基于各向异性核均值移位的手部跟踪与手势识别

Qi Sumin, Huang Xianwu
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引用次数: 20

摘要

均值移位算法是将每个数据点移到其邻域数据点的平均值的迭代过程。它已被应用于目标跟踪。但在视频序列中,传统的各向同性核平均位移跟踪器往往随着目标结构的变化而丢失目标,特别是当目标结构变化较快时。本文提出了一种具有各向异性核平均位移的非刚性目标跟踪器,其中核的形状、尺度和方向与目标结构的变化相适应。该跟踪器可用于视频中的手部跟踪。手势识别与方向直方图同时实现。实验结果表明,该算法能够实现鲁棒性、实时性的手部跟踪和准确的手势识别。
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Hand tracking and gesture gecogniton by anisotropic kernel mean shift
Mean shift algorithm is an iterative procedure that shifts each data point to the average of data points in its neighborhood. It been applied to object tracking. But traditional mean shift tracker by isotropic kernel often loses the object with the changing structure of object in video sequences, especially when object structure varies fast. This paper proposes a non-rigid object tracker with anisotropic kernel mean shift in which the shape, scale, and orientation of the kernels adapt to the changing object structure. The proposed tracker is used for hand tracking in video. Gesture recognition is implemented simultaneously with orientation histograms. Experimental results show that the new algorithm ensures the robust and real-time hand tracking and and accurate gesture recognition.
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