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Perspective-taking and Pragmatics for Generating Empathetic Responses Focused on Emotion Causes

Cited 0 time in Web of Science Cited 31 time in Scopus
Authors

Kim, Hyunwoo; Kim, Byeongchang; Kim, Gun Hee

Issue Date
2021-01
Publisher
Association for Computational Linguistics (ACL)
Citation
EMNLP 2021 - 2021 Conference on Empirical Methods in Natural Language Processing, Proceedings, pp.2227-2240
Abstract
© 2021 Association for Computational LinguisticsEmpathy is a complex cognitive ability based on the reasoning of others' affective states. In order to better understand others and express stronger empathy in dialogues, we argue that two issues must be tackled at the same time: (i) identifying which word is the cause for the other's emotion from his or her utterance and (ii) reflecting those specific words in the response generation. However, previous approaches for recognizing emotion cause words in text require sub-utterance level annotations, which can be demanding. Taking inspiration from social cognition, we leverage a generative estimator to infer emotion cause words from utterances with no word-level label. Also, we introduce a novel method based on pragmatics to make dialogue models focus on targeted words in the input during generation. Our method is applicable to any dialogue models with no additional training on the fly. We show our approach improves multiple best performing dialogue agents on generating more focused empathetic responses in terms of both automatic and human evaluation.
URI
https://hdl.handle.net/10371/183773
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