De-biasing Distantly Supervised Named Entity Recognition via Causal Intervention
Wenkai Zhang, Hongyu Lin, Xianpei Han, Le Sun
摘要
Distant supervision tackles the data bottleneck in NER by automatically generating training instances via dictionary matching. Unfortunately, the learning of DS-NER is severely dictionary-biased, which suffers from spurious correlations and therefore undermines the effectiveness and the robustness of the learned models. In this paper, we fundamentally explain the dictionary bias via a Structural Causal Model (SCM), categorize the bias into intra-dictionary and inter-dictionary biases, and identify their causes. Based on the SCM, we learn de-biased DS-NER via causal interventions. For intra-dictionary bias, we conduct backdoor adjustment to remove the spurious correlations introduced by the dictionary confounder. For inter-dictionary bias, we propose a causal invariance regularizer which will make DS-NER models more robust to the perturbation of dictionaries. Experiments on four datasets and three DS-NER models show that our method can significantly improve the performance of DS-NER.
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引用它的顶会 Paper15
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它引用的顶会 Paper7
- Representation Learning via Invariant Causal MechanismsJovana Mitrovic, Brian McWilliams, Jacob C. Walker, Lars Holger Buesing 等ICLR 2021 · 被引用 281 次
- BOND: BERT-Assisted Open-Domain Named Entity Recognition with Distant SupervisionChen Liang, Yue Yu, Haoming Jiang, Siawpeng Er 等KDD 2020 · 被引用 118 次
- De-Biased Court's View Generation with CausalityYiquan Wu, Kun Kuang, Yating Zhang, Xiaozhong Liu 等EMNLP 2020 · 被引用 71 次
- Counterfactual Generator: A Weakly-Supervised Method for Named Entity RecognitionXiangji Zeng, Yunliang Li, Yuchen Zhai, Yin ZhangEMNLP 2020 · 被引用 55 次
- A Rigorous Study on Named Entity Recognition: Can Fine-tuning Pretrained Model Lead to the Promised Land?Hongyu Lin, Yaojie Lu, Jialong Tang, Xianpei Han 等EMNLP 2020 · 被引用 41 次
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