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JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment

Cross-lingual knowledge alignment is the cornerstone in building a comprehensive knowledge graph (KG), which can benefit various knowledge-driven applications. As the structures of KGs are usually sparse, attributes of entities may play an important role in aligning the entities. However, the hetero...

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Detalles Bibliográficos
Autores principales: Chen, Bo, Zhang, Jing, Tang, Xiaobin, Chen, Hong, Li, Cuiping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7206167/
http://dx.doi.org/10.1007/978-3-030-47426-3_65
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author Chen, Bo
Zhang, Jing
Tang, Xiaobin
Chen, Hong
Li, Cuiping
author_facet Chen, Bo
Zhang, Jing
Tang, Xiaobin
Chen, Hong
Li, Cuiping
author_sort Chen, Bo
collection PubMed
description Cross-lingual knowledge alignment is the cornerstone in building a comprehensive knowledge graph (KG), which can benefit various knowledge-driven applications. As the structures of KGs are usually sparse, attributes of entities may play an important role in aligning the entities. However, the heterogeneity of the attributes across KGs prevents from accurately embedding and comparing entities. To deal with the issue, we propose to model the interactions between attributes, instead of globally embedding an entity with all the attributes. We further propose a joint framework to merge the alignments inferred from the attributes and the structures. Experimental results show that the proposed model outperforms the state-of-art baselines by up to 38.48% HitRatio@1. The results also demonstrate that our model can infer the alignments between attributes, relationships and values, in addition to entities.
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spelling pubmed-72061672020-05-08 JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment Chen, Bo Zhang, Jing Tang, Xiaobin Chen, Hong Li, Cuiping Advances in Knowledge Discovery and Data Mining Article Cross-lingual knowledge alignment is the cornerstone in building a comprehensive knowledge graph (KG), which can benefit various knowledge-driven applications. As the structures of KGs are usually sparse, attributes of entities may play an important role in aligning the entities. However, the heterogeneity of the attributes across KGs prevents from accurately embedding and comparing entities. To deal with the issue, we propose to model the interactions between attributes, instead of globally embedding an entity with all the attributes. We further propose a joint framework to merge the alignments inferred from the attributes and the structures. Experimental results show that the proposed model outperforms the state-of-art baselines by up to 38.48% HitRatio@1. The results also demonstrate that our model can infer the alignments between attributes, relationships and values, in addition to entities. 2020-04-17 /pmc/articles/PMC7206167/ http://dx.doi.org/10.1007/978-3-030-47426-3_65 Text en © Springer Nature Switzerland AG 2020 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Article
Chen, Bo
Zhang, Jing
Tang, Xiaobin
Chen, Hong
Li, Cuiping
JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title_full JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title_fullStr JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title_full_unstemmed JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title_short JarKA: Modeling Attribute Interactions for Cross-lingual Knowledge Alignment
title_sort jarka: modeling attribute interactions for cross-lingual knowledge alignment
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7206167/
http://dx.doi.org/10.1007/978-3-030-47426-3_65
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