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Nonspecific-user hand gesture recognition by using MEMS accelerometer

机译:使用MEMS加速度计的非特定用户手势识别

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Hand gestures are a form of nonverbal communication, which allow a person to communicate a range of thoughts and feelings with or without speech. Here MEMS 3 axis accelerometer to detect the input gestures as X, Y, Z direction. The axis is to detect the four types of gesture, which includes up, down, left, right. The hand motion of data collected will directly send to the microcontroller to run on a PC with the help of wireless module. The data will compressed by different users, gesture to extract from sign sequence and template matching. A single gesture has contain an 8 numbers code. This code reduces the hundreds of data values in single gesture and also to compare with the stored templates. In this paper three models has introduced and discussed about its accuracy. The sequence of gesture contain 85 experiments, finally the results achieves an overall accuracy of 96% based on the sign sequence generation and template matching, this each recognition contains the ranging from 94% to 100%.
机译:手势是非语言交流的一种形式,它使一个人可以在有或没有语音的情况下交流各种思想和感觉。此处的MEMS 3轴加速度计可检测X,Y,Z方向的输入手势。轴用于检测四种类型的手势,包括上,下,左,右。手动收集的数据将直接发送到微控制器,以借助无线模块在PC上运行。数据将由不同的用户压缩,从手势序列和模板匹配中提取手势。单个手势包含8个数字代码。该代码可减少单个手势中的数百个数据值,并且还可以与存储的模板进行比较。本文介绍了三种模型,并讨论了其准确性。手势序列包含85个实验,基于符号序列生成和模板匹配,最终结果达到96%的总体准确度,每次识别包含94%到100%的范围。

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