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Gait variability analysis through phase portrait estimated from the Hilbert transform

机译:通过希尔伯特变换估计的相像进行步态变异性分析

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Gait variability has been used to evaluate the ability to control gait. Several studies approached this topic by analysing the influence of different conditions on gait variability, such as different walk speeds, inclined surfaces, load carriage, or comparing characteristics of subject groups, such as age, sedentarism and impairment level. The aim of this study was to develop and assess a new method, based on the property of the Hilbert transform of easily creating a phase portrait from a single time series, capable of estimating variability within gait cycles. The obtained results were based on a comparison of the proposed method with a traditional one whilst analysing a data set related to gait evaluation on inclined surfaces. Furthermore, the influence of noise over the estimated gait variability was assessed. The results showed that the proposed method is less sensitive to the presence of noise, with the advantage of not relying on signal interpolation, being thus an alternative to the analysis of gait variability.
机译:步态变异性已用于评估控制步态的能力。数项研究通过分析不同条件对步态变异性的影响(例如,不同的步行速度,倾斜的表面,负重运载工具)或比较受试者群体的特征(例如年龄,久坐感和障碍程度)来解决这一问题。这项研究的目的是基于希尔伯特变换的性质,开发和评估一种新方法,该方法可以轻松地从单个时间序列创建相像,并能够估计步态周期内的变异性。获得的结果是基于对拟议方法与传统方法的比较,同时分析了与倾斜表面上步态评估有关的数据集。此外,评估了噪声对估计步态变异性的影响。结果表明,该方法对噪声的存在较不敏感,具有不依赖信号插值的优点,因此是步态变异性分析的一种替代方法。

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