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Non-linear Model Parameter Estimation - Estimating A Feasible Parameter Set With Respect To Model Use

机译:非线性模型参数估计-根据模型使用估计可行的参数集

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This article deals with non-linear model parameter estimation from experimental data. As for non-linear models a rigorous identifiability analysis is difficult to perform, parameter estimation is performed in such a way that uncertainty in the estimated parameter values is represented by the range of model use results when the model is used for a certain purpose. Using this approach, the article presents a simulation study where the objective is to discover whether the estimation of model parameters can be improved, so that a small enough range of model use results is obtained. The results of the study indicate that from plant measurements available for the estimation of model parameters, it is possible to extract data that are important for the estimation of model parameters relative to a certain model use. If these data are improved by a proper measurement campaign (e.g. proper choice of measured variables, better accuracy, higher measurement frequency) it is to be expected that a valid model for a certain model use will be obtained. The simulation study is performed for an activated sludge model from wastewater treatment, while the estimation of model parameters is done by Monte Carlo simulation.
机译:本文涉及根据实验数据进行非线性模型参数估计。对于非线性模型,很难执行严格的可识别性分析,以这样的方式执行参数估计:当模型用于特定目的时,估计的参数值的不确定性由模型使用结果的范围表示。使用这种方法,本文提出了一个仿真研究,其目的是发现是否可以改进模型参数的估计,以便获得足够小的模型使用结果范围。研究结果表明,从可用于估算模型参数的工厂测量中,有可能提取出相对于特定模型用途而言对估算模型参数重要的数据。如果通过适当的测量活动(例如,正确选择测量变量,更好的精度,更高的测量频率)来改善这些数据,则可以预期将获得针对特定模型用途的有效模型。对废水处理中的活性污泥模型进行了仿真研究,而模型参数的估算则通过蒙特卡洛仿真进行。

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