Cyclic Functional Mapping: Self-supervised correspondence between non-isometric deformable shapes
December 03, 2019 ยท Declared Dead ยท ๐ European Conference on Computer Vision
"No code URL or promise found in abstract"
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Authors
Dvir Ginzburg, Dan Raviv
arXiv ID
1912.01249
Category
cs.CV: Computer Vision
Cross-listed
cs.CG,
cs.LG
Citations
52
Venue
European Conference on Computer Vision
Last Checked
2 months ago
Abstract
We present the first utterly self-supervised network for dense correspondence mapping between non-isometric shapes. The task of alignment in non-Euclidean domains is one of the most fundamental and crucial problems in computer vision. As 3D scanners can generate highly complex and dense models, the mission of finding dense mappings between those models is vital. The novelty of our solution is based on a cyclic mapping between metric spaces, where the distance between a pair of points should remain invariant after the full cycle. As the same learnable rules that generate the point-wise descriptors apply in both directions, the network learns invariant structures without any labels while coping with non-isometric deformations. We show here state-of-the-art-results by a large margin for a variety of tasks compared to known self-supervised and supervised methods.
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