare