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Predicting survial by cancer pathway gene expression profiles in the TCGA

机译:通过TCGA中的癌症途径基因表达谱预测生存

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Personalized medicine is usually based on known subcategories of a disease for better treatment. Identifying biomarkers that predict disease subtypes has been an important topic in biomédical sciences. There is a controversy as to the optimal number of genes as an input of a feature selection algorithm. In this paper, we investigate the feasibility to use genes pre-selected by biological knowledge rather than all available genes as an input for a feature selection algorithm predicting survival in the glioblastoma of the The Cancer Genome Atlas (TCGA). We discuss the advantage and disadvantage of this approach.
机译:个性化药物通常基于已知的疾病子类别,以进行更好的治疗。鉴定可预测疾病亚型的生物标志物一直是生物医学科学中的重要课题。关于最佳基因数目作为特征选择算法的输入存在争议。在本文中,我们研究了使用由生物学知识预先选择的基因而不是所有可用基因作为预测癌症基因组图谱(TCGA)胶质母细胞瘤存活的特征选择算法的输入的可行性。我们讨论了这种方法的优点和缺点。

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