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RECOGNIZING BEHAVIOR IN HAND-EYE COORDINATION PATTERNS

机译:手眼协调模式中的识别行为

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摘要

Modeling human behavior is important for the design of robots as well as human-computer interfaces that use humanoid avatars. Constructive models have been built, but they have not captured all of the detailed structure of human behavior such as the moment-to-moment deployment and coordination of hand, head and eye gaze used in complex tasks. We show how this data from human subjects performing a task can be used to program a dynamic Bayes network (DBN) which in turn can be used to recognize new performance instances. As a specific demonstration we show that the steps in a complex activity such as sandwich making can be recognized by a DBN in real time.
机译:对人类行为进行建模对于设计机器人以及使用人形化身的人机界面非常重要。已经建立了建设性模型,但是它们并没有捕获人类行为的所有详细结构,例如从瞬间到瞬间的部署以及在复杂任务中使用的手,头和眼睛凝视的协调。我们展示了如何将来自执行任务的人类受试者的数据用于编程动态贝叶斯网络(DBN),该网络又可以用于识别新的性能实例。作为特定的演示,我们表明DBN可以实时识别复杂活动(例如三明治制作)中的步骤。

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