Procedure Based on Semantic Similarity for Merging Ontologies by Non-Redundant Knowledge Enrichment

C. Rangel, J. Altamiranda, Mariela Cerrada-Lozada, J. Aguilar
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引用次数: 6

Abstract

The merging procedures of two ontologies are mostly related to the enrichment of one of the input ontologies, i.e. the knowledge of the aligned concepts from one ontology are copied into the other ontology. As a consequence, the resulting new ontology extends the original knowledge of the base ontology, but the unaligned concepts of the other ontology are not considered in the new extended ontology. On the other hand, there are experts-aided semi-automatic approaches to accomplish the task of including the knowledge that is left out from the resulting merged ontology and debugging the possible concept redundancy. With the aim of facing the posed necessity of including all the knowledge of the ontologies to be merged without redundancy, this article proposes an automatic approach for merging ontologies, which is based on semantic similarity measures and exhaustive searching along of the closest concepts. The authors' approach was compared to other merging algorithms, and good results are obtained in terms of completeness, relationships and properties, without creating redundancy.
基于语义相似度的非冗余知识充实本体合并方法
两个本体的合并过程主要是对其中一个输入本体的丰富,即将一个本体中对齐的概念的知识复制到另一个本体中。因此,产生的新本体扩展了基础本体的原始知识,但在新的扩展本体中不考虑其他本体的未对齐概念。另一方面,有专家辅助的半自动方法来完成包括结果合并本体中遗漏的知识和调试可能的概念冗余的任务。针对合并本体中需要包含所有知识而不存在冗余的问题,本文提出了一种基于语义相似度度量和穷举搜索的本体自动合并方法。将该方法与其他合并算法进行了比较,在不产生冗余的情况下,在完整性、关系和性质方面都取得了良好的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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