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A data mining approach to discover genetic and environmental factors involved in multifactorial diseases

机译:一种发现多因素疾病涉及的遗传和环境因素的数据挖掘方法

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In this paper, we are interested in discovering genetic and environmental factors that are involved in multifactorial diseases. Experiments have been achieved by the Biological Institute of Lille and many data has been generated. To exploit these data, data mining tools are required and we propose a two-phase optimisation approach using a specific genetic algorithm. During the first step, we select significant features with a specific genetic algorithm. Then, during the second step, we cluster affected individuals according to the features selected by the first phase. The paper describes the specificities of the genetic problem that we are studying, and presents in detail the genetic algorithm that we have developed to deal with this very large size feature selection problem. Results on both artificial and real data are presented.
机译:在本文中,我们有兴趣发现与多因素疾病有关的遗传和环境因素。里尔生物研究所已完成实验,并产生了许多数据。为了利用这些数据,需要使用数据挖掘工具,并且我们提出了使用特定遗传算法的两阶段优化方法。在第一步中,我们使用特定的遗传算法选择重要特征。然后,在第二步中,我们根据第一阶段选择的特征对受影响的个体进行聚类。本文描述了我们正在研究的遗传问题的特殊性,并详细介绍了我们为解决这个非常大的特征选择问题而开发的遗传算法。给出了人工和真实数据的结果。

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