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Papers

CLUENER2020: Fine-grained Named Entity Recognition Dataset and Benchmark for Chinese

2020-01-13 · Liang Xu, Yu tong, Qianqian Dong, Yixuan Liao, Cong Yu, Yin Tian, Weitang Liu, Lu Li, Caiquan Liu, Xuanwei Zhang

In this paper, we introduce the NER dataset from CLUE organization (CLUENER2020), a well-defined fine-grained dataset for named entity recognition in Chinese. CLUENER2020 contains 10 categories. Apart from common labels like person, organization, and location, it contains more diverse categories. It is more challenging than current other Chinese NER datasets and could better reflect real-world applications. For comparison, we implement several state-of-the-art baselines as sequence labeling tasks and report human performance, as well as its analysis. To facilitate future work on fine-grained NER for Chinese, we release our dataset, baselines, and leader-board.

📄 PDF Abstract BibTeX arXiv:2001.04351

Code (3)

CLUEbenchmark/CLUENER2020 공식 구현 pytorch
RRRicky-Chao/clueNERtf_bert_wwm_nlpGroup1 tf
uloveqian2021/NER tf

Tasks

Chinese Named Entity Recognitionnamed-entity-recognitionNamed Entity RecognitionNamed Entity Recognition (NER)NER

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