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Papers/Learning elementary structures for 3D shape generation and...

Learning elementary structures for 3D shape generation and matching

Theo Deprelle, Thibault Groueix, Matthew Fisher, Vladimir G. Kim, Bryan C. Russell, Mathieu Aubry

2019-08-13NeurIPS 2019 123D Dense Shape CorrespondenceTranslation3D Shape Generation
PaperPDFCodeCode(official)Code

Abstract

We propose to represent shapes as the deformation and combination of learnable elementary 3D structures, which are primitives resulting from training over a collection of shape. We demonstrate that the learned elementary 3D structures lead to clear improvements in 3D shape generation and matching. More precisely, we present two complementary approaches for learning elementary structures: (i) patch deformation learning and (ii) point translation learning. Both approaches can be extended to abstract structures of higher dimensions for improved results. We evaluate our method on two tasks: reconstructing ShapeNet objects and estimating dense correspondences between human scans (FAUST inter challenge). We show 16% improvement over surface deformation approaches for shape reconstruction and outperform FAUST inter challenge state of the art by 6%.

Results

TaskDatasetMetricValueModel
3DSHREC'19Accuracy at 1%2.3Elementery Structures(Trained on Surreal)
3DSHREC'19Euclidean Mean Error (EME)7.6Elementery Structures(Trained on Surreal)
3D Shape RepresentationSHREC'19Accuracy at 1%2.3Elementery Structures(Trained on Surreal)
3D Shape RepresentationSHREC'19Euclidean Mean Error (EME)7.6Elementery Structures(Trained on Surreal)

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