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תחוםלמידה עמוקהלמידה עמוקה
משפחהMachine learningMachine learning
שנת המקור2015–20192017
הוגה השיטהMultiple contributors (e.g., Hsu et al., Khoreva et al.)He, K., Gkioxari, G., Dollar, P., Girshick, R.
סוגWeakly supervised deep learning for pixel-wise instance delineationPixel-level detection and mask prediction
מקור מכונןHsu, 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 ↗He, K., Gkioxari, G., Dollar, P., & Girshick, R. (2017). Mask R-CNN. Proceedings of the IEEE International Conference on Computer Vision (ICCV), 2961–2969. DOI ↗
כינוייםWSIS, weakly-supervised mask prediction, weak-label instance segmentation, box-supervised instance segmentationinstance-level segmentation, object instance segmentation, mask prediction, panoptic instance segmentation
קשורות64
תקצירWeakly 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.Instance segmentation is a computer vision task that simultaneously detects every distinct object in an image and produces a precise pixel-level mask for each individual object instance. Unlike semantic segmentation, which labels every pixel with a class, instance segmentation distinguishes between separate objects of the same class, enabling fine-grained spatial understanding.
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ScholarGateהשוואת שיטות: Weakly Supervised Instance Segmentation · Instance Segmentation. אוחזר בתאריך 2026-06-15 מתוך https://scholargate.app/he/compare