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Hand posture recognition using finger geometric feature

机译:使用手指几何特征的手势识别

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Hand posture recognition (HPR) plays an important role in human-computer interaction (HCI) since it is one of the most common and natural ways of communication among human beings. Different fingers often represent different meanings which will attract more attentions in HPR research. Based on finger geometric feature and its classification, we develop a HPR system that can tell its posture on possible fingers. We explore kinematic constraints of the hand with forearm to extract finger geometric features which are translation, rotation and scale invariant. We first search hand components with the help of skeleton, and then order them into a serial arrangement according to either left hand or right hand and extract the geometric features among fingers, palm and forearm, finally those features are used in SVM classification for HPR. Our method can recognize twelve different types of hand postures for both hands respectively. Experiments under different illumination conditions and different scenes demonstrate the effectiveness and efficiency of the proposed method.
机译:手势识别(HPR)在人机交互(HCI)中起着重要作用,因为它是人与人之间最常见,最自然的交流方式之一。不同的手指通常代表不同的含义,这将在HPR研究中引起更多关注。基于手指的几何特征及其分类,我们开发了一种HPR系统,可以在可能的手指上分辨出其姿势。我们探索前臂的手的运动学约束,以提取手指的几何特征,即平移,旋转和比例不变。我们首先借助骨骼搜索手部组件,然后根据左手或右手将它们排序为连续排列,并提取手指,手掌和前臂之间的几何特征,最后将这些特征用于HPR的SVM分类。我们的方法可以分别识别两只手的十二种不同类型的手势。在不同光照条件和不同场景下的实验证明了该方法的有效性和有效性。

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