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README.md
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README.md
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# mengzi-t5-base_a13579517675040768972685
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---
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language:
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- zh
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license: apache-2.0
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---
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mengzi-t5-base
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# Mengzi-T5 model (Chinese)
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Pretrained model on 300G Chinese corpus.
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[Mengzi: Towards Lightweight yet Ingenious Pre-trained Models for Chinese](https://arxiv.org/abs/2110.06696)
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## Usage
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```python
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from transformers import T5Tokenizer, T5ForConditionalGeneration
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tokenizer = T5Tokenizer.from_pretrained("Langboat/mengzi-t5-base")
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model = T5ForConditionalGeneration.from_pretrained("Langboat/mengzi-t5-base")
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```
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## Citation
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If you find the technical report or resource is useful, please cite the following technical report in your paper.
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```
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@misc{zhang2021mengzi,
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title={Mengzi: Towards Lightweight yet Ingenious Pre-trained Models for Chinese},
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author={Zhuosheng Zhang and Hanqing Zhang and Keming Chen and Yuhang Guo and Jingyun Hua and Yulong Wang and Ming Zhou},
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year={2021},
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eprint={2110.06696},
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archivePrefix={arXiv},
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primaryClass={cs.CL}
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}
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```
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{
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"architectures": [
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"T5ForConditionalGeneration"
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],
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"d_ff": 2048,
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"d_kv": 64,
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"d_model": 768,
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"decoder_start_token_id": 0,
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"dropout_rate": 0.1,
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"eos_token_id": 1,
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"feed_forward_proj": "gated-gelu",
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"gradient_checkpointing": false,
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"initializer_factor": 1.0,
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"is_encoder_decoder": true,
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"layer_norm_epsilon": 1e-06,
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"model_type": "t5",
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"num_decoder_layers": 12,
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"num_heads": 12,
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"num_layers": 12,
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"output_past": true,
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"pad_token_id": 0,
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"relative_attention_num_buckets": 32,
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"tie_word_embeddings": false,
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"torch_dtype": "float32",
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"transformers_version": "4.9.2",
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"use_cache": true,
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"vocab_size": 32128
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}
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