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Detecting model-plant mismatch without external excitation

机译:在没有外部激励的情况下检测模型工厂的不匹配

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Any discrepancy between a process and the associated model used in control design will compromise closed-loop performance. In almost all current techniques to detect model-plant mismatch in model-based control systems there must be some sort of external excitation to overcome the effect of unmeasured disturbances on closed-loop signals. In this paper, we propose a novel technique that enables us to detect model-plant mismatch without introducing any external excitation. We show that model-plant mismatch in a closed loop system changes the cross-correlation coefficients between the model prediction error and the process input at certain lags. Indeed, by comparing the correlation between prediction error and input signals in the case of poor performance with that under good performance, one can detect model-plant mismatch. The results are illustrated on paper machine data.
机译:流程与控制设计中使用的关联模型之间的任何差异都会损害闭环性能。在基于模型的控制系统中,几乎所有用于检测模型工厂不匹配的当前技术中,都必须存在某种外部激励,以克服不可测量的干扰对闭环信号的影响。在本文中,我们提出了一种新颖的技术,使我们能够在不引入任何外部激励的情况下检测模型工厂的不匹配情况。我们表明,闭环系统中的模型工厂不匹配会在某些滞后改变模型预测误差与过程输入之间的互相关系数。实际上,通过比较性能较差和性能较差时的预测误差与输入信号之间的相关性,可以检测模型工厂的不匹配。结果显示在造纸机数据上。

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