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Parameter estimation in kinetic reaction models using nonlinear observers facilitated by model extensions

机译:借助模型扩展促进的使用非线性观测器的动力学反应模型中的参数估计

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摘要

An essential part of mathematical modelling is the accurate and reliable estimation of model parameters. In biology, the required parameters are particularly difficult to measure due to either shortcomings of the measurement technology or a lack of direct measurements. In both cases, parameters must be estimated from indirect measurements, usually in the form of time-series data. Here, we present a novel approach for parameter estimation that is particularly tailored to biological models consisting of nonlinear ordinary differential equations. By assuming specific types of nonlinearities common in biology, resulting from generalised mass action, Hill kinetics and products thereof, we can take a three step approach: (1) transform the identification into an observer problem using a suitable model extension that decouples the estimation of non-measured states from the parameters; (2) reconstruct all extended states using suitable nonlinear observers; (3) estimate the parameters using the reconstructed states. The actual estimation of the parameters is based on the intrinsic dependencies of the extended states arising from the definitions of the extended variables. An important advantage of the proposed method is that it allows to identify suitable measurements and/or model structures for which the parameters can be estimated. Furthermore, the proposed identification approach is generally applicable to models of metabolic networks, signal transduction and gene regulation.
机译:数学建模的重要部分是对模型参数的准确可靠的估计。在生物学中,由于测量技术的缺陷或缺乏直接测量,特别难以测量所需的参数。在这两种情况下,必须通过间接测量来估计参数,通常以时间序列数据的形式。在这里,我们提出了一种新的参数估计方法,该方法特别适合于由非线性常微分方程组成的生物学模型。通过假设生物学中由于普遍的质量作用,希尔动力学及其产物而产生的特定类型的非线性,我们可以采取三步法:(1)使用适当的模型扩展将标识转换为观察者问题,该模型扩展将对估计的解耦参数的非测量状态; (2)使用合适的非线性观测器重建所有扩展状态; (3)使用重构状态估计参数。参数的实际估计基于扩展状态的固有依赖性,这些固有状态是由扩展变量的定义引起的。所提出的方法的重要优点在于,它允许识别可以为其估计参数的合适的测量和/或模型结构。此外,提出的识别方法通常适用于代谢网络,信号转导和基因调控的模型。

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