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Coherent self-averaging for the pre-processing of surface electromyography signals in the detection of nociceptive withdrawal reflexes

机译:相干自平均,用于预处理伤害性退缩反射的表面肌电信号预处理

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This work presents an alternative method for the pre-processing of surface electromyography signals of nociceptive withdrawal reflexes, with the goal of improving the reflexes detection in the records. The withdrawal reflex appears when a painful stimulus activates the nociceptors, the generated potential travels to the spinal cord and then the withdrawal of member exposed to painful stimulus is happened. The method used in this study to pre-process these reflexes is called a Coherent Self-Averaging method which attenuates the fluctuations of the random values of high frequency. The smoothing produced by the method is controlled by setting of two parameters: m and k. To demonstrate the performance in the detection of the reflex, 90 reflex signals of 15 healthy subjects were used. Its detection performance was compared with the one of the method called Teager-Kaiser energy operator. The reflex detection performance of algorithms was analyzed using the receiver operating characteristic curve. This showed that the Coherent Self-Averaging method, had a higher sensitivity and specificity than the Teager-Kaiser energy operator. Smoothing of signal, artifact attenuation (by electric stimulation) and reflex enhancement also was observed.
机译:这项工作提出了一种用于伤害性退缩反射的表面肌电信号预处理的替代方法,目的是改善记录中反射的检测。当疼痛刺激激活伤害感受器时出现退缩反射,产生的电位传播到脊髓,然后发生暴露于疼痛刺激的成员退缩。本研究中用于预处理这些反射的方法称为相干自平均方法,该方法可以减弱高频随机值的波动。通过设置两个参数:m和k,可以控制该方法产生的平滑度。为了证明在反射检测中的性能,使用了15位健康受试者的90个反射信号。将其检测性能与一种称为Teager-Kaiser能量算子的方法进行了比较。使用接收器工作特性曲线分析了算法的反射检测性能。这表明相干自平均法比Teager-Kaiser能量算子具有更高的灵敏度和特异性。还观察到信号的平滑,伪影衰减(通过电刺激)和反射增强。

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