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Hand gesture selection and recognition for visual-based human-machine interface

机译:手势选择和识别基于视觉的人机界面

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A new paradigm has been proposed for gesture selection and recognition. The paradigm is based on statistical classification, which has applications in telemedicine, virtual reality, computer games, and sign language studies. The aims of this paper are (1) how to select an appropriate set of gestures having a satisfactory level of discrimination power, and (2) comparison of invariant moments (conventional and Zernike) and geometric properties in recognizing hand gestures. Two-dimensional structures, namely cluster-property and cluster-features matrices, have been employed for gesture selection and to evaluate different gesture characteristics. Moment invariants, Zernike moments, and geometric features are employed for classification and recognition rates are compared. Comparative results confirm better performance of the geometric features.
机译:已经提出了一种新的范式来掌握选择和识别。范例基于统计分类,它具有远程医疗,虚拟现实,计算机游戏和手语学研究中的应用。本文的目的是(1)如何选择具有令人满意的辨别力水平的适当手势,以及(2)在识别手势中的不变矩(常规和Zernike)和几何特性的比较。二维结构,即簇 - 属性和群集特征矩阵已被用于手势选择并评估不同的手势特性。将力量不变,Zernike Moments和几何特征用于分类和识别率。比较结果确认了几何特征的更好性能。

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