One-Shot Transfer of Affordance Regions? AffCorrs!

September 15, 2022 ยท Declared Dead ยท ๐Ÿ› Conference on Robot Learning

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Authors Denis Hadjivelichkov, Sicelukwanda Zwane, Marc Peter Deisenroth, Lourdes Agapito, Dimitrios Kanoulas arXiv ID 2209.07147 Category cs.CV: Computer Vision Cross-listed cs.RO Citations 50 Venue Conference on Robot Learning Last Checked 3 months ago
Abstract
In this work, we tackle one-shot visual search of object parts. Given a single reference image of an object with annotated affordance regions, we segment semantically corresponding parts within a target scene. We propose AffCorrs, an unsupervised model that combines the properties of pre-trained DINO-ViT's image descriptors and cyclic correspondences. We use AffCorrs to find corresponding affordances both for intra- and inter-class one-shot part segmentation. This task is more difficult than supervised alternatives, but enables future work such as learning affordances via imitation and assisted teleoperation.
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