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Applying filter approach and genetic algorithm wrapper for gene selection from gene expression data

机译:应用过滤器方法和遗传算法包装器从基因表达数据中选择基因

摘要

Gene expression microarray data is expected to significantly aid in the development of efficient cancer diagnosis and classification platforms. One problem arising from this data is how to select a small subset of genes from thousands of genes and much fewer samples that are inherently noisy. This research deals with finding a small subset of informative genes from the gene expression data which maximize the classification accuracy and minimize the running time. This paper proposed a model of gene expression classification by using filter approach and an improved Genetic Algorithm wrapper approach. We show that the classification accuracy and execution time of the proposed model are useful for cancer classification of two widely used gene expression benchmark data sets.
机译:基因表达微阵列数据有望显着帮助开发有效的癌症诊断和分类平台。由该数据引起的一个问题是如何从成千上万的基因中选择一小部分基因,而从固有噪声中选择更少的样本。这项研究致力于从基因表达数据中找到一小部分信息基因,从而最大程度地提高分类准确性并缩短运行时间。本文提出了一种使用过滤方法和改进的遗传算法包装方法的基因表达分类模型。我们表明,提出的模型的分类准确性和执行时间对于两个广泛使用的基因表达基准数据集的癌症分类很有用。

著录项

  • 作者

    Mohamad Mohd. Saberi;

  • 作者单位
  • 年度 2005
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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