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The Classifier for Prediction of Peri-operative Complications in Cervical Cancer Treatment

机译:预测宫颈癌围手术期并发症的分类器

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This paper addresses the problem of creating a new classifier as highly interpretable fuzzy rule-based system, based on the analytical theory of fuzzy modeling and gene expression programming. This approach is applied to solve the prediction problem of peri-operative complications of radical hysterectomy in patients with cervical cancer. The developed classifier has the form of the set of fuzzy metarules, which are readable for the medical community, and additionally, is accurate enough. The consequents of the metarules describe the presence or absence of peri-operative complications. For the construction of the classifier we can use the fuzzified, binarized or both types of the attributes. We also compare the efficiency of our model with the decision trees and C5 algorithm.
机译:本文基于模糊建模和基因表达编程的分析理论,解决了将新的分类器创建为高度可解释的基于模糊规则的系统的问题。该方法用于解决宫颈癌根治性子宫切除术围手术期并发症的预测问题。所开发的分类器具有模糊元规则集的形式,该模糊元规则对于医学界来说是可读的,并且此外还足够准确。结果的描述描述了围手术期并发症的存在与否。对于分类器的构造,我们可以使用模糊化,二值化或两种类型的属性。我们还将比较我们的模型与决策树和C5算法的效率。

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