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Belief rule-base inference methodology using the evidential reasoning Approach-RIMER

机译:使用证据推理方法-RIMER的基于信念的基于规则的推理方法

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In this paper, a generic rule-base inference methodology using the evidential reasoning (RIMER) approach is proposed. Existing knowledge-base structures are first examined, and knowledge representation schemes under uncertainty are then briefly analyzed. Based on this analysis, a new knowledge representation scheme in a rule base is proposed using a belief structure. In this scheme, a rule base is designed with belief degrees embedded in all possible consequents of a rule. Such a rule base is capable of capturing vagueness, incompleteness, and nonlinear causal relationships, while traditional if-then rules can be represented as a special case. Other knowledge representation parameters such as the weights of both attributes and rules are also investigated in the scheme. In an established rule base, an input to an antecedent attribute is transformed into a belief distribution. Subsequently, inference in such a rule base is implemented using the evidential reasoning (ER) approach. The scheme is further extended to inference in hierarchical rule bases. A numerical study is provided to illustrate the potential applications of the proposed methodology.
机译:本文提出了一种基于证据推理(RIMER)方法的通用规则库推理方法。首先检查现有的知识库结构,然后简要分析不确定性下的知识表示方案。在此基础上,提出了一种基于信念结构的规则库知识表示方案。在此方案中,设计了一个规则库,其中在所有可能的规则结果中嵌入了置信度。这样的规则库能够捕获模糊性,不完整性和非线性因果关系,而传统的if-then规则可以表示为特例。该方案中还研究了其他知识表示参数,例如属性和规则的权重。在已建立的规则库中,前项属性的输入将转换为信念分布。随后,使用证据推理(ER)方法在这种规则库中进行推理。该方案进一步扩展到分层规则库中的推理。提供了数值研究来说明所提出方法的潜在应用。

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