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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >A two-stage evolutionary approach for effective classification of hypersensitive DNA sequences
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A two-stage evolutionary approach for effective classification of hypersensitive DNA sequences

机译:有效区分超敏DNA序列的两阶段进化方法

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Hypersensitive (HS) sites in genomic sequences are reliable markers of DNA regulatory regions that control gene expression. Annotation of regulatory regions is important in understanding phenotypical differences among cells and diseases linked to pathologies in protein expression. Several computational techniques are devoted to mapping out regulatory regions in DNA by initially identifying HS sequences. Statistical learning techniques like Support Vector Machines (SVM), for instance, are employed to classify DNA sequences as HS or non-HS. This paper proposes a method to automate the basic steps in designing an SVM that improves the accuracy of such classification. The method proceeds in two stages and makes use of evolutionary algorithms. An evolutionary algorithm first designs optimal sequence motifs to associate explicit discriminating feature vectors with input DNA sequences. A second evolutionary algorithm then designs SVM kernel functions and parameters that optimally separate the HS and non-HS classes. Results show that this two-stage method significantly improves SVM classification accuracy. The method promises to be generally useful in automating the analysis of biological sequences, and we post its source code on our website.
机译:基因组序列中的超敏(HS)位点是控制基因表达的DNA调节区的可靠标记。调节区域的注释对于理解细胞之间的表型差异以及与蛋白质表达病理学相关的疾病非常重要。几种计算技术致力于通过最初识别HS序列来绘制DNA中的调控区域。例如,采用统计学习技术(如支持向量机(SVM))将DNA序列分类为HS或非HS。本文提出了一种自动化设计SVM的基本步骤的方法,该方法可提高此类分类的准确性。该方法分两个阶段进行,并利用了进化算法。进化算法首先设计最佳序列基序,以将显式区分特征向量与输入DNA序列相关联。然后,第二种进化算法设计SVM内核函数和参数,以最佳方式区分HS和非HS类。结果表明,该两阶段方法显着提高了SVM分类的准确性。该方法有望在自动化生物学序列分析中普遍有用,我们将其源代码发布在我们的网站上。

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