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Multimodální sémantická segmentace×Sémantická segmentace×
OborHluboké učeníHluboké učení
RodinaMachine learningMachine learning
Rok vzniku2014–20162015
TvůrceMultiple contributors (Hazirbas et al., Long et al., and others)Long, J., Shelhamer, E., & Darrell, T.
TypPixel-level classification with multi-sensor fusionDense prediction / pixel-wise classification
Původní zdrojHazirbas, C., Ma, L., Domokos, C., & Cremers, D. (2016). FuseNet: Incorporating Depth into Semantic Segmentation via Fusion-based CNN Architecture. In Proceedings of the Asian Conference on Computer Vision (ACCV). Springer. link ↗Long, J., Shelhamer, E., & Darrell, T. (2015). Fully convolutional networks for semantic segmentation. In Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), pp. 3431–3440. DOI ↗
Další názvymultimodal scene parsing, multi-sensor semantic segmentation, RGB-D semantic segmentation, cross-modal semantic segmentationpixel-wise classification, scene parsing, dense labeling, semantic scene segmentation
Příbuzné35
ShrnutíMultimodal semantic segmentation assigns a semantic class label to every pixel in a scene by fusing information from two or more sensor modalities — most commonly RGB images paired with depth maps (RGB-D), LiDAR point clouds, thermal cameras, or text descriptions. Deep encoder-decoder networks learn to align and fuse complementary cues from each modality, producing denser and more accurate segmentation than any single-modality approach.Semantic segmentation assigns a class label to every pixel in an image, producing a dense, category-annotated map of the scene. Unlike object detection, which draws bounding boxes, it delineates the exact spatial extent of each class, making it indispensable in medical imaging, autonomous driving, satellite analysis, and any task where precise region boundaries matter.
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ScholarGatePorovnat metody: Multimodal Semantic Segmentation · Semantic Segmentation. Získáno 2026-06-15 z https://scholargate.app/cs/compare