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SOTA
语法错误纠正
Grammatical Error Correction On Bea 2019 Test
Grammatical Error Correction On Bea 2019 Test
评估指标
F0.5
评测结果
各个模型在此基准测试上的表现结果
Columns
模型名称
F0.5
Paper Title
Repository
Majority-voting ensemble on best 7 models
81.4
Pillars of Grammatical Error Correction: Comprehensive Inspection Of Contemporary Approaches In The Era of Large Language Models
GRECO (voting+ESC)
80.84
System Combination via Quality Estimation for Grammatical Error Correction
ESC
79.90
Frustratingly Easy System Combination for Grammatical Error Correction
-
RedPenNet
77.60
RedPenNet for Grammatical Error Correction: Outputs to Tokens, Attentions to Spans
clang_large_ft2-gector
77.1
Improved grammatical error correction by ranking elementary edits
-
Unsupervised GEC + cLang8
76.5
Unsupervised Grammatical Error Correction Rivaling Supervised Methods
-
DeBERTa + RoBERTa + XLNet
76.05
Ensembling and Knowledge Distilling of Large Sequence Taggers for Grammatical Error Correction
MoECE
74.07
Efficient and Interpretable Grammatical Error Correction with Mixture of Experts
Sequence tagging + token-level transformations + two-stage fine-tuning (+RoBERTa, XLNet)
73.7
GECToR -- Grammatical Error Correction: Tag, Not Rewrite
BEA Combination
73.2
Learning to combine Grammatical Error Corrections
GEC-DI (LM+GED)
73.1
Improving Seq2Seq Grammatical Error Correction via Decoding Interventions
LM-Critic
72.9
LM-Critic: Language Models for Unsupervised Grammatical Error Correction
Sequence tagging + token-level transformations + two-stage fine-tuning (+XLNet)
72.4
GECToR -- Grammatical Error Correction: Tag, Not Rewrite
Transformer + Pre-train with Pseudo Data
70.2
An Empirical Study of Incorporating Pseudo Data into Grammatical Error Correction
Transformer + Pre-train with Pseudo Data (+BERT)
69.8
Encoder-Decoder Models Can Benefit from Pre-trained Masked Language Models in Grammatical Error Correction
Transformer
69.5
Neural Grammatical Error Correction Systems with Unsupervised Pre-training on Synthetic Data
-
Transformer
69.0
A Neural Grammatical Error Correction System Built On Better Pre-training and Sequential Transfer Learning
VERNet
68.9
Neural Quality Estimation with Multiple Hypotheses for Grammatical Error Correction
Ensemble of models
66.78
The LAIX Systems in the BEA-2019 GEC Shared Task
-
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