Emo2Vec: Learning Generalized Emotion Representation by Multi-task Training
September 12, 2018 ยท Declared Dead ยท ๐ WASSA@EMNLP
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Authors
Peng Xu, Andrea Madotto, Chien-Sheng Wu, Ji Ho Park, Pascale Fung
arXiv ID
1809.04505
Category
cs.CL: Computation & Language
Citations
74
Venue
WASSA@EMNLP
Last Checked
5 months ago
Abstract
In this paper, we propose Emo2Vec which encodes emotional semantics into vectors. We train Emo2Vec by multi-task learning six different emotion-related tasks, including emotion/sentiment analysis, sarcasm classification, stress detection, abusive language classification, insult detection, and personality recognition. Our evaluation of Emo2Vec shows that it outperforms existing affect-related representations, such as Sentiment-Specific Word Embedding and DeepMoji embeddings with much smaller training corpora. When concatenated with GloVe, Emo2Vec achieves competitive performances to state-of-the-art results on several tasks using a simple logistic regression classifier.
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