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Predicting an Election's Outcome Using Sentiment Analysis

机译:使用情感分析预测选举结果

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Political debate - in its essence - carries a robust emotional charge, and social media have become a vast arena for voters to disseminate and discuss the ideas proposed by candidates. The Brazilian presidential elections of 2018 were marked by a high level of polarization, making the discussion of the candidates' ideas an ideological battlefield, full of accusations and verbal aggression, creating an excellent source for sentiment analysis. In this paper, we analyze the emotions of the tweets posted about the presidential candidates of Brazil on Twitter, so that it was possible to identify the emotional profile of the adherents of each of the leading candidates, and thus to discern which emotions had the strongest effects upon the election results. Also, we created a model using sentiment analysis and machine learning, which predicted with a correlation of 0.90 the final result of the election.
机译:政治辩论 - 在其本质上 - 携带强大的情感指控,社交媒体已成为选民传播和讨论候选人提出的想法的广阔竞技场。 2018年的巴西总统选举被高度的极化标志,讨论了候选人的思想思想,充满指责和口头侵略,创造了情绪分析的出色来源。 在本文中,我们分析了推文的情绪,发表了关于巴西的总统候选人在Twitter上,因此可以识别每个领先候选人的追随者的情感概况,从而辨别哪种情绪最强 影响选举结果。 此外,我们使用情感分析和机器学习创建了一种模型,其预测了0.90选举的最终结果的相关性。

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