DeBERTa: Decoding-enhanced BERT with Disentangled Attention
DeBERTa
improves the BERT and RoBERTa models using disentangled attention and enhanced mask decoder. It outperforms BERT and RoBERTa on majority of NLU tasks with 80GB training data.
1
Following RoBERTa, for RTE, MRPC, STS-B, we fine-tune the tasks based on
DeBERTa-Large-MNLI
,
DeBERTa-XLarge-MNLI
,
DeBERTa-V2-XLarge-MNLI
,
DeBERTa-V2-XXLarge-MNLI
. The results of SST-2/QQP/QNLI/SQuADv2 will also be slightly improved when start from MNLI fine-tuned models, however, we only report the numbers fine-tuned from pretrained base models for those 4 tasks.
2
To try the
XXLarge
model with
HF transformers
, you need to specify
--sharded_ddp
If you find DeBERTa useful for your work, please cite the following paper:
@inproceedings{
he2021deberta,
title={DEBERTA: DECODING-ENHANCED BERT WITH DISENTANGLED ATTENTION},
author={Pengcheng He and Xiaodong Liu and Jianfeng Gao and Weizhu Chen},
booktitle={International Conference on Learning Representations},
year={2021},
url={https://openreview.net/forum?id=XPZIaotutsD}
}
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