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A regularization-based neural network for the measurement of shape information

机译:基于正则化的神经网络,用于形状信息的测量

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The measurement and disposal of shape information plays a vital role in strip rolling process and it also is one of the focus in strip rolling theory today. In this paper, based on the predictive shape control system, a predictive model is developed in which the regularization method is adopted. Through the simulation on the data of four high reversible rolling mills, it proved this model can conquer the defects of the mathematical model effectively and get a desirable performance of shape control easily.
机译:形状信息的测量和处理在带材轧制过程中起着至关重要的作用,也是当今带材轧制理论的重点之一。本文在预测形状控制系统的基础上,开发了一种采用正则化方法的预测模型。通过对四台高可逆轧机数据的仿真,证明该模型可以有效地克服数学模型的缺陷,并容易获得理想的形状控制性能。

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