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Leveraging Slot Descriptions for Zero-Shot Cross-Domain Dialogue State Tracking (2105.04222v1)

Published 10 May 2021 in cs.CL

Abstract: Zero-shot cross-domain dialogue state tracking (DST) enables us to handle task-oriented dialogue in unseen domains without the expense of collecting in-domain data. In this paper, we propose a slot description enhanced generative approach for zero-shot cross-domain DST. Specifically, our model first encodes dialogue context and slots with a pre-trained self-attentive encoder, and generates slot values in an auto-regressive manner. In addition, we incorporate Slot Type Informed Descriptions that capture the shared information across slots to facilitate cross-domain knowledge transfer. Experimental results on the MultiWOZ dataset show that our proposed method significantly improves existing state-of-the-art results in the zero-shot cross-domain setting.

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Authors (10)
  1. Zhaojiang Lin (45 papers)
  2. Bing Liu (211 papers)
  3. Seungwhan Moon (28 papers)
  4. Paul Crook (10 papers)
  5. Zhenpeng Zhou (7 papers)
  6. Zhiguang Wang (24 papers)
  7. Zhou Yu (206 papers)
  8. Andrea Madotto (64 papers)
  9. Eunjoon Cho (6 papers)
  10. Rajen Subba (8 papers)
Citations (85)