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首页> 外文期刊>Bio-medical materials and engineering >Interacting gene selection via cooperative game analysis for cancer diagnosis
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Interacting gene selection via cooperative game analysis for cancer diagnosis

机译:通过合作博弈分析进行交互基因选择以进行癌症诊断

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摘要

Microarray technologies offer practical diagnostic tools for cancer detection. One great challenge is to identify salient genes from the high dimensionality of microarray data that can directly contribute to the symptom of cancer. Interactions among genes have been recognized to be fundamentally important for understanding biological function. This paper proposes an interacting gene selection method for cancer classification by identifying useful interacting genes. The method firstly evaluates the interactivity degree of each gene according to the intricate interrelation among genes by cooperative game analysis. Then genes are selected in a forward way by considering both interactivity and relevance characters. Experimental comparisons are carried out on four publicly available microarray data sets with three outstanding gene selection methods. Moreover a gene set enrichment analysis is also performed on the selected gene subset. The results show that the proposed method achieves better classification performance and enrichment score than other gene selection methods.
机译:微阵列技术为癌症检测提供了实用的诊断工具。一个巨大的挑战是从微阵列数据的高维度中识别出可以直接导致癌症症状的显着基因。人们已经认识到基因之间的相互作用对于理解生物学功能至关重要。本文提出了一种通过鉴定有用的相互作用基因来进行癌症分类的相互作用基因选择方法。该方法首先根据基因之间复杂的相互关系,通过合作博弈分析评估每个基因的相互作用程度。然后,通过考虑交互性和相关性特征,以向前的方式选择基因。实验比较是使用三种出色的基因选择方法在四个可公开获得的微阵列数据集上进行的。此外,还对选定的基因子集进行基因集富集分析。结果表明,与其他基因选择方法相比,该方法具有更好的分类性能和富集度。

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