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Rough Set Based Fuzzy Neural Network for Pattern Classification 被引量:1

Rough Set Based Fuzzy Neural Network for Pattern Classification
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摘要 A rough set based fuzzy neural network algorithm is proposed to solve the problem of pattern recognition. The least square algorithm (LSA) is used in the learning process of fuzzy neural network to obtain the performance of global convergence. In addition, the numbers of rules and the initial weights and structure of fuzzy neural networks are difficult to determine. Here rough sets are introduced to decide the numbers of rules and original weights. Finally, experiment results show the algorithm may get better effect than the BP algorithm. A rough set based fuzzy neural network algorithm is proposed to solve the problem of pattern recognition. The least square algorithm (LSA) is used in the learning process of fuzzy neural network to obtain the performance of global convergence. In addition, the numbers of rules and the initial weights and structure of fuzzy neural networks are difficult to determine. Here rough sets are introduced to decide the numbers of rules and original weights. Finally, experiment results show the algorithm may get better effect than the BP algorithm.
作者 李侃 刘玉树
出处 《Journal of Beijing Institute of Technology》 EI CAS 2003年第4期428-431,共4页 北京理工大学学报(英文版)
基金 theMinisterialLevelAdvancedResearchFoundation ( 2 0 40 5 0 5 )
关键词 fuzzy neural network rough sets the least square algorithm back-propagation algorithm fuzzy neural network rough sets the least square algorithm back-propagation algorithm
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