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Application of Simulated Annealing to the Biclustering of Gene Expression Data

机译:模拟退火在基因表达数据分类中的应用

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In a gene expression data matrix, a bicluster is a submatrix of genes and conditions that exhibits a high correlation of expression activity across both rows and columns. The problem of locating the most significant bicluster has been shown to be NP-complete. Heuristic approaches such as Cheng and Church's greedy node deletion algorithm have been previously employed. It is to be expected that stochastic search techniques such as evolutionary algorithms or simulated annealing might improve upon such greedy techniques. In this paper we show that an approach based on simulated annealing is well suited to this problem, and we present a comparative evaluation of simulated annealing and node deletion on a variety of datasets. We show that simulated annealing discovers more significant biclusters in many cases. Furthermore, we also test the ability of our technique to locate biologically verifiable biclusters within an annotated set of genes.
机译:在基因表达数据矩阵中,双峰是基因和条件的子矩阵,在行和列之间均表现出高度的表达活性。定位最重要的二元组的问题已显示为NP完全问题。先前已经采用了诸如Cheng和Church的贪婪节点删除算法之类的启发式方法。可以预期,诸如进化算法或模拟退火之类的随机搜索技术可能会在这种贪婪的技术上得到改善。在本文中,我们证明了基于模拟退火的方法非常适合此问题,并且我们对各种数据集上的模拟退火和节点删除进行了比较评估。我们表明,在许多情况下,模拟退火会发现更重要的双簇。此外,我们还测试了我们的技术在一组带注释的基因中定位可生物验证的双簇的能力。

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