Grounded Human-Object Interaction Hotspots From Video
Tushar Nagarajan, Christoph Feichtenhofer, Kristen Grauman
摘要
Learning how to interact with objects is an important step towards embodied visual intelligence, but existing techniques suffer from heavy supervision or sensing requirements. We propose an approach to learn human-object interaction "hotspots" directly from video. Rather than treat affordances as a manually supervised semantic segmentation task, our approach learns about interactions by watching videos of real human behavior and anticipating afforded actions. Given a novel image or video, our model infers a spatial hotspot map indicating where an object would be manipulated in a potential interaction even if the object is currently at rest. Through results with both first and third person video, we show the value of grounding affordances in real human-object interactions. Not only are our weakly supervised hotspots competitive with strongly supervised affordance methods, but they can also anticipate object interaction for novel object categories. Project page: http://vision.cs.utexas.edu/projects/interaction-hotspots/
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引用它的顶会 Paper62
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- Where2Act: From Pixels to Actions for Articulated 3D ObjectsKaichun Mo, Leonidas J. Guibas, Mustafa Mukadam, Abhinav Gupta 等ICCV 2021 · 被引用 240 次
- VAT-Mart: Learning Visual Action Trajectory Proposals for Manipulating 3D ARTiculated ObjectsRuihai Wu, Yan Zhao, Kaichun Mo, Zizheng Guo 等ICLR 2022 · 被引用 119 次
- Learning Affordance Landscapes for Interaction Exploration in 3D EnvironmentsTushar Nagarajan, Kristen GraumanNeurIPS 2020 · 被引用 87 次
- Grounding 3D Object Affordance from 2D Interactions in ImagesYuhang Yang, Wei Zhai, Hongchen Luo, Yang Cao 等ICCV 2023 · 被引用 69 次
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