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Quantifying Chaotic Behavior in Treadmill Walking

机译:量化跑步机行走中的混沌行为

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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 Lya-punov 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 LLE_1 for the first stride and as the long-term LLE_(4-10) 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:作者描述了一个非线性时间序列分析的应用示例,该示例旨在借助最大的Lya-punov指数(LLE)来确定人类运动数据中确定性混沌的存在。该研究旨在确定步态速度对LLE值的影响,以验证以下信念:慢速行走会导致稳定性增强,而LLE值较小。分析集中在时间序列上,该时间序列表示踝关节的髋部屈曲/伸展角,膝盖屈曲/伸展角和背屈/ plant屈尺寸。步态序列通过Vicon系统记录在位于比托姆的波兰日本信息技术学院的人体运动实验室(HML)中。 AC5000M跑步机的应用允许以三种方式进行记录:以每个对象的首选步行速度(PWS),PWS的80%和PWS的120%。根据文献的建议,每个时间序列的LLE值估计两次:第一步的短期LLE_1,第四和第十个之间的固定间隔的长期LLE_(4-10)大步前进。在后一种情况下,可以确定双腿的LLE值随步行速度的增加而增加。

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