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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Incremental wrapper-based gene selection from microarray data for cancer classification
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Incremental wrapper-based gene selection from microarray data for cancer classification

机译:从微阵列数据基于增量包装的基因选择中进行癌症分类

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摘要

Gene expression microarray is a rapidly maturing technology that provides the opportunity to assay the expression levels of thousands or tens of thousands of genes in a single experiment. We present a new heuristic to select relevant gene subsets in order to further use them for the classification task. Our method is based on the statistical significance of adding a gene from a ranked-list to the final subset. The efficiency and effectiveness of our technique is demonstrated through extensive comparisons with other representative heuristics. Our approach shows an excellent performance, not only at identifying relevant genes, but also with respect to the computational cost. (c) 2005 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:基因表达微阵列是一项快速成熟的技术,它提供了在单个实验中分析成千上万个基因表达水平的机会。我们提出一种新的启发式方法来选择相关的基因子集,以进一步将它们用于分类任务。我们的方法基于将基因从排名列表添加到最终子集中的统计意义。通过与其他代表性启发式方法进行广泛比较,证明了我们技术的效率和有效性。我们的方法不仅在鉴定相关基因上而且在计算成本方面也表现出优异的性能。 (c)2005模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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