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Processing Diabetes Mellitus Composite Events in MAGPIE

机译:在MAGPIE中处理糖尿病复合事件

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The focus of this research is in the definition of programmable expert Personal Health Systems (PHS) to monitor patients affected by chronic diseases using agent oriented programming and mobile computing to represent the interactions happening amongst the components of the system. The paper also discusses issues of knowledge representation within the medical domain when dealing with temporal patterns concerning the physiological values of the patient. In the presented agent based PHS the doctors can personalize for each patient monitoring rules that can be defined in a graphical way. Furthermore, to achieve better scalability, the computations for monitoring the patients are distributed among their devices rather than being performed in a centralized server. The system is evaluated using data of 21 diabetic patients to detect temporal patterns according to a set of monitoring rules defined. The system's scalability is evaluated by comparing it with a centralized approach. The evaluation concerning the detection of temporal patterns highlights the system's ability to monitor chronic patients affected by diabetes. Regarding the scalability, the results show the fact that an approach exploiting the use of mobile computing is more scalable than a centralized approach. Therefore, more likely to satisfy the needs of next generation PHS s. PHSs are becoming an adopted technology to deal with the surge of patients affected by chronic illnesses. This paper discusses architectural choices to make an agent based PHS more scalable by using a distributed mobile computing approach. It also discusses how to model the medical knowledge in the PHS in such a way that it is modifiable at run time. The evaluation highlights the necessity of distributing the reasoning to the mobile part of the system and that modifiable rules are able to deal with the change in lifestyle of the patients affected by chronic illnesses.
机译:这项研究的重点是定义可编程专家个人健康系统(PHS),以使用面向代理的程序设计和移动计算来代表受系统影响的慢性病患者,以代表系统各组件之间发生的相互作用。本文还讨论了在处理有关患者生理值的时间模式时医学领域内的知识表示问题。在提出的基于代理的PHS中,医生可以为每个患者个性化监控规则,这些规则可以以图形方式定义。此外,为了实现更好的可伸缩性,用于监视患者的计算将在他们的设备之间分配,而不是在集中式服务器中执行。根据定义的一组监控规则,使用21位糖尿病患者的数据对系统进行评估,以检测时间模式。通过与集中式方法进行比较来评估系统的可伸缩性。有关时间模式检测的评估突显了该系统监测患有糖尿病的慢性患者的能力。关于可伸缩性,结果表明,利用移动计算的方法比集中式方法更具可伸缩性。因此,更可能满足下一代PHS的需求。 PHS正在成为一种用于处理受慢性疾病影响的患者数量激增的技术。本文讨论了架构选择,以通过使用分布式移动计算方法使基于代理的PHS更具可伸缩性。它还讨论了如何在PHS中以可在运行时修改的方式对医学知识进行建模。该评估突出了将推理分布到系统的移动部分的必要性,并且可修改的规则能够应对受慢性疾病影响的患者的生活方式的变化。

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