Papers › On the Continuity of Rotation Representations in Neural Networks

On the Continuity of Rotation Representations in Neural Networks

17 Dec 2018CVPR 2019 6arXiv:1812.07035archive 2025-07-28

Yi Zhou, Connelly Barnes, Jingwan Lu, Jimei Yang, Hao Li

In neural networks, it is often desirable to work with various representations of the same space. For example, 3D rotations can be represented with quaternions or Euler angles. In this paper, we advance a definition of a continuous representation, which can be helpful for training deep neural networks. We relate this to topological concepts such as homeomorphism and embedding. We then investigate what are continuous and discontinuous representations for 2D, 3D, and n-dimensional rotations. We demonstrate that for 3D rotations, all representations are discontinuous in the real Euclidean spaces of four or fewer dimensions. Thus, widely used representations such as quaternions and Euler angles are discontinuous and difficult for neural networks to learn. We show that the 3D rotations have continuous representations in 5D and 6D, which are more suitable for learning. We also present continuous representations for the general case of the n-dimensional rotation group SO(n). While our main focus is on rotations, we also show that our constructions apply to other groups such as the orthogonal group and similarity transforms. We finally present empirical results, which show that our continuous rotation representations outperform discontinuous ones for several practical problems in graphics and vision, including a simple autoencoder sanity test, a rotation estimator for 3D point clouds, and an inverse kinematics solver for 3D human poses.

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Janus-Shiau/6d_rot_tensorflow mentioned on GitHubtf report
amakadia/svd_for_pose mentioned on GitHubtf report
thu-ml/RoboticsDiffusionTransformer mentioned on GitHubtfMIT report
tik0/6d mentioned on GitHub report
zawlin/6d_rot mentioned on GitHubpytorch report

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expand tik0/6d/6d.py community (archive-listed) ran · honoured contract fingerprinted GPL-3.0 (copyleft) · pointer only · ffdd3794cf297dc5 · report
load_dances papagina/RotationContinuity/Inverse_Kinematics/code/trainIK.py community (archive-listed) ran · our draft was wrong MIT (permissive) · 85a973eef1ff2263 · report
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