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Activity Monitoring with a Wrist-Worn Accelerometer-Based Device

机译:使用基于手腕式加速度计的设备进行活动监控

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摘要

This study condenses huge amount of raw data measured from a MEMS accelerometer-based, wrist-worn device on different levels of physical activities (PAs) for subjects wearing the device 24 h a day continuously. In this study, we have employed the device to build up assessment models for quantifying activities, to develop an algorithm for sleep duration detection and to assess the regularity of activity of daily living (ADL) quantitatively. A new parameter, the activity index (AI), has been proposed to represent the quantity of activities and can be used to categorize different PAs into 5 levels, namely, rest/sleep, sedentary, light, moderate, and vigorous activity states. Another new parameter, the regularity index (RI), was calculated to represent the degree of regularity for ADL. The methods proposed in this study have been used to monitor a subject’s daily PA status and to access sleep quality, along with the quantitative assessment of the regularity of activity of daily living (ADL) with the 24-h continuously recorded data over several months to develop activity-based evaluation models for different medical-care applications. This work provides simple models for activity monitoring based on the accelerometer-based, wrist-worn device without trying to identify the details of types of activity and that are suitable for further applications combined with cloud computing services.
机译:这项研究汇总了基于MEMS加速度计的腕戴式设备在每天24小时连续佩戴该设备的不同水平的身体活动(PA)上测得的大量原始数据。在这项研究中,我们已经使用该设备建立了量化活动的评估模型,开发了一种用于检测睡眠时间的算法,并定量评估了日常生活活动(ADL)的规律性。已经提出了一个新的参数,即活动指数(AI)来代表活动的数量,可用于将不同的PA分为5个级别,即休息/睡眠,久坐,轻度,中度和剧烈运动状态。计算了另一个新参数,即规律性指数(RI),以表示ADL的规律性程度。本研究中提出的方法已用于监测受试者的日常PA状态并获得睡眠质量,并通过连续24个月的数据连续几个月对24小时连续记录的数据进行定量评估日常生活活动(ADL)的规律性。开发针对不同医疗应用的基于活动的评估模型。这项工作提供了基于基于加速度计的腕戴式设备的活动监视的简单模型,而无需尝试识别活动类型的细节,并且适合与云计算服务结合使用的其他应用程序。

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