Papers
arxiv:1712.05474

AI2-THOR: An Interactive 3D Environment for Visual AI

Published on Dec 14, 2017
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Abstract

AI2-THOR is a framework for visual AI research featuring near photo-realistic 3D indoor scenes to support various domains like deep reinforcement learning, imitation learning, and visual question answering.

AI-generated summary

We introduce The House Of inteRactions (THOR), a framework for visual AI research, available at http://ai2thor.allenai.org. AI2-THOR consists of near photo-realistic 3D indoor scenes, where AI agents can navigate in the scenes and interact with objects to perform tasks. AI2-THOR enables research in many different domains including but not limited to deep reinforcement learning, imitation learning, learning by interaction, planning, visual question answering, unsupervised representation learning, object detection and segmentation, and learning models of cognition. The goal of AI2-THOR is to facilitate building visually intelligent models and push the research forward in this domain.

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