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Diff-Pitcher (PyTorch)

Official Pytorch Implementation of Diff-Pitcher: Diffusion-based Singing Voice Pitch Correction


Thank you all for your interest in this research project. I am currently optimizing the model's performance and computation efficiency. I plan to release a user-friendly version, either a GUI or a VST, in the first half of this year, and will update the open-source license.

If you are familiar with PyTorch, you can follow Code Examples to use Diff-Pitcher.


Diff-Pitcher

Demo

๐ŸŽต Listen to examples

Todo

  • Update codes and demo
  • Support ๐Ÿค— Diffusers
  • Upload checkpoints
  • Pipeline tutorial
  • Merge to Your-Stable-Audio
  • Audio Plugin Support

Examples

References

If you find the code useful for your research, please consider citing:

@inproceedings{hai2023diff,
  title={Diff-Pitcher: Diffusion-Based Singing Voice Pitch Correction},
  author={Hai, Jiarui and Elhilali, Mounya},
  booktitle={2023 IEEE Workshop on Applications of Signal Processing to Audio and Acoustics (WASPAA)},
  pages={1--5},
  year={2023},
  organization={IEEE}
}

This repo is inspired by:

@article{popov2021diffusion,
  title={Diffusion-based voice conversion with fast maximum likelihood sampling scheme},
  author={Popov, Vadim and Vovk, Ivan and Gogoryan, Vladimir and Sadekova, Tasnima and Kudinov, Mikhail and Wei, Jiansheng},
  journal={arXiv preprint arXiv:2109.13821},
  year={2021}
}
@inproceedings{liu2022diffsinger,
  title={Diffsinger: Singing voice synthesis via shallow diffusion mechanism},
  author={Liu, Jinglin and Li, Chengxi and Ren, Yi and Chen, Feiyang and Zhao, Zhou},
  booktitle={Proceedings of the AAAI conference on artificial intelligence},
  volume={36},
  number={10},
  pages={11020--11028},
  year={2022}
}

Acknowledgement

Welcome to LCAP! < LCAP (jhu.edu)

We borrow code from following repos:

  • Diffusion Schedulers are based on ๐Ÿค— Diffusers
  • 2D UNet is based on DiffVC
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