Human Detection and Segmentation via Multi-view Consensus
Isinsu Katircioglu, Helge Rhodin, Jörg Spörri, Mathieu Salzmann, Pascal Fua
Abstract
Self-supervised detection and segmentation of foreground objects aims for accuracy without annotated training data. However, existing approaches predominantly rely on restrictive assumptions on appearance and motion.For scenes with dynamic activities and camera motion, we propose a multi-camera framework in which geometric constraints are embedded in the form of multi-view consistency during training via coarse 3D localization in a voxel grid and fine-grained offset regression. In this manner, we learn a joint distribution of proposals over multiple views. At inference time, our method operates on single RGB images. We outperform state-of-the-art techniques both on images that visually depart from those of standard benchmarks and on those of the classical Human3.6M dataset.
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Install the CLIlune papers fulltext 2d6d384e-e863-4b08-a3e9-de045796b0ceCited by top-tier papers2
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- Learning Video Object Segmentation From Unlabeled VideosXiankai Lu, Wenguan Wang, Jianbing Shen, Yu-Wing Tai et al.CVPR 2020
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