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Method of Dynamic Knowledge Representation and Learning Based on Fuzzy Petri Nets

Method of Dynamic Knowledge Representation and Learning Based on Fuzzy Petri Nets
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摘要 A method of knowledge representation and learning based on fuzzy Petri nets was designed. In this way the parameters of weights, threshold value and certainty factor in knowledge model can be adjusted dynamically. The advantages of knowledge representation based on production rules and neural networks were integrated into this method. Just as production knowledge representation, this method has clear structure and specific parameters meaning. In addition, it has learning and parallel reasoning ability as neural networks knowledge representation does. The result of simulation shows that the learning algorithm can converge, and the parameters of weights, threshold value and certainty factor can reach the ideal level after training. A method of knowledge representation and learning based on fuzzy Petri nets was designed. In this way the parameters of weights, threshold value and certainty factor in knowledge model can be adjusted dynamically. The advantages of knowledge representation based on production rules and neural networks were integrated into this method. Just as production knowledge representation, this method has clear structure and specific parameters meaning. In addition, it has learning and parallel reasoning ability as neural networks knowledge representation does. The result of simulation shows that the learning algorithm can converge, and the parameters of weights, threshold value and certainty factor can reach the ideal level after training.
机构地区 School of Software
出处 《Journal of Beijing Institute of Technology》 EI CAS 2008年第1期41-45,共5页 北京理工大学学报(英文版)
关键词 knowledge representation knowledge learning fuzzy Petri nets fuzzy reasoning knowledge representation knowledge learning fuzzy Petri nets fuzzy reasoning
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参考文献8

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