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Fuzzy knowledge representation and reasoning using a generalized fuzzy petri net and a similarity measure

机译:广义模糊Petri网和相似度的模糊知识表示与推理

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摘要

In the study of weighted fuzzy production rules (WFPRs) reasoning, we often need to consider those rules whose consequences are represented by two or more propositions connected by “AND” or “OR”. To enhance the representation capability of those rules, this paper proposes two types of knowledge representation parameters, namely, the input weight and the output weight, for a rule. A Generalized Fuzzy Petri Net (GFPN) is also presented for WFPR reasoning. Furthermore, this paper gives a similarity measure to improve the evaluation method of WFPRs and the multilevel fuzzy reasoning in which the consequences and their certainty factors are deduced synchronously by using a GFPN.
机译:在研究加权模糊生产规则(WFPR)推理时,我们经常需要考虑那些其后果由两个或多个由“与”或“或”连接的命题表示的规则。为了提高这些规则的表示能力,本文针对规则提出了两种类型的知识表示参数,分别是输入权重和输出权重。还提出了用于WFPR推理的广义模糊Petri网(GFPN)。此外,本文提出了一种相似性措施来改进WFPR的评估方法和多级模糊推理,其中使用GFPN同步推导其后果及其确定性因子。

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