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Patient-Generated Health Data Integration and Advanced Analytics for Diabetes Management: The AID-GM Platform

机译:用于糖尿病管理的患者生成的健康数据集成和高级分析:AID-GM平台

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摘要

Diabetes is a high-prevalence disease that leads to an alteration in the patient’s blood glucose (BG) values. Several factors influence the subject’s BG profile over the day, including meals, physical activity, and sleep. Wearable devices are available for monitoring the patient’s BG value around the clock, while activity trackers can be used to record his/her sleep and physical activity. However, few tools are available to jointly analyze the collected data, and only a minority of them provide functionalities for performing advanced and personalized analyses. In this paper, we present AID-GM, a web application that enables the patient to share with his/her diabetologist both the raw BG data collected by a flash glucose monitoring device, and the information collected by activity trackers, including physical activity, heart rate, and sleep. AID-GM provides several data views for summarizing the subject’s metabolic control over time, and for complementing the BG profile with the information given by the activity tracker. AID-GM also allows the identification of complex temporal patterns in the collected heterogeneous data. In this paper, we also present the results of a real-world pilot study aimed to assess the usability of the proposed system. The study involved 30 pediatric patients receiving care at the Fondazione IRCCS Policlinico San Matteo Hospital in Pavia, Italy.
机译:糖尿病是一种高度流行的疾病,会导致患者血糖(BG)值发生变化。一天之中,有几个因素会影响受试者的BG状况,包括进餐,体育锻炼和睡眠。可穿戴设备可用于全天候监控患者的BG值,而活动跟踪器可用于记录患者的睡眠和身体活动。但是,很少有工具可以用来联合分析收集到的数据,只有少数工具提供执行高级和个性化分析的功能。在本文中,我们介绍了AID-GM,这是一个网络应用程序,使患者可以与他的/或他的糖尿病医生共享由快速血糖监测设备收集的原始BG数据以及由活动跟踪器收集的信息,包括身体活动,心脏率和睡眠。 AID-GM提供了多个数据视图,以汇总受试者随时间的代谢控制情况,并使用活动跟踪器提供的信息来补充BG资料。 AID-GM还可以识别收集的异构数据中的复杂时间模式。在本文中,我们还介绍了旨在评估所提议系统的可用性的实际试验研究的结果。该研究涉及30名在意大利帕维亚的Fondazione IRCCS Policlinico San Matteo医院接受护理的儿科患者。

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