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TRIQ: A Comprehensive Evaluation Measure for Triclustering Algorithms

机译:TRIQ:三聚类算法的综合评估方法

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Triclustering has shown to be a valuable tool for the analysis of microarray data since its appearance as an improvement of classical clustering and biclustering techniques. Triclustering relaxes the constraints for grouping and allows genes to be evaluated under a subset of experimental conditions and a subset of time points simultaneously. The authors previously presented a genetic algorithm, TriGen, that finds triclusters of gene expression dasta. They also defined three different fitness functions for TriGen: MSRzd, LSL and MSL. In order to asses the results obtained by application of TriGen, a validity measure needs to be defined. Therefore, we present TRIQ, a validity measure which combines information from three different sources: (1) correlation among genes, conditions and times, (2) graphic validation of the patterns extracted and (3) functional annotations for the genes extracted.
机译:Triclustering已显示是分析微阵列数据的有价值的工具,因为它是对经典聚​​类和双聚类技术的改进。 Triclustering放宽了分组的限制,并允许在实验条件的子集和时间点的子集下同时评估基因。作者先前提出了一种遗传算法TriGen,该算法可发现基因表达达斯塔的细微差别。他们还为TriGen定义了三种不同的适应度函数:MSRzd,LSL和MSL。为了评估通过TriGen应用获得的结果,需要定义有效性度量。因此,我们提出了TRIQ,一种有效度量,它结合了来自三个不同来源的信息:(1)基因,条件和时间之间的相关性;(2)所提取模式的图形验证;(3)所提取基因的功能注释。

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