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A Real-Time Hand Pose Recognition Method with Hidden Finger Prediction

机译:隐藏手指预测的实时手势识别方法

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摘要

In this paper, we present a real-time hand pose recognition method to provide an intuitive user interface through hand poses or gestures without a keyboard and a mouse. For this, the areas of right and left hands are segmented from the depth camera image, and noise compensation is performed. Then, the rotation angle and the centroid point of each hand area are calculated. Subsequently, joint points and end points of a finger are detected by expanding a circle at regular intervals from a centroid point of the hand. Lastly, the hand pose is recognized by matching between the current hand information and the hand model of previous frame and the hand model is updated for the next frame. This method enables users to predict the hidden fingers through the hand model information of the previous frame using temporal coherence in consecutive frames. As a result of the experiment on various hand poses with the hidden fingers using both hands, the accuracy showed over 95% and the performance indicated over 32 fps. The proposed method can be used as a contactless input interface in presentation, advertisement, education, and game applications.
机译:在本文中,我们提出了一种实时手势识别方法,可通过手势或手势提供直观的用户界面,而无需使用键盘和鼠标。为此,从深度相机图像中分割出右手和左手的区域,并执行噪声补偿。然后,计算每个手部区域的旋转角度和质心点。随后,通过从手的质心点以规则的间隔扩展一个圆来检测手指的关节点和端点。最后,通过当前手信息与前一帧的手模型之间的匹配来识别手姿势,并且针对下一帧更新手模型。该方法使用户能够使用连续帧中的时间相干性通过前一帧的手形信息来预测隐藏的手指。通过用两只手的隐藏手指对各种手势进行实验的结果是,精度显示超过95%,性能显示超过32 fps。所提出的方法可以用作演示,广告,教育和游戏应用程序中的非接触式输入接口。

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