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Using the information embedded in the testing sample to break the limits caused by the small sample size in microarray-based classification

机译:在基于微阵列的分类中使用测试样品中嵌入的信息来打破由小样品量引起的限制

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摘要

BackgroundMicroarray-based tumor classification is characterized by a very large number of features (genes) and small number of samples. In such cases, statistical techniques cannot determine which genes are correlated to each tumor type. A popular solution is the use of a subset of pre-specified genes. However, molecular variations are generally correlated to a large number of genes. A gene that is not correlated to some disease may, by combination with other genes, express itself.
机译:背景基于微阵列的肿瘤分类的特征是具有大量特征(基因)和少量样本。在这种情况下,统计技术无法确定哪些基因与每种肿瘤类型相关。一种流行的解决方案是使用预定基因的子集。但是,分子变异通常与大量基因相关。与某些疾病不相关的基因可以与其他基因结合表达自己。

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