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OblastDuboko učenjeDuboko učenje
PorodicaMachine learningMachine learning
Godina nastanka2016–20172016-2017
TvoracSelvaraju et al. (Grad-CAM); Ribeiro et al. (LIME); Lundberg & Lee (SHAP)Selvaraju et al. (Grad-CAM); Ribeiro et al. (LIME)
TipPost-hoc explainability applied to object detectionPost-hoc explainability applied to image classifiers
Temeljni izvorSelvaraju, R. R., Cogswell, M., Das, A., Vedantam, R., Parikh, D., & Batra, D. (2017). Grad-CAM: Visual Explanations from Deep Networks via Gradient-Based Localization. Proceedings of the IEEE International Conference on Computer Vision (ICCV), 618–626. DOI ↗Selvaraju, R. R., Cogswell, M., Das, A., Vedantam, R., Parikh, D., & Batra, D. (2017). Grad-CAM: Visual Explanations from Deep Networks via Gradient-based Localization. Proceedings of the IEEE International Conference on Computer Vision (ICCV), 618-626. DOI ↗
Drugi naziviXAI Object Detection, Interpretable Object Detection, Transparent Object Detection, Explainable ODXAI image classification, interpretable image classifier, explainable CNN, transparent image recognition
Srodne54
SažetakExplainable object detection combines a deep-learning object detector — such as YOLO, Faster R-CNN, or DETR — with post-hoc or built-in explainability methods (Grad-CAM, LIME, SHAP, D-RISE) that visualize why the model placed a bounding box at a particular location and assigned a particular class label, making its decisions auditable by humans.Explainable image classification combines a deep learning image classifier — typically a CNN or Vision Transformer — with a post-hoc or intrinsic interpretability method such as Grad-CAM, LIME, or SHAP to produce visual or quantitative explanations of why the model assigned a particular label to an image. The goal is to make the classifier's decision process transparent, auditable, and trustworthy.
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ScholarGateUporedite metode: Explainable Object Detection · Explainable Image Classification. Preuzeto 2026-06-15 sa https://scholargate.app/sr/compare