Following the design of Longformer-large, we performed continual pre-training on the WuDao corpus (180 GB) based on
chinese_roformer_L-12_H-768_A-12
. Particularly, we employed rotational position embedding (RoPE) to avoid the uneven sequence length of the pre-trained corpus.
Since there is no structure of Longformer-large in
transformers library
, you can find the structure of Longformer-base and run the codes in
Fengshenbang-LM
.
If you are using the resource for your work, please cite the our
paper
:
@article{fengshenbang,
author = {Jiaxing Zhang and Ruyi Gan and Junjie Wang and Yuxiang Zhang and Lin Zhang and Ping Yang and Xinyu Gao and Ziwei Wu and Xiaoqun Dong and Junqing He and Jianheng Zhuo and Qi Yang and Yongfeng Huang and Xiayu Li and Yanghan Wu and Junyu Lu and Xinyu Zhu and Weifeng Chen and Ting Han and Kunhao Pan and Rui Wang and Hao Wang and Xiaojun Wu and Zhongshen Zeng and Chongpei Chen},
title = {Fengshenbang 1.0: Being the Foundation of Chinese Cognitive Intelligence},
journal = {CoRR},
volume = {abs/2209.02970},
year = {2022}
}
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