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Obstructive Sleep Apnea Compliance: Modeling Home Care Patient Profiles

机译:阻塞性睡眠呼吸暂停依从性:建模家庭护理患者资料

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Obstructive Sleep Apnea (OSA) is a potentially severe sleep disorder that leads to different pathology. The goal treatment to OSA is the Positive Airway Pressure (PAP) therapy. Nevertheless, this therapy has one of the lowest compliance levels when compared to the other 17 therapies. For the last two decades, trials were carried out to improve this compliance level and understand factors impacting compliance, but there were no conclusive results. In this paper, we propose a framework for modeling multiple patient profiles at a different moment in the PAP therapy. This approach in PAP therapy takes into consideration multiple factors and the interactions between the factors at a specific moment in the therapy to understand and tackle the compliance problem. The data pre-processing is implemented in Python to extract the factors from the raw data. The processing and the core features of the framework are implemented in R. Six different patient profile was identified based on the event recorded between 3 days and 15 days after the installation of the PAP device at the patient home.
机译:阻塞性睡眠呼吸暂停(OSA)是一种潜在的严重睡眠障碍,可导致不同的病理。 OSA的目标治疗是气道正压(PAP)治疗。但是,与其他17种疗法相比,该疗法的依从性水平最低。在过去的二十年中,进行了一些试验来提高此合规性水平并了解影响合规性的因素,但没有结论性的结果。在本文中,我们提出了一个框架,用于在PAP治疗的不同时刻对多个患者档案进行建模。 PAP治疗中的这种方法考虑了多个因素以及在治疗的特定时刻这些因素之间的相互作用,以了解和解决依从性问题。数据预处理在Python中实现,以从原始数据中提取因素。该框架的处理和核心功能在R中实现。根据将PAP设备安装在患者家中3天到15天之间记录的事件,确定了六个不同的患者资料。

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