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SEMANTIC MAPPING BASED ON ONTOLOGY AND A BAYESIAN NETWORK AND ITS APPLICATION TO CAD AND PDM INTEGRATION

机译:基于本体和贝叶斯网络的语义映射及其在CAD和PDM集成中的应用

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摘要

In a Collaborative Product Commerce (CPC) environment, it is necessary that the participants in a product life cycle should share semantics of terms although they may be represented differently. In order to manage this sharing of semantics, it is necessary to recognize automatically that two terms represented differently can have equivalent semantics. To this end, a semantic mapping logic that utilizes ontology and a Bayesian Network is proposed. The proposed approach consists of three phases: character matching, definition comparisons and similarity checking. First, character matching maps two terms that have identical character strings; second, the definition comparison step compares the two terms using their ontological definitions. Finally, similarity checking evaluates the similarity between two terms using their ontological structure and the Bayesian network. This final phase consists of three steps. Firstly, it calculates similarity between two terms in terms of their character strings and ontological definitions. After this step, it constructs a Bayesian network with the paired terms based on their ontological structure. Finally, it infers whether the pairs are mapped based on the network through a probability equation. The proposed approach is also applied to the integration of the CAD and PDM systems.
机译:在协作产品商务(CPC)环境中,产品生命周期中的参与者有必要共享术语的语义,尽管它们可能以不同的方式表示。为了管理语义的这种共享,必须自动认识到以不同方式表示的两个术语可以具有等效的语义。为此,提出了一种利用本体和贝叶斯网络的语义映射逻辑。所提出的方法包括三个阶段:字符匹配,定义比较和相似性检查。首先,字符匹配映射具有相同字符串的两个术语;第二,定义比较步骤使用它们的本体定义比较这两个术语。最后,相似性检查使用两个词的本体结构和贝叶斯网络评估两个词之间的相似性。最后阶段包括三个步骤。首先,它根据字符串和本体定义来计算两个术语之间的相似度。在此步骤之后,它根据配对词的本体结构构造一个贝叶斯网络。最后,它通过概率方程推断是否基于网络映射了这些对。所提出的方法也适用于CAD和PDM系统的集成。

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