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Finding Multiple Coherent Biclusters in Microarray Data Using Variable String Length Multiobjective Genetic Algorithm

机译:使用可变字符串长度多目标遗传算法在微阵列数据中寻找多个相干的块

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摘要

Microarray technology enables the simultaneous monitoring of the expression pattern of a huge number of genes across different experimental conditions. Biclustering in microarray data is an important technique that discovers a group of genes that are coregulated in a subset of conditions. Biclustering algorithms require to identify coherent and nontrivial biclusters, i.e., the biclusters should have low mean squared residue and high row variance. A multiobjective genetic biclustering technique is proposed here that optimizes these objectives simultaneously. A novel encoding scheme that uses variable chromosome length is developed. Moreover, a new quantitative measure to evaluate the goodness of the biclusters is proposed. The performance of the proposed algorithm has been evaluated on both simulated and real-life gene expression datasets, and compared with some other well-known biclustering techniques.
机译:微阵列技术能够在不同实验条件下同时监控大量基因的表达模式。微阵列数据中的比对分析是一项重要技术,可发现在一组条件下被核心调控的一组基因。双聚类算法需要识别相干且非平凡的双聚类,即双聚类应具有较低的均方差和较高的行方差。这里提出了一种多目标遗传双簇技术,该技术同时优化了这些目标。开发了一种使用可变染色体长度的新型编码方案。此外,提出了一种新的定量方法来评估双锥的质量。拟议算法的性能已在模拟和现实生活中的基因表达数据集上进行了评估,并与其他一些众所周知的双聚类技术进行了比较。

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