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pathClass: an R-package for integration of pathway knowledge into support vector machines for biomarker discovery

机译:pathClass:R包,用于将途径知识集成到支持向量机中以进行生物标记物发现

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Prognostic and diagnostic biomarker discovery is one of the key issues for a successful stratification of patients according to clinical risk factors. For this purpose, statistical classification methods, such as support vector machines (SVM), are frequently used tools. Different groups have recently shown that the usage of prior biological knowledge significantly improves the classification results in terms of accuracy as well as reproducibility and interpretability of gene lists. Here, we introduce pathClass, a collection of different SVM-based classification methods for improved gene selection and classfication performance. The methods contained in pathClass do not merely rely on gene expression data but also exploit the information that is carried in gene network data.
机译:根据临床风险因素,发现预后和诊断生物标志物是成功将患者分层的关键问题之一。为此,经常使用统计分类方法,例如支持向量机(SVM)。最近,不同的研究小组表明,利用先前的生物学知识可以显着提高分类结果的准确性,基因列表的可重复性和可解释性。在这里,我们介绍pathClass,这是不同的基于SVM的分类方法的集合,用于改进基因选择和分类性能。 pathClass中包含的方法不仅依赖于基因表达数据,而且还利用基因网络数据中携带的信息。

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