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MORE: Mixed Optimization for Reverse Engineering—An Application to Modeling Biological Networks Response via Sparse Systems of Nonlinear Differential Equations

机译:更多:逆向工程的混合优化-通过非线性微分方程的稀疏系统对生物网络响应建模的应用

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摘要

Reverse engineering is the problem of inferring the structure of a network of interactions between biological variables from a set of observations. In this paper, we propose an optimization algorithm, called MORE, for the reverse engineering of biological networks from time series data. The model inferred by MORE is a sparse system of nonlinear differential equations, complex enough to realistically describe the dynamics of a biological system. MORE tackles separately the discrete component of the problem, the determination of the biological network topology, and the continuous component of the problem, the strength of the interactions. This approach allows us both to enforce system sparsity, by globally constraining the number of edges, and to integrate a priori information about the structure of the underlying interaction network. Experimental results on simulated and real-world networks show that the mixed discrete/continuous optimization approach of MORE significantly outperforms standard continuous optimization and that MORE is competitive with the state of the art in terms of accuracy of the inferred networks.
机译:逆向工程是从一组观察结果推断生物学变量之间相互作用网络网络的问题。在本文中,我们针对时间序列数据中的生物网络的逆向工程提出了一种称为MORE的优化算法。由MORE推断出的模型是一个稀疏的非线性微分方程组,其复杂程度足以现实地描述生物系统的动力学。更多信息分别解决问题的离散部分,生物网络拓扑的确定以及问题的连续部分,相互作用的强度。这种方法使我们既可以通过全局限制边的数量来实施系统稀疏性,也可以集成有关基础交互网络结构的先验信息。在模拟和实际网络上的实验结果表明,MORE的混合离散/连续优化方法明显优于标准连续优化,并且在推断网络的准确性方面,MORE与现有技术竞争。

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