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Hand shape classification in various pronation angles using a wearable wrist contour sensor

机译:使用可穿戴手腕轮廓传感器以各种旋前角度对手形进行分类

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摘要

Hand gestures are potentially useful for communications between humans and between a human and a machine. However, existing methods entail several problems for practical use. We have proposed an approach to hand shape recognition based on wrist contour measurement. Especially in this paper, two assignments are addressed. First is the development of a new sensing device in which all elements are installed in a wrist-watch-type device. Second is the development of a new hand shape classifier that can accommodate pronation angle changes. The developed sensing device enables wrist contour data collection under conditions in which the pronation angle varies. The classifier recognizes the hand shape based on statistics produced through data forming and statistics conversion processes. The most important result is that no large difference exists between classification rates that include or those that exclude the independent (preliminary) pronation estimation process using inertia measurement units. This result shows two possible insights: (1) the wrist contour has some features that depend on the hand shape but which do not depend on the pronation angle, or (2) the wrist contour potentially includes pronation angle variation information. These insights indicate the possibility that hand shape can be recognized solely from the wrist contour, even while changing the pronation angle.
机译:手势对于人与人之间以及人与机器之间的通信可能很有用。但是,现有方法在实际使用中存在若干问题。我们提出了一种基于手腕轮廓测量的手形识别方法。特别是在本文中,解决了两个任务。首先是开发一种新的传感设备,其中所有元件都安装在手表型设备中。其次是开发一种新的手形分类器,它可以适应内旋角度的变化。开发的传感设备能够在旋前角度变化的条件下采集手腕轮廓数据。分类器基于通过数据形成和统计转换过程产生的统计来识别手形。最重要的结果是,在使用惯性测量单位进行的独立(初步)旋前估算过程中,包括在内的分类率与不包括在内的分类率之间没有大的差异。该结果显示了两种可能的见解:(1)手腕轮廓具有某些特征,这些特征取决于手的形状但不取决于旋前角度;或者(2)手腕轮廓可能包括旋前角度变化信息。这些见解表明,即使改变旋前角度,也只能从手腕轮廓识别出手的形状。

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