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THE VARIABLE NEIGHBORHOOD SEARCH METAHEURISTIC FOR FUZZY CLUSERING cDNA MICRO ARRAY GENE EXPRESSION DATA

机译:模糊聚类cDNA微阵列基因表达数据的近邻搜索变元法

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摘要

Several thousand genes can be monitored simultaneously using cDNA microarray technology. To exploit the huge amount of information contained in gene expression data, adaptation of existing and development of new computational methods are required. Recently, the Fuzzy C-Means (F-CM) method has been applied to cluster cDNA microarray data sets. To overcome some shortcomings of F-CM and to improve its performance, it was embedded into a variable neighborhood search (VNS) metaheuristic. The methodology was used to cluster four cDNA microarray data sets. Results show that VNS+F-CM substantially improves the findings obtained by F-CM. This methodology may yield significant benefit in the improvement of decision support systems used for gene expression classification.
机译:使用cDNA微阵列技术可以同时监视数千个基因。为了利用基因表达数据中包含的大量信息,需要对现有方法进行适应并开发新的计算方法。最近,模糊C均值(F-CM)方法已应用于簇cDNA微阵列数据集。为了克服F-CM的某些缺点并提高其性能,将其嵌入到可变邻域搜索(VNS)元启发式方法中。该方法用于聚类四个cDNA微阵列数据集。结果表明,VNS + F-CM大大改善了F-CM获得的发现。这种方法可能会在用于基因表达分类的决策支持系统的改进中产生重大收益。

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