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명명된 실체 인식 (NER)
Named Entity Recognition Ner On Conll 2003
Named Entity Recognition Ner On Conll 2003
평가 지표
F1
평가 결과
이 벤치마크에서 각 모델의 성능 결과
Columns
모델 이름
F1
Paper Title
Repository
Bi-LSTM-CNN
91.62
Named Entity Recognition with Bidirectional LSTM-CNNs
PromptNER [BERT-large]
92.41
PromptNER: Prompt Locating and Typing for Named Entity Recognition
Bi-LSTM-CNN-CRF
91.22
A Deep Neural Network Model for the Task of Named Entity Recognition
LM-LSTM-CRF
91.24
Empower Sequence Labeling with Task-Aware Neural Language Model
RoBERTa + SubRegWeigh (K-means)
93.81
SubRegWeigh: Effective and Efficient Annotation Weighing with Subword Regularization
LUKE + SubRegWeigh (K-means)
94.2
SubRegWeigh: Effective and Efficient Annotation Weighing with Subword Regularization
BERT-CRF
93.6
Focusing on Potential Named Entities During Active Label Acquisition
IntNet + BiLSTM-CRF
91.64
Learning Better Internal Structure of Words for Sequence Labeling
-
Yang et al. ([2017a])
91.62
Neural Reranking for Named Entity Recognition
Yang et al.
91.26
Transfer Learning for Sequence Tagging with Hierarchical Recurrent Networks
CNN Large + fine-tune
93.5
Cloze-driven Pretraining of Self-attention Networks
-
Neural-CRF+AE
92.29
Evaluating the Utility of Hand-crafted Features in Sequence Labelling
CVT + Multi-Task + Large
92.61
Semi-Supervised Sequence Modeling with Cross-View Training
PRISM
91.8
A Prism Module for Semantic Disentanglement in Name Entity Recognition
-
XLNet
93.28
Named entity recognition architecture combining contextual and global features
XLM-RoBERTa-large union
93.69
Transformer-based Named Entity Recognition with Combined Data Representation
-
BLSTM-CNN-CRF
91.21
End-to-end Sequence Labeling via Bi-directional LSTM-CNNs-CRF
SpanRel
92.2
Generalizing Natural Language Analysis through Span-relation Representations
GoLLIE
93.1
GoLLIE: Annotation Guidelines improve Zero-Shot Information-Extraction
Locate and Label
92.94
Locate and Label: A Two-stage Identifier for Nested Named Entity Recognition
-
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