Shaping embodied agent behavior with activity-context priors from egocentric video
Tushar Nagarajan, Kristen Grauman
摘要
Complex physical tasks entail a sequence of object interactions, each with its own preconditions -- which can be difficult for robotic agents to learn efficiently solely through their own experience. We introduce an approach to discover activity-context priors from in-the-wild egocentric video captured with human worn cameras. For a given object, an activity-context prior represents the set of other compatible objects that are required for activities to succeed (e.g., a knife and cutting board brought together with a tomato are conducive to cutting). We encode our video-based prior as an auxiliary reward function that encourages an agent to bring compatible objects together before attempting an interaction. In this way, our model translates everyday human experience into embodied agent skills. We demonstrate our idea using egocentric EPIC-Kitchens video of people performing unscripted kitchen activities to benefit virtual household robotic agents performing various complex tasks in AI2-iTHOR, significantly accelerating agent learning. Project page: http://vision.cs.utexas.edu/projects/ego-rewards/
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引用它的顶会 Paper7
- Learning Fine-grained View-Invariant Representations from Unpaired Ego-Exo Videos via Temporal AlignmentZihui Xue, Kristen GraumanNeurIPS 2023 · 被引用 64 次
- Video-Mined Task Graphs for Keystep Recognition in Instructional VideosKumar Ashutosh, Santhosh Kumar Ramakrishnan, Triantafyllos Afouras, Kristen GraumanNeurIPS 2023 · 被引用 51 次
- EgoChoir: Capturing 3D Human-Object Interaction Regions from Egocentric ViewsYuhang Yang, Wei Zhai, Chengfeng Wang, Chengjun Yu 等NeurIPS 2024 · 被引用 31 次
- Human Hands as Probes for Interactive Object UnderstandingMohit Goyal, Sahil Modi, Rishabh Goyal, Saurabh GuptaCVPR 2022 · 被引用 26 次
- Test-time Ego-Exo-centric Adaptation for Action Anticipation via Multi-Label Prototype Growing and Dual-Clue ConsistencyZhaofeng Shi, Heqian Qiu, Lanxiao Wang, Qingbo Wu 等CVPR 2026 · 被引用 3 次
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