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Teager–Kaiser energy operator signal conditioning improves EMG onset detection

机译:Teager–Kaiser能量操作员信号调节可改善EMG发作检测

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摘要

Accurate identification of the onset of muscle activity is an important element in the biomechanical analysis of human movement. The purpose of this study was to determine if inclusion of the Teager–Kaiser energy operator (TKEO) in signal conditioning would increase the accuracy of popular electromyography (EMG) onset detection methods. Three methods, visual determination, threshold-based method, and approximated generalized likelihood ratio were used to estimate the onset of EMG burst with and without TKEO conditioning. Reference signals, with known onset times, were constructed from EMG signals collected during isometric contraction of the vastus lateralis (n = 17). Additionally, vastus lateralis EMG signals (n = 255) recorded during gait were used to evaluate a clinical application of the TKEO conditioning. Inclusion of TKEO in signal conditioning significantly reduced mean detection error of all three methods compared with signal conditioning without TKEO, using artificially generated reference data (13 vs. 98 ms, p < 0.001) and also compared with experimental data collected during gait (55 vs. 124 ms, p < 0.001). In conclusion, addition of TKEO as a step in conditioning surface EMG signals increases the detection accuracy of EMG burst boundaries.
机译:准确识别肌肉活动的开始是人体运动的生物力学分析中的重要元素。本研究的目的是确定信号调节中是否包含Teager-Kaiser能量算子(TKEO)是否会提高流行的肌电图(EMG)发作检测方法的准确性。视觉确定,基于阈值的方法和近似的广义似然比这三种方法用于估计有无TKEO条件下的EMG爆发的发生。参考信号是已知的发作时间,是由在股外侧肌等轴收缩期间收集的EMG信号构建的(n = 17)。此外,步态期间记录的股外侧肌肌电信号(n = 255)用于评估TKEO调理的临床应用。与使用TKEO进行人工调节的参考数据(13 vs.98 ms,p <0.001)以及不使用步态采集的实验数据(不使用TKEO)相比,在不使用TKEO进行信号调节的情况下,将TKEO包括在信号调节中可以显着降低所有三种方法的平均检测误差。 。124 ms,p <0.001)。总之,添加TKEO作为调节表面EMG信号的步骤,可以提高EMG突发边界的检测精度。

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