Papers › emoji2vec: Learning Emoji Representations from their Description

emoji2vec: Learning Emoji Representations from their Description

27 Sep 2016WS 2016 11arXiv:1609.08359archive 2025-07-28

Ben Eisner, Tim Rocktäschel, Isabelle Augenstein, Matko Bošnjak, Sebastian Riedel

Many current natural language processing applications for social media rely on representation learning and utilize pre-trained word embeddings. There currently exist several publicly-available, pre-trained sets of word embeddings, but they contain few or no emoji representations even as emoji usage in social media has increased. In this paper we release emoji2vec, pre-trained embeddings for all Unicode emoji which are learned from their description in the Unicode emoji standard. The resulting emoji embeddings can be readily used in downstream social natural language processing applications alongside word2vec. We demonstrate, for the downstream task of sentiment analysis, that emoji embeddings learned from short descriptions outperforms a skip-gram model trained on a large collection of tweets, while avoiding the need for contexts in which emoji need to appear frequently in order to estimate a representation.

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uclmr/emoji2vec officialmentioned in papermentioned on GitHubtf report
hougrammer/emoji_project mentioned on GitHubtf report
joonasrooben/NLP-text2emoji mentioned on GitHubtf report
pwiercinski/emoji2vec_pytorch mentioned on GitHubpytorch report
qq345736500/sarcasm mentioned on GitHubtfMIT report
uclnlp/emoji2vec mentioned on GitHubtf report
yagudinamir/emoji mentioned on GitHub report

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Representation LearningSentiment AnalysisWord Embeddings

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