HAMNER: Headword Amplified Multi-Span Distantly Supervised Method for Domain Specific Named Entity Recognition
Shifeng Liu, Yifang Sun, Bing Li, Wei Wang, Xiang Zhao
Abstract
To tackle Named Entity Recognition (NER) tasks, supervised methods need to obtain sufficient cleanly annotated data, which is labor and time consuming. On the contrary, distantly supervised methods acquire automatically annotated data using dictionaries to alleviate this requirement. Unfortunately, dictionaries hinder the effectiveness of distantly supervised methods for NER due to its limited coverage, especially in specific domains. In this paper, we aim at the limitations of the dictionary usage and mention boundary detection. We generalize the distant supervision by extending the dictionary with headword based non-exact matching. We apply a function to better weight the matched entity mentions. We propose a span-level model, which classifies all the possible spans then infers the selected spans with a proposed dynamic programming algorithm. Experiments on all three benchmark datasets demonstrate that our method outperforms previous state-of-the-art distantly supervised methods.
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Install the CLIlune papers fulltext ea791988-9efb-44f1-ad48-d6b5f109fe93Cited by top-tier papers2
- Multi-modal Graph Fusion for Named Entity Recognition with Targeted Visual GuidanceDong Zhang, Suzhong Wei, Shoushan Li, Hanqian Wu et al.AAAI 2021 · 240 citations
- TEBNER: Domain Specific Named Entity Recognition with Type Expanded Boundary-aware NetworkZheng Fang, Yanan Cao, Tai Li, Ruipeng Jia et al.EMNLP 2021 · 13 citations
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