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Analyzing Sensor-Based Time Series Data to Track Changes in Physical Activity during Inpatient Rehabilitation

机译:分析基于传感器的时间序列数据以跟踪住院病人康复期间身体活动的变化

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摘要

Time series data collected from sensors can be analyzed to monitor changes in physical activity as an individual makes a substantial lifestyle change, such as recovering from an injury or illness. In an inpatient rehabilitation setting, approaches to detect and explain changes in longitudinal physical activity data collected from wearable sensors can provide value as a monitoring, research, and motivating tool. We adapt and expand our Physical Activity Change Detection (PACD) approach to analyze changes in patient activity in such a setting. We use Fitbit Charge Heart Rate devices with two separate populations to continuously record data to evaluate PACD, nine participants in a hospitalized inpatient rehabilitation group and eight in a healthy control group. We apply PACD to minute-by-minute Fitbit data to quantify changes within and between the groups. The inpatient rehabilitation group exhibited greater variability in change throughout inpatient rehabilitation for both step count and heart rate, with the greatest change occurring at the end of the inpatient hospital stay, which exceeded day-to-day changes of the control group. Our additions to PACD support effective change analysis of wearable sensor data collected in an inpatient rehabilitation setting and provide insight to patients, clinicians, and researchers.
机译:可以对从传感器收集的时间序列数据进行分析,以监视个人进行实质性生活方式改变(例如从受伤或疾病中恢复过来)后身体活动的变化。在住院康复环境中,检测和解释从可穿戴式传感器收集到的纵向身体活动数据变化的方法可以提供作为监视,研究和激励工具的价值。我们调整并扩展了我们的身体活动变化检测(PACD)方法,以分析这种情况下患者活动的变化。我们使用具有两个独立人群的Fitbit Charge心率设备连续记录数据以评估PACD,住院住院康复组的9名参与者和健康对照组的8名参与者。我们将PACD应用于每分钟的Fitbit数据,以量化组内和组之间的变化。住院康复组在整个住院康复过程中的步数和心率变化均表现出较大的变化,其中最大的变化发生在住院期间,超过了对照组的日常变化。我们在PACD中添加的功能可对住院康复环境中收集的可穿戴传感器数据进行有效的更改分析,并为患者,临床医生和研究人员提供见识。

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