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SOTA
Reconnaissance des entités nommées chinoises
Chinese Named Entity Recognition On Resume
Chinese Named Entity Recognition On Resume
Métriques
F1
Résultats
Résultats de performance de divers modèles sur ce benchmark
Columns
Nom du modèle
F1
Paper Title
Repository
Baseline + BS
96.66
Boundary Smoothing for Named Entity Recognition
-
Lattice
94.46
Chinese NER Using Lattice LSTM
-
AESINER
96.62
Improving Named Entity Recognition with Attentive Ensemble of Syntactic Information
-
FLAT
95.45
FLAT: Chinese NER Using Flat-Lattice Transformer
-
Glyce + BERT
96.54
Glyce: Glyph-vectors for Chinese Character Representations
-
FLAT+BERT
95.86
FLAT: Chinese NER Using Flat-Lattice Transformer
-
FGN
96.79
FGN: Fusion Glyph Network for Chinese Named Entity Recognition
-
TENER
95
TENER: Adapting Transformer Encoder for Named Entity Recognition
-
LSTM + Lexicon augment
95.59
Simplify the Usage of Lexicon in Chinese NER
-
SLK-NER
95.8
SLK-NER: Exploiting Second-order Lexicon Knowledge for Chinese NER
-
BERT-CRF (Replicated in AdaSeq)
96.87
Improving Named Entity Recognition by External Context Retrieving and Cooperative Learning
-
NFLAT
95.58
NFLAT: Non-Flat-Lattice Transformer for Chinese Named Entity Recognition
-
CAN-NER Model
94.94
CAN-NER: Convolutional Attention Network for Chinese Named Entity Recognition
-
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