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Linear SVM-based recognition of elementary juggling movements using correlation dimension of Euler Angles of a single arm

机译:基于线性的SVM基于单个臂的欧拉角的相关尺寸的基于初级杂耍运动的识别

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Recognizing the human arm movements has several applications, and it can be performed in a number of ways through the use of one or more sensor devices that the technology offers. This paper aims to exploit the exercises performed by jugglers in order to recognize the arm movements on the basis of the only information on the arm orientation provided by the Euler Angles. The proposed recognizer has two modules, i.e., a feature extractor and a classifier. The former reconstructs the dynamics of the system and estimates three correlation dimensions, each associated with a given Euler Angle. The latter is formed by a Linear Support Vector Machine. Extensive experimentations show the effectiveness of the proposed approach.
机译:识别人臂运动具有多种应用,并且可以通过使用技术提供的一个或多个传感器设备以多种方式执行。 本文旨在利用Jugglers执行的练习,以便根据欧拉角提供的禁用臂定向的唯一信息来识别ARM运动。 所提出的识别器具有两个模块,即特征提取器和分类器。 前者重建系统的动态并估计三个相关尺寸,每个相关尺寸与给定的欧拉角度相关联。 后者由线性支撑载体机形成。 广泛的实验表明了提出的方法的有效性。

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