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Research on the application of gasoline endpoint soft-sensing in hydroforming unit based on SVM

机译:基于SVM的汽油终点软感移汽油终点软感移的研究

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The application of Support Vector Machines(SVM) to the soft-sensing modeling technology was studied. To solve the problem that the endpoint of a refinery hydroforming unit can't be monitored real-time on line, the soft-sensing model based on SVM was established and the gasoline endpoint was predicted. The experimental results show that the model has some characters such that quick calculating rate and high forecast accuracy. The indices are satisfied with the user's requirements, and the predicting effects are good in the practice.
机译:研究了支持向量机(SVM)对软感应建模技术的应用。为了解决炼油厂液压成形单元的终点无法实时监测炼油厂的终点,建立了基于SVM的软感测模型,预测了汽油端点。实验结果表明,该模型具有一些特征,使得快速计算速率和高预测精度。指数对用户的要求感到满意,并且预测效果在实践中良好。

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