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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >Asymmetric latent semantic indexing for gene expression experiments visualization
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Asymmetric latent semantic indexing for gene expression experiments visualization

机译:基因表达实验可视化的非对称潜在语义索引

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摘要

We propose a new method to visualize gene expression experiments inspired by the latent semantic indexing technique originally proposed in the textual analysis context. By using the correspondence word-gene document-experiment, we define an asymmetric similarity measure of association for genes that accounts for potential hierarchies in the data, the key to obtain meaningful gene mappings. We use the polar decomposition to obtain the sources of asymmetry of the similarity matrix, which are later combined with previous knowledge. Genetic classes of genes are identified by means of a mixture model applied in the genes latent space. We describe the steps of the procedure and we show its utility in the Human Cancer dataset.
机译:我们提出了一种新的方法来可视化基因表达实验,该方法受文本分析环境中最初提出的潜在语义索引技术的启发。通过使用对应词-基因文档实验,我们为基因定义了关联的非对称相似性度量,该度量解释了数据中潜在的层次结构,这是获得有意义的基因图谱的关键。我们使用极坐标分解来获得相似性矩阵的不对称来源,然后将其与先前的知识相结合。基因的遗传类别通过应用于基因潜在空间的混合模型来识别。我们描述了该程序的步骤,并在人类癌症数据集中显示了其效用。

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