Detecting dance motion structure using body components and turning motions

Bjoern Rennhak, Takaaki Shiratori, S. Kudoh, Phongtharin Vinayavekhin, K. Ikeuchi
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引用次数: 4

Abstract

This paper presents a novel method for robust dance motion structure detection. In the japanese folk dance domain, teachers created illustrations of dance poses. These poses characterize the most important movements of a dance. So far there is no simple and reliable extraction method which can extract all poses as shown in these drawings. We use these poses for the Task Model (TM) in the context of Learning from Observation (LFO). LFO which is a well known technique for successful human to robot motion mapping, consists of tasks (what to do) and skills (how to do). We propose a novel approach, to extract special motions from a dance, called turning motions useful for skill mapping in the LFO paradigm. Furthermore, we use a modified version of this approach, to detect all poses as shown in the drawings, called turning poses. To achieve this we observe both forearms at the same time and analyze their movement in different 2-D coordinate planes. We evaluate the parameters with and without a weighting function where we minimize acceleration, velocity and power. We successfully demonstrate this novel method using two very different japanese folk dances and discuss further implications of this work in respect to the LFO paradigm and dances of other domains.
利用身体成分和转动动作检测舞蹈动作结构
提出了一种新的鲁棒舞蹈运动结构检测方法。在日本民间舞蹈领域,老师们制作了舞蹈姿势的插图。这些姿势是舞蹈中最重要的动作。到目前为止,还没有一种简单可靠的提取方法可以提取出这些图中所示的所有姿势。我们在观察学习(LFO)的背景下将这些姿势用于任务模型(TM)。LFO是一种众所周知的成功的人到机器人运动映射技术,由任务(做什么)和技能(如何做)组成。我们提出了一种新的方法,从舞蹈中提取特殊的动作,称为转动动作,用于LFO范式中的技能映射。此外,我们使用该方法的修改版本来检测图中所示的所有姿势,称为转弯姿势。为了实现这一点,我们同时观察两个前臂,并分析它们在不同的二维坐标平面上的运动。我们用加权函数和不使用加权函数来评估参数,其中我们将加速度,速度和功率最小化。我们用两种非常不同的日本民间舞蹈成功地证明了这种新颖的方法,并讨论了这项工作在LFO范式和其他领域舞蹈方面的进一步含义。
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