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Benchmarking Foot Trajectory Estimation Methods for Mobile Gait Analysis

机译:用于移动步态分析的基准脚轨迹估计方法

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摘要

Mobile gait analysis systems based on inertial sensing on the shoe are applied in a wide range of applications. Especially for medical applications, they can give new insights into motor impairment in, e.g., neurodegenerative disease and help objectify patient assessment. One key component in these systems is the reconstruction of the foot trajectories from inertial data. In literature, various methods for this task have been proposed. However, performance is evaluated on a variety of datasets due to the lack of large, generally accepted benchmark datasets. This hinders a fair comparison of methods. In this work, we implement three orientation estimation and three double integration schemes for use in a foot trajectory estimation pipeline. All methods are drawn from literature and evaluated against a marker-based motion capture reference. We provide a fair comparison on the same dataset consisting of 735 strides from 16 healthy subjects. As a result, the implemented methods are ranked and we identify the most suitable processing pipeline for foot trajectory estimation in the context of mobile gait analysis.
机译:基于鞋上惯性传感的移动步态分析系统被广泛应用。特别是对于医疗应用,他们可以为例如神经退行性疾病中的运动障碍提供新的见解,并有助于客观地评估患者。这些系统中的一个关键组件是根据惯性数据重建脚部轨迹。在文献中,已经提出了用于该任务的各种方法。但是,由于缺少大型的,公认的基准数据集,因此对各种数据集进行了性能评估。这妨碍了方法的公平比较。在这项工作中,我们实现了三个方向估计和三个双积分方案,用于脚部轨迹估计管线。所有方法均来自文献,并针对基于标记的运动捕捉参考进行了评估。我们对来自16个健康受试者的735个步幅组成的同一数据集进行了公平的比较。结果,对所实现的方法进行了排名,并且在移动步态分析的背景下,我们确定了最适合脚部轨迹估计的处理管道。

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