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Pattern-based identification for process control applications

机译:用于过程控制应用的基于模式的识别

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摘要

In this paper, a pattern-based approach to process identification is presented. The process identification problem is formulated using a nonlinear regression model. An algorithm is proposed based on the modified Gauss-Newton search for a least squares estimate, and the condition for the identification is derived. The algorithm is extended via the instrumental variable method to cater for possible correlation of residual error with a Jacobian function. Simulation results are presented to support the theoretical development for a typical range of industrial processes. The proposed method is also compared favorably with methods existing in the literature.
机译:本文提出了一种基于模式的过程识别方法。使用非线性回归模型来制定过程识别问题。提出了一种基于改进的高斯-牛顿搜索的最小二乘估计算法,并推导了识别条件。通过工具变量方法扩展了该算法,以适应残留误差与雅可比函数的可能相关性。给出仿真结果以支持典型工业过程范围的理论开发。所提出的方法也与文献中已有的方法进行了比较。

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