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4 months ago

3D-R2N2: A Unified Approach for Single and Multi-view 3D Object Reconstruction

Christopher B. Choy; Danfei Xu; JunYoung Gwak; Kevin Chen; Silvio Savarese

3D-R2N2: A Unified Approach for Single and Multi-view 3D Object Reconstruction

Abstract

Inspired by the recent success of methods that employ shape priors to achieve robust 3D reconstructions, we propose a novel recurrent neural network architecture that we call the 3D Recurrent Reconstruction Neural Network (3D-R2N2). The network learns a mapping from images of objects to their underlying 3D shapes from a large collection of synthetic data. Our network takes in one or more images of an object instance from arbitrary viewpoints and outputs a reconstruction of the object in the form of a 3D occupancy grid. Unlike most of the previous works, our network does not require any image annotations or object class labels for training or testing. Our extensive experimental analysis shows that our reconstruction framework i) outperforms the state-of-the-art methods for single view reconstruction, and ii) enables the 3D reconstruction of objects in situations when traditional SFM/SLAM methods fail (because of lack of texture and/or wide baseline).

Code Repositories

liuzhengzhe/dreamstone-iss
pytorch
Mentioned in GitHub
ttaa9/genren
pytorch
Mentioned in GitHub
chrischoy/3D-R2N2
Mentioned in GitHub
JeremyFisher/deep_level_sets
pytorch
Mentioned in GitHub
Amaranth819/3dr2n2-tensorflow
tf
Mentioned in GitHub
raphaelsulzer/dsr-benchmark
Mentioned in GitHub
raphaelsulzer/dsrv-data
Mentioned in GitHub
Radhika009/CMPE_295B_MASTERPROJECT
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
3d-object-reconstruction-on-data3dr2n23D-R2N2
Avg F1: 39.01
3d-object-reconstruction-on-data3dr2n23D-R2N2
3DIoU: 0.56
3d-reconstruction-on-data3dr2n23D-R2N2
3DIoU: 0.560
3d-reconstruction-on-dtu3D-R2N2
Acc: 0.397
Comp: 0.884
Overall: 0.630

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3D-R2N2: A Unified Approach for Single and Multi-view 3D Object Reconstruction | Papers | HyperAI