Learning from Miscellaneous Other-Class Words for Few-shot Named Entity Recognition
Meihan Tong, Shuai Wang, Bin Xu, Yixin Cao, Minghui Liu, Lei Hou, Juanzi Li
摘要
Few-shot Named Entity Recognition (NER) exploits only a handful of annotations to identify and classify named entity mentions. Prototypical network shows superior performance on few-shot NER. However, existing prototypical methods fail to differentiate rich semantics in other-class words, which will aggravate overfitting under few shot scenario. To address the issue, we propose a novel model, Mining Undefined Classes from Other-class (MUCO), that can automatically induce different undefined classes from the other class to improve few-shot NER. With these extra-labeled undefined classes, our method will improve the discriminative ability of NER classifier and enhance the understanding of predefined classes with stand-by semantic knowledge. Experimental results demonstrate that our model outperforms five state-of-the-art models in both 1shot and 5-shots settings on four NER benchmarks. We will release the code upon acceptance. The source code is released on https: //github.com/shuaiwa16/OtherClassNER.git .
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引用它的顶会 Paper9
- Learning In-context Learning for Named Entity RecognitionJiawei Chen, Yaojie Lu, Hongyu Lin, Jie Lou 等ACL 2023 · 被引用 29 次
- Exploring Modular Task Decomposition in Cross-domain Named Entity RecognitionXinghua Zhang, Bowen Yu, Yubin Wang, Tingwen Liu 等SIGIR 2022 · 被引用 18 次
- MANNER: A Variational Memory-Augmented Model for Cross Domain Few-Shot Named Entity RecognitionJinyuan Fang, Xiaobin Wang, Zaiqiao Meng, Pengjun Xie 等ACL 2023 · 被引用 13 次
- Learning "O" Helps for Learning More: Handling the Unlabeled Entity Problem for Class-incremental NERRuotian Ma, Xuanting Chen, Zhang Lin, Xin Zhou 等ACL 2023 · 被引用 12 次
- Channel-Spatial Support-Query Cross-Attention for Fine-Grained Few-Shot Image ClassificationShicheng Yang, Xiaoxu Li, Dongliang Chang, Zhanyu Ma 等ACM MM 2024 · 被引用 12 次
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