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DNA microarray classification by means of weighted voting based on rough set classifier

机译:通过基于粗糙集分类的加权投票进行DNA微阵列分类

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In this paper we present a new approach for classification of microarray data. Our methodology consists of two steps: an attribute selection, which aims at selection of the most informative genes, and a classification of expression profiles, which is carried out by weighted voting, a novel instance-based classifier based on Rough Set Theory. Attribute selection consists of two stages — initial selection, where each attribute is evaluated individually, and attribute refinement, where the attributes are further reduced by means of genetic computations. The effectiveness of the proposed approach was verified on six different microarray datasets [13], and compared with attribute selection and classification based on nearest neighbor classifier.
机译:在本文中,我们提出了一种用于分类微阵列数据的新方法。我们的方法由两个步骤组成:一个属性选择,其目的是选择最富有信息的基因,以及表达式轮廓的分类,其由加权投票是基于粗糙集理论的基于新的基于实例的分类器进行的。属性选择由两个阶段组成 - 初始选择,其中每个属性被单独评估,以及属性通过遗传计算进一步减少属性的属性。所提出的方法的有效性在六个不同的微阵列数据集[13]上验证,并与基于最近邻分类的属性选择和分类进行比较。

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