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Tree Mining Application to Matching of Heterogeneous Knowledge Representations

机译:树挖掘应用于异构知识表示匹配

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Matching of heterogeneous knowledge sources is of increasing importance in areas such as scientific knowledge management, e-commerce, enterprise application integration, and many emerging Semantic Web applications. With the desire of knowledge sharing and reuse in these fields, it is common that the knowledge coming from different organizations from the same domain is to be matched. We propose a knowledge matching method based on our previously developed tree mining algorithms for extracting frequently occurring subtrees from a tree structured database such as XML. Using the method the common structure among the different representations can be automatically extracted. Our focus is on knowledge matching at the structural level and we use a set of example XML schema documents from the same domain to evaluate the method. We discuss some important issues that arise when applying tree mining algorithms for detection of common document structures. The experiments demonstrate the usefulness of the approach.
机译:异构知识来源的匹配在科学知识管理,电子商务,企业应用集成以及许多新兴语义Web应用程序等领域的重要性越来越重要。随着知识共享和重用在这些字段中的愿望,很常见的是,来自来自同一域的不同组织的知识将匹配。我们提出了一种基于我们先前开发的树挖掘算法的知识匹配方法,用于从诸如XML的树结构数据库中提取经常发生的子树。使用该方法可以自动提取不同表示之间的公共结构。我们的重点是在结构级别匹配,我们使用来自同一域的一组示例XML模式文档来评估方法。我们讨论了应用树挖掘算法以检测公共文档结构时出现的一些重要问题。实验表明了这种方法的有用性。

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