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ZENODO
Dataset . 2022
License: CC BY
Data sources: Datacite
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ZENODO
Dataset . 2022
License: CC BY
Data sources: Datacite
image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
ZENODO
Dataset . 2022
License: CC BY
Data sources: ZENODO
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Sentiment Analysis outputs based on the combination of three classifiers for news headlines and body text

Authors: Mello, Caio; Cheema, Gullal S.;

Sentiment Analysis outputs based on the combination of three classifiers for news headlines and body text

Abstract

Sentiment Analysis outputs based on the combination of three classifiers for news headlines and body text covering the Olympic legacy of Rio 2016 and London 2012. Data was searched via Google search engine. It is composed of sentiment labels assigned to 1271 news articles in total. News outlets: BBC Daily Mail The Telegraph The Guardian Globo Estadao Folha de S. Paulo Events covered by the articles: London 2012 Olympic legacy Rio 2016 Olympic legacy All classifiers were used in texts in English. Text originally published in Portuguese by the Brazilian media were automatically translated. Sentiment classifiers used: Vader BERT (Trained on Amazon data) BERT (Trained on twitter data - 140) Each document (spreadsheet - xlsx) refers to one outlet and one event (London 2012 or Rio 2016). How were labels assigned to the texts? These labels are a combination of the three sentiment classifiers listed above. If two of them agree with the same label, then this label would be considered as right. Otherwise, the label ���other��� was assigned. For news article body text: the proportion of sentences of each sentiment type was used to assign labels to the whole article instead of averaging the sentence scores. For example, if the proportion of sentences with negative labels is greater than 50%, then the article is assigned a negative label. The documents are composed of the following columns: Rank: the position of the article on Google search ranking Date: date of article's publication (DD/MM/YYYY) Link: article's link Title: article's title Sentiment_Title: final sentiment for article headline Sentiment_Text: final sentiment for article's body text PS: Documents do not include articles' body text. Sentiment is presented in labels as follows: Pos: Positive Neg: Negative Neutral: Neutral other: inconclusive - if each of the 3 classifiers assigned a different label to the article, the label 'other' was used. Therefore, 'other' identifies contradictory results.

Keywords

Olympic Games, Olympic legacy, Sentiment Analysis, News Articles, Brazilian media

EOSC Subjects

Twitter Data

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download
selected citations
These citations are derived from selected sources.
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
views
OpenAIRE UsageCountsViews provided by UsageCounts
downloads
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