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Identification of Marker Genes for Cancer Based on Microarrays Using a Computational Biology Approach

机译:基于微阵列的计算生物学方法鉴定癌症标记基因

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摘要

Rapid advances in gene expression microarray technology have enabled to discover molecular markers used for cancer diagnosis, prognosis, and prediction. One computational challenge with using microarray data analysis to create cancer classifiers is how to effectively deal with microarray data which are composed of high-dimensional attributes (p) and low-dimensional instances (n). Gene selection and classifier construction are two key issues concerned with this topics. In this article, we reviewed major methods for computational identification of cancer marker genes based on microarray gene expression data. We concluded that simple methods should be preferred to complicated ones for their interpretability and applicability.
机译:基因表达微阵列技术的飞速发展使得能够发现用于癌症诊断,预后和预测的分子标记。使用微阵列数据分析创建癌症分类器的一个计算挑战是如何有效处理由高维属性(p)和低维实例(n)组成的微阵列数据。基因选择和分类器构建是与此主题相关的两个关键问题。在本文中,我们综述了基于微阵列基因表达数据的癌症标志物基因计算鉴定的主要方法。我们得出的结论是,就其可解释性和适用性而言,简单方法应优先于复杂方法。

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