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RCGM: Any-step Generation via N-th Order Recursive Consistent Velocity Field Estimation

Peng Sun1,2·Tao Lin1    

1Westlake University   2Zhejiang University 

🤖 Models📄 Paper🏷️ BibTeX

Official PyTorch implementation of RCGM: 🏆 A unified, scalable, and stable generative framework.

Generated samples from our RCGM-tuned Qwen-Image-20B model (NFE=8), which achieved a GenEval score of 0.87 and required only about 80 H800 GPU hours for tuning.

🚧 TODOs

[✅] Release the paper.

[ ] Release trained models.

[ ] Update the paper.

[ ] Release training and inference code.

🏷️ Bibliography

If you find this repository helpful for your project, please consider citing our work:

@misc{sun2025anystep,
  author = {Sun, Peng and Lin, Tao},
  note   = {GitHub repository},
  title  = {Any-step Generation via N-th Order Recursive Consistent Velocity Field Estimation},
  url    = {https://github.com/LINs-lab/RCGM},
  year   = {2025}
}

📄 License

Apache License 2.0 - See LICENSE for details.

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[Preprint] Any-step Generation via N-th Order Recursive Consistent Velocity Field Estimation

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