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Topology estimation of gene regulatory networks with relative expression level variations

机译:具有相对表达水平变异的基因调控网络的拓扑估计

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Gene regulatory network reconstruction is essential in understanding a biological system. A fundamental problem with the existing methods is that direct and indirect regulations can not be easily distinguished. To overcome this drawback, a relative expression level variation (RELV) based inference algorithm is suggested in this paper, which mainly consists of RELV magnitude estimation, normalization and modification. This method can in principle avoid the so-called cascade errors. Computation results with the Size 100 subchallenges of both DREAM3 and DREAM4 show that, the suggested algorithm can significantly outperform not only the widely adopted Z-score based method, but also the best team of both DREAM3 and DREAM4. In addition, the high precision of the obtained most reliable predictions shows that the suggested algorithm may be very helpful in guiding experiment designs.
机译:基因调控网络的重建对于理解生物系统至关重要。现有方法的一个基本问题是不能轻易地区分直接法规和间接法规。为了克服这一缺点,本文提出了一种基于相对表达水平变异(RELV)的推理算法,该算法主要包括RELV幅度估计,归一化和修改。该方法原则上可以避免所谓的级联误差。 DREAM3和DREAM4的Size 100子挑战的计算结果表明,所提出的算法不仅可以大大胜过被广泛采用的基于Z分数的方法,而且可以胜过DREAM3和DREAM4的最佳团队。另外,所获得的最可靠的预测的高精度表明所提出的算法可能对指导实验设计非常有帮助。

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