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Knowledge-Grounded Dialogue Generation with Pre-trained Language Models

17 October 2020
Xueliang Zhao
Wei Yu Wu
Can Xu
Chongyang Tao
Dongyan Zhao
Rui Yan
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Abstract

We study knowledge-grounded dialogue generation with pre-trained language models. To leverage the redundant external knowledge under capacity constraint, we propose equipping response generation defined by a pre-trained language model with a knowledge selection module, and an unsupervised approach to jointly optimizing knowledge selection and response generation with unlabeled dialogues. Empirical results on two benchmarks indicate that our model can significantly outperform state-of-the-art methods in both automatic evaluation and human judgment.

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