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Predicting the Endpoint Phosphorus Content of Molten Steel in BOF by Two-stage Hybrid Method 被引量:5

Predicting the Endpoint Phosphorus Content of Molten Steel in BOF by Two-stage Hybrid Method
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摘要 A two-stage hybrid method is proposed to predict the phosphorus content of molten steel at the endpoint of steelmaking in BOF(Basic Oxygen Furnace). At the first clustering stage, the weighted K-means is performed to produce clusters with homogeneous data. At the second predicting stage, each fuzzy neural network is carried out on each cluster and the results from all fuzzy neural networks are combined to be the final result of the hybrid method. The hybrid method and single fuzzy neural network are compared and the results show that the hybrid method outperforms single fuzzy neural network. A two-stage hybrid method is proposed to predict the phosphorus content of molten steel at the endpoint of steelmaking in BOF(Basic Oxygen Furnace). At the first clustering stage, the weighted K-means is performed to produce clusters with homogeneous data. At the second predicting stage, each fuzzy neural network is carried out on each cluster and the results from all fuzzy neural networks are combined to be the final result of the hybrid method. The hybrid method and single fuzzy neural network are compared and the results show that the hybrid method outperforms single fuzzy neural network.
出处 《Journal of Iron and Steel Research(International)》 SCIE EI CAS CSCD 2014年第S1期65-69,共5页 钢铁研究学报(英文版)
基金 Item Sponsored by Beijing Higher Education Young Elite Teacher Project(YETP0382) 2012 Ladder Plan Project of Beijing Key Laboratory of Knowledge Engineering for Materials Science of China(Z121101002812005)
关键词 K-means clustering fuzzy neural network hybrid method predicting endpoint phosphorus content K-means clustering fuzzy neural network hybrid method predicting endpoint phosphorus content
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