首页> 外文会议>International conference on life system modeling and simulation;International conference on intelligent computing for sustainable energy and environment;LSMS 2010;ICSEE 2010 >Classification and Diagnosis of Syndromes in Chinese Medicine in the Context of Coronary Heart Disease Model Based on Data Mining Methods
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Classification and Diagnosis of Syndromes in Chinese Medicine in the Context of Coronary Heart Disease Model Based on Data Mining Methods

机译:基于数据挖掘方法的冠心病模型背景下中医证候的分类与诊断

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Objective: To study on the classification and diagnostic of syndromes in Chinese medicine (TCM) based on the coronary heart disease model (CHD, myocardial ischemia) by application of clustering analysis in mathematical statistics methods. Methods: By application of combining disease with syndrome model, dynamically observed and recorded pathologic signs of animal models, a total of 172 frequencies of the signs were collected, and the variables indicators were analyzed by cluster analysis. Results: The results show that CHD model can be divided into four syndromes by cluster analysis. The four categories can cover the ratio of 71.05% models; it gets a diagnostic accuracy rate of 92.11%, which can be used as key points to diagnose various syndromes in CHD. Conclusion: Cluster analysis can help to classify the TCM syndromes reasonably and objectively. What more, it also can discover the pattern of the syndrome evolution, Thus to provide a theoretical basis for the standardization of TCM research.
机译:目的:通过聚类分析在数理统计方法中的应用,研究基于冠心病模型(冠心病,心肌缺血)的中医证候的分类和诊断。方法:结合疾病与证候模型相结合,动态观察和记录动物模型的病理征象,共采集172种征象,通过聚类分析对变量指标进行分析。结果:结果表明,通过聚类分析,CHD模型可分为四个综合症。四个类别可以覆盖71.05%的模型比率;诊断准确率为92.11%,可作为诊断冠心病各种综合征的关键点。结论:聚类分析有助于合理,客观地对中医证候进行分类。此外,它还可以发现证候演变的规律,从而为中医研究的规范化提供理论依据。

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