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Assessing the Accuracy of an Algorithm for the Estimation of Spatial Gait Parameters Using Inertial Measurement Units: Application to Healthy Subject and Hemiparetic Stroke Survivor

机译:利用惯性测量单元评估空间步态参数估计算法的准确性:应用于健康人和半髋关节卒中幸存者

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摘要

We have reviewed and assessed the reliability of a dead reckon- ing and drift correction algorithm for the estimation of spatial gait parameters using Inertial Measurement Units (IMUs). In particular, we are interested in obtaining accurate stride lengths measurements in order to assess the effects of a wearable haptic cueing device designed to assist people with neurological health conditions during gait rehabilitation. To assess the accuracy of the stride lengths estimates, we compared the output of the algorithm with measurements obtained using a high-end marker-based motion capture system, here adopted as a gold standard. In addition, we introduce an alternative method for detecting initial impact events (i.e. the instants at which one foot contacts the ground, here used for de- limiting strides) using accelerometer data. Our method, based on a kinematic feature we named ‘jerkage’, has proved more robust than detecting peaks on raw accelerometer data. We argue that the resulting measurements of stride lengths are accurate enough to provide trend data needed to support worthwhile gait rehabilitation applications. This approach has potential to assist physiotherapists and patients without access to fully-equipped movement labs. More specifically, it has applications for collecting data to guide and assess gait rehabilitation both outdoors and at home.
机译:我们已经审查并评估了惯性推算和漂移校正算法用于使用惯性测量单元(IMU)估算空间步态参数的可靠性。尤其是,我们有兴趣获得准确的步幅长度测量值,以评估可穿戴式触觉提示设备的效果,该设备旨在在步态康复过程中帮助患有神经系统疾病的人。为了评估步幅长度估计的准确性,我们将算法的输出与使用基于高端标记的运动捕捉系统(这里被用作黄金标准)获得的测量结果进行了比较。此外,我们介绍了一种使用加速度计数据检测初始撞击事件(即,一只脚接触地面的瞬间,此处用于限制步幅)的替代方法。我们的方法基于运动学特性(称为“抖动”),已被证明比在原始加速度计数据上检测峰值更鲁棒。我们认为步幅长度的测量结果足够准确,可以提供支持有价值的步态康复应用所需的趋势数据。这种方法有潜力协助物理治疗师和患者,而无需使用设备齐全的运动实验室。更具体地说,它具有收集数据以指导和评估户外和家庭步态康复的应用程序。

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