Emotion Detection on TV Show Transcripts with Sequence-based Convolutional Neural Networks

August 14, 2017 ยท Declared Dead ยท ๐Ÿ› AAAI Workshops

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Authors Sayyed M. Zahiri, Jinho D. Choi arXiv ID 1708.04299 Category cs.CL: Computation & Language Citations 258 Venue AAAI Workshops Last Checked 2 months ago
Abstract
While there have been significant advances in detecting emotions from speech and image recognition, emotion detection on text is still under-explored and remained as an active research field. This paper introduces a corpus for text-based emotion detection on multiparty dialogue as well as deep neural models that outperform the existing approaches for document classification. We first present a new corpus that provides annotation of seven emotions on consecutive utterances in dialogues extracted from the show, Friends. We then suggest four types of sequence-based convolutional neural network models with attention that leverage the sequence information encapsulated in dialogue. Our best model shows the accuracies of 37.9% and 54% for fine- and coarse-grained emotions, respectively. Given the difficulty of this task, this is promising.
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