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粒子滤波在复杂工业过程中的应用
引用本文:李永伟,钟 甲,张 颖,袁 涛.粒子滤波在复杂工业过程中的应用[J].河北科技大学学报,2011,32(1):47-51,56.
作者姓名:李永伟  钟 甲  张 颖  袁 涛
作者单位:河北科技大学电气信息学院,河北石家庄,050018
基金项目:河北省自然科学基金资助项目
摘    要:复杂工业过程往往具有不确定性、非线性、大滞后、强耦合等特点,难以建立在线控制模型.为了克服复杂工业过程中的非高斯、强非线性等因素对系统建模的影响,利用粒子滤波算法对非线性、非高斯系统进行全局优化的优势,对系统模型进行优化,使系统模型能够更加准确地反映系统的真实状态,提出一种基于粒子滤波的径向基函数(RBF)神经网络控制...

关 键 词:粒子滤波  复杂工业过程  RBF神经网络  联合制碱碳化过程
收稿时间:2010/7/12 0:00:00
修稿时间:2010/10/16 0:00:00

Application of particle filter in complex industrial process
LI Yong-wei,ZHONG Ji,ZHANG Ying and YUAN Tao.Application of particle filter in complex industrial process[J].Journal of Hebei University of Science and Technology,2011,32(1):47-51,56.
Authors:LI Yong-wei  ZHONG Ji  ZHANG Ying and YUAN Tao
Institution:(College of Electrical Engineering and Information Science,Hebei University of Science and Technology,Shijiazhuang Hebei 050018,China)
Abstract:Complex industrial process has the characteristics of uncertainty,nonlinear,non-Gaussian,large delay and strong coupling,so it is difficult to build linear control model.Particle filter(PF) algorithm can be used in global optimization of nonlinear,non-Gaussian system,making the model reflect the real system state accurately.This paper proposed a partical filter based radial basis function(RBF) neural network method,and applies it to the study of synthetic ammonia decarbornization production process.The synthetic ammonia decarbornization process is a complex industrial production process,whose on-line control model is difficult to establish.Some simulation study with the synthetic ammonia decarbornization has shown that after using PF it has better performance than using only fuzzy neural network.The result also shows that the system is more effectively controlled after using PF algorithm.It provides an efficient way for the complex system modelling and optimization control research.
Keywords:particle filter  complex industrial process  RBF neural network  the synthetic ammonia decarbornization
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