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Hand Gesture Recognition Via a New Self-organized Neural Network

机译:通过新的自组织神经网络手势识别

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A new method for hand gesture recognition is proposed which is based on an innovative Self-Growing and Self-Organized Neural Gas (SGONG) network. Initially, the region of the hand is detected by using a color segmentation technique that depends on a skin-color distribution map. Then, the SGONG network is applied on the segmented hand so as to approach its topology. Based on the output grid of neurons, palm geometric characteristics are obtained which in accordance with powerful finger features allow the identification of the raised fingers. Finally, the hand gesture recognition is accomplished through a probability-based classification method.
机译:提出了一种新的手势识别方法,其基于创新的自我生长和自组织的神经气体(Sgong)网络。最初,通过使用取决于肤色分布图的颜色分割技术来检测手的区域。然后,SGONG网络应用于分段的手上,以便接近其拓扑。基于神经元的输出网格,获得掌心几何特性,其根据强大的手指特征允许凸起的手指识别。最后,通过基于概率的分类方法完成手势识别。

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