GraphDialog: Integrating Graph Knowledge into End-to-End Task-Oriented Dialogue Systems
Shiquan Yang, Rui Zhang, Sarah M. Erfani
Abstract
End-to-end task-oriented dialogue systems aim to generate system responses directly from plain text inputs. There are two challenges for such systems: one is how to effectively incorporate external knowledge bases (KBs) into the learning framework; the other is how to accurately capture the semantics of dialogue history. In this paper, we address these two challenges by exploiting the graph structural information in the knowledge base and in the dependency parsing tree of the dialogue. To effectively leverage the structural information in dialogue history, we propose a new recurrent cell architecture which allows representation learning on graphs. To exploit the relations between entities in KBs, the model combines multi-hop reasoning ability based on the graph structure. Experimental results show that the proposed model achieves consistent improvement over state-of-the-art models on two different task-oriented dialogue datasets.
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Install the CLIlune papers fulltext 8ea01399-2a81-4282-bb41-3e9dd89b5e32Cited by top-tier papers13
- CAKE: A Scalable Commonsense-Aware Framework For Multi-View Knowledge Graph CompletionGuanglin Niu, Bo Li, Yongfei Zhang, Shiliang PuACL 2022 · 56 citations
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- Prix-LM: Pretraining for Multilingual Knowledge Base ConstructionWenxuan Zhou, Fangyu Liu, Ivan Vulic, Nigel Collier et al.ACL 2022 · 21 citations
- GraphMemDialog: Optimizing End-to-End Task-Oriented Dialog Systems Using Graph Memory NetworksJie Wu, Ian G. Harris, Hongzhi ZhaoAAAI 2022 · 20 citations
- An Interpretable Neuro-Symbolic Reasoning Framework for Task-Oriented Dialogue GenerationShiquan Yang, Rui Zhang, Sarah M. Erfani, Jey Han LauACL 2022 · 17 citations
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