首页> 外文会议>European Semantic Web Conference(ESWC 2006); 20060611-14; Budva, Montenegro >An Iterative Algorithm for Ontology Mapping Capable of Using Training Data
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An Iterative Algorithm for Ontology Mapping Capable of Using Training Data

机译:一种使用训练数据的本体映射迭代算法

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摘要

We present a new iterative algorithm for ontology mapping where we combine standard string distance metrics with a structural similarity measure that is based on a vector representation. After all pairwise similarities between concepts have been calculated we apply well-known graph algorithms to obtain an optimal matching. Our algorithm is also capable of using existing mappings to a third ontology as training data to improve accuracy. We compare the performance of our algorithm with the performance of other alignment algorithms and show that our algorithm can compete well against the current state-of-the-art.
机译:我们提出了一种新的本体映射迭代算法,该算法将标准字符串距离度量与基于矢量表示的结构相似性度量相结合。在计算完概念之间的所有成对相似性之后,我们应用众所周知的图算法来获得最佳匹配。我们的算法还能够使用到第三本体的现有映射作为训练数据来提高准确性。我们将我们的算法的性能与其他对齐算法的性能进行了比较,并表明我们的算法可以与当前的最新技术竞争良好。

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