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首页> 外文期刊>International Journal of Bio-Inspired Computation >Clustering microarray gene expression data using enhanced harmony search
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Clustering microarray gene expression data using enhanced harmony search

机译:使用增强和声搜索聚类微阵列基因表达数据

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摘要

The DNA microarray technology concurrently monitors the expression levels of thousands of genes during significant biological processes and across the related samples. The better understanding of functional genomics is obtained by extracting the patterns hidden in gene expression data. It is handled by clustering which reveals natural structures and identify interesting patterns in the underlying data. In the proposed work clustering gene expression data is done through an enhanced harmony search (EHS) algorithm. Harmony search (HS) was inspired by the musical improvisation process where musicians improvise their instruments' pitches searching for a perfect state of harmony. In EHS the intensification and diversification process is incorporated in HS by smoothing the pitch values and replacing a fraction of instruments with new instruments. The experiment results are analysed with optimisation benchmark test functions and gene expression benchmark datasets. The results show that EHS outperforms HS in both benchmarks. Also this work determines the biological validation of the clusters with gene ontology in terms of function, process and component.
机译:DNA微阵列技术可同时监视重要生物学过程中以及相关样品中数千种基因的表达水平。通过提取隐藏在基因表达数据中的模式,可以更好地了解功能基因组学。它通过聚类处理,该聚类揭示了自然结构并在基础数据中标识了有趣的模式。在提出的工作中,通过增强和声搜索(EHS)算法完成基因表达数据的聚类。和谐搜索(HS)的灵感来自于即兴演奏的过程,在此过程中,音乐家即兴演奏乐器的音高,以寻求完美的和谐状态。在EHS中,通过平滑音高值并将一部分乐器替换为新乐器,使强化和多样化过程纳入了HS。用优化基准测试功能和基因表达基准数据集分析实验结果。结果表明,在两个基准测试中,EHS均优于HS。这项工作还决定了在功能,过程和组成方面具有基因本体论的集群的生物学验证。

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