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Implicit Geometric Regularization for Learning Shapes

About

Representing shapes as level sets of neural networks has been recently proved to be useful for different shape analysis and reconstruction tasks. So far, such representations were computed using either: (i) pre-computed implicit shape representations; or (ii) loss functions explicitly defined over the neural level sets. In this paper we offer a new paradigm for computing high fidelity implicit neural representations directly from raw data (i.e., point clouds, with or without normal information). We observe that a rather simple loss function, encouraging the neural network to vanish on the input point cloud and to have a unit norm gradient, possesses an implicit geometric regularization property that favors smooth and natural zero level set surfaces, avoiding bad zero-loss solutions. We provide a theoretical analysis of this property for the linear case, and show that, in practice, our method leads to state of the art implicit neural representations with higher level-of-details and fidelity compared to previous methods.

Amos Gropp, Lior Yariv, Niv Haim, Matan Atzmon, Yaron Lipman• 2020

Related benchmarks

TaskDatasetResultRank
Surface ReconstructionSurface Reconstruction Benchmark (SRB) 5 noisy range scans
Dist Error (c) vs GT1.38
15
Surface Reconstruction20 real-scanned meshes 1.0 (test)
Chamfer Distance (dc)32.7
14
Surface ReconstructionSRB
CDL10.178
11
Surface ReconstructionGargoyle 1.0 (test)
Chamfer Distance (GT)0.16
9
Surface ReconstructionLord Quas benchmark 1.0 (test)
Chamfer Distance (GT)0.12
9
Surface ReconstructionAnchor 1.0 (test)
Chamfer Distance (GT)0.22
9
Surface ReconstructionDaratech benchmark 1.0 (test)
Chamfer Distance (GT)0.25
9
Surface ReconstructionDC benchmark 1.0 (test)
Chamfer Distance (GT)0.17
9
Surface ReconstructionShapeNet 260 shapes 15
sCD (mean)5.12e-4
9
Surface ReconstructionSRB GT
Anchor dc0.45
6
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