作者
Elpiniki Papageorgiou, Chrysostomos Stylios, Peter Groumpos
发表日期
2003
研讨会论文
AI 2003: Advances in Artificial Intelligence: 16th Australian Conference on AI, Perth, Australia, December 3-5, 2003. Proceedings 16
页码范围
256-268
出版商
Springer Berlin Heidelberg
简介
Fuzzy Cognitive Map (FCM) is a soft computing technique for modeling systems. It combines synergistically the theories of neural networks and fuzzy logic. The methodology of developing FCMs is easily adaptable but relies on human experience and knowledge, and thus FCMs exhibit weaknesses and dependence on human experts. The critical dependence on the expert’s opinion and knowledge, and the potential convergence to undesired steady states are deficiencies of FCMs. In order to overcome these deficiencies and improve the efficiency and robustness of FCM a possible solution is the utilization of learning methods. This research work proposes the utilization of the unsupervised Hebbian algorithm to nonlinear units for training FCMs. Using the proposed learning procedure, the FCM modifies its fuzzy causal web as causal patterns change and as experts update their causal knowledge.
引用总数
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学术搜索中的文章
E Papageorgiou, C Stylios, P Groumpos - AI 2003: Advances in Artificial Intelligence: 16th …, 2003