2022
DOI: 10.3390/app12115472
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Self-Supervised Sentiment Analysis in Spanish to Understand the University Narrative of the Colombian Conflict

Abstract: Sentiment analysis is a relevant area in the natural language processing context–(NLP) that allows extracting opinions about different topics such as customer service and political elections. Sentiment analysis is usually carried out through supervised learning approaches and using labeled data. However, obtaining such labels is generally expensive or even infeasible. The above problems can be faced by using models based on self-supervised learning, which aims to deal with various machine learning paradigms in… Show more

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Cited by 2 publications
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