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A novel hybrid approach of feature selection through feature clustering using microarray gene expression data

机译:利用微阵列基因表达数据通过特征聚类进行特征选择的混合方法

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Hybrid methods for feature selection comprised of combination of filter and wrapper approaches have recently been emerged as strong techniques for the problem in this domain. In this work we have proposed three simple hybrid approaches for reducing data dimensionality while maintaining classification accuracy which combine our basic feature selection through feature clustering (FSFC) approach to other standard approaches of feature selection in different orientation. We have employed popular ROC curve analysis to evaluate experimental outcome. Our experimental results clearly show suitability of our methods in hybrid approaches of feature selection in micro-array gene expression domain.
机译:近来,出现了由过滤器和包装器方法的组合组成的用于特征选择的混合方法,作为解决该领域问题的强大技术。在这项工作中,我们提出了三种在降低数据维数的同时保持分类准确性的简单混合方法,这些方法将通过特征聚类(FSFC)方法的基本特征选择与不同方向上特征选择的其他标准方法相结合。我们采用了流行的ROC曲线分析来评估实验结果。我们的实验结果清楚地表明,我们的方法适用于微阵列基因表达域特征选择的混合方法。

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