Exploring Term Networks for Semantic Search over RDF Knowledge Graphs.

Communications in Computer and Information Science(2016)

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摘要
Information retrieval approaches are considered as a key technology to empower lay users to access the Web of Data. A large number of related approaches such as Question Answering and Semantic Search have been developed to address this problem. While Question Answering promises more accurate results by returning a specific answer, Semantic Search engines are designed to retrieve the best top-K ranked resources. In this work, we propose *path, a Semantic Search approach that explores term networks for querying RDF knowledge graphs. The adequacy of the approach is evaluated employing benchmark datasets against state-of-the-art Question Answering as well as Semantic Search systems. The results show that *path achieves better F-1-score than the currently best performing Semantic Search system.
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关键词
Semantic Search, Term Network, Literal Vertex, DBpedia Entities, Entity Labels
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