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A DATA ANALYTICS FRAMEWORK FOR SMART ASTHMA MANAGEMENT BASED ON REMOTE HEALTH INFORMATION SYSTEMS WITH BLUETOOTHENABLED PERSONAL INHALERS

机译:基于具有BluetoothEnabled个人吸入器的远程健康信息系统的智能哮喘管理数据分析框架

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Asthma is a prevalent respiratory chronic disease affecting a large portion of the global population. Patients diagnosed with asthma may experience significantly reduced quality of life if their asthma is not properly controlled. To facilitate better asthma self-management, asthma specialists and engineers have developed the smart asthma management system (SAM). This new health information system provides Bluetooth-enabled inhalers and collects time stamps of every rescue inhaler use. Such detailed inhaler usage logs, which are crucial for investigating patterns of inhaler usage, were not available in traditional clinical trials because clinical trials acquire data only periodically. Due to the low data collection resolution of clinical trials, quantitative asthma studies based on trial data have been focusing mainly on capturing the increasing trend in the number of rescue inhaler uses. Taking advantage of the patient monitoring capability of the SAM system, we developed a data analytics framework for detecting abnormal inhaler use that is out of the patient's normal usage pattern. The new statistical model developed in this paper can address the key features of the data collected from the SAM system such as the heterogeneous impact of environmental factors on inhaler usage behavior and the correlation structure governed by the patient's repetitive routines. We show the satisfactory performance of our data analytics framework through rigorous comparison with various benchmark methods. Furthermore, we give an in-depth discussion on our contribution to the information systems (IS) knowledge base and practical implications of our analytics framework to data-driven asthma management practice.
机译:哮喘是一种普遍存在的呼吸慢性疾病,影响了全球人群的大部分。患有哮喘的患者可能会在没有适当控制哮喘的情况下显着降低寿命质量。为了促进更好的哮喘自我管理,哮喘专家和工程师已经开发了智能哮喘管理系统(SAM)。这种新的健康信息系统提供了支持蓝牙的吸入器,并收集每个救援吸入器使用的时间戳。这种详细的吸入器使用日志对于调查吸入器使用模式至关重要,在传统的临床试验中不可用,因为临床试验仅定期收购数据。由于临床试验的低数据收集分辨率,基于试验数据的定量哮喘研究一直专注于捕获救援吸入器数量的日益趋势。利用SAM系统的患者监控能力,我们开发了一种用于检测患者正常使用模式的异常吸入器使用的数据分析框架。本文开发的新统计模型可以解决从SAM系统收集的数据的关键特征,例如环境因素对吸入器使用行为的异质影响以及患者重复惯例所治理的相关结构。我们通过与各种基准方法进行严格的比较,我们展示了数据分析框架的令人满意的性能。此外,我们对我们对信息系统的贡献进行了深入的讨论,我们的分析框架对数据驱动的哮喘管理实践的贡献。

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