首页> 外文会议>Pacific Symposium on Biocomputing 2001, Jan 3-7, 2001, Mauna Lani, Hawaii >A NONPARAMETRIC SCORING ALGORITHM FOR IDENTIFYING INFORMATIVE GENES FROM MICROARRAY DATA
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A NONPARAMETRIC SCORING ALGORITHM FOR IDENTIFYING INFORMATIVE GENES FROM MICROARRAY DATA

机译:用于从微阵列数据中识别信息基因的非参数评分算法

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Microarray data routinely contain gene expression levels of thousands of genes. In the context of medical diagnostics, an important problem is to find the genes that are correlated with given phenotypes. These genes may reveal insights to biological processes and may be used to predict the phenotypes of new samples. In most cases, while the gene expression levels are available for a large number of genes, only a small fraction of these genes may be informative in classification with statistical significance. We introduce a nonparametric scoring algorithm that assigns a score to each gene based on samples with known classes. Based on these scores, we can find a small set of genes which are informative of their class, and subsequent analysis can be carried out with this set. This procedure is robust to outliers and different normalization schemes, and immediately reduces the size of the data with little loss of information. We study the properties of this algorithm and apply it to the data set from cancer patients. We quantify the information in a given set of genes by comparing its distribution of the score statistics to a set of distributions generated by permutations that preserve the correlation structure among the genes.
机译:微阵列数据通常包含成千上万个基因的基因表达水平。在医学诊断中,一个重要的问题是找到与给定表型相关的基因。这些基因可能揭示了生物学过程的见解,并可用于预测新样品的表型。在大多数情况下,尽管基因表达水平可用于大量基因,但是这些基因中只有一小部分在分类上具有参考价值,具有统计学意义。我们介绍了一种非参数评分算法,该算法基于具有已知类别的样本为每个基因分配得分。根据这些分数,我们可以找到一小部分可提供其分类信息的基因,然后可以使用该基因组进行后续分析。此过程对异常值和不同的规范化方案具有鲁棒性,并且可以在不损失信息的情况下立即减小数据大小。我们研究了该算法的属性,并将其应用于癌症患者的数据集。我们通过比较得分统计信息的分布与保留了基因之间相关结构的排列产生的一组分布进行比较来量化给定基因组中的信息。

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