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Motion templates for automatic classification and retrieval of motion capture data

机译:用于自动分类和检索运动捕捉数据的运动模板

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This paper presents new methods for automatic classification and retrieval of motion capture data facilitating the identification of logically related motions scattered in some database. As the main ingredient, we introduce the concept of motion templates (MTs), by which the essence of an entire class of logically related motions can be captured in an explicit and semantically interpretable matrix representation. The key property of MTs is that the variable aspects of a motion class can be automatically masked out in the comparison with unknown motion data. This facilitates robust and efficient motion retrieval even in the presence of large spatio-temporal variations. Furthermore, we describe how to learn an MT for a specific motion class from a given set of training motions. In our extensive experiments, which are based on several hours of motion data, MTs proved to be a powerful concept for motion annotation and retrieval, yielding accurate results even for highly variable motion classes such ascartwheels, lying down, or throwing motions.
机译:本文提出了一种自动分类和检索运动捕获数据的新方法,该方法有助于识别散布在某些数据库中的逻辑相关运动。作为主要成分,我们介绍了运动模板(MT)的概念,通过该概念,可以在显式且语义可解释的矩阵表示形式中捕获一整类逻辑相关的运动的本质。 MT的关键特性是,在与未知运动数据进行比较时,可以自动屏蔽运动类的可变方面。即使存在较大的时空变化,这也有助于进行健壮而有效的运动检索。此外,我们描述了如何从一组给定的训练动作中学习特定动作类的MT。在我们基于数小时运动数据的广泛实验中,MT被证明是运动注释和检索的强大概念,即使对于高度可变的运动类别(例如,车轮,躺下或投掷运动)也能产生准确的结果。

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