Rethinking Generalization of Neural Models: A Named Entity Recognition Case Study
Jinlan Fu, Pengfei Liu, Qi Zhang
摘要
While neural network-based models have achieved impressive performance on a large body of NLP tasks, the generalization behavior of different models remains poorly understood: Does this excellent performance imply a perfect generalization model, or are there still some limitations? In this paper, we take the NER task as a testbed to analyze the generalization behavior of existing models from different perspectives and characterize the differences of their generalization abilities through the lens of our proposed measures, which guides us to better design models and training methods. Experiments with in-depth analyses diagnose the bottleneck of existing neural NER models in terms of breakdown performance analysis, annotation errors, dataset bias, and category relationships, which suggest directions for improvement. We have released the datasets: (ReCoNLL, PLONER) for the future research at our project page: http://pfliu.com/InterpretNER/.
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引用它的顶会 Paper11
- Multi-modal Graph Fusion for Named Entity Recognition with Targeted Visual GuidanceDong Zhang, Suzhong Wei, Shoushan Li, Hanqian Wu 等AAAI 2021 · 被引用 240 次
- LinkNER: Linking Local Named Entity Recognition Models to Large Language Models using UncertaintyZhen Zhang, Yuhua Zhao, Hang Gao, Mengting HuWWW 2024 · 被引用 50 次
- Interpretable Multi-dataset Evaluation for Named Entity RecognitionJinlan Fu, Pengfei Liu, Graham NeubigEMNLP 2020 · 被引用 49 次
- Data Augmentation for Cross-Domain Named Entity RecognitionShuguang Chen, Gustavo Aguilar, Leonardo Neves, Thamar SolorioEMNLP 2021 · 被引用 39 次
- Flooding-X: Improving BERT's Resistance to Adversarial Attacks via Loss-Restricted Fine-TuningQin Liu, Rui Zheng, Bao Rong, Jingyi Liu 等ACL 2022 · 被引用 35 次
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