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Quantifying Chaotic Behavior in Treadmill Walking

机译:量化跑步机走路中的混沌行为

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The authors describe an example of application of nonlinear time series analysis directed at identifying the presence of deterministic chaos in human motion data by means of the largest Lyapunov exponent (LLE). The research aimed at determination of the influence of gait speed on the LLE value with a view to verification of the belief that slower walking leads to increased stability characterized by smaller LLE value. Analyses were focused on the time series representing hip flexion/extension angle, knee flexion/extension angle and dorsiflexion/plantarflexion dimension of the ankle. Gait sequences were recorded in the Human Motion Laboratory (HML) of the Polish-Japanese Academy of Information Technology in Bytom by means of the Vicon system. Application of the AC5000M treadmill allowed recordings in three variants: at the preferred walking speed (PWS) of each subject, at 80% of the PWS and at 120% of the PWS. According to the recommendations from the literature the LLE value was estimated twice for every time series: as the short-term LLE1 for the first stride and as the long-term LLE4-10 over a fixed interval between the fourth and the tenth stride. In the latter case it was confirmed that the LLE value increases with walking speed for both limbs.
机译:作者描述了通过最大的Lyapunov指数(LLE)识别人类运动数据中确定性混沌的存在的非线性时间序列分析的应用示例。该研究旨在确定步态速度对LLE值的影响,以便验证步行速度较慢的信念,以增加较小的LLE值的稳定性。分析专注于代表髋关节屈曲/延伸角度,膝关节/延伸角度和踝关节的膝盖屈曲/延长角度和背裂尺寸的时间序列。通过VICON系统,在Bytom的波兰日本信息技术学院的人体运动实验室(HML)中记录了步态序列。 AC5000M跑步机的应用在三个变体中录制:以每个受试者的首选步行速度(PWS),在PWS的80%和120%的PWS中。根据文献的建议,每次序列都估计了两次LLE值:作为第一个步幅的短期LLE1,并且在第四和第十步之间的固定间隔上作为长期LLE4-10。在后一种情况下,证实了LLE值随着肢体的步行速度而增加。

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