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Segmentare semi-supervizată a instanțelor×Detecție de obiecte semi-supervizată×
DomeniuÎnvățare profundăÎnvățare profundă
FamilieMachine learningMachine learning
Anul apariției2018–20212020–2021
Autorul originalMultiple independent research groups (2018–2021)Sohn et al. (STAC); Liu et al. (Unbiased Teacher)
TipSemi-supervised deep learning for dense predictionSemi-supervised learning for detection
Sursa seminalăHu, H., Wei, P., Zheng, H., Bai, X., Wei, Y., & Chen, Y. (2021). Semi-supervised Semantic Segmentation via Adaptive Equalization Learning. Advances in Neural Information Processing Systems (NeurIPS), 34, 22106–22118. link ↗Sohn, K., Zhang, Z., Li, C.-L., Zhang, H., Lee, C.-Y., & Pfister, T. (2020). A Simple Semi-Supervised Learning Framework for Object Detection. arXiv preprint arXiv:2005.04757. link ↗
Denumiri alternativeSemi-supervised Mask R-CNN, pseudo-label instance segmentation, label-efficient instance segmentation, SSISSSOD, semi-supervised detection, pseudo-label object detection, label-efficient object detection
Înrudite66
RezumatSemi-supervised instance segmentation trains a model to detect and delineate every object instance in an image using a small labeled set and a large unlabeled image corpus. By generating pseudo-labels from confident predictions on unlabeled images and enforcing consistency under augmentation, the approach achieves competitive mask accuracy at a fraction of the full annotation cost.Semi-supervised object detection trains a detector on a small labeled image set and a large unlabeled image set. A teacher model generates pseudo-labels for unlabeled images, and a student model learns from both real and pseudo-labeled data, dramatically reducing the expensive manual bounding-box annotation burden while achieving accuracy competitive with fully supervised baselines.
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ScholarGateCompară metode: Semi-supervised Instance Segmentation · Semi-supervised Object Detection. Preluat la 2026-06-15 de pe https://scholargate.app/ro/compare