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Inferring gene coexpression networks with Biclustering based on Scatter Search

机译:基于散点搜索推断基因共抑制网络与BICLUSTING

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The identification of regulatory modules is one of the most important tasks in order to discover disease markers. This paper presents a methodology to infer coexpression networks based on local patterns in gene expression data matrix. In the proposed algorithm two steps can clearly be differentiated. Firstly, a Biclustering procedure that uses a Scatter Search schema to find biclusters and, secondly, a network extraction procedure based on linear correlations among the genes of the previously obtained bicluster. Experimental results from Yeast cell Cycle are reported where three different algorithms have been applied. Also, a possible understanding of one of the obtained networks has been presented from a biological point of view.
机译:监管模块的识别是最重要的任务之一,以便发现疾病标记。本文介绍了一种基于基因表达数据矩阵中的本地模式推断共用网络的方法。在所提出的算法中,可以清楚地区分两个步骤。首先,使用散点搜索模式来找到双板的双板手术,其次是基于先前获得的双板的基因之间的线性相关性的网络提取过程。据报道酵母细胞周期的实验结果据报道,其中已经应用了三种不同的算法。此外,已经从生物学的角度表中提出了对其中一个获得的网络的理解。

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