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各年龄组时空步态指标的规范数据库:一项观察性病例对照研究。

Normative Database of Spatiotemporal Gait Metrics Across Age Groups: An Observational Case-Control Study.

作者信息

Mobbs Lianne, Fernando Vinuja, Fonseka R Dineth, Natarajan Pragadesh, Maharaj Monish, Mobbs Ralph J

机构信息

Wearable and Gait Assessment Research (WAGAR) Group, Prince of Wales Private Hospital, Randwick, NSW 2031, Australia.

Faculty of Psychology, University of New South Wales (UNSW), Sydney, NSW 2033, Australia.

出版信息

Sensors (Basel). 2025 Jan 20;25(2):581. doi: 10.3390/s25020581.

Abstract

INTRODUCTION

Gait analysis is a vital tool in the assessment of human movement and has been widely used in clinical settings to identify potential abnormalities in individuals. However, there is a lack of consensus on the normative values for gait metrics in large populations. The primary objective of this study is to establish a normative database of spatiotemporal gait metrics across various age groups, contributing to a broader understanding of human gait dynamics. By doing so, we aim to enhance the clinical utility of gait analysis in diagnosing and managing health conditions.

METHODS

We conducted an observational case-control study involving 313 healthy participants. The MetaMotionC IMU by Mbientlab Inc., equipped with a triaxial accelerometer, gyroscope, and magnetometer, was used to capture gait data. The IMU was placed at the sternal angle of each participant to ensure optimal data capture during a 50 m walk along a flat, unobstructed pathway. Data were collected through a Bluetooth connection to a smartphone running a custom-developed application and subsequently analysed using IMUGaitPY, a specialised version of the GaitPY Python package.

RESULTS

The data showed that gait speeds decrease with ageing for males and females. The fastest gait speed is observed in the 41-50 age group at 1.35 ± 0.23 m/s. Males consistently exhibit faster gait speeds than females across all age groups. Step length and cadence do not have clear trends with ageing. Gait speed and step length increase consistently with height, with the tallest group (191-200 cm) walking at an average speed of 1.49 ± 0.12 m/s, with an average step length of 0.91 ± 0.05 m. Cadence, however, decreases with increasing height, with the tallest group taking 103.52 ± 5.04 steps/min on average.

CONCLUSIONS

This study has established a comprehensive normative database for the spatiotemporal gait metrics of gait speed, step length, and cadence, highlighting the complexities of gait dynamics across age and sex groups and the influence of height. Our findings offer valuable reference points for clinicians to distinguish between healthy and pathological gait patterns, facilitating early detection and intervention for gait-related disorders. Moreover, this database enhances the clinical utility of gait analysis, supporting more objective diagnoses and assessments of therapeutic interventions. The normative database provides a valuable reference future research and clinical practice. It enables a more nuanced understanding of how gait evolves with age, gender, and physical stature, thus informing the development of targeted interventions to maintain mobility and prevent falls in older adults. Despite potential selection bias and the cross-sectional nature of the study, the insights gained provide a solid foundation for further longitudinal studies and diverse sampling to validate and expand upon these findings.

摘要

引言

步态分析是评估人体运动的重要工具,已在临床环境中广泛用于识别个体潜在的异常情况。然而,对于大量人群的步态指标规范值,目前尚无共识。本研究的主要目的是建立一个涵盖各个年龄组的时空步态指标规范数据库,以更广泛地了解人类步态动力学。通过这样做,我们旨在提高步态分析在诊断和管理健康状况方面的临床效用。

方法

我们进行了一项观察性病例对照研究,涉及313名健康参与者。使用Mbientlab公司的MetaMotionC惯性测量单元(IMU),该单元配备了三轴加速度计、陀螺仪和磁力计,用于采集步态数据。将IMU放置在每个参与者的胸骨角处,以确保在沿着平坦、无阻碍的路径行走50米的过程中能够最佳地采集数据。数据通过蓝牙连接到运行定制应用程序的智能手机进行收集,随后使用GaitPY Python包的专门版本IMUGaitPY进行分析。

结果

数据显示,男性和女性的步态速度均随年龄增长而下降。在41 - 50岁年龄组中观察到最快的步态速度,为1.35±0.23米/秒。在所有年龄组中,男性的步态速度始终比女性快。步长和步频随年龄增长没有明显趋势。步态速度和步长与身高持续增加,最高组(191 - 200厘米)的平均行走速度为1.49±0.12米/秒,平均步长为0.91±0.05米。然而,步频随身高增加而降低,最高组平均每分钟走103.52±5.04步。

结论

本研究建立了一个关于步态速度、步长和步频的时空步态指标的综合规范数据库,突出了不同年龄和性别组步态动力学的复杂性以及身高的影响。我们的研究结果为临床医生区分健康和病理性步态模式提供了有价值的参考点,有助于早期发现和干预与步态相关的疾病。此外,该数据库提高了步态分析的临床效用,支持对治疗干预进行更客观的诊断和评估。该规范数据库为未来的研究和临床实践提供了有价值的参考。它使人们能够更细致地了解步态如何随年龄、性别和身体 stature 演变,从而为制定有针对性的干预措施提供信息,以维持老年人的活动能力并预防跌倒。尽管存在潜在的选择偏倚和研究的横断面性质,但所获得的见解为进一步的纵向研究和多样化抽样提供了坚实的基础,以验证和扩展这些发现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af02/11768510/d5a54d3db251/sensors-25-00581-g0A1.jpg

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