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OpenLDN: Learning to Discover Novel Classes for Open-World Semi-Supervised Learning. (arXiv:2207.02261v2 [cs.CV] UPDATED)
July 29, 2022, 1:11 a.m. | Mamshad Nayeem Rizve, Navid Kardan, Salman Khan, Fahad Shahbaz Khan, Mubarak Shah
cs.LG updates on arXiv.org arxiv.org
Semi-supervised learning (SSL) is one of the dominant approaches to address
the annotation bottleneck of supervised learning. Recent SSL methods can
effectively leverage a large repository of unlabeled data to improve
performance while relying on a small set of labeled data. One common assumption
in most SSL methods is that the labeled and unlabeled data are from the same
data distribution. However, this is hardly the case in many real-world
scenarios, which limits their applicability. In this work, instead, we …
arxiv cv learning semi-supervised semi-supervised learning supervised learning
More from arxiv.org / cs.LG updates on arXiv.org
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