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Lighting control with Myo armband based on customized classifier
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作者 Jiang Yujian Yang Xue +1 位作者 Zhang Junming Song Yang 《The Journal of China Universities of Posts and Telecommunications》 EI CSCD 2022年第4期106-116,共11页
This paper focuses on gesture recognition and interactive lighting control.The collection of gesture data adopts the Myo armband to obtain surface electromyography(sEMG).Considering that many factors affect sEMG,a cus... This paper focuses on gesture recognition and interactive lighting control.The collection of gesture data adopts the Myo armband to obtain surface electromyography(sEMG).Considering that many factors affect sEMG,a customized classifier based on user calibration data is used for gesture recognition.In this paper,machine learning classifiers k-nearest neighbor(KNN),support vector machines(SVM),and naive Bayesian(NB)classifier,which can be used in small sample sets,are selected to classify four gesture actions.The performance of the three classifiers under different training parameters,different input features,including root mean square(RMS),mean absolute value(MAV),waveform length(WL),slope sign change(SSC)number,zero crossing(ZC)number,and variance(VAR)are tested,and different input channels are also tested.Experimental results show that:The NB classifier,which assumes that the prior probability of features is polynomial distribution,has the best performance,reaching more than 95%accuracy.Finally,an interactive stage lighting control system based on Myo armband gesture recognition is implemented. 展开更多
关键词 Myo armband gesture recognition surface electromyography customized classifier lighting control
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