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Design of body gesture recognition system for regularity and repeatability gestures

机译:用于规则性和可重复性手势的身体手势识别系统的设计

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People often use non-linguistic communication methods such as physical gestures, which compose over 70% of our overall interaction with others. These physical gestures have regularity and repeatability as their common traits. This study is mainly discussing gesture recognition system for regular and repeated gestures. Torso PCA frame method is applied to angle transformation for such gesture recognition. In addition, a feature set is defined through extracting the patterns using envelope detection method and is applied to multi-layer perceptron for gesture recognition. For our experiment, skeletal structure was collected using Kinect, and 8 gestures were selected that people regularly use in real life. The recognition system was confirmed based on variety of people as our sample and the average accuracy was 89%.
机译:人们经常使用非语言交流方法,例如身体手势,占了我们与他人的整体互动的70%以上。这些身体姿势具有规律性和可重复性作为其共同特征。这项研究主要讨论针对规则和重复手势的手势识别系统。躯干PCA帧方法应用于角度变换,以进行这种手势识别。另外,通过使用包络检测方法提取图案来定义特征集,并将其应用于多层感知器以进行手势识别。在我们的实验中,使用Kinect收集了骨骼结构,并选择了人们在现实生活中经常使用的8种手势。该识别系统是基于不同人群的样本而确定的,平均准确度为89%。

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