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Study on interaction between temporal and spatial information in classification of EMG signals in myoelectric prostheses

机译:肌电假体肌电信号分类中时空信息相互作用的研究

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摘要

Advanced forearm prosthetic devices employ classifiers to recognize different electromyography (EMG) signal patterns, in order to identify the user's intended motion gesture. The classification accuracy is one of the main determinants of real-time controllability of a prosthetic limb and hence the necessity to achieve as high an accuracy as possible. In this paper, we study the effects of the temporal and spatial information provided to the classifier on its offline performance and analyze their interdependencies. EMG data associated with seven practical hand gestures were recorded from partial-hand and trans-radial amputee volunteers as well as able-bodied volunteers. An extensive investigation was conducted to study the effect of analysis window length, window overlap a nd the number of electrode channels on the classification accuracy as well as their interactions. Our main discoveries are that the effect of analysis window length on classification accuracy is practically independent of the number of electrodes for all participant groups; window overlap has no direct influence on classifier performance, irrespective of the window length, number of channels or limb condition; the type of limb deficiency and the existing channel count influence the reduction in classification error achieved by adding more number of channels; partial-hand amputees outperform trans-radial amputees, with classification accuracies of only 11.3 % below values achieved by able-bodied volunteers.
机译:先进的前臂假体设备采用分类器来识别不同的肌电图(EMG)信号模式,以便识别用户的预期运动手势。分类准确度是假肢实时可控性的主要决定因素之一,因此有必要获得尽可能高的准确度。在本文中,我们研究了提供给分类器的时空信息对其离线性能的影响,并分析了它们之间的相互依赖性。记录了与7种实际手势相关的EMG数据,这些数据来自偏手和经-骨截肢的志愿者以及身体健康的志愿者。进行了广泛的研究,以研究分析窗口的长度,窗口的重叠以及电极通道的数量对分类准确性及其相互作用的影响。我们的主要发现是分析窗口长度对分类准确性的影响实际上与所有参与者组的电极数无关。无论窗口长度​​,通道数或肢体状况如何,窗口重叠都不会对分类器性能产生直接影响;肢体不足的类型和现有的通道数会影响通过增加通道数量而减少的分类错误;部分手截肢者的表现优于经径直截肢者,分类准确率仅比健全的志愿者低11.3%。

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