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An Approach for Simultaneous Structure Determination and Parameter Estimation Using MINLP Techniques

机译:使用MINLP技术进行同步结构确定和参数估计的方法

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The present paper presents an approach of simultaneously solving a structure determination and parameter estimation problem using Mixed Integer Nonlinear Programming (MINLP) techniques. It is shown that the minimization of Akaike's Information Criterion (AIC), the Bayesian Information Criterion (BIC), and the Final Prediction Error (FPE) can efficiently be modeled as MINLP problems. The problems are solved using the Extended Cutting Plane (ECP) method. The presented techniques are applied in determining the structure and the parameters of some illustrative Autoregressive Moving Average (ARMA) time series. The described techniques can also be applied on dynamical systems.
机译:本文介绍了一种方法,可以使用混合整数非线性编程(MINLP)技术同时解决结构确定和参数估计问题。结果表明,最小化Akaike的信息标准(AIC),贝叶斯信息标准(BIC)和最终预测误差(FPE)可以有效地建模为MINLP问题。使用扩展切割平面(ECP)方法解决了问题。所呈现的技术用于确定一些说明性自回归移动平均(ARMA)时间序列的结构和参数。所描述的技术也可以应用于动力系统。

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