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首页> 外文期刊>Computers in Biology and Medicine >A two-stage method for MUAP classification based on EMG decomposition.
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A two-stage method for MUAP classification based on EMG decomposition.

机译:基于EMG分解的MUAP分类的两阶段方法。

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摘要

A method for the extraction and classification of individual motor unit action potentials (MUAPs) from needle electromyographic signals is presented. The proposed method automatically decomposes MUAPs and classifies them into normal, neuropathic or myopathic using a two-stage feature-based classifier. The method consists of four steps: (i) preprocessing of EMG recordings, (ii) MUAP clustering and detection of superimposed MUAPs, (iii) feature extraction and (iv) MUAP classification using a two-stage classifier. The proposed method employs Radial Basis Function Artificial Neural Networks and decision trees. It requires minimal use of tuned parameters and is able to provide interpretation for the classification decisions. The approach has been validated on real EMG recordings and an annotated collection of MUAPs. The success rate for MUAP clustering is 96%, while the accuracy for MUAP classification is about 89%.
机译:提出了一种从针状肌电信号中提取和分类单个运动单位动作电位(MUAP)的方法。所提出的方法会自动分解MUAP,并使用基于特征的两阶段分类器将其分为正常,神经病或肌病。该方法包括四个步骤:(i)EMG记录的预处理,(ii)MUAP聚类和重叠MUAP的检测,(iii)特征提取和(iv)使用两阶段分类器的MUAP分类。该方法采用了径向基函数人工神经网络和决策树。它需要最少使用调整后的参数,并且能够为分类决策提供解释。该方法已在真实的EMG记录和带注释的MUAP集合中得到验证。 MUAP聚类的成功率为96%,而MUAP分类的准确率约为89%。

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