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Accurate Robotic Pouring for Serving Drinks

Yongqiang Huang, Yu Sun

发表年份
2019
引用次数
5
访问权限
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摘要

Pouring is the second most frequently executed motion in cooking scenarios. In this work, we present our system of accurate pouring that generates the angular velocities of the source container using recurrent neural networks. We collected demonstrations of human pouring water. We made a physical system on which the velocities of the source container were generated at each time step and executed by a motor. We tested our system on pouring water from containers that are not used for training and achieved an error of as low as 4 milliliters. We also used the system to pour oil and syrup. The accuracy achieved with oil is slightly lower than but comparable with that of water.

关键词

Container (type theory)Computer scienceWork (physics)Water sourceEnvironmental scienceArtificial intelligenceSimulationMarine engineeringProcess engineeringMechanical engineering

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