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Segmentasi Instans Berpenyeliaan Lemah×Semantic Segmentation×
BidangPembelajaran MendalamPembelajaran Mendalam
KeluargaMachine learningMachine learning
Tahun asal2015–20192015
PengasasMultiple contributors (e.g., Hsu et al., Khoreva et al.)Long, J., Shelhamer, E., & Darrell, T.
JenisWeakly supervised deep learning for pixel-wise instance delineationDense prediction / pixel-wise classification
Sumber perintisHsu, C.-C., Hsu, K.-J., Tsai, C.-C., Lin, Y.-Y., & Chuang, Y.-Y. (2019). Weakly supervised instance segmentation using the bounding box tightness prior. Advances in Neural Information Processing Systems (NeurIPS), 32. link ↗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 ↗
AliasWSIS, weakly-supervised mask prediction, weak-label instance segmentation, box-supervised instance segmentationpixel-wise classification, scene parsing, dense labeling, semantic scene segmentation
Berkaitan65
RingkasanWeakly supervised instance segmentation trains deep networks to delineate individual object instances at pixel level using only cheap, incomplete annotations — such as bounding boxes, image-level labels, or point clicks — rather than costly full pixel-wise masks. It dramatically reduces annotation effort while still producing instance-level masks for each object in an image.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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ScholarGateBandingkan kaedah: Weakly Supervised Instance Segmentation · Semantic Segmentation. Dicapai 2026-06-15 daripada https://scholargate.app/ms/compare