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LLNFM与RBR融合的生料分解过程工况辨识模型 被引量:2
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作者 乔景慧 《控制工程》 CSCD 北大核心 2016年第4期522-526,共5页
针对水泥生料分解过程中易煅烧工况、难煅烧工况和异常工况不能及时准确判断的难题,将局部线性神经模糊模型和规则推理相结合,提出了基于局部线性神经模糊模型和规则推理的工况识别模型。局部线性神经模糊模型预测预热器C5出口温度,规... 针对水泥生料分解过程中易煅烧工况、难煅烧工况和异常工况不能及时准确判断的难题,将局部线性神经模糊模型和规则推理相结合,提出了基于局部线性神经模糊模型和规则推理的工况识别模型。局部线性神经模糊模型预测预热器C5出口温度,规则推理使用输入变量判断当前工况。该模型已经成功应用到某水泥厂水泥生料分解过程,降低了预热器C5下料管堵塞的概率。 展开更多
关键词 生料分解过程 局部线性神经模糊模型 规则推理 工况
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Intelligent non-linear modelling of an industrial winding process using recurrent local linear neuro-fuzzy networks 被引量:2
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作者 Hasan ABBASI NOZARI Hamed DEHGHAN BANADAKI +1 位作者 Mohammad MOKHTARE Somayeh HEKMATI VAHED 《Journal of Zhejiang University-Science C(Computers and Electronics)》 SCIE EI 2012年第6期403-412,共10页
This study deals with the neuro-fuzzy (NF) modelling of a real industrial winding process in which the acquired NF model can be exploited to improve control performance and achieve a robust fault-tolerant system. A ne... This study deals with the neuro-fuzzy (NF) modelling of a real industrial winding process in which the acquired NF model can be exploited to improve control performance and achieve a robust fault-tolerant system. A new simulator model is proposed for a winding process using non-linear identification based on a recurrent local linear neuro-fuzzy (RLLNF) network trained by local linear model tree (LOLIMOT), which is an incremental tree-based learning algorithm. The proposed NF models are compared with other known intelligent identifiers, namely multilayer perceptron (MLP) and radial basis function (RBF). Comparison of our proposed non-linear models and associated models obtained through the least square error (LSE) technique (the optimal modelling method for linear systems) confirms that the winding process is a non-linear system. Experimental results show the effectiveness of our proposed NF modelling approach. 展开更多
关键词 Non-linear system identification Recurrent local linear neuro-fuzzy (RLLNF) network local linear model tree(LOLIMOT) Neural network (NN) Industrial winding process
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