Papers › Torch-Points3D: A Modular Multi-Task Frameworkfor Reproducible Deep Learning on 3D Point Clouds

Torch-Points3D: A Modular Multi-Task Frameworkfor Reproducible Deep Learning on 3D Point Clouds

9 Oct 2020arXiv:2010.04642archive 2025-07-28

Thomas Chaton, Nicolas Chaulet, Sofiane Horache, Loic Landrieu

We introduce Torch-Points3D, an open-source framework designed to facilitate the use of deep networks on3D data. Its modular design, efficient implementation, and user-friendly interfaces make it a relevant tool for research and productization alike. Beyond multiple quality-of-life features, our goal is to standardize a higher level of transparency and reproducibility in 3D deep learning research, and to lower its barrier to entry. In this paper, we present the design principles of Torch-Points3D, as well as extensive benchmarks of multiple state-of-the-art algorithms and inference schemes across several datasets and tasks. The modularity of Torch-Points3D allows us to design fair and rigorous experimental protocols in which all methods are evaluated in the same conditions. The Torch-Points3D repository :https://github.com/nicolas-chaulet/torch-points3d

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nicolas-chaulet/torch-points3d officialmentioned in papermentioned on GitHubpytorchNOASSERTION report
IdeGelis/torch-points3d-SiamKPConvVariants mentioned on GitHubpytorchNOASSERTION report
idegelis/torch-points3d-dc3dcd mentioned on GitHubpytorchNOASSERTION report
idegelis/torch-points3d-ssl-dcva mentioned on GitHubpytorchNOASSERTION report
llei66/torch3d-deepcrop mentioned on GitHubpytorchNOASSERTION report
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umrlastig/torch-points3d mentioned on GitHubpytorchNOASSERTION report

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