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Gene Specific Co-regulation Discovery: An Improved Approach;

机译:基因特异性共调控发现:一种改进的方法;

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Discovering gene co-regulatory relationships is a new but important research problem in DNA microarray data analysis. The problem of gene specific co-regulation discovery is to, for a particular gene of interest, called the target gene, identify its strongly co-regulated genes and the condition subsets where such strong gene co-regulations are observed. The study on this problem can contribute to a better understanding and characterization of the target gene. The existing method, using the genetic algorithm (GA), is slow due to its expensive fitness evaluation and long individual representation. In this paper, we propose an improved method for finding gene specific co-regulations. Compared with the current method, our method features a notably improved efficiency. We employ kNN Search Table to substantially speed up fitness evaluation in the GA. We also propose a more compact representation scheme for encoding individuals in the GA, which contributes to faster crossover and mutation operations. Experimental results with a real-life gene microarray data set demonstrate the improved efficiency of our technique compared with the current method.
机译:在基因芯片数据分析中,发现基因的共调控关系是一个新的但重要的研究问题。基因特异性共调控发现的问题是,对于一个特定的目标基因(称为目标基因),确定其强调控基因和观察到这种强基因调控的条件子集。对这个问题的研究可以有助于更好地理解和表征靶基因。使用遗传算法(GA)的现有方法因其昂贵的适应性评估和较长的个体表示而速度较慢。在本文中,我们提出了一种寻找基因特异性共调控的改进方法。与当前方法相比,我们的方法具有显着提高的效率。我们采用kNN搜索表来显着加快GA中的适应度评估。我们还提出了一种更紧凑的表示方案,用于在GA中对个人进行编码,从而有助于更快地进行交叉和突变操作。现实生活中的基因芯片数据集的实验结果表明,与当前方法相比,我们的技术具有更高的效率。

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