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Neural RGB-D Surface Reconstruction

About

Obtaining high-quality 3D reconstructions of room-scale scenes is of paramount importance for upcoming applications in AR or VR. These range from mixed reality applications for teleconferencing, virtual measuring, virtual room planing, to robotic applications. While current volume-based view synthesis methods that use neural radiance fields (NeRFs) show promising results in reproducing the appearance of an object or scene, they do not reconstruct an actual surface. The volumetric representation of the surface based on densities leads to artifacts when a surface is extracted using Marching Cubes, since during optimization, densities are accumulated along the ray and are not used at a single sample point in isolation. Instead of this volumetric representation of the surface, we propose to represent the surface using an implicit function (truncated signed distance function). We show how to incorporate this representation in the NeRF framework, and extend it to use depth measurements from a commodity RGB-D sensor, such as a Kinect. In addition, we propose a pose and camera refinement technique which improves the overall reconstruction quality. In contrast to concurrent work on integrating depth priors in NeRF which concentrates on novel view synthesis, our approach is able to reconstruct high-quality, metrical 3D reconstructions.

Dejan Azinovi\'c, Ricardo Martin-Brualla, Dan B Goldman, Matthias Nie{\ss}ner, Justus Thies• 2021

Related benchmarks

TaskDatasetResultRank
SLAMNeuralRGB-D Practical Scenario synthetic
Acc (cm)3.98
14
Multi-View ReconstructionMobilebrick (test)
Acc (sigma=2.5)20.61
7
3D Scene SynthesisScanNet 10% sparsity 10% views V2
PSNR (Color)16.5
5
3D Scene SynthesisScanNet 20% sparsity 20% views V2
PSNR (Color)18.4
5
3D Scene SynthesisScanNet 5% sparsity views V2
PSNR (Color)14.1
5
3D Scene SynthesisScanNet 50% sparsity views V2
PSNR (Color)20
5
Surface ReconstructionBlendSwap (averaged among 8 scenes)
Chamfer Distance (CD)0.38
5
3D surface reconstructionNeural RGB-D Synthetic 10 scenes (test)
Accuracy0.0151
3
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