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首页> 外文期刊>Systems, Man, and Cybernetics: Systems, IEEE Transactions on >Dynamic Adaptive Fuzzy Petri Nets for Knowledge Representation and Reasoning
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Dynamic Adaptive Fuzzy Petri Nets for Knowledge Representation and Reasoning

机译:动态自适应模糊Petri网的知识表示与推理

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摘要

Although a promising tool for knowledge representation and reasoning, fuzzy Petri nets (FPNs) still suffer from some deficiencies. First, the parameters in current FPN models, such as weight, threshold, and certainty factor do not accurately represent increasingly complex knowledge-based expert systems and do not capture the dynamic nature of fuzzy knowledge. Second, the fuzzy rules of most existing knowledge inference frameworks are static and cannot be adjusted dynamically according to variations of antecedent propositions. To address these problems, we present a new type of FPN model, dynamic adaptive fuzzy Petri nets, for knowledge representation and reasoning. We also propose a max-algebra based parallel reasoning algorithm so that the reasoning process can be implemented automatically. As illustrated by a numerical example, the proposed model can well represent the experts' diverse experience and can implement the knowledge reasoning dynamically.
机译:尽管用于知识表示和推理的有前途的工具,但是模糊Petri网(FPN)仍然存在一些缺陷。首先,当前FPN模型中的参数(例如权重,阈值和确定性因子)不能准确地表示日益复杂的基于知识的专家系统,并且无法捕获模糊知识的动态性质。其次,大多数现有知识推理框架的模糊规则是静态的,不能根据先前命题的变化动态调整。为了解决这些问题,我们提出了一种新型的FPN模型,即动态自适应模糊Petri网,用于知识表示和推理。我们还提出了一种基于最大代数的并行推理算法,以便可以自动实现推理过程。如数值示例所示,所提出的模型可以很好地代表专家的不同经验,并且可以动态地实现知识推理。

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