2022
DOI: 10.48550/arxiv.2211.00171
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Using Emotion Embeddings to Transfer Knowledge Between Emotions, Languages, and Annotation Formats

Abstract: The need for emotional inference from text continues to diversify as more and more disciplines integrate emotions into their theories and applications. These needs include inferring different emotion types, handling multiple languages, and different annotation formats. A shared model between different configurations would enable the sharing of knowledge and a decrease in training costs, and would simplify the process of deploying emotion recognition models in novel environments. In this work, we study how we c… Show more

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