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Design and validation of a light-weight reasoning system to support remote health monitoring applications

机译:设计和验证轻量级推理系统以支持远程健康监控应用程序

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摘要

Recently, mobile devices have dramatically improved their communications and processing capabilities, so enabling the possibility of embedding knowledge-based decision support components within Remote Health Monitoring (RHM) applications for the ubiquitous and seamless management of chronic patients. According to these considerations, this paper presents a light-weight, rule-based, reasoning system, purposely designed and optimized to build knowledge-based Decision Support Systems efficiently embeddable in mobile devices. The key issues of such a system are both a domain-independent reasoning algorithm and knowledge representation capabilities, specifically thought for both computation intensive and real-time RHM scenarios. The performance evaluation of the proposed system has been arranged according to the Taguchi's experimental design and performed directly on a mobile device in order to quantitatively assess its effectiveness in terms of memory usage and response time. Moreover, a case study has been arranged in order to evaluate the effectiveness of the proposed system within a real RHM application for monitoring cardiovascular diseases. The evaluation results show that the system offers an innovative and efficient tool to build mobile DSSs for healthcare applications where real-time performance or computation intensive demands have to be met.
机译:最近,移动设备极大地改善了它们的通信和处理能力,从而使在远程健康监测(RHM)应用程序中嵌入基于知识的决策支持组件成为可能,从而无处不在并无缝管理慢性病患者。基于这些考虑,本文提出了一种轻量级,基于规则的推理系统,该系统经过专门设计和优化,以构建可有效嵌入到移动设备中的基于知识的决策支持系统。这种系统的关键问题是与领域无关的推理算法和知识表示能力,特别是针对计算密集型和实时RHM方案。已根据田口的实验设计安排了所提出系统的性能评估,并直接在移动设备上进行了性能评估,以便定量评估其在内存使用和响应时间方面的有效性。此外,已经安排了一个案例研究,以在实际的RHM应用程序中评估拟议系统在监测心血管疾病中的有效性。评估结果表明,该系统提供了一种创新且高效的工具,可为需要满足实时性能或计算密集型需求的医疗保健应用构建移动DSS。

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