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Diagnosis of diabetes mellitus using PSO and KNN classifier

机译:使用PSO和KNN分类器诊断糖尿病

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摘要

Diabetes is a complex disease whose prevalence is constantly increasing due to lifestyle changes and an aging population. This paper presents a pre-processing step "the selection of attributes” that plays an important role in data mining. It allows to build a model describing the data by removing the redundant, irrelevant or noisy attributes. Applied to the task of classification in data mining, it ensures a reduction in the size of the problem, which reduces the duration of learning and simplifies the learned model. This simplification generally facilitates the interpretation of this model. It also makes it possible to avoid the phenomenon of over-learning improving the accuracy of the prediction and the understanding of the classifier. In this approach the KNN classifier is used for classification.
机译:糖尿病是一种复杂的疾病,由于生活方式的改变和人口老龄化,其患病率不断增加。本文提出了一个预处理步骤“属性的选择”,该步骤在数据挖掘中起着重要的作用,它允许通过删除冗余,无关或嘈杂的属性来构建描述数据的模型,应用于数据的分类任务挖掘,它可以确保问题的大小减小,从而减少学习时间并简化学习的模型,这种简化通常有利于该模型的解释,还可以避免过度学习现象,从而提高了学习效率。预测的准确性和对分类器的理解在这种方法中,KNN分类器用于分类。

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