Zero-Resource Knowledge-Grounded Dialogue Generation
Linxiao Li, Can Xu, Wei Wu, Yufan Zhao, Xueliang Zhao, Chongyang Tao
摘要
While neural conversation models have shown great potentials towards generating informative and engaging responses via introducing external knowledge, learning such a model often requires knowledge-grounded dialogues that are difficult to obtain. To overcome the data challenge and reduce the cost of building a knowledge-grounded dialogue system, we explore the problem under a zero-resource setting by assuming no context-knowledge-response triples are needed for training. To this end, we propose representing the knowledge that bridges a context and a response and the way that the knowledge is expressed as latent variables, and devise a variational approach that can effectively estimate a generation model from a dialogue corpus and a knowledge corpus that are independent with each other. Evaluation results on three benchmarks of knowledge-grounded dialogue generation indicate that our model can achieve comparable performance with state-of-the-art methods that rely on knowledge-grounded dialogues for training, and exhibits a good generalization ability over different topics and different datasets.
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引用它的顶会 Paper18
- Multimodal Dialogue Response GenerationQingfeng Sun, Yujing Wang, Can Xu, Kai Zheng 等ACL 2022 · 被引用 58 次
- Think Before You Speak: Explicitly Generating Implicit Commonsense Knowledge for Response GenerationPei Zhou, Karthik Gopalakrishnan, Behnam Hedayatnia, Seokhwan Kim 等ACL 2022 · 被引用 45 次
- Initiative-Aware Self-Supervised Learning for Knowledge-Grounded ConversationsChuan Meng, Pengjie Ren, Zhumin Chen, Zhaochun Ren 等SIGIR 2021 · 被引用 34 次
- A Three-Stage Learning Framework for Low-Resource Knowledge-Grounded Dialogue GenerationShilei Liu, Xiaofeng Zhao, Bochao Li, Feiliang Ren 等EMNLP 2021 · 被引用 24 次
- CoLV: A Collaborative Latent Variable Model for Knowledge-Grounded Dialogue GenerationHaolan Zhan, Lei Shen, Hongshen Chen, Hainan ZhangEMNLP 2021 · 被引用 15 次
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