Projective Manifold Gradient Layer for Deep Rotation Regression
Jiayi Chen, Yingda Yin, Tolga Birdal, Baoquan Chen, Leonidas J. Guibas, He Wang
摘要
Regressing rotations on SO(3) manifold using deep neural networks is an important yet unsolved problem. The gap between the Euclidean network output space and the non-Euclidean SO(3) manifold imposes a severe challenge for neural network learning in both forward and backward passes. While several works have proposed different regression-friendly rotation representations, very few works have been devoted to improving the gradient back-propagating in the backward pass. In this paper, we propose a manifold-aware gradient that directly backpropagates into deep network weights. Leveraging Riemannian optimization to construct a novel projective gradient, our proposed regularized projective manifold gradient (RPMG) method helps networks achieve new state-of-the-art performance in a variety of rotation estimation tasks. Our proposed gradient layer can also be applied to other smooth manifolds such as the unit sphere. Our project page is at https://jychen18.github.io/RPMG.
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引用它的顶会 Paper15
- Learning with 3D rotations, a hitchhiker's guide to SO(3)Andreas René Geist, Jonas Frey, Mikel Zhobro, Anna Levina 等ICML 2024 · 被引用 47 次
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它引用的顶会 Paper6
- An Analysis of SVD for Deep Rotation EstimationJake Levinson, Carlos Esteves, Kefan Chen, Noah Snavely 等NeurIPS 2020 · 被引用 131 次
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- Tangent Space Backpropagation for 3D Transformation GroupsZachary Teed, Jia DengCVPR 2021
- MultiBodySync: Multi-Body Segmentation and Motion Estimation via 3D Scan SynchronizationJiahui Huang, He Wang, Tolga Birdal, Minhyuk Sung 等CVPR 2021
- Equivariant Point Network for 3D Point Cloud AnalysisHaiwei Chen, Shichen Liu, Weikai Chen, Hao Li 等CVPR 2021
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