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Guiding Exploratory Behaviors for Multi-Modal Grounding of Linguistic Descriptions

Jesse Thomason, Jivko Sinapov, Raymond J. Mooney, Peter Stone

发表年份
2018
引用次数
18
访问权限
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摘要

A major goal of grounded language learning research is to enable robots to connect language predicates to a robot's physical interactive perception of the world. Coupling object exploratory behaviors such as grasping, lifting, and looking with multiple sensory modalities (e.g., audio, haptics, and vision) enables a robot to ground non-visual words like ``heavy'' as well as visual words like ``red''. A major limitation of existing approaches to multi-modal language grounding is that a robot has to exhaustively explore training objects with a variety of actions when learning a new such language predicate. This paper proposes a method for guiding a robot's behavioral exploration policy when learning a novel predicate based on known grounded predicates and the novel predicate's linguistic relationship to them. We demonstrate our approach on two datasets in which a robot explored large sets of objects and was tasked with learning to recognize whether novel words applied to those objects.

关键词

Computer scienceRobotPredicate (mathematical logic)Artificial intelligencePerceptionModalModalitiesObject (grammar)Variety (cybernetics)Human–computer interaction

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