基于广义模糊Petri网的知识表示与推理

Z. Suraj
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引用次数: 19

摘要

本文的目的是提出一种基于广义模糊Petri网的知识表示和推理新方法。近年来,该网络模型作为一类新的模糊Petri网被提出。新类通过引入t-范数和s-范数两个算子来扩展现有的模糊Petri网,这两个算子被认为是最小和最大算子的替代品。这个模型比传统的模型更灵活,因为在前一个类中,用户有机会定义输入/输出操作符。为给定的推理过程选择合适的算子和推理过程的速度是非常重要的,特别是在实时决策支持系统中。在列车交通控制决策支持中的应用表明了该方法的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge representation and reasoning based on generalised fuzzy Petri nets
The aim of this paper is to present a new methodology for knowledge representation and reasoning based on generalised fuzzy Petri nets. Recently, this net model has been proposed as a new class of fuzzy Petri nets. The new class extends the existing fuzzy Petri nets by introducing two operators: t-norms and s-norms, which are supposed to function as substitute for the min and max operators. This model is more flexible than the traditional one as in the former class the user has the chance to define the input/output operators. The choice of suitable operators for a given reasoning process and the speed of reasoning process are very important, especially in real-time decision support systems. The advantages of the proposed methodology are shown in an application in train traffic control decision support.
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