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Instance-based ontology matching for e-learning material using an associative pattern classifier

机译:使用关联模式分类器对电子学习资料进行基于实例的本体匹配

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The present work describes a new model of pattern classification and its application to align instances from different ontologies, which are in turn related to e-learning educative content in a Knowledge Society context. In general, ontologies are the fundamental tool inherent to Semantic Web. In particular, the problem of ontology matching is modeled in this paper as a binary pattern classification problem. The original model presented here was validated through experiments, which were done on data taken from the OAEI (Ontology Alignment Evaluation Initiative) 2014 campaign, presented in the OWL (Web Ontology Language) format, as well as on data taken from two international repositories, ADRIADNE and MERLOT, in LOM (Learning Objects Metadata) format. The results obtained show a high precision measurement when compared against some of the best methods present in the state of the art. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本工作描述了一种模式分类的新模型及其在对齐来自不同本体的实例时的应用,这些本体又与知识社会环境中的电子学习教育内容有关。通常,本体是语义Web固有的基本工具。特别是,本文将本体匹配问题建模为二进制模式分类问题。此处展示的原始模型通过实验进行了验证,这些实验是基于以OWL(网络本体语言)格式呈现的OAEI(本体一致性评估倡议)2014活动的数据以及来自两个国际存储库的数据进行的, ADRIADNE和MERLOT,采用LOM(学习对象元数据)格式。与现有技术中某些最佳方法相比,所获得的结果显示出高精度的测量结果。 (C)2016 Elsevier Ltd.保留所有权利。

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