Publication | Closed Access
Knowledge representation using fuzzy Petri nets
542
Citations
20
References
1990
Year
Petri NetFuzzy SystemsEngineeringIntelligent SystemsFormal VerificationSystems EngineeringKnowledge ProcessingFuzzy RelationFuzzy Production RuleKnowledge RepresentationFuzzy LogicFuzzy ComputingStochastic Petri NetComputer ScienceFuzzy Reasoning AlgorithmFuzzy Petri NetsKnowledge ModelingAutomated ReasoningFuzzy Expert SystemFormal MethodsSymbolic ReasoningData Modeling
A fuzzy Petri net model (FPN) is presented to represent the fuzzy production rule of a rule-based system in which a fuzzy production rule describes the fuzzy relation between two propositions. Based on the fuzzy Petri net model, an efficient algorithm is proposed to perform fuzzy reasoning automatically. It can determine whether an antecedent-consequence relationship exists from proposition d/sub s/ to proposition d/sub j/, where d/sub s/ not=d/sub j/. If the degree of truth of proposition d/sub s/ is given, then the degrees of truth of proposition d/sub j/ can be evaluated. The formal description of the model and the fuzzy reasoning algorithm are shown in detail. The upper bound of the time complexity of the fuzzy reasoning algorithm is O(nm), where n is the number of places and m is the number of transitions. Its execution time is proportional to the number of nodes in a sprouting tree generated by the algorithm only generates necessary reasoning paths from a starting place to a goal place, it can be executed very efficiently.< <ETX xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">></ETX>
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