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Electromyogram-based hand gesture recognition robust to various arm postures

机译:基于肌电图的手势识别对各种手臂姿势均具有鲁棒性

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In the recognition of electromyogram-based hand gestures, the recognition accuracy may be degraded during the actual stage of practical applications for various reasons such as electrode positioning bias and different subjects. Besides these, the change in electromyogram signals due to different arm postures even for identical hand gestures is also an important issue. We propose an electromyogram-based hand gesture recognition technique robust to diverse arm postures. The proposed method uses both the signals of the accelerometer and electromyogram simultaneously to recognize correct hand gestures even for various arm postures. For the recognition of hand gestures, the electromyogram signals are statistically modeled considering the arm postures. In the experiments, we compared the cases that took into account the arm postures with the cases that disregarded the arm postures for the recognition of hand gestures. In the cases in which varied arm postures were disregarded, the recognition accuracy for correct hand gestures was 54.1%, whereas the cases using the method proposed in this study showed an 85.7% average recognition accuracy for hand gestures, an improvement of more than 31.6%. In this study, accelerometer and electromyogram signals were used simultaneously, which compensated the effect of different arm postures on the electromyogram signals and therefore improved the recognition accuracy of hand gestures.
机译:在基于肌电图的手势的识别中,由于诸如电极定位偏差和不同主体之类的各种原因,在实际应用的实际阶段中识别精度可能会降低。除此之外,即使对于相同的手势,由于不同的手臂姿势而引起的肌电信号变化也是一个重要的问题。我们提出了一种基于肌电图的手势识别技术,对各种手臂姿势均具有鲁棒性。所提出的方法同时使用加速度计和肌电图的信号来识别正确的手势,即使对于各种手臂姿势也是如此。为了识别手势,考虑手臂的姿势对肌电信号进行统计建模。在实验中,我们比较了考虑到手臂姿势的情况和不考虑手臂姿势以识别手势的情况。在忽略各种手臂姿势的情况下,正确手势的识别准确度为54.1%,而使用本研究提出的方法的情况显示,手势的平均识别准确度为85.7%,提高了31.6%以上。在这项研究中,加速度计和肌电信号同时使用,可以补偿不同手臂姿势对肌电信号的影响,从而提高手势的识别精度。

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