一种集成数据挖掘系统,用于哮喘护理患者监测

V. Tseng, Chao-Hui Lee, Jessie Chia-Yu Chen
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引用次数: 15

摘要

在本文中,我们提出了一个集成的数据挖掘系统,用于患者监测和哮喘护理的应用。在该系统中,设计了PBD和PBC两种数据挖掘方法来预测哮喘发作。主要方法是利用用户的日常生物信号记录和环境数据提取哮喘发作的重要信息并构建分类器。同时,应用有益的医学信息和医生支持的建议。通过这种方式,提出的系统可以预测哮喘发作的几率,并为患者提供适当的医疗指导或健康信息。实验评价结果证明了该机制对哮喘发作预测的有效性和可靠性。
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An Integrated Data Mining System for Patient Monitoring with Applications on Asthma Care
In this paper, we proposed an integrated data mining system for patient monitoring with applications on asthma care. In this system, two data mining methods named PBD and PBC are designed for predicting asthma attacks. The main methodology is to extract the significant information of asthma attacks and build classifiers by using users' daily bio-signal records and environmental data. Meanwhile, helpful medical information and suggestions supported by doctors are applied. In this way, the proposed system can predict the chances of asthma attacks and provide patients with the proper medical instructions or health messages. The experimental evaluation results proved that the proposed mechanism is effective and reliable in asthma attack prediction.
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