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Detecting repeated motion patterns via Dynamic Programming using motion density

机译:使用运动密度通过动态编程检测重复的运动模式

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In this paper, we propose a method that detects repeated motion patterns in a long motion sequence efficiently. Repeated motion patterns are the structured information that can be obtained without knowledge of the context of motions. They can be used as a seed to find causal relationships between motions or to obtain contextual information of human activity, which is useful for intelligent systems that support human activity in everyday environment. The major contribution of the proposed method is two-fold: (1) motion density is proposed as a repeatability measure and (2) the problem of finding consecutive time frames with large motion density is formulated as a combinatorial optimization problem which is solved via Dynamic Programming (DP) in polynomial time O(N log N) where N is the total amount of data. The proposed method was evaluated by detecting repeated interactions between objects in everyday manipulation tasks and outperformed the previous method in terms of both detectability and computational time.
机译:在本文中,我们提出了一种有效地检测长运动序列中重复运动模式的方法。重复的运动模式是可以在不了解运动上下文的情况下获得的结构化信息。它们可以用作查找运动之间因果关系或获取人类活动的上下文信息的种子,这对于在日常环境中支持人类活动的智能系统很有用。该方法的主要贡献有两个方面:(1)提出了运动密度作为可重复性的措施;(2)将找到具有大运动密度的连续时间框架的问题表述为通过动态解决的组合优化问题。多项式时间O(N log N)中的编程(DP),其中N是数据总量。通过检测日常操作任务中对象之间的重复交互来评估所提出的方法,并且在可检测性和计算时间方面均优于以前的方法。

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