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Title:

Seeing Beyond Appearance - Mapping Real Images into Geometrical Domains for Unsupervised CAD-based Recognition

Document type:
Zeitschriftenaufsatz
Author(s):
Planche, B.; Zakharov, S.; Wu, Z.; Hutter, A.; Kosch, H.; Ilic, S.
Abstract:
While convolutional neural networks are dominating the field of computer vision, one usually does not have access to the large amount of domain-relevant data needed for their training. It thus became common to use available synthetic samples along domain adaptation schemes to prepare algorithms for the target domain. Tackling this problem from a different angle, we introduce a pipeline to map unseen target samples into the synthetic domain used to train task-specific methods. Denoising the data...     »
Keywords:
CAMP,CAMPComputerVision,ComputerVision,DomainAdaptation,3DPoseEstimation
Journal title:
International Conference on Intelligent Robots and Systems (IROS)
Year:
2019
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