Multi-Garment Net: Learning to Dress 3D People from Images
August 19, 2019 ยท Declared Dead ยท ๐ IEEE International Conference on Computer Vision
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Authors
Bharat Lal Bhatnagar, Garvita Tiwari, Christian Theobalt, Gerard Pons-Moll
arXiv ID
1908.06903
Category
cs.CV: Computer Vision
Citations
438
Venue
IEEE International Conference on Computer Vision
Last Checked
3 months ago
Abstract
We present Multi-Garment Network (MGN), a method to predict body shape and clothing, layered on top of the SMPL model from a few frames (1-8) of a video. Several experiments demonstrate that this representation allows higher level of control when compared to single mesh or voxel representations of shape. Our model allows to predict garment geometry, relate it to the body shape, and transfer it to new body shapes and poses. To train MGN, we leverage a digital wardrobe containing 712 digital garments in correspondence, obtained with a novel method to register a set of clothing templates to a dataset of real 3D scans of people in different clothing and poses. Garments from the digital wardrobe, or predicted by MGN, can be used to dress any body shape in arbitrary poses. We will make publicly available the digital wardrobe, the MGN model, and code to dress SMPL with the garments.
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