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Laban-Inspired Task-Constrained Variable Motion Generation on Expressive Aerial Robots

Hang Cui, Catherine Maguire, Amy LaViers

发表年份
2019
引用次数
17
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摘要

This paper presents a method for creating expressive aerial robots through an algorithmic procedure for creating variable motion under given task constraints. This work is informed by the close study of the Laban/Bartenieff movement system, and movement observation from this discipline will provide important analysis of the method, offering descriptive words and fitting contexts—a choreographic frame—for the motion styles produced. User studies that use utilize this qualitative analysis then validate that the method can be used to generate appropriate motion in in-home contexts. The accuracy of an individual descriptive word for the developed motion is up to 77% and context accuracy is up to 83%. A capacity for state discernment from motion profile is essential in the context of projects working toward developing in-home robots.

关键词

Motion (physics)Computer scienceContext (archaeology)Task (project management)DiscernmentRobotArtificial intelligenceFrame (networking)Variable (mathematics)Computer vision

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