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Study on the comparison of three different upper limb motion recognition methods

机译:三种不同上肢运动识别方法的比较研究

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The electromyography (EMG) signals detected when muscle activates can reflect the muscle activation level and has a capability of representing human motions. In this paper, three different upper limb motion recognition methods using features extracted from EMG signals were compared to study their properties under our special circumstance. The three recognition methods are wavelet transform packet (WTP) method, weighted peaks (WP) method and detrended fluctuation analysis (DFA) method. The motions to be classified are elbow flexion and extension, forearm pronation and supination and palmar flexion and dorsiflexion. EMG signals are recorded from biceps brachii, brachioradialis, pronator teres, flexor carpi radialis and extensor carpi radialis longus. Three volunteers participate in the experiments. The experimental results indicate that the WP method has the highest recognition accuracy rate while the WTP method is the most suitable one for real-time implementation.
机译:肌肉激活时检测到的肌电图(EMG)信号可以反映肌肉激活水平,并具有代表人体运动的能力。在本文中,我们比较了三种使用从肌电信号中提取的特征的上肢运动识别方法,以研究其在特殊情况下的性能。三种识别方法是小波变换包(WTP)方法,加权峰(WP)方法和去趋势波动分析(DFA)方法。要分类的动作有肘部弯曲和伸展,前臂内旋和旋后以及手掌弯曲和背屈。肌电信号记录自肱二头肌,肱肱肌,pronator teres,flex屈腕和long伸腕。三名志愿者参加了实验。实验结果表明,WP方法具有最高的识别准确率,而WTP方法是最适合实时实现的方法。

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