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Generating knowledge graphs by employing Natural Language Processing and Machine Learning techniques within the scholarly domain

Dessì, Danilo 1; Osborne, Francesco; Reforgiato Recupero, Diego; Buscaldi, Davide; Motta, Enrico
1 Karlsruher Institut für Technologie (KIT)

Abstract:

The continuous growth of scientific literature brings innovations and, at the same time, raises new challenges. One of them is related to the fact that its analysis has become difficult due to the high volume of published papers for which manual effort for annotations and management is required. Novel technological infrastructures are needed to help researchers, research policy makers, and companies to time-efficiently browse, analyse, and forecast scientific research. Knowledge graphs i.e., large networks of entities and relationships, have proved to be effective solution in this space. Scientific knowledge graphs focus on the scholarly domain and typically contain metadata describing research publications such as authors, venues, organizations, research topics, and citations. However, the current generation of knowledge graphs lacks of an explicit representation of the knowledge presented in the research papers. As such, in this paper, we present a new architecture that takes advantage of Natural Language Processing and Machine Learning methods for extracting entities and relationships from research publications and integrates them in a large-scale knowledge graph. ... mehr


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Originalveröffentlichung
DOI: 10.1016/j.future.2020.10.026
Scopus
Zitationen: 47
Dimensions
Zitationen: 54
Zugehörige Institution(en) am KIT Institut für Angewandte Informatik und Formale Beschreibungsverfahren (AIFB)
Publikationstyp Zeitschriftenaufsatz
Publikationsmonat/-jahr 03.2021
Sprache Englisch
Identifikator ISSN: 0167-739X, 1872-7115
KITopen-ID: 1000126629
Erschienen in Future generation computer systems
Verlag Elsevier
Band 116
Seiten 253-264
Nachgewiesen in Web of Science
Dimensions
Scopus
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