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Ensemble Rough Hypercuboid Approach for Classifying Cancers

机译:集合粗糙超立方体方法分类癌症

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摘要

Cancer classification is the critical basis for patient-tailored therapy. Conventional histological analysis tends to be unreliable because different tumors may have similar appearance. The advances in microarray technology make individualized therapy possible. Various machine learning methods can be employed to classify cancer tissue samples based on microarray data. However, few methods can be elegantly adopted for generating accurate and reliable as well as biologically interpretable rules. In this paper, we introduce an approach for classifying cancers based on the principle of minimal rough fringe. For training rough hypercuboid classifiers from gene expression data sets, the method dynamically evaluates all available genes and sifts the genes with the smallest implicit regions as the dimensions of implicit hypercuboids. An unseen object is predicted to be a certain class if it falls within the corresponding class hypercuboid. Based upon the method, ensemble rough hypercuboid classifiers are subsequently constructed. Experimental results on some open cancer gene expression data sets show that the proposed method is capable of generating accurate and interpretable rules compared with some other machine learning methods. Hence, it is a feasible way of classifying cancer tissues in biomedical applications.
机译:癌症分类是为患者量身定制治疗的关键基础。常规的组织学分析趋于不可靠,因为不同的肿瘤可能具有相似的外观。微阵列技术的进步使个性化治疗成为可能。可以采用各种机器学习方法基于微阵列数据对癌症组织样品进行分类。但是,很少有方法可以优雅地采用这种方法来生成准确,可靠以及生物学上可解释的规则。在本文中,我们介绍了一种基于最小粗糙条纹原理的癌症分类方法。为了从基因表达数据集中训练粗糙的超立方体分类器,该方法动态评估所有可用基因,并筛选具有最小隐含区域的基因作为隐含超立方体的维数。如果看不见的对象属于相应的类超立方体,则将其预测为某个类。基于该方法,随后构造了整体粗糙的超立方体分类器。在一些开放的癌症基因表达数据集上的实验结果表明,与其他一些机器学习方法相比,该方法能够生成准确且可解释的规则。因此,这是在生物医学应用中对癌组织进行分类的可行方法。

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