Please use this identifier to cite or link to this item: http://hdl.handle.net/10174/30462

Title: Entity Relation Extraction from News Articles in Portuguese for Competitive Intelligence based on BERT
Authors: De Los Reyes, Daniel
Trajano, Douglas
Manssour, Isabel
Vieira, Renata
Bordini, Rafael
Keywords: Entidades nomeadas
Business Intelligence
Extração de Informação
Issue Date: Oct-2021
Publisher: Springer
Citation: Reyes D.D.L., Trajano D., Manssour I.H., Vieira R., Bordini R.H. (2021) Entity Relation Extraction from News Articles in Portuguese for Competitive Intelligence Based on BERT. In: Britto A., Valdivia Delgado K. (eds) Intelligent Systems. BRACIS 2021. Lecture Notes in Computer Science, vol 13074. Springer, Cham. https://doi.org/10.1007/978-3-030-91699-2_31
Abstract: Competitive intelligence (CI) is a relevant area of a corporation and can support the strategic business area by showing those responsible, helping decision making on how to position an organization in the market. This work uses the Bidirectional Transformer Encoding Representations (BERT) to process a sentence and its named entities and extract the parts of the sentences that represent or describe the semantic relationship between these named entities. The approach was developed for the Portuguese language, considering the financial domain and exploring deep linguistic representations without using other lexical-semantic resources. The results of the experiments show a precision of 73.5% using the Jaccard metric that measures the similarity between sentences. A second contribution of this work is the manually constructed dataset with more than 4.500 tuples (phrase, entity, entity) annotated.
URI: http://hdl.handle.net/10174/30462
Type: article
Appears in Collections:CIDEHUS - Artigos em Livros de Actas/Proceedings

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