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The Command Control of a Two-Degree-of-Freedom Platform by Hand Gesture Moment Invariants

机译:手势矩不变式的两自由度平台的命令控制

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摘要

In this paper, the functional commands based on hand gesture are designed by the method of moment, which is invariant to the translation, rotation and scale of a hand gesture. After the transform of the original image with a hand gesture into the YCrCb coordinate, the segmentation of the skin-like object is obtained by the thresholds of Cr and Cb. Then the dilation and median filtering and the area constraint are employed to obtain an acceptable binary image. Various feature vectors corresponding to different processed hand gestures are applied to train the input weight matrix and layer weight matrix of a probability neural network for classification. Furthermore different lighting conditions verify the robustness of the image processing and classification. Finally, eight hand gestures are designed as the commands for the motion control of a 2 DOFs platform. The experiment confirms the effectiveness of the proposed method.
机译:本文采用矩量法设计了基于手势的功能命令,该方法不变于手势的平移,旋转和缩放。在用手势将原始图像转换为YCrCb坐标后,可通过Cr和Cb的阈值获得皮肤状对象的分割。然后,采用膨胀和中值滤波以及面积约束来获得可接受的二值图像。对应于不同处理的手势的各种特征向量被应用于训练概率神经网络的输入权重矩阵和层权重矩阵以进行分类。此外,不同的照明条件验证了图像处理和分类的鲁棒性。最后,将八个手势设计为2自由度平台的运动控制命令。实验证实了该方法的有效性。

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