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Insights into gait disorders: Walking variability using phase plot analysis, Parkinson's disease

机译:步态障碍的见解:使用相图分析的步行变异性,帕金森氏病

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Gait variability may have greater utility than spatio-temporal parameters and can, be an indication for risk of falling in people with Parkinson's disease (PD). Current methods rely on prolonged data collection in order to obtain large datasets which may be demanding to obtain. We set out to explore a phase plot variability analysis to differentiate typically developed adults (TDAs) from PD obtained from two 10. m walks. Fourteen people with PD and good mobility (Rivermead Mobility Index ≥8) and ten aged matched TDA were recruited and walked over 10-m at self-selected walking speed. An inertial measurement unit was placed over the projected centre of mass (CoM) sampling at 100Hz. Vertical CoM excursion was derived to determine modelled spatiotemporal data after which the phase plot analysis was applied producing a cloud of datapoints. SDA described the spread and SDB the width of the cloud with β the angular vector of the data points. The ratio (?) was defined as SDA: SDB.Cadence (p=342) and stride length (p=615) did not show a significance between TDA and PD. A difference was found for walking speed (p=041). Furthermore a significant difference was found for β (p=010), SDA (p=004) other than SDB (p=385) or ratio ? (p=830).Two sequential 10-m walks showed no difference in PD for cadence (p=193), stride length (p=683), walking speed (p=684) and β (p=194), SDA (p=051), SDB (p=145) or ? (p=226).The proposed phase plot analysis, performed on CoM motion could be used to reliably differentiate PD from TDA over a 10-m walk.
机译:步态变异性可能比时空参数具有更大的效用,并且可以指示帕金森氏病(PD)患者跌倒的风险。当前的方法依赖于延长的数据收集以便获得可能需要获得的大数据集。我们着手探索相图变异性分析,以区分典型发达的成年人(TDA)与从两个10 m步走获得的PD。招募了14名PD,行动能力良好(Rivermead行动指数≥8)和10岁年龄相匹配的TDA的人,并以自行选择的步行速度步行了10分钟以上。惯性测量单元放在100Hz的投影质心(CoM)采样上方。导出了垂直CoM偏移以确定模型化的时空数据,然后应用相图分析产生了一个数据点云。 SDA描述了云的扩展,SDB描述了云的宽度,其中β是数据点的角度矢量。比率(?)定义为SDA:SDB。步速(p = 342)和步幅(p = 615)在TDA和PD之间没有显着性。发现步行速度有差异(p = 041)。此外,发现β(p = 010),SDA(p = 004)不同于SDB(p = 385)或比率η有显着差异。 (p = 830)。连续进行两次10米步行后,步频(p = 193),步长(p = 683),步行速度(p = 684)和β(p = 194),SDA( p = 051),SDB(p = 145)或? (p = 226)。对CoM运动执行的拟议相图分析可用于可靠地区分PD在10米步行路程中与TDA。

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