Text Generation
Transformers
Safetensors
qwen2
conversational
text-generation-inference

Introduction

E1-Math-7B is a language model fine-tuned from Skywork-OR1-Math-7B. It is trained for Elastic Reasoning by budget-constrained rollout strategy, integrated into GRPO, which teaches the model to reason adaptively when the thinking process is cut short and generalizes effectively to unseen budget constraints without additional training.

Usage

For detailed usage, please refer to repo.

Performance (Avg@16)

Model Tokens Acc (%) Tokens Acc (%) Tokens Acc (%) Tokens Acc (%) Tokens Acc (%)
Skywork-OR1-Math-7B 13803 68.3 1534 1.0 2047 2.1 3051 7.7 4023 14.0
E1-Math-7B 11768 69.6 1381 16.9 1841 21.3 2799 26.0 3742 32.9

Citation

@article{xu2025scalable,
  title={Scalable Chain of Thoughts via Elastic Reasoning},
  author={Xu, Yuhui and Dong, Hanze and Wang, Lei and Sahoo, Doyen and Li, Junnan and Xiong, Caiming},
  journal={arXiv preprint arXiv:2505.05315},
  year={2025}
}

Ethical Considerations

This release is for research purposes only in support of an academic paper. Our models, datasets, and code are not specifically designed or evaluated for all downstream purposes. We strongly recommend users evaluate and address potential concerns related to accuracy, safety, and fairness before deploying this model. We encourage users to consider the common limitations of AI, comply with applicable laws, and leverage best practices when selecting use cases, particularly for high-risk scenarios where errors or misuse could significantly impact people's lives, rights, or safety. For further guidance on use cases, refer to our AUP and AI AUP.

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