首页> 外文期刊>International Journal of Computational Intelligence and Applications (IJCIA) >CLASSIFICATION OF HIGH-DIMENSIONAL MICROARRAY DATA WITH A TWO-STEP PROCEDURE VIA A WILCOXON CRITERION AND MULTILAYER PERCEPTRON
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CLASSIFICATION OF HIGH-DIMENSIONAL MICROARRAY DATA WITH A TWO-STEP PROCEDURE VIA A WILCOXON CRITERION AND MULTILAYER PERCEPTRON

机译:通过Wilcoxon准则和多层感知器通过两步过程对高维微阵列数据进行分类

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摘要

The method presented in this paper is novel as a natural combination of two mutually dependent steps. Feature selection is a key element (first step) in our classification system, which was employed during the 2010 International RSCTC data mining (bioinformatics) Challenge. The second step may be implemented using any suitable classifier such as linear regression, support vector machine or neural networks. We conducted leave-one-out (LOO) experiments with several feature selection techniques and classifiers. Based on the LOO evaluations, we decided to use feature selection with the separation type Wilcoxon-based criterion for all final submissions. The method presented in this paper was tested successfully during the RSCTC data mining Challenge, where we achieved the top score in the Basic track.
机译:本文提出的方法是新颖的,因为它是两个相互依赖的步骤的自然结合。在2010年国际RSCTC数据挖掘(生物信息学)挑战赛中使用了特征选择,这是我们分类系统中的关键要素(第一步)。第二步可以使用任何合适的分类器来实现,例如线性回归,支持向量机或神经网络。我们使用几种特征选择技术和分类器进行了留一法(LOO)实验。基于LOO评估,我们决定将特征选择与基于Wilcoxon分离类型的标准一起用于所有最终提交。本文中介绍的方法已在RSCTC数据挖掘挑战赛中成功进行了测试,在该挑战赛中,我们获得了Basic轨道的最高分。

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