Turn-Level Active Learning for Dialogue State Tracking
Zihan Zhang, Meng Fang, Fanghua Ye, Ling Chen, Mohammad-Reza Namazi-Rad
摘要
Dialogue state tracking (DST) plays an important role in task-oriented dialogue systems. However, collecting a large amount of turnby-turn annotated dialogue data is costly and inefficient. In this paper, we propose a novel turn-level active learning framework for DST to actively select turns in dialogues to annotate. Given the limited labelling budget, experimental results demonstrate the effectiveness of selective annotation of dialogue turns. Additionally, our approach can effectively achieve comparable DST performance to traditional training approaches with significantly less annotated data, which provides a more efficient way to annotate new dialogue data 1 .
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- Deep Batch Active Learning by Diverse, Uncertain Gradient Lower BoundsJordan T. Ash, Chicheng Zhang, Akshay Krishnamurthy, John Langford 等ICLR 2020 · 被引用 974 次
- Towards Scalable Multi-Domain Conversational Agents: The Schema-Guided Dialogue DatasetAbhinav Rastogi, Xiaoxue Zang, Srinivas Sunkara, Raghav Gupta 等AAAI 2020 · 被引用 707 次
- Multi-Task Pre-Training for Plug-and-Play Task-Oriented Dialogue SystemYixuan Su, Lei Shu, Elman Mansimov, Arshit Gupta 等ACL 2022 · 被引用 218 次
- TOD-BERT: Pre-trained Natural Language Understanding for Task-Oriented DialogueChien-Sheng Wu, Steven C. H. Hoi, Richard Socher, Caiming XiongEMNLP 2020 · 被引用 210 次
- Efficient Dialogue State Tracking by Selectively Overwriting MemorySungdong Kim, Sohee Yang, Gyuwan Kim, Sang-Woo LeeACL 2020 · 被引用 189 次
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