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基于ANFIS的铁水脱硫系统的建模
MODELING OF HOT METAL DESULPHURIZATION BASED ON ANFIS
【摘要】 在炼钢生产过程中,铁水脱硫过程是发生了一系列物理和化学变化的复杂工业过程.为建立各控制量与脱硫剂使用量间的模型,本文利用减法聚类法实现对ANFIS网络的结构识别,并在此基础上对ANFIS进行参数识别,完成铁水脱硫系统的建模任务.最后,通过将该方法与普通的BP算法建模进行比较,说明ANFIS在收敛速度及建模精度方面的优越性.
【Abstract】 At the process of steel making, the process of hot metal desulphurization is a complicated industry process inwhich a series of physical and chemical changes will take place. In order to establish the model of controlvariables and desulphurization reagent, the subtractive clustering is introduced to identify the structure of ANFISand then an adaptive neural-fuzzy inference system (ANFIS) is constructed to identify the parameters in thispaper. Finally, the advances in the convergence velocity and in the accuracy of the modeling are illustrated bymeans of the comparison with the property of back-propagation network.
- 【文献出处】 模式识别与人工智能 ,Pattern Recognition and Artificial Intelligence , 编辑部邮箱 ,2004年02期
- 【分类号】TP273
- 【被引频次】6
- 【下载频次】61