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Evaluation of daily walking activity and gait profiles: a novel application of a time series analysis framework

机译:评估日常步行活动和步态概况:时间序列分析框架的新颖应用

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Wearable technology allows an in-depth analysis of gait behaviour in free-living environments. This investigation aimed to use Alzheimer’s disease as an example to apply the time series analysis technique of Statistical Parametric Mapping (SPM) to create daily gait profiles and test if they differed from cognitively intact controls. A framework of macro (habitual walking behaviours) and micro characteristics (spatiotemporal gait variables) characteristics were calculated on an hourly basis. SPM showed that select micro gait characteristics differed from controls at specific hours of the day. Therefore, the application of SPM may provide a more in-depth reflection of activity and gait time-dependent fluctuations than commonly used whole day values. Considering macro and micro gait hour-by- hour may have applications towards disease management, personalized care, monitoring medication and targeted interventions for people with a range of neurodegenerative diseases.
机译:可穿戴技术可对自由生活环境中的步态行为进行深入分析。这项调查旨在以阿尔茨海默氏病为例,应用统计参数映射(SPM)的时间序列分析技术来创建每日步态图,并测试它们是否与认知完好对照不同。每小时计算宏观(习惯步行行为)和微观特征(时空步态变量)特征的框架。 SPM显示,在一天的特定小时内,选定的微步态特征不同于对照组。因此,与通常使用的全天值相比,SPM的应用可以更深入地反映活动和步态时间相关的波动。每小时考虑宏观和微观步态可能会应用于疾病管理,个性化护理,监测药物治疗以及针对一系列神经退行性疾病患者的针对性干预。

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