Empathetic Dialogue Generation With Pre-trained Roberta-gpt2 And External Knowledge | Awesome LLM Papers

Empathetic Dialogue Generation With Pre-trained Roberta-gpt2 And External Knowledge

Ye Liu, Wolfgang Maier, Wolfgang Minker, Stefan Ultes Β· Lecture Notes in Electrical Engineering Β· 2021

One challenge for dialogue agents is to recognize feelings of the conversation partner and respond accordingly. In this work, RoBERTa-GPT2 is proposed for empathetic dialogue generation, where the pre-trained auto-encoding RoBERTa is utilised as encoder and the pre-trained auto-regressive GPT-2 as decoder. With the combination of the pre-trained RoBERTa and GPT-2, our model realizes a new state-of-the-art emotion accuracy. To enable the empathetic ability of RoBERTa-GPT2 model, we propose a commonsense knowledge and emotional concepts extractor, in which the commonsensible and emotional concepts of dialogue context are extracted for the GPT-2 decoder. The experiment results demonstrate that the empathetic dialogue generation benefits from both pre-trained encoder-decoder architecture and external knowledge.

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