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Papers/Knowledge-Enriched Transformer for Emotion Detection in Te...

Knowledge-Enriched Transformer for Emotion Detection in Textual Conversations

Peixiang Zhong, Di Wang, Chunyan Miao

2019-09-24IJCNLP 2019 11Emotion Recognition in ConversationGraph Attention
PaperPDFCode(official)

Abstract

Messages in human conversations inherently convey emotions. The task of detecting emotions in textual conversations leads to a wide range of applications such as opinion mining in social networks. However, enabling machines to analyze emotions in conversations is challenging, partly because humans often rely on the context and commonsense knowledge to express emotions. In this paper, we address these challenges by proposing a Knowledge-Enriched Transformer (KET), where contextual utterances are interpreted using hierarchical self-attention and external commonsense knowledge is dynamically leveraged using a context-aware affective graph attention mechanism. Experiments on multiple textual conversation datasets demonstrate that both context and commonsense knowledge are consistently beneficial to the emotion detection performance. In addition, the experimental results show that our KET model outperforms the state-of-the-art models on most of the tested datasets in F1 score.

Results

TaskDatasetMetricValueModel
Emotion RecognitionEmoryNLPWeighted-F134.39KET
Emotion RecognitionMELDWeighted-F158.18KET
Emotion RecognitionDailyDialogMicro-F153.37KET
Emotion RecognitionECMicro-F10.7413KET
Emotion RecognitionIEMOCAPMicro-F161.11KET
Emotion RecognitionIEMOCAPWeighted-F161.33KET

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