Chenyue Wang
2022
A Token-pair Framework for Information Extraction from Dialog Transcripts in SereTOD Challenge
Chenyue Wang
|
Xiangxing Kong
|
Mengzuo Huang
|
Feng Li
|
Jian Xing
|
Weidong Zhang
|
Wuhe Zou
Proceedings of the Towards Semi-Supervised and Reinforced Task-Oriented Dialog Systems (SereTOD)
This paper describes our solution for Sere- TOD Challenge Track 1: Information extraction from dialog transcripts. We propose a token-pair framework to simultaneously identify entity and value mentions and link them into corresponding triples. As entity mentions are usually coreferent, we adopt a baseline model for coreference resolution. We exploit both annotated transcripts and unsupervised dialogs for training. With model ensemble and post-processing strategies, our system significantly outperforms the baseline solution and ranks first in triple f1 and third in entity f1.
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Co-authors
- Xiangxing Kong 1
- Mengzuo Huang 1
- Feng Li 1
- Jian Xing 1
- Weidong Zhang 1
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- Wuhe Zou 1