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Towards Symmetry-sensitive Pose Estimation: A Rotation Representation for Symmetric Object Classes

  • TU Wien

Research output: Contribution to journalArticlepeer-review

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Abstract

Symmetric objects are common in daily life and industry, yet their inherent orientation ambiguities that impede the training of deep learning networks for pose estimation are rarely discussed in the literature. To cope with these ambiguities, existing solutions typically require the design of specific loss functions and network architectures or resort to symmetry-invariant evaluation metrics. In contrast, we focus on the numeric representation of the rotation itself, modifying trigonometric identities with the degrees of symmetry derived from the objects’ shapes. We use our representation, SARR, to obtain canonic (symmetry-resolved) poses for the symmetric objects in two popular 6D pose estimation datasets, T-LESS and ITODD, where SARR is unique and continuous w.r.t. the visual appearance. This allows us to use a standard CNN for 3D orientation estimation whose performance is evaluated with the symmetry-sensitive cosine distance ARC. Our networks outperform the state of the art using ARC and achieve satisfactory performance when using conventional symmetry-invariant measures. Our method does not require any 3D models but only depth, or, as part of an additional experiment, texture-less RGB/grayscale images as input. We also show that networks trained on SARR outperform the same networks trained on rotation matrices, Euler angles, quaternions, standard trigonometrics or the recently popular 6d representation – even in inference scenarios where no prior knowledge of the objects’ symmetry properties is available. Code and a visualization toolkit are available at https://github.com/akriegler/SARR.
Original languageEnglish
Article number212
Number of pages24
JournalInternational Journal of Computer Vision
Volume134
DOIs
Publication statusPublished - 7 Apr 2026

Research Field

  • Assistive and Autonomous Systems

Keywords

  • symmetry
  • rotation representation
  • pose estimation
  • evaluation metrics

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