Robust Step Detection from Different Waist-Worn Sensor Positions: Implications for Clinical Studies.

Q1 Computer Science Digital Biomarkers Pub Date : 2020-11-26 eCollection Date: 2020-01-01 DOI:10.1159/000511611
Matthias Tietsch, Amir Muaremi, Ieuan Clay, Felix Kluge, Holger Hoefling, Martin Ullrich, Arne Küderle, Bjoern M Eskofier, Arne Müller
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Abstract

Analyzing human gait with inertial sensors provides valuable insights into a wide range of health impairments, including many musculoskeletal and neurological diseases. A representative and reliable assessment of gait requires continuous monitoring over long periods and ideally takes place in the subjects' habitual environment (real-world). An inconsistent sensor wearing position can affect gait characterization and influence clinical study results, thus clinical study protocols are typically highly proscriptive, instructing all participants to wear the sensor in a uniform manner. This restrictive approach improves data quality but reduces overall adherence. In this work, we analyze the impact of altering the sensor wearing position around the waist on sensor signal and step detection. We demonstrate that an asymmetrically worn sensor leads to additional odd-harmonic frequency components in the frequency spectrum. We propose a robust solution for step detection based on autocorrelation to overcome sensor position variation (sensitivity = 0.99, precision = 0.99). The proposed solution reduces the impact of inconsistent sensor positioning on gait characterization in clinical studies, thus providing more flexibility to protocol implementation and more freedom to participants to wear the sensor in the position most comfortable to them. This work is a first step towards truly position-agnostic gait assessment in clinical settings.

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从不同的腰部佩戴传感器位置进行稳健的台阶检测:对临床研究的意义。
利用惯性传感器分析人类步态可为了解包括许多肌肉骨骼和神经疾病在内的各种健康损害提供宝贵的信息。要对步态进行有代表性的可靠评估,需要长时间的连续监测,而且最好是在受试者的习惯环境(真实世界)中进行。传感器佩戴位置不一致会影响步态特征描述并影响临床研究结果,因此临床研究方案通常具有很强的规范性,要求所有参与者以统一的方式佩戴传感器。这种限制性方法提高了数据质量,但却降低了整体的依从性。在这项工作中,我们分析了改变腰部传感器佩戴位置对传感器信号和步数检测的影响。我们证明,不对称佩戴传感器会在频谱中产生额外的奇次谐波频率成分。我们提出了一种基于自相关性的稳健的台阶检测解决方案,以克服传感器位置的变化(灵敏度 = 0.99,精度 = 0.99)。所提出的解决方案减少了临床研究中传感器位置不一致对步态特征描述的影响,从而为方案实施提供了更大的灵活性,并为参与者提供了更大的自由度,让他们以最舒适的姿势佩戴传感器。这项工作为在临床环境中实现真正的位置标示步态评估迈出了第一步。
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来源期刊
Digital Biomarkers
Digital Biomarkers Medicine-Medicine (miscellaneous)
CiteScore
10.60
自引率
0.00%
发文量
12
审稿时长
23 weeks
期刊最新文献
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