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DNA Gene Expression Analysis on Diffuse Large B-Cell Lymphoma (DLBCL)Based on Filter Selection Method with Supervised Classification Method

机译:基于滤波选择法的弥漫性大B细胞淋巴瘤(DLBCL)对滤波器选择方法的DNA基因表达分析

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The exponential growth of DNA dataset in the scientific repository has been encouraging interdisciplinary research on ecology, computer science, and bioinformatics. For better classification of cancer(DNA gene expression), many technologies are useful as demonstrated by a prior experimental study. The major challenging task of gene selection method is extracting informative genes contribution in the classification from the DNA microarray datasets at low computational cost. In this paper, amalgamation of Spearman's correlation(SC)and filter-based feature selection(FS)methods is proposed. We demonstrate the extensive comparison of the effect of Spearman's correlation with FS methods, i.e., Relief-F, Joint Mutual Information(JMI), and max-relevance and min-redundancy(MRMR). To measure the classification performance, four diverse supervised classifiers, i.e., K-nearest neighbor(K-NN), support vector machines(SVM), na?ve Bayes(NB), and decision tree(DT), have been used on DLBCL dataset. The result demonstrates that Spearman's correlation in conglomeration with MRMR performs better than other combinations.
机译:科学储存库中DNA数据集的指数增长一直鼓励对生态,计算机科学和生物信息学的跨学科研究。为了更好地分类癌症(DNA基因表达),许多技术可用于通过现有的实验研究证明。基因选择方法的主要具有挑战性任务是以低计算成本从DNA微阵列数据集分类中提取信息基因贡献。在本文中,提出了矛盾的相关性(SC)和基于滤波器的特征选择(FS)方法的融合。我们展示了Spearman与FS方法的相关性的广泛比较,即Cref-F,联合互信息(JMI)和Max-相关性和MILMR)的相关性。为了测量分类性能,在DLBCL上使用了四种不同的监督分类器,即k最近邻(K-NN),支持向量机(SVM),Na ve贝叶斯(NB)和决策树(DT)数据集。结果表明,SPEARMAN与MRMR在群中的相关性比其他组合更好。

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