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规范基于加速度计的活动监测器校准及输出报告。

Standardizing accelerometer-based activity monitor calibration and output reporting.

作者信息

Coolbaugh Crystal L, Hawkins David A

机构信息

Biomedical Engineering Graduate Group, University of California, Davis, Davis, CA.

出版信息

J Appl Biomech. 2014 Aug;30(4):594-7. doi: 10.1123/jab.2013-0240. Epub 2014 Jun 30.

Abstract

Wearable accelerometer-based activity monitors (AMs) are used to estimate energy expenditure and ground reaction forces in free-living environments, but a lack of standardized calibration and data reporting methods limits their utility. The objectives of this study were to (1) design an inexpensive and easily reproducible AM testing system, (2) develop a standardized calibration method for accelerometer-based AMs, and (3) evaluate the utility of the system and accuracy of the calibration method. A centrifuge-type device was constructed to apply known accelerations (0-8g) to each sensitive axis of 30 custom and two commercial AMs. Accelerometer data were recorded and matrix algebra and a least squares solution were then used to determine a calibration matrix for the custom AMs to convert raw accelerometer output to units of g's. Accuracy was tested by comparing applied and calculated accelerations for custom and commercial AMs. AMs were accurate to within 4% of applied accelerations. The relatively inexpensive AM testing system (< $100) and calibration method has the potential to improve the sharing of AM data, the ability to compare data from different studies, and the accuracy of AM-based models to estimate various physiological and biomechanical quantities of interest in field-based assessments of physical activity.

摘要

基于可穿戴加速度计的活动监测器(AMs)用于估计自由生活环境中的能量消耗和地面反作用力,但缺乏标准化的校准和数据报告方法限制了它们的效用。本研究的目的是:(1)设计一种廉价且易于重现的AM测试系统;(2)开发一种基于加速度计的AMs标准化校准方法;(3)评估该系统的效用和校准方法的准确性。构建了一种离心机式装置,用于对30个定制的和两个商用AMs的每个敏感轴施加已知加速度(0-8g)。记录加速度计数据,然后使用矩阵代数和最小二乘解来确定定制AMs的校准矩阵,以将原始加速度计输出转换为g单位。通过比较定制和商用AMs的施加加速度和计算加速度来测试准确性。AMs的准确性在施加加速度的4%以内。这种相对廉价的AM测试系统(<100美元)和校准方法有可能改善AM数据的共享、比较不同研究数据的能力,以及基于AM的模型在估计身体活动现场评估中各种感兴趣的生理和生物力学量时的准确性。

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