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Touch if it's Transparent! ACTOR: Active Tactile-Based Category-Level Transparent Object Reconstruction

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Abstract

Accurate shape reconstruction of transparent ob-jects is a challenging task due to their non-Lambertian surfaces and yet necessary for robots for accurate pose perception and safe manipulation. As vision-based sensing can produce erroneous measurements for transparent objects, the tactile modality is not sensitive to object transparency and can be used for reconstructing the object's shape. We propose AC-TOR, a novel framework for ACtive tactile-based category-level Transparent Object Reconstruction. ACTOR leverages large datasets of synthetic object with our proposed self-supervised learning approach for object shape reconstruction as the collection of real-world tactile data is prohibitively expensive. ACTOR can be used during inference with tactile data from category-level unknown transparent objects for reconstruction. Furthermore, we propose an active-tactile object exploration strategy as probing every part of the object surface can be sample inefficient. We also demonstrate tactile-based category-level object pose estimation task using ACTOR. We perform an extensive evaluation of our proposed methodology with real-world robotic experiments with comprehensive comparison studies with state-of-the-art approaches. Our proposed method outperforms these approaches in terms of tactile-based object reconstruction and object pose estimation.
Original languageEnglish
Title of host publication2023 IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS 2023
PublisherInstitute of Electrical and Electronics Engineers
Pages10792-10799
Number of pages8
ISBN (Electronic)978-1-6654-9190-7
DOIs
Publication statusPublished - 13 Dec 2023
Externally publishedYes
Event2023 IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS 2023 - Detroit, United States
Duration: 1 Oct 20235 Oct 2023

Conference

Conference2023 IEEE/RSJ International Conference on Intelligent Robots and Systems, IROS 2023
Abbreviated titleIROS 2023
Country/TerritoryUnited States
CityDetroit
Period1/10/235/10/23

Funding

P.K.Murali and M.Kaboli are with the BMW Group, Munich Germany. e-mail: [email protected] P.K. Murali and B. Porr are with the University of Glasgow, Scotland M. Kaboli is with the Donders Institute for Brain and Cognition, Radboud University, Netherlands Funded in part by the BMW Group, EU H2020 INTUITIVE under Grant ID 861166 and EU Horizon PHASTRAC under Grant ID 101092096.

FundersFunder number
BMW Group
European Union's Horizon 2020 - Research and Innovation Framework Programme861166

    Keywords

    • Surface reconstruction
    • Shape
    • Shape measurement
    • Pose estimation
    • Self-supervised learning
    • Robot sensing systems
    • Sensors

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