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Hand Gesture Recognition System Based on aGeometric Model and Rule Based Classifier

机译:基于几何模型和规则分类器的手势识别系统

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As a part of natural interfaces the sign language recognition (SLR) is considered an important area of research. Such systems are considered useful tools for assisting the deaf. For example, one of the applications of sign language recognition is transcribing notes and saving sign language presentations into digital format. Hand gesture recognition systems can also be used to control useful machines, computers, screen pointers or camera-based selection devices, like the kind used on modern ‘Smart TVs’ or console games that use the Microsoft Xbox Kinect camera. A great deal of research has been paid for this area but few ones handled the Arabic Sign Language (ArSL). This work describes an isolated SLR system that extracts geometric features from a camera for the hand gesture and builds a geometric model for the hand gesture. The rule based classifier was then used for the recognition process based on the determined geometric features of a specific gesture. The proposed model was tested on seven ArSL words. The overall recognition rate was about 95.3%.
机译:作为自然界面的一部分,手语识别(SLR)被认为是重要的研究领域。这种系统被认为是帮助聋人的有用工具。例如,手语识别的应用之一是记录笔记并将手语演示文稿保存为数字格式。手势识别系统还可以用于控制有用的机器,计算机,屏幕指针或基于摄像头的选择设备,例如在现代“智能电视”或使用Microsoft Xbox Kinect摄像头的游戏机上使用的那种设备。已经对该领域进行了大量研究,但很少有人处理阿拉伯手语(ArSL)。这项工作描述了一个隔离的SLR系统,该系统从相机中提取手势的几何特征并为手势建立几何模型。然后,基于确定的特定手势的几何特征,将基于规则的分类器用于识别过程。建议的模型在七个ArSL单词上进行了测试。总体识别率约为95.3%。

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