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  4. A first experiment on including text literals in KGlove
 
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2018
Conference Paper
Title

A first experiment on including text literals in KGlove

Abstract
Graph embedding models produce embedding vectors for en- tities and relations in Knowledge Graphs, often without taking literal properties into account. We show an initial idea based on the combi-nation of global graph structure with additional information provided by textual information in properties. Our initial experiment shows that this approach might be useful, but does not clearly outperform earlier approaches when evaluated on machine learning tasks.
Author(s)
Cochez, M.
Garofalo, M.
Lenßen, J.
Pellegrino, M.A.
Mainwork
Joint Proceedings of ISWC 2018 Workshops SemDeep-4 and NLIWOD-4. Online resource  
Conference
International Semantic Web Conference (ISWC) 2018  
Workshop on Semantic Deep Learning (SemDeep) 2018  
Natural Language Interfaces for the Web of Data Workshop (NLIWOD) 2018  
Link
Link
Language
English
Fraunhofer-Institut für Angewandte Informationstechnik FIT  
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