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A Novel Clustering and Verification Based Microarray Data Bi-clustering Method

机译:基于聚类和验证的新型微阵列数据双聚类方法

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Microarray data biclustering is very important for the research on gene regulatory mechanisms. Genes which exhibit similar patterns are often functionally related. In this paper a novel bicluster detection method is proposed. It makes use of one of the existing traditional clustering algorithms such as K-means as an intermediate tool to do data clustering with the submatrices created from the original data matrix. Especially, in order to save the memory storage requirement, reduce the useless clustering processing and accelerate the bicluster detection speed, a clustering and verification combined algorithm is applied. The former helps to find out the row numbers where possible biclusters lie in, while the latter efficiently speed up the detection processing. Based on a characteristic of bicluster, the biclusters are detected one by one. At the end of the paper experiment with the simulated data are presented.
机译:微阵列数据的双重聚类对于基因调控机制的研究非常重要。表现出相似模式的基因通常在功能上相关。本文提出了一种新的双音群检测方法。它利用现有的传统聚类算法之一(例如K-means)作为中间工具,对从原始数据矩阵创建的子矩阵进行数据聚类。特别地,为了节省存储器的存储需求,减少无用的聚类处理,并加快了双聚类的检测速度,采用了聚类与验证相结合的算法。前者有助于找出可能存在的双簇的行号,而后者则有效地加快了检测处理的速度。根据bicluster的特性,可以一一检测出bicluster。在论文的最后给出了模拟数据的实验。

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