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在线模糊支持向量机回归方法及其应用
引用本文:赵恒平,俞金寿.在线模糊支持向量机回归方法及其应用[J].石油化工高等学校学报,2005,18(4):74-79.
作者姓名:赵恒平  俞金寿
作者单位:华东理工大学自动化研究所,上海,200237
摘    要:针对全局建模方法很难精确描述实际生产过程,提出了一种模糊支持向量机回归建模算法,并推导出相应的增量与减量算法;在此基础上,提出了在线模糊支持向量机回归建模方法,该方法利用滚动时间窗内的数据优化建模,随着时间窗的滚动,在原有模糊支持向量机模型的基础上通过增量与减量算法实现参数的快速在线更新。通过将该方法用于丙烯腈收率的预测建模,结果表明,所提方法具有参数调整时间快、泛化能力强的优点,可以较好的跟踪丙烯腈收率的变化。

关 键 词:丙烯腈收率  模糊支持向量机  回归方法
文章编号:1006-396X(2005)04-0074-06
修稿时间:2005年5月8日

ON- LINE FUZZY SUPPORT VECTOR MACHINES REGRESSION METHOD AND ITS APPLICATION
ZHAO Heng-ping,YU Jin-shou.ON- LINE FUZZY SUPPORT VECTOR MACHINES REGRESSION METHOD AND ITS APPLICATION[J].Journal of Petrochemical Universities,2005,18(4):74-79.
Authors:ZHAO Heng-ping  YU Jin-shou
Affiliation:ZHAO Heng-ping,YU Jin-shou.Research Institution of Automation,East China University of Science and Technology,Shanghai 200237,P.R.China
Abstract:Since the global modeling approach is difficult to perfectly describe actual industrial process,a fuzzy support vector machines (FSVM) regression modeling method and its increment and decrement algorithms were proposed in this paper.Based on these,an on-line FSVM regression modeling method was also proposed,which used the samples in the time window to build the dynamic system model,and with the slide of the time window and based on the trained FSVM model,the proposed increment and decrement algorithms were used to update quickly on line.The proposed method was applied in predicting the yield of acrylonitrile.The results demonstrate that this method is effective,which can better trace the change of acrylonitrile yield.
Keywords:Acrylonitrile yield  Fuzzy support vector machines(FSVM)  Regression modeling method
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