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Data-based identifiability analysis of non-linear dynamical models

机译:基于数据的非线性动力学模型的可识别性分析

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Motivation: Mathematical modelling of biological systems is becoming a standard approach to investigate complex dynamic, non-linear interaction mechanisms in cellular processes. However, models may comprise non-identifiable parameters which cannot be unambiguously determined. Non-identifiability manifests itself in functionally related parameters, which are difficult to detect. Results: We present the method of mean optimal transformations, a non-parametric bootstrap-based algorithm for identifiability testing, capable of identifying linear and non-linear relations of arbitrarily many parameters, regardless of model size or complexity. This is performed with use of optimal transformations, estimated using the alternating conditional expectation algorithm (ACE). An initial guess or prior knowledge concerning the underlying relation of the parameters is not required. Independent, and hence identifiable parameters are determined as well. The quality of data at disposal is included in our approach, i.e. the non-linear model is fitted to data and estimated parameter values are investigated with respect to functional relations. We exemplify our approach on a realistic dynamical model and demonstrate that the variability of estimated parameter values decreases from 81 to 1% after detection and fixation of structural non-identifiabilities.
机译:动机:生物系统的数学建模已成为研究细胞过程中复杂的动态,非线性相互作用机制的标准方法。但是,模型可能包含无法明确确定的不可识别参数。不可识别性表现在功能相关的参数中,这些参数很难检测。结果:我们提出了均值最佳变换的方法,这是一种基于非参数引导的可识别性测试算法,能够识别任意多个参数的线性和非线性关系,而与模型大小或复杂性无关。这是通过使用最佳变换执行的,该最佳变换是使用交替条件期望算法(ACE)进行估算的。不需要有关参数的基础关系的初步猜测或先验知识。还确定独立的并因此可识别的参数。我们所采用的方法包括处理时数据的质量,即将非线性模型拟合到数据中,并就功能关系调查估计的参数值。我们在现实的动力学模型上举例说明了我们的方法,并证明在检测到并修复了结构不可识别性之后,估计参数值的变异性从81%降低到1%。

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