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Billet temperature soft sensor model of reheating furnace based on RVM method

机译:基于RVM方法的加热炉坯温度软传感器模型

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Billet temperature soft sensor model is always necessary because of lack of accurate online instrument. In this paper, a new soft sensor modeling method is proposed to predict the billet temperature of reheating furnace based on relevance vector machine (RVM). The proposed method has sparser solutions and better model generalization ability, while the uncertainty of model forecast can be given. The prediction model between billet temperature variable and process variable is established by using actual data from a steel plant. The simulation results show that the proposed method has higher prediction accuracy, and a certain practical significance to the on-site production of reheating furnace.
机译:由于缺乏精确的在线仪器,始终需要坯料温度软传感器模型。提出了一种基于相关向量机(RVM)的软传感器建模方法,用于预测加热炉的坯料温度。该方法具有较稀疏的解决方案和较好的模型泛化能力,同时可以给出模型预测的不确定性。利用钢厂的实际数据建立了钢坯温度变量和过程变量之间的预测模型。仿真结果表明,该方法具有较高的预测精度,对加热炉的现场生产具有一定的实际意义。

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