Papers › Effective Sequence-to-Sequence Dialogue State Tracking

Effective Sequence-to-Sequence Dialogue State Tracking

31 Aug 2021EMNLP 2021 11arXiv:2108.13990archive 2025-07-28

Jeffrey Zhao, Mahdis Mahdieh, Ye Zhang, Yuan Cao, Yonghui Wu

Sequence-to-sequence models have been applied to a wide variety of NLP tasks, but how to properly use them for dialogue state tracking has not been systematically investigated. In this paper, we study this problem from the perspectives of pre-training objectives as well as the formats of context representations. We demonstrate that the choice of pre-training objective makes a significant difference to the state tracking quality. In particular, we find that masked span prediction is more effective than auto-regressive language modeling. We also explore using Pegasus, a span prediction-based pre-training objective for text summarization, for the state tracking model. We found that pre-training for the seemingly distant summarization task works surprisingly well for dialogue state tracking. In addition, we found that while recurrent state context representation works also reasonably well, the model may have a hard time recovering from earlier mistakes. We conducted experiments on the MultiWOZ 2.1-2.4, WOZ 2.0, and DSTC2 datasets with consistent observations.

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smartyfh/MultiWOZ2.4 officialmentioned in papermentioned on GitHub report

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Tasks

Dialogue State TrackingLanguage ModelingLanguage ModellingMulti-domain Dialogue State TrackingText Summarization

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Dialogue State Tracking Second dialogue state tracking challenge T5 (span) Joint 73.6 #4 of 7 Archive leaderboard report
Dialogue State Tracking Wizard-of-Oz T5 (span) Joint 91 #3 of 10 Archive leaderboard report

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