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Imperial smelting furnace fault prediction model based on hammerstein model using least squares support vector machines

机译:基于Hammerstein模型的最小二乘支持向量机的帝国冶炼炉故障预测模型。

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In this paper, the Hammerstein fault prediction modeling based on least squares support vector machines (LS-SVM) is presented for the prediction the key parameters of the imperial smelting furnace (ISF). ISF is a nonlinear, multi-input and multi-output (MIMO) system that is difficult to model by the classical methods. Due to the particularly simple structure of the Hammerstein model and the generalization performance of LS-SVM, a Hammerstein model using LS-SVM is built and applied to the ISF. The simulation research shows this model adapts well to the change of parameters, provides accurate prediction and is with desirable application value.
机译:本文提出了基于最小二乘支持向量机(LS-SVM)的Hammerstein故障预测模型,用于预测帝国炼钢炉(ISF)的关键参数。 ISF是一个非线性,多输入多输出(MIMO)系统,很难通过经典方法进行建模。由于Hammerstein模型的结构特别简单,并且具有LS-SVM的通用性能,因此建立了使用LS-SVM的Hammerstein模型并将其应用于ISF。仿真研究表明,该模型很好地适应了参数的变化,提供了准确的预测结果,具有理想的应用价值。

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