ARCTIC: A Dataset for Dexterous Bimanual Hand-Object Manipulation

Open Access
Authors
  • M. Kaufmann
  • M.J. Black
  • O. Hilliges
Publication date 2023
Book title CVPR 2023
Book subtitle proceedings: 2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition : Vancouver, Canada : 18-22 June 2023
ISBN
  • 9798350301304
ISBN (electronic)
  • 9798350301298
Event IEEE/CVF Conf. on Computer Vision and Pattern Recognition (CVPR) 2023
Pages (from-to) 12943-12954
Publisher Los Alamitos, California: IEEE Computer Society
Organisations
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract
Humans intuitively understand that inanimate objects do not move by themselves, but that state changes are typically caused by human manipulation (e.g., the opening of a book). This is not yet the case for machines. In part this is because there exist no datasets with ground-truth 3D annotations for the study of physically consistent and synchronised motion of hands and articulated objects. To this end, we introduce ARCTIC -- a dataset of two hands that dexterously manipulate objects, containing 2.1M video frames paired with accurate 3D hand and object meshes and detailed, dynamic contact information. It contains bi-manual articulation of objects such as scissors or laptops, where hand poses and object states evolve jointly in time. We propose two novel articulated hand-object interaction tasks: (1) Consistent motion reconstruction: Given a monocular video, the goal is to reconstruct two hands and articulated objects in 3D, so that their motions are spatio-temporally consistent. (2) Interaction field estimation: Dense relative hand-object distances must be estimated from images. We introduce two baselines ArcticNet and InterField, respectively and evaluate them qualitatively and quantitatively on ARCTIC.
Document type Conference contribution
Note With supplemental material
Language English
Published at https://doi.org/10.48550/arXiv.2204.13662 https://doi.org/10.1109/CVPR52729.2023.01244
Published at https://openaccess.thecvf.com/content/CVPR2023/html/Fan_ARCTIC_A_Dataset_for_Dexterous_Bimanual_Hand-Object_Manipulation_CVPR_2023_paper.html
Other links https://arctic.is.tue.mpg.de https://www.proceedings.com/70184.html
Downloads
2204.13662 (Accepted author manuscript)
Supplementary materials
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