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Estimation of Physical Activity Level and Ambient Condition Thresholds for Respiratory Health using Smartphone Sensors

机译:智能手机传感器估计呼吸健康的身体活动水平与环境条件阈值

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While physical activity has been described as a primary prevention against chronic diseases, strenuous physical exertion under adverse ambient conditions has also been reported as a major contributor to exacerbation of chronic respiratory conditions. Maintaining a balance by monitoring the type and the level of physical activities of affected individuals, could help in reducing the cost and burden of managing respiratory ailments. This paper explores the potentiality of motion sensors in Smartphones to estimate physical activity thresholds that could trigger symptoms of exercise-induced respiratory conditions (EiRCs). The focus is on the extraction of measurements from the embedded motion sensors to determine the activity level and the type of activity that is tolerable to individual's respiratory health. The calculations are based on the correlation between Signal Magnitude Area (SMA) and Energy Expenditure (EE). We also consider the effect of changes in the ambient conditions - temperature and humidity, as contributing factors to respiratory distress during physical exercise. Real-time data collected from healthy individuals were used to demonstrate the potentiality of a mobile phone as a tool to regulate the level of physical activities of individuals with EiRCs. We describe a practical situation where the experimental outcomes can be applied to promote good respiratory health.
机译:虽然物理活性被描述为针对慢性疾病的主要预防,但在不良环境条件下剧烈的体力劳动也被报告为慢性呼吸状况加剧的主要因素。通过监测受影响个人的体育活动的类型和体育级别来维持平衡,可以帮助降低管理呼吸系统疾病的成本和负担。本文探讨了智能手机中运动传感器的潜力,以估计可能引发运动引起的呼吸状况(EIRC)症状的身体活动阈值。重点是从嵌入式运动传感器提取测量,以确定对个体呼吸健康的活动水平和可容许的活动类型。计算基于信号幅度区域(SMA)和能量消耗(EE)之间的相关性。我们还考虑环境条件变化 - 温度和湿度的影响,作为体育呼吸窘迫的因素。从健康个人收集的实时数据用于展示手机作为一个工具,以调节具有EIRC的个人体育活动水平的工具。我们描述了一种实际情况,可以应用实验结果来促进良好的呼吸健康。

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