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Aggregating news reporting sentiment by means of hesitant linguistic terms

  • Jennifer Nguyen
  • , Albert Armisen
  • , N. Agell*
  • , Ángel Saz
  • *Autor/a de correspondencia de este trabajo

Producción científica: Capítulo del libroContribución a congreso/conferenciarevisión exhaustiva

Resumen

This paper focuses on analyzing the underlying sentiment of news articles, taken to be factual rather than comprised of opinions. The sentiment of each article towards a specific theme can be expressed in fuzzy linguistic terms and aggregated into a centralized sentiment which can be trended. This allows the interpretation of sentiments without conversion to numerical values. The methodology, as defined, maintains the range of sentiment articulated in each news article. In addition, a measure of consensus is defined for each day as the degree to which the articles published agree in terms of the sentiment presented. A real case example is presented for a controversial event in recent history with the analysis of 82,054 articles over a three day period. The results show that considering linguistic terms obtain compatible values to numerical values, however in a more humanistic expression. In addition, the methodology returns an internal consensus among all the articles written each day for a specific country. Therefore, hesitant linguistic terms can be considered well suited for expressing the tone of articles.

Idioma originalInglés
Título de la publicación alojadaModeling Decisions for Artificial Intelligence
Subtítulo de la publicación alojada17th International Conference, MDAI 2020, Proceedings
EditoresVicenc Torra, Yasuo Narukawa, Jordi Nin, Núria Agell
EditorialSpringer
Páginas252-260
Número de páginas9
ISBN (versión impresa)9783030575236
DOI
EstadoPublicada - 2020
EventoModeling Decisions with Artificial Intelligence (MDAI 2020): Aggregating news reporting sentiment by means of hesitant linguistic terms - Barcelona, Espana
Duración: 2 sept 20205 sept 2020

Serie de la publicación

NombreLecture Notes in Computer Science (including subseries Lecture Notes in Artificial Intelligence and Lecture Notes in Bioinformatics)
Volumen12256 LNAI
ISSN (versión impresa)0302-9743
ISSN (versión digital)1611-3349

Conferencia

ConferenciaModeling Decisions with Artificial Intelligence (MDAI 2020)
País/TerritorioEspana
CiudadBarcelona
Período2/09/205/09/20

Huella

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