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An improved SOM-based visualization technique for DNA microarray data analysis

机译:用于DNA微阵列数据分析的基于SOM的改进可视化技术

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Effective and meaningful visualization techniques are quite important for multidimensional DNA microarray gene expression data analysis. Elucidating the cluster properties of these multidimensional data are often complex. Patterns, hypotheses on the relationships, and ultimately of the function of the gene can be analyzed and visualized by non-linear reduction of the multidimensional data to a lower dimension. In this paper, an improved SOM visualization technique named Improved Side Intensity Modulated (ISIM) Self-Organizing Map (SOM) has been proposed and compared with other SOM based visualization techniques. On different datasets, ISIM-SOM is found to offer better cluster boundary, simplicity and clarity.
机译:有效和有意义的可视化技术对于多维DNA微阵列基因表达数据分析非常重要。阐明这些多维数据的聚类属性通常很复杂。模式,关系的假设以及最终基因功能的分析和可视化可以通过将多维数据非线性缩减为较低维度来实现。在本文中,提出了一种改进的SOM可视化技术,称为“改进侧强度调制(ISIM)自组织图(SOM)”,并将其与其他基于SOM的可视化技术进行了比较。在不同的数据集上,发现ISIM-SOM具有更好的聚类边界,简单性和清晰度。

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