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An Approach for Human Machine Interaction using Dynamic Hand Gesture Recognition

机译:使用动态手势识别的人机交互方法

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Gesture recognition is one of the most challenging area of research in computer vision. The interface for human computer interaction can easily be created using the gesture recognition. This paper suggests a novel as well as robust approach of dynamic hand gesture recognition for the human machine interaction system. Here, the system is designed to work in real time with images captured through web camera during experimentation. In RGB and HSV color space, skin color modeling is done for segmenting geometrical approximation of hand using contours. The region of interest (ROI) is used to locate the hand within the image. Fingers are counted using the contour defects and centroid tracking is used to track the hand over the sequence of frames. In experiments, the eight types of dynamic hand gestures are performed by user and these gestures are successfully recognized by the system. This proposed methodology is functioning admirably in term of recognition accuracy up to 95 % for dynamic hand gesture recognition.
机译:手势识别是计算机视觉中最具挑战性的研究领域之一。可以使用手势识别轻松创建用于人机交互的界面。本文建议为人机交互系统的动态手势识别动态手势识别的鲁棒方法。这里,该系统旨在实时工作,并且在实验期间通过网络摄像机捕获的图像工作。在RGB和HSV颜色空间中,进行肤色建模,用于使用轮廓分割手的几何近似。感兴趣区域(ROI)用于定位图像内的手。使用轮廓缺陷计算手指,并使用质心跟踪来跟踪帧序列的手。在实验中,八种类型的动态手势手势由用户执行,并且这些手势被系统成功识别。这种提出的方​​法在动态手势识别的识别准确度最高可达95%的情况下运作。

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