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3D-CODED : 3D Correspondences by Deep Deformation

About

We present a new deep learning approach for matching deformable shapes by introducing {\it Shape Deformation Networks} which jointly encode 3D shapes and correspondences. This is achieved by factoring the surface representation into (i) a template, that parameterizes the surface, and (ii) a learnt global feature vector that parameterizes the transformation of the template into the input surface. By predicting this feature for a new shape, we implicitly predict correspondences between this shape and the template. We show that these correspondences can be improved by an additional step which improves the shape feature by minimizing the Chamfer distance between the input and transformed template. We demonstrate that our simple approach improves on state-of-the-art results on the difficult FAUST-inter challenge, with an average correspondence error of 2.88cm. We show, on the TOSCA dataset, that our method is robust to many types of perturbations, and generalizes to non-human shapes. This robustness allows it to perform well on real unclean, meshes from the the SCAPE dataset.

Thibault Groueix, Matthew Fisher, Vladimir G. Kim, Bryan C. Russell, Mathieu Aubry• 2018

Related benchmarks

TaskDatasetResultRank
Shape MatchingFAUST (test)
Mean Geodesic Error0.025
85
3D Shape CorrespondenceFAUST remeshed (test)
Mean Geodesic Error (x100)2.5
65
Shape CorrespondenceSCAPE (test)
Shape Correspondence Error0.31
54
Shape MatchingSCAPE remeshed (test)
Mean Geodesic Error (x100)31
46
Shape MatchingSHREC19 remeshed (test)
Mean Geodesic Error8.1
37
Near-isometric point cloud matchingSCAPE_r remeshed (test)
Mean Geodesic Error0.31
25
Point cloud matchingFAUST_r
Mean Geodesic Error0.025
23
Point cloud matchingSCAPE_r
Mean Geodesic Error31
23
Near-isometric shape matchingFAUST (last 20 shapes)
Pointwise Geodesic Error2.5
16
Shape CorrespondenceSurreal (test)
Accuracy2.1
16
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