基于数据挖掘的医疗保障救治模型

Huan Wang, Jing Ma, Zhengyan Wu, Chen Xiao
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引用次数: 1

摘要

慢性乙型肝炎是困扰人类的顽疾。干扰素治疗是目前治疗慢性乙型肝炎的有效抗病毒选择之一。然而,昂贵的治疗费用和副作用极大地阻碍了其应用。根据患者自身的生理机制和病理情况,在治疗前进行分析,预测可能的治疗效果,对乙型肝炎患者有实际意义。本研究的重点是建立一个基于数据挖掘技术的乙肝辅助治疗模型,利用治疗结果与不同患者特征之间的关系。在实际数据集上的实验结果表明了该方法的有效性和实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A medical support treatment model based on data mining
Chronic hepatitis B is a stubborn disease afflicting mankind. Interferon alpha treatment is one of available antiviral options of treating chronic hepatitis B at present. However, the expensive treatment costs and side effects greatly hindered its application. It is useful in practice to patients suffering from hepatitis B that giving the analysis before treatment and predicting the possible effect of treatment according to the physiological mechanism and pathological condition of the patients themselves. This research focus on setting a hepatitis B auxiliary treatment model based on data mining technique which exploits the relationship between the treatment results and the characteristic of different patients. The experiment results on real data sets show that our method is effective and practicable.
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