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DziedzinaUczenie głębokieUczenie głębokie
RodzinaMachine learningMachine learning
Rok powstania2016 (deep WSOD); MIL roots circa 19972014–2016
TwórcaBilen, H. & Vedaldi, A. (WSDDN); Multiple Instance Learning origins: Dietterich et al. (1997)Girshick, R. et al. (R-CNN); Redmon, J. et al. (YOLO)
TypWeakly supervised detection paradigmSupervised deep learning (region proposal or single-shot)
Źródło pierwotneBilen, H., & Vedaldi, A. (2016). Weakly supervised deep detection networks. In Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), pp. 2846–2854. DOI ↗Girshick, R., Donahue, J., Darrell, T., & Malik, J. (2014). Rich feature hierarchies for accurate object detection and semantic segmentation. Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 580–587. DOI ↗
Inne nazwyWSOD, weakly-supervised detection, image-level supervised detection, multiple instance detectionvisual object detection, image object localization, region-based object detection, bounding-box detection
Pokrewne53
PodsumowanieWeakly Supervised Object Detection (WSOD) trains object detectors using only image-level labels — indicating which object classes appear in an image — without requiring costly bounding-box annotations. Multiple Instance Learning (MIL) formulations allow the model to discover the likely location of each object class from classification signals alone, dramatically reducing annotation cost.Object detection is a computer vision task in which a deep neural network simultaneously locates and classifies every instance of one or more object categories within an image, producing a bounding box and a class label for each detected object. Modern detectors — from the R-CNN family to YOLO and DETR — achieve near-human accuracy at real-time speeds on standard benchmarks.
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ScholarGatePorównaj metody: Weakly Supervised Object Detection · Object Detection. Pobrano 2026-06-15 z https://scholargate.app/pl/compare