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LINEAR AND NONLINEAR SMOOTH ORTHOGONAL DECOMPOSITION TO RECONSTRUCT LOCAL FATIGUE DYNAMICS: A COMPARISON

机译:线性和非线性光滑正交分解重建局部疲劳动态:比较

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Identifying physiological fatigue is important for the development of more robust training protocols, better energy supplements, and/or reduction of muscle injuries. Current fatigue measurement technologies are usually invasive and/or impractical, and may not be realizable in out of laboratory settings. A fatigue identification methodology that only uses motion kinematics measurements has a great potential for field applications. Phase space warping (PSW) features of motion kinematic time series analyzed through smooth orthogonal decomposition (SOD) have tracked individual muscle fatigue. In this paper, the performance of a standard SOD analysis is compared to its nonlinear extension using a new experimental data set. Ten healthy right-handed subjects (27 ± 2.8 years; 1.71 ± 0.10 m height; and 69.91 ± 18.26 kg body mass) perform a sawing motion by pushing a weighted handle back and forth until voluntary exhaustion. Three sets of joint kinematic angles are measured from the elbow, wrist and shoulder as well as surface Electromyography (EMG) from ten different muscle groups. A vector-valued feature time series is generated using PSW metrics estimated from movement kinematics. Dominant SOD coordinates of these features are extracted to track the individual muscle fatigue trends as indicated by mean and median frequencies of the corresponding EMG power spectra. Cross subject variability shows that considerably fewer nonlinear SOD coordinates are needed to track EMG-based fatigue markers, and that nonlinear SOD methodology captures fatigue dynamics in a lower-dimensional subspace than its linear counterpart.
机译:识别生理疲劳对于开发更强大的培训协议,更好的能量补充剂和/或减少肌肉伤害是重要的。目前的疲劳测量技术通常是侵入性和/或不切实际的,并且在实验室环境中可能无法实现。疲劳识别方法仅使用运动运动学测量,对现场应用具有很大的潜力。通过平滑正交分解(SOD)分析的运动运动时间序列的相位空间翘曲(PSW)具有追踪单个肌肉疲劳。本文使用新的实验数据集将标准SOD分析的性能与其非线性延伸进行了比较。十个健康的右手受试者(27±2.8岁; 1.71±0.10米高; 69.91±18.26千克体重)通过前后推加权手柄直至自愿疲劳来执行锯切运动。从肘部,腕部和肩部以及来自十个不同肌肉群的表面肌电图(EMG)测量三组关节运动角度。使用从运动运动学估计的PSW度量来生成矢量值特征时间序列。提取这些特征的显性SOD坐标以跟踪各个肌肉疲劳趋势,如相应的EMG功率谱的平均值和中值频率所示。交叉主体可变性表明,需要相当较少的非线性SOD坐标来跟踪基于EMG的疲劳标记,并且非线性SOD方法比其线性对应物在低维子空间中捕获疲劳动力学。

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