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A Novel Method for Data Glove-Based Dynamic Gesture Recognition

机译:一种基于数据手套的动态手势识别的新方法

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The correctness and robustness of gesture recognition have a significant effect on subsequent operations. In this paper, an algorithm is proposed to obtain angle change data of finger joints by means of data glove, and then the process of dynamic gesture recognition is carried out by fitting the data to curves and calculating the Hausdorff distance between them. The experimental results show that the recognition rate of the method can reach 98% when the number of gesture categories are ten. The algorithm has low computational complexity and high efficiency, which can guarantee the correctness and robustness of gesture recognition.
机译:手势识别的正确性和稳健性对后续操作具有显着影响。在本文中,提出了一种通过数据手套获得指点的角度变化数据,然后通过将数据拟合到曲线并计算它们之间的Hausdorff距离来执行动态手势识别的过程。实验结果表明,当手势类别的数量为10时,该方法的识别率可以达到98%。该算法具有低计算复杂性和高效率,可以保证手势识别的正确性和鲁棒性。

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