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Multicategory cancer classification from gene expression data by multiclass NPPC ensemble

机译:多标菌NPPC集合从基因表达数据进行多语言癌症分类

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The discovery of DNA microarray technologies have given immense opportunity to make gene expression profiles for different cancer types. Besides binary classification such as normal versus tumor samples the discrimination of multiple tumor types is also important. In this work, we have first extended the recently developed binary nonparallel plane proximal classifier (NPPC) to multiclass NPPC by decomposition techniques. The multiclass NPPC is then used in a computer aided diagnosis framework to classify multicategory cancer from gene expression data by selecting very few genes by using mutual information criterion. The idea of binary NPPC ensemble is extended to form multiclass NPPC ensemble. Besides usual majority voting method, we have introduced minimum average proximity based decision combiner for multiclass NPPC ensemble. The effectiveness of the proposed method are demonstrated on four benchmark microarray data sets and compared with support vector machine (SVM) classifier in a similar framework.
机译:DNA微阵列技术的发现给出了对不同癌症类型进行基因表达谱的巨大机会。除了二元分类,例如正常与肿瘤样本,多种肿瘤类型的辨别也很重要。在这项工作中,我们首先通过分解技术将最近开发的二进制非平行平面近端分类器(NPPC)扩展到多牌NPPC。然后在计算机辅助诊断框架中使用多种多数NPPC以通过使用相互信息标准选择非常少的基因来对来自基因表达数据进行分类的多语癌。二进制NPPC合奏的思想扩展到形成Multiclass NPPC集合。除了通常的大多数投票方法外,我们还引入了用于多种多组NPPC合奏的最小平均接近决策组合器。所提出的方法的有效性在四个基准微阵列数据集上进行了演示,并与类似框架中的支持向量机(SVM)分类器进行比较。

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