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Single Image 3D Without a Single 3D Image

2015-12-01 · ICCV 2015 12 · David F. Fouhey, Wajahat Hussain, Abhinav Gupta, Martial Hebert

Do we really need 3D labels in order to learn how to predict 3D? In this paper, we show that one can learn a mapping from appearance to 3D properties without ever seeing a single explicit 3D label. Rather than use explicit supervision, we use the regularity of indoor scenes to learn the mapping in a completely unsupervised manner. We demonstrate this on both a standard 3D scene understanding dataset as well as Internet images for which 3D is unavailable, precluding supervised learning. Despite never seeing a 3D label, our method produces competitive results.

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Scene Understanding

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