Combining sensory and symbolic data for manipulative gesture recognition

J. Fritsch, Nils Hofemann, G. Sagerer
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引用次数: 18

Abstract

In this paper, we propose to recognize manipulative hand gestures by incorporating symbolic constraints in a particle filtering approach used for trajectory-based activity recognition. To this end, the notion of situational and spatial context of a gesture is introduced. This scene context is incorporated during the analysis of the trajectory data. A first evaluation in an office environment demonstrates the suitability of our approach. Different from purely trajectory-based approaches, our method recognizes manipulative gestures including the information which objects were manipulated.
结合感官和符号数据的操纵性手势识别
在本文中,我们提出通过将符号约束纳入用于基于轨迹的活动识别的粒子滤波方法来识别操纵性手势。为此,引入了手势的情境和空间语境的概念。在轨迹数据的分析过程中纳入了该场景背景。在办公环境中的第一次评估证明了我们的方法的适用性。与纯粹基于轨迹的方法不同,我们的方法识别包括被操纵对象信息的操纵手势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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