本次开源的模型为 YAYI2-30B Base 模型。如果您想了解更多关于 YAYI 2 模型的细节,我们建议您参阅
GitHub
仓库。更多技术细节,敬请期待我们的技术报告🔥。
YAYI 2 is a collection of open-source large language models launched by Wenge Technology. YAYI2-30B is a Transformer-based large language model, and has been pretrained for 2.65 trillion tokens of multilingual data with high quality. The base model is aligned with human values through supervised fine-tuning with millions of instructions and reinforcement learning from human feedback (RLHF).
We opensource the pre-trained language model in this release, namely
YAYI2-30B
. For more details about the YAYI 2, please refer to our
GitHub
repository. Stay tuned for more technical details in our upcoming technical report! 🔥
模型细节/Model Details
Hyperparameter
Value
n_layers
64
n_heads
64
hidden_size
7168
vocab_size
81920
sequence length
4096
要求/Requirements
python 3.8及以上版本
pytorch 2.0.1 及以上版本
建议使用 CUDA 11.7 及以上版本
运行 BF16 或 FP16 模型需要至少80GB显存(例如1xA100)
python 3.8 and above
pytorch 2.0.1 and above
CUDA 11.7 and above are recommended
To run YAYI2-30B in bf16/fp16, at least 80B GPU memory is required (e.g., 1xA100-80G)
We evaluate our model on standard benchmarks, including C-Eval, MMLU, CMMLU, AGIEval, GAOKAO-Bench, GSM8K, MATH, BBH, HumanEval, and MBPP. Our goal is to assess the model's performance in language comprehension, knowledge comprehension, mathematical reasoning, logical reasoning, and code generation. YAYI 2 has demonstrated exceptional performance across models with similar size.
We evaluate our model using the source code from the
OpenCompass Github repository
. If available, we report results for comparative models assessed by OpenCompass with the evaluation reference date set to Dec. 15th, 2013. For MPT, Falcon, and Llama, which have not been evaluated by OpenCompass, we use the results reported in the
LLaMA 2
paper.
The code in this project is open-sourced under the
Apache-2.0
license. The use of YaYi series model weights and data must adhere to the
YAYI 2 Community License
. If you intend to use the YAYI 2 series models or their derivatives for commercial purposes, please submit your commercial license application and registration information to
[email protected]
, following the
YAYI 2 Commercial License
. Upon approval, YAYI will grant you a commercial copyright license, subject to the commercial license restrictions outlined in the agreement.
引用/Citation
如果您在工作中使用了我们的模型,请引用我们的论文。
If you are using the resource for your work, please cite our paper.
@article{YAYI 2,
author = {Yin Luo, Qingchao Kong, Nan Xu, et.al.},
title = {YAYI 2: Multilingual Open Source Large Language Models},
journal = {arXiv preprint arXiv},
year = {2023}
}
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