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A smart mobile, self-configuring, context-aware architecture for personal health monitoring

机译:用于个人健康监控的智能移动,自配置,上下文感知架构

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The last decade has witnessed an exponential increase in older adult population suffering from chronic life-long diseases and needing healthcare. This situation has highlighted a need to revolutionize healthcare and provide innovative, efficient, and affordable solutions to patients at any time and from anywhere in an economic and friendly manner. The recent developments in sensing, mobile, and embedded devices have attracted considerable attention toward mobile health monitoring applications. However, existing architectures aimed at facilitating the realization of these mobile applications have shown to be not suitable to address all these challenging issues: (ⅰ) the seamless integration of heterogeneous devices; (ⅱ) the estimation of vital parameters not measurable directly or measurable with a low accuracy; (ⅲ) the extraction of context information pertaining to the patient's activity to be used for the interpretation of vital parameters; (ⅳ) the correlation of physiological and contextual information to detect suspicious anomalies and supply alerts; (ⅴ) the notification of anomalies to doctors and caregivers only when their detection is accurate and appropriate. In light of the above, this paper presents a smart mobile, self-configuring, context-aware architecture devised to enable the rapid prototyping of personal health monitoring applications for different scenarios, by exploiting commercial wearable sensors and mobile devices as well as knowledge-based technologies. This architecture is organized as a composition of four tiers that operate on a layered fashion and it exploits an ontology-based data model to ensure intercommunication among these tiers and the monitoring applications built on the top of them. The proposed architecture has been implemented for mobile devices equipped with the Android platform and evaluated with respect to its modifiability by employing the ALMA (Architecture Level Modifiability Analysis) method, highlighting its capability of being rapidly customized, personalized or eventually modified by software developers in order to prototype, with a reduced effort, novel health monitoring applications on the top of its components. Finally, it has been employed to build, as case study, a mobile application aimed at monitoring and managing cardiac arrhythmias, such as bradycardia and tachycardia, confirming its effectiveness with respect to a real scenario.
机译:在过去十年中,患有慢性终生疾病并需要医疗保健的老年人口呈指数增长。这种情况凸显了对医疗保健进行革命的需求,并需要以经济,友好的方式随时随地为患者提供创新,高效和负担得起的解决方案。传感,移动和嵌入式设备的最新发展引起了对移动健康监控应用程序的极大关注。但是,旨在促进这些移动应用程序实现的现有体系结构已显示出不适合解决所有这些具有挑战性的问题:(ⅰ)异构设备的无缝集成; (ⅱ)不能直接测量或精度不高的生命参数的估计; (ⅲ)提取与患者活动有关的上下文信息,以用于解释生命参数; (ⅳ)生理和环境信息的相关性,以发现可疑异常并提供警报; (ⅴ)仅在正确和适当的发现时才将异常通知医生和护理人员。鉴于上述情况,本文提出了一种智能移动,可自我配置,上下文感知的体系结构,该体系结构旨在通过利用商业可穿戴传感器和移动设备以及基于知识的技术,针对不同情况快速实现个人健康监控应用程序的原型制作。技术。该体系结构由以分层方式运行的四个层组成,并利用基于本体的数据模型来确保这些层与建立在它们之上的监视应用程序之间的相互通信。拟议的架构已针对配备Android平台的移动设备实施,并通过采用ALMA(架构级别可修改性分析)方法对其可修改性进行了评估,突出了其可快速定制,个性化或最终由软件开发人员按顺序修改的能力以更少的精力在其组件顶部原型化新颖的健康监控应用程序。最后,作为案例研究,它被用于构建旨在监视和管理心律不齐(例如心动过缓和心动过速)的移动应用程序,从而确认了其在实际情况下的有效性。

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