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Mining Scholarly Publications for Scientific Knowledge Graph Construction

Authors :
Hitzler, P
Kirrane, S
Hartig, O
de Boer, V
Schlobach, S
Vidal, ME
Maleshkova, M
Hammar, K
Lasierra, N
Stadtmüller, S
Hose, K
Verborgh, R
Buscaldi, D
Dessì, D
Motta, E
Osborne, F
Reforgiato Recupero, D
Buscaldi D
Dessì D
Motta E
Osborne F
Reforgiato Recupero D
Hitzler, P
Kirrane, S
Hartig, O
de Boer, V
Schlobach, S
Vidal, ME
Maleshkova, M
Hammar, K
Lasierra, N
Stadtmüller, S
Hose, K
Verborgh, R
Buscaldi, D
Dessì, D
Motta, E
Osborne, F
Reforgiato Recupero, D
Buscaldi D
Dessì D
Motta E
Osborne F
Reforgiato Recupero D
Publication Year :
2019

Abstract

In this paper, we present a preliminary approach that uses a set of NLP and Deep Learning methods for extracting entities and relationships from research publications and then integrates them in a Knowledge Graph. More specifically, we (i) tackle the challenge of knowledge extraction by employing several state-of-the-art Natural Language Processing and Text Mining tools, (ii) describe an approach for integrating entities and relationships generated by these tools, and (iii) analyse an automatically generated Knowledge Graph including 10, 425 entities and 25, 655 relationships in the field of Semantic Web.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1334332049
Document Type :
Electronic Resource