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  4. Improving 6D Object Pose Estimation of Metallic Household and Industry Objects
 
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2025
Conference Paper
Title

Improving 6D Object Pose Estimation of Metallic Household and Industry Objects

Abstract
6D object pose estimation suffers from reduced accuracy when applied to metallic objects. We set out to improve the state-of-the-art by addressing challenges such as reflections and specular highlights in industrial applications. Our novel BOP-compatible dataset [1], [2], featuring a diverse set of metallic objects (cans, household, and industrial items) under various lighting and background conditions, provides additional geometric and visual cues. We demonstrate that these cues can be effectively leveraged to enhance overall performance. To illustrate the usefulness of the additional features, we improve upon the GDRNPP [3] algorithm by introducing an additional keypoint prediction and material estimator head in order to improve spatial scene understanding. Evaluations on the new dataset show improved accuracy for metallic objects, supporting the hypothesis that additional geometric and visual cues can improve learning.
Author(s)
Pöllabauer, Thomas  orcid-logo
TU Darmstadt, Fachgebiet Graphisch-Interaktive Systeme  
Gasser, Michael
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Wirth, Tristan
TU Darmstadt, Fachgebiet Graphisch-Interaktive Systeme  
Berkei, Sarah
Threedy GmbH
Knauthe, Volker
TU Darmstadt, Fachgebiet Graphisch-Interaktive Systeme  
Kuijper, Arjan  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Mainwork
IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS 2025. Proceedings  
Conference
International Conference on Intelligent Robots and Systems 2025  
DOI
10.1109/IROS60139.2025.11247314
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • Branche: Manufacturing and Mobility

  • Research Line: Computer vision (CV)

  • Research Line: Machine learning (ML)

  • LTA: Monitoring and control of processes and systems

  • LTA: Machine intelligence, algorithms, and data structures (incl. semantics)

  • Object pose estimation

  • Deep learning

  • Industrial applications

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