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Svake-veiledet semantisk segmentering×Semantisk segmentering×
FagfeltDyp læringDyp læring
FamilieMachine learningMachine learning
Opprinnelsesår2014–20162015
OpphavspersonMultiple contributors; Class Activation Mapping (Zhou et al., 2016) is foundationalLong, J., Shelhamer, E., & Darrell, T.
TypePixel-level classification with image-level or coarse supervisionDense prediction / pixel-wise classification
Opprinnelig kildeZhou, B., Khosla, A., Lapedriza, A., Oliva, A., & Torralba, A. (2016). Learning Deep Features for Discriminative Localization. In Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), pp. 2921–2929. DOI ↗Long, J., Shelhamer, E., & Darrell, T. (2015). Fully convolutional networks for semantic segmentation. In Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), pp. 3431–3440. DOI ↗
AliasWSSS, weak-label segmentation, image-level supervised segmentation, weakly-labeled pixel classificationpixel-wise classification, scene parsing, dense labeling, semantic scene segmentation
Relaterte45
SammendragWeakly Supervised Semantic Segmentation (WSSS) trains pixel-level scene parsers using only cheap, coarse annotations — typically image-level class tags — instead of costly dense pixel masks. By generating proxy pseudo-labels from a classification network (via Class Activation Maps or similar localisation cues) and iteratively refining them, WSSS brings full-supervision accuracy within reach at a fraction of the annotation cost.Semantic segmentation assigns a class label to every pixel in an image, producing a dense, category-annotated map of the scene. Unlike object detection, which draws bounding boxes, it delineates the exact spatial extent of each class, making it indispensable in medical imaging, autonomous driving, satellite analysis, and any task where precise region boundaries matter.
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ScholarGateSammenlign metoder: Weakly Supervised Semantic Segmentation · Semantic Segmentation. Hentet 2026-06-15 fra https://scholargate.app/no/compare