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Interval Certitude Rule Base Inference Method using the Evidential Reasoning

机译:基于证据推理的区间确定性规则库推理方法

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Development of rule-based systems is an important research area for artificial intelligence and decision making, as rule base is one of the most general purpose forms for expressing human knowledge. In this paper, a new rule-based representation and its inference method based on evidential reasoning are presented based on operational research and fuzzy set theory. In this rule base, the uncertainties of human knowledge and human judgment are designed with interval certitude degrees which are embedded in the antecedent terms and consequent terms. The knowledge representation and inference framework offer an improvement of the recently developed rule base inference method, and the evidential reasoning approach is still applied to the rule fusion. It is noteworthy that the uncertainties will be defined and modeled using interval certitude degrees. In the end, an illustrative example is provided to illustrate the proposed knowledge representation and inference method as well as demonstrate its effectiveness by comparing with some existing approaches.
机译:基于规则的系统的开发是人工智能和决策制定的重要研究领域,因为规则库是表达人类知识的最通用形式之一。本文基于运筹学和模糊集理论,提出了一种新的基于证据推理的基于规则的表示方法及其推理方法。在该规则库中,人类知识和人类判断力的不确定性以区间确定度设计,区间确定度嵌入在先行词和后继项中。知识表示和推理框架提供了对最近开发的规则库推理方法的改进,而证据推理方法仍被应用于规则融合。值得注意的是,不确定性将使用区间确定度进行定义和建模。最后,提供了一个示例性例子来说明所提出的知识表示和推理方法,并通过与一些现有方法进行比较来证明其有效性。

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