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Seletatav instantssegmenteerimine×Selgitatav pildiklassifikaator×
ValdkondSüvaõpeSüvaõpe
PerekondMachine learningMachine learning
Tekkeaasta2017–present2016-2017
LoojaHe, K. et al. (Mask R-CNN); XAI extensions by multiple authorsSelvaraju et al. (Grad-CAM); Ribeiro et al. (LIME)
TüüpExplainability-augmented deep learning pipelinePost-hoc explainability applied to image classifiers
AlgallikasLindner, M., Meng, C., & Bischl, B. (2023). Explaining Instance Segmentation Models via Saliency Maps and Occlusion. IEEE Transactions on Pattern Analysis and Machine Intelligence. link ↗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 ↗
RööpnimetusedXAI instance segmentation, interpretable instance segmentation, transparent mask prediction, explainable Mask R-CNNXAI image classification, interpretable image classifier, explainable CNN, transparent image recognition
Seotud64
KokkuvõteExplainable Instance Segmentation combines deep-learning instance segmentation models — which detect and delineate every individual object as a separate pixel mask — with post-hoc or ante-hoc explainability techniques such as GradCAM, SHAP, LIME, or attention visualization, so that each predicted mask is accompanied by evidence showing which image regions drove the model's decision.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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ScholarGateVõrdle meetodeid: Explainable Instance Segmentation · Explainable Image Classification. Loetud 2026-06-15 aadressilt https://scholargate.app/et/compare