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Design of state estimator for genetic regulatory networks with time-varying delays and randomly occurring uncertainties

机译:具有时变时滞和随机不确定性的遗传调控网络状态估计器的设计

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In this paper, the design problem of state estimator for genetic regulatory networks with time delays and randomly occurring uncertainties has been addressed by a delay decomposition approach. The norm-bounded uncertainties enter into the genetic regulatory networks (GRNs) in random ways, and such randomly occurring uncertainties (ROUs) obey certain mutually uncorrelated Bernoulli distributed white noise sequences. Under these circumstances, the state estimator is designed to estimate the true concentration of the mRNA and the protein of the uncertain GRNs. Delay-dependent stability criteria are obtained in terms of linear matrix inequalities by constructing a Lyapunov-Krasovskii functional and using some inequality techniques (LMIs). Then, the desired state estimator, which can ensure the estimation error dynamics to be globally asymptotically robustly stochastically stable, is designed from the solutions of LMIs. Finally, a numerical example is provided to demonstrate the feasibility of the proposed estimation schemes.
机译:在本文中,通过延迟分解方法解决了具有时间延迟和随机不确定性的遗传调控网络的状态估计器的设计问题。受范数约束的不确定性以随机方式进入遗传调控网络(GRN),并且这种随机发生的不确定性(ROU)服从某些互不相关的伯努利分布的白噪声序列。在这种情况下,状态估计器可用于估计不确定GRN的mRNA和蛋白质的真实浓度。通过构造Lyapunov-Krasovskii泛函并使用一些不等式技术(LMI),可以根据线性矩阵不等式获得依赖于延迟的稳定性标准。然后,从LMI的解决方案中设计了一个期望状态估计器,该状态估计器可以确保估计误差动态范围在全局渐近鲁棒性地随机稳定。最后,提供了一个数值例子来说明所提出的估计方案的可行性。

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