DepecheMood++: a Bilingual Emotion Lexicon Built Through Simple Yet Powerful Techniques
October 08, 2018 ยท Declared Dead ยท ๐ IEEE Transactions on Affective Computing
"No code URL or promise found in abstract"
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Authors
Oscar Araque, Lorenzo Gatti, Jacopo Staiano, Marco Guerini
arXiv ID
1810.03660
Category
cs.CL: Computation & Language
Cross-listed
cs.CY
Citations
65
Venue
IEEE Transactions on Affective Computing
Last Checked
4 months ago
Abstract
Several lexica for sentiment analysis have been developed and made available in the NLP community. While most of these come with word polarity annotations (e.g. positive/negative), attempts at building lexica for finer-grained emotion analysis (e.g. happiness, sadness) have recently attracted significant attention. Such lexica are often exploited as a building block in the process of developing learning models for which emotion recognition is needed, and/or used as baselines to which compare the performance of the models. In this work, we contribute two new resources to the community: a) an extension of an existing and widely used emotion lexicon for English; and b) a novel version of the lexicon targeting Italian. Furthermore, we show how simple techniques can be used, both in supervised and unsupervised experimental settings, to boost performances on datasets and tasks of varying degree of domain-specificity.
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