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Multicriteria fuzzy classification procedure PROCFTN: methodology and medical application

机译:多准则模糊分类程序PROCFTN:方法学和医学应用

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In this paper, we introduce a new classification procedure for assigning objects to predefined classes, named PROCFTN. This procedure is based on a fuzzy scoring function for choosing a subset of prototypes, which represent the closest resemblance with an object to be assigned. It then applies the majority-voting rule to assign an object to a class. We also present a medical application of this procedure as an aid to assist the diagnosis of central nervous system tumours. The results are compared with those obtained by other classification methods, reported on the same data set, including decision tree, production rules, neural network, k nearest neighbor, multilayer perceptron and logistic regression. Our results are very encouraging and show that the multicriteria decision analysis approach can be successfully used to help medical diagnosis.
机译:在本文中,我们介绍了一种用于将对象分配给预定义类的新分类过程,称为PROCFTN。该过程基于模糊评分功能,用于选择原型子集,该子集表示与要分配的对象最相似的原型。然后,它应用多数表决规则将对象分配给类。我们还介绍了该程序的医学应用,以辅助中枢神经系统肿瘤的诊断。将结果与通过其他分类方法获得的结果进行比较,并在同一数据集上报告这些数据,包括决策树,生产规则,神经网络,k最近邻,多层感知器和逻辑回归。我们的结果令人鼓舞,表明多准则决策分析方法可以成功地用于医疗诊断。

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