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M-matrix-based stability conditions for genetic regulatory networks with time-varying delays and noise perturbations

机译:具有时变延迟和噪声扰动的遗传调控网络基于M矩阵的稳定性条件

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Stability is essential for designing and controlling any dynamic systems. Recently, the stability of genetic regulatory networks has been widely studied by employing linear matrix inequality (LMI) approach, which results in checking the existence of feasible solutions to high-dimensional LMIs. In the previous study, the authors present several stability conditions for genetic regulatory networks with time-varying delays, based on M-matrix theory and using the non-smooth Lyapunov function, which results in determining whether a low-dimensional matrix is a nonsingular M-matrix. However, the previous approach cannot be applied to analyse the stability of genetic regulatory networks with noise perturbations. Here, the authors design a smooth Lyapunov function quadratic in state variables and employ M-matrix theory to derive new stability conditions for genetic regulatory networks with time-varying delays. Theoretically, these conditions are less conservative than existing ones in some genetic regulatory networks. Then the results are extended to genetic regulatory networks with time-varying delays and noise perturbations. For genetic regulatory networks with n genes and n proteins, the derived conditions are to check if an n ?? n matrix is a non-singular M-matrix. To further present the new theories proposed in this study, three example regulatory networks are analysed.
机译:稳定性对于设计和控制任何动态系统至关重要。近年来,通过采用线性矩阵不等式(LMI)方法对遗传调控网络的稳定性进行了广泛的研究,从而检查了高维LMI可行解的存在。在先前的研究中,作者基于M矩阵理论并使用非光滑Lyapunov函数,提出了具有时变时滞的遗传调控网络的几种稳定性条件,从而确定了低维矩阵是否为非奇异M -矩阵。但是,先前的方法不能应用于分析带有噪声干扰的遗传调控网络的稳定性。在这里,作者设计了一个状态变量为二次的平滑Lyapunov函数,并采用M-矩阵理论来推导具有时变时滞的遗传调控网络的新稳定性条件。从理论上讲,这些条件不如某些遗传调控网络中的现有条件保守。然后将结果扩展到具有时变延迟和噪声扰动的遗传调控网络。对于具有n个基因和n个蛋白质的遗传调控网络,推导条件是检查n是否为n? n矩阵是一个非奇异的M矩阵。为了进一步介绍本研究中提出的新理论,分析了三个示例性监管网络。

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    《Systems Biology, IET》 |2013年第5期|214-222|共9页
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