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PASCAL Context

홈페이지 · 논문 323편

The PASCAL Context dataset is an extension of the PASCAL VOC 2010 detection challenge, and it contains pixel-wise labels for all training images. It contains more than 400 classes (including the original 20 classes plus backgrounds from PASCAL VOC segmentation), divided into three categories (objects, stuff, and hybrids). Many of the object categories of this dataset are too sparse and; therefore, a subset of 59 frequent classes are usually selected for use. Source: Image Segmentation Using Deep Learning:A Survey Image Source: https://cs.stanford.edu/~roozbeh/pascal-context/

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Semantic Segmentation on PASCAL Context 결과 132개
Boundary Detection on PASCAL Context 결과 1개
Human Parsing on PASCAL Context 결과 1개
Saliency Detection on PASCAL Context 결과 1개
Surface Normals Estimation on PASCAL Context 결과 1개
Zero-Shot Learning on PASCAL Context 결과 1개