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Xin Wei, Ruixuan Yu and Jian Sun. View-GCN: View-based Graph Convolutional Network for 3D Shape Analysis. CVPR, accepted, 2020. [pdf] [supp]
If you find our work useful in your research, please consider citing:
@InProceedings{Wei_2020_CVPR,
author = {Wei, Xin and Yu, Ruixuan and Sun, Jian},
title = {View-GCN: View-Based Graph Convolutional Network for 3D Shape Analysis},
booktitle = {IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)},
month = {June},
year = {2020}
}
This code is tested on Python 3.6 and Pytorch 1.0 +
First download the 20 views ModelNet40 dataset provided by [DAGsHub Download link] and put it under data
python train.py -name view-gcn -num_models 0 -weight_decay 0.001 -num_views 20 -cnn_name resnet18
The code is heavily borrowed from [mvcnn-new].
We also provide a trained view-GCN network achieving 97.6% accuracy on ModelNet40.
Asako Kanezaki, Yasuyuki Matsushita and Yoshifumi Nishida. RotationNet: Joint Object Categorization and Pose Estimation Using Multiviews from Unsupervised Viewpoints. CVPR, 2018.
Jong-Chyi Su, Matheus Gadelha, Rui Wang, and Subhransu Maji. A Deeper Look at 3D Shape Classifiers. Second Workshop on 3D Reconstruction Meets Semantics, ECCV, 2018.
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