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Estimation of Temporal Gait Parameters Using a Human Body Electrostatic Sensing-Based Method

机译:基于人体静电感应的方法估算时间步态参数

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摘要

Accurate estimation of gait parameters is essential for obtaining quantitative information on motor deficits in Parkinson’s disease and other neurodegenerative diseases, which helps determine disease progression and therapeutic interventions. Due to the demand for high accuracy, unobtrusive measurement methods such as optical motion capture systems, foot pressure plates, and other systems have been commonly used in clinical environments. However, the high cost of existing lab-based methods greatly hinders their wider usage, especially in developing countries. In this study, we present a low-cost, noncontact, and an accurate temporal gait parameters estimation method by sensing and analyzing the electrostatic field generated from human foot stepping. The proposed method achieved an average 97% accuracy on gait phase detection and was further validated by comparison to the foot pressure system in 10 healthy subjects. Two results were compared using the Pearson coefficient r and obtained an excellent consistency (r = 0.99, p < 0.05). The repeatability of the purposed method was calculated between days by intraclass correlation coefficients (ICC), and showed good test-retest reliability (ICC = 0.87, p < 0.01). The proposed method could be an affordable and accurate tool to measure temporal gait parameters in hospital laboratories and in patients’ home environments.
机译:准确估计步态参数对于获得有关帕金森氏病和其他神经退行性疾病运动缺陷的定量信息至关重要,这有助于确定疾病进展和治疗干预措施。由于对高精度的需求,诸如光学运动捕获系统,脚压板和其他系统之类的无干扰的测量方法已经在临床环境中被普遍使用。但是,现有的基于实验室的方法的高昂成本极大地阻碍了它们的广泛使用,尤其是在发展中国家。在这项研究中,我们通过感测和分析人脚踩踏产生的静电场,提出了一种低成本,非接触式和准确的时间步态参数估计方法。所提出的方法在步态相位检测上平均达到97%的准确度,并通过与10位健康受试者的足部压力系统进行比较得到了进一步的验证。使用皮尔森系数r比较了两个结果,并获得了极好的一致性(r = 0.99,p <0.05)。通过类内相关系数(ICC)在两天之间计算了目的方法的可重复性,并显示出良好的重测信度(ICC = 0.87,p <0.01)。所提出的方法可能是一种可负担得起的精确工具,可用于测量医院实验室和患者家庭环境中的时间步态参数。

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