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A deeper look at two concepts of measuring gene–gene interactions: logistic regression and interaction information revisited

机译:更深入地看出测量基因相互作用的两个概念:重新审视物流回归和互动信息

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ABSTRACT Detection of gene–gene interactions is one of the most important challenges in genome‐wide case–control studies. Besides traditional logistic regression analysis, recently the entropy‐based methods attracted a significant attention. Among entropy‐based methods, interaction information is one of the most promising measures having many desirable properties. Although both logistic regression and interaction information have been used in several genome‐wide association studies, the relationship between them has not been thoroughly investigated theoretically. The present paper attempts to fill this gap. We show that although certain connections between the two methods exist, in general they refer two different concepts of dependence and looking for interactions in those two senses leads to different approaches to interaction detection. We introduce ordering between interaction measures and specify conditions for independent and dependent genes under which interaction information is more discriminative measure than logistic regression. Moreover, we show that for so‐called perfect distributions those measures are equivalent. The numerical experiments illustrate the theoretical findings indicating that interaction information and its modified version are more universal tools for detecting various types of interaction than logistic regression and linkage disequilibrium measures.
机译:摘要基因相互作用检测是全基因组案例对照研究中最重要的挑战之一。除了传统的逻辑回归分析外,最近基于熵的方法引起了重要的关注。在基于熵的方法中,交互信息是具有许多所需特性的最有希望的措施之一。虽然逻辑回归和相互作用信息都已用于若干基因组 - 范围的协会研究中,但它们之间的关系尚未理论上彻底调查。本文试图填补这种差距。我们表明,虽然存在两种方法之间的某些连接,但一般认为,它们引用了两种不同的依赖性概念,并寻找这两个感官的相互作用导致不同的交互检测方法。我们在交互措施之间介绍订购,并在哪个互动信息的独立和依赖基因指定的条件比Logistic回归更差异。此外,我们表明,对于所谓的完美分布,这些措施是等同的。数值实验说明了指示交互信息及其改进版本的理论发现是更普遍的工具,用于检测不同类型的相互作用,而不是物流回归和连锁不平衡措施。

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