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An Adaptive Identification Method Based on the Modulating Functions Technique and Exact State Observers for Modeling and Simulation of a Nonlinear Miso Glass Melting Process

机译:基于调制功能技术的自适应识别方法和精确状态观察,用于非线性味噌玻璃熔化过程的建模和仿真

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摘要

The paper presents new concepts of the identification method based on modulating functions and exact state observers with its application for identification of a real continuous-time industrial process. The method enables transformation of a system of differential equations into an algebraic one with the same parameters. Then, these parameters can be estimated using the least-squares approach. The main problem is the nonlinearity of the MISO process and its noticeable transport delays. It requires specific modifications to be introduced into the basic identification algorithm. The main goal of the method is to obtain on-line a temporary linear model of the process around the selected operating point, because fast methods for tuning PID controller parameters for such a model are well known. Hence, a special adaptive identification approach with a moving window is proposed, which involves using on-line registered input and output process data. An optimal identification method for a MISO model assuming decomposition to many inner SISO systems is presented. Additionally, a special version of the modulating functions method, in which both model parameters and unknown delays are identified, is tested on real data sets collected from a glass melting installation.
机译:本文提出了基于调制功能和精确状态观察者的识别方法的新概念,其应用于识别实际连续工业过程。该方法使得将差分方程的系统转换为具有相同参数的代数。然后,可以使用最小二乘方法估计这些参数。主要问题是MISO过程的非线性及其明显的运输延误。它需要将特定的修改引入基本识别算法。该方法的主要目标是在线在线临时线性模型在所选操作点周围的过程,因为用于调整这种模型的PID控制器参数的快速方法是众所周知的。因此,提出了一种具有移动窗口的特殊自适应识别方法,其涉及使用在线登记输入和输出过程数据。呈现了假设对许多内部SISO系统进行分解的MISO模型的最佳识别方法。另外,在从玻璃熔化安装收集的真实数据集上测试了调制功能方法的特殊版本,其中识别出模型参数和未知延迟。

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