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Fuzzy Decision Support System for Coronary Artery Disease Diagnosis Based on Rough Set Theory

机译:基于粗糙集理论的冠状动脉疾病诊断模糊决策支持系统

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The objective of this research is to develop an evidence based fuzzy decision support system for the diagnosis of coronary artery disease. The development of decision support system is implemented based on three processing stages: rule generation, rule selection and rule fuzzification. Rough Set Theory (RST) is used to generate the classification rules from training data set. The training data are obtained from University California Irvine (UCI) data repository. Rule selection is conducted by transforming the rules into a decision table based on unseen data set. Furthermore, RST attributes reduction is proposed and applied to select the most important rules. The selected rules are transformed into fuzzy rules based on discretization cuts of numerical input attributes and simple triangular and trapezoidal membership functions. Fuzzy rules weighing is also proposed and applied based on rules support on the training data. The system is validated using UCI heart disease data sets collected from the U.S., Switzerland and Hungary and data set from Ipoh Specialist Hospital Malaysia. The system is verified by three cardiologists. The results show that the system is able to give the approximate possibility of coronary artery blocking.
机译:这项研究的目的是开发一种基于证据的模糊决策支持系统,用于诊断冠心病。决策支持系统的开发基于三个处理阶段:规则生成,规则选择和规则模糊化。粗糙集理论(RST)用于从训练数据集生成分类规则。培训数据可从加利福尼亚大学欧文分校(UCI)数据存储库获得。通过将规则转换为基于看不见的数据集的决策表来进行规则选择。此外,提出了RST属性约简,并将其应用于选择最重要的规则。基于数字输入属性的离散化割以及简单的三角和梯形隶属函数,将所选规则转换为模糊规则。基于对训练数据的规则支持,提出并应用模糊规则加权。该系统使用从美国,瑞士和匈牙利收集的UCI心脏病数据集以及从马来西亚怡保专科医院收集的数据集进行了验证。该系统由三位心脏病专家验证。结果表明,该系统能够给出冠状动脉阻塞的大致可能性。

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