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Sampled-Data State Estimation of Reaction Diffusion Genetic Regulatory Networks via Space-Dividing Approaches

机译:通过空间分布方法采样 - 数据状态估计反应扩散遗传监管网络

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A novel state estimator is designed for genetic regulatory networks with reaction-diffusion terms in this study. First, the diffusion space (where mRNA and protein exist) is divided into several parts and only a point, a line, or a plane, etc., is measured in every subspace to reduce the measurement cost effectively. Then, samplers and network-induced time delay are considered to meet the network transmission requirement. A new criterion to ensure that the estimation error converges to zero is established by using the Lyapunov functional combined with Wirtinger's inequality, reciprocally convex approach, and Halanay's inequality; furthermore, the estimator's parameters are derived by solving linear matrix inequalities. Finally, two simulation examples (including one-dimensional and two-dimensional spaces) are presented to demonstrate the developed scheme's applicability.
机译:新的国家估算器专为该研究中具有反应扩散术语的遗传调节网络。首先,将扩散空间(其中MRNA和蛋白质存在)分为几个部分,并且在每个子空间中测量了几个部分,仅点,线或平面等,以有效地降低测量成本。然后,考虑采样器和网络诱导的时间延迟以满足网络传输要求。通过使用Lyapunov功能结合丝网不等式,互换凸面的方法和Halanay的不平等来确保估算误差会聚到零的新标准。此外,通过求解线性矩阵不等式来导出估计器的参数。最后,提出了两个模拟示例(包括一维和二维空间)以展示开发方案的适用性。

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