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Imposing steady-state performance on identified nonlinear polynomial models by means of constrained parameter estimation

机译:通过约束参数估计将稳态性能施加到已识别的非线性多项式模型上

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The authors present a procedure that permits the use of steady-state information to constrain the identification of nonlinear polynomial models. Such a procedure has three main steps. First, a general framework is provided that relates the static function of nonlinear global polynomial models to their terms and parameters. Second, using standard nonlinear programming techniques, a rational function is fitted to the system static function, which is assumed to be known and is used as auxiliary information. Finally, the information gathered in the first two steps is used to write a set of equality constraints that are exactly satisfied by a standard constrained least-squares algorithm used to estimate the parameters of the identified model. It is shown that the resulting model will always have the specified static nonlinearity and will use additional degrees of freedom to fit the dynamics underlying the observed data.
机译:作者提出了一种程序,该程序允许使用稳态信息来约束非线性多项式模型的识别。这样的过程有三个主要步骤。首先,提供了将非线性全局多项式模型的静态函数与其项和参数相关联的通用框架。其次,使用标准的非线性编程技术,将有理函数拟合到系统静态函数,该函数假定是已知的,并用作辅助信息。最后,在前两个步骤中收集的信息用于编写一组等式约束,这些约束由用于估计已识别模型参数的标准约束最小二乘算法精确满足。结果表明,所得模型将始终具有指定的静态非线性,并将使用其他自由度来拟合所观察数据的基础动力学。

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