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Segmentasi Semantik yang Dapat Dijelaskan×Segmentasi Instans×
BidangPembelajaran MendalamPembelajaran Mendalam
KeluargaMachine learningMachine learning
Tahun asal2019–20212017
PencetusCombination: Long et al. (FCN) + Selvaraju et al. (Grad-CAM); formalized as a unified paradigm ~2019–2021He, K., Gkioxari, G., Dollar, P., Girshick, R.
TipeExplainable deep learning pipelinePixel-level detection and mask prediction
Sumber perintisSelvaraju, 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 ↗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 ↗
AliasXSS, interpretable semantic segmentation, explainable scene parsing, transparent pixel-wise classificationinstance-level segmentation, object instance segmentation, mask prediction, panoptic instance segmentation
Terkait44
RingkasanExplainable Semantic Segmentation (XSS) couples pixel-wise scene parsing — assigning a class label to every pixel in an image — with post-hoc or intrinsic explanation methods such as Grad-CAM, attention maps, or SHAP, so that the network's class decisions can be audited, visualized, and justified to domain experts in medical imaging, autonomous driving, and remote sensing.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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ScholarGateBandingkan metode: Explainable Semantic Segmentation · Instance Segmentation. Diakses 2026-06-15 dari https://scholargate.app/id/compare