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DyDiT

Dynamic Diffusion Transformer

The official implementation of two papers:

DiT.vs.DyDiT.mp4

๐Ÿš€ News

  • 2025.04.10: The extended journal version has been released.
  • 2025.03.26: We release the code of training and text-to-image generation model, DyFLUX.
  • 2025.01.23: "Dynamic Diffusion Transformer" is accepted by ICLR 2025!!! We will update the code and paper soon.
  • 2024.12.19: We release the code for inference.
  • 2024.10.04: Our paper is released.

๐Ÿ”ง Usage

We provide detailed instructions to run our code. Please cd DyDiT or cd DyFLUX for more information.

๐Ÿค” Cite DyDiT

If you found our work useful, please consider citing us.

@article{zhao2024dynamic,
  title={Dynamic diffusion transformer},
  author={Zhao, Wangbo and Han, Yizeng and Tang, Jiasheng and Wang, Kai and Song, Yibing and Huang, Gao and Wang, Fan and You, Yang},
  journal={ICLR},
  year={2025}
}


@misc{zhao2025dyditdynamicdiffusiontransformers,
      title={DyDiT++: Dynamic Diffusion Transformers for Efficient Visual Generation}, 
      author={Wangbo Zhao and Yizeng Han and Jiasheng Tang and Kai Wang and Hao Luo and Yibing Song and Gao Huang and Fan Wang and Yang You},
      year={2025},
      eprint={2504.06803},
      archivePrefix={arXiv},
      primaryClass={cs.CV},
      url={https://arxiv.org/abs/2504.06803}, 
}

โ˜Ž๏ธ Contact

If you're interested in collaborating with us, feel free to reach out via email at wangbo.zhao96@gmail.com.

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The official implementation of "2025ICLR Dynamic Diffusion Transformer" and "2025ArXivDyDiT++: Dynamic Diffusion Transformers for Efficient Visual Generation".

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