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Slimmable Generative Adversarial Networks

This is a PyTorch implementation of Slimmable Generative Adversarial Networks.

SlimGAN

Requirements

The code has been tested running under Python 3.6.8, with the following packages installed (along with their dependencies):

pip install -r requirements.txt

Usage

First, please enter the examples directory .

To run the individual GANs, we give the following example script.

  • SNDCGAN on CIFAR-10 with 1.0x width.
python baseline.py --dataset cifar10 --arch dcgan --width_mult_g 1.00 --width_mult_d 1.00 --setting C --n_steps 100000 --loss hinge --log_dir ./logs/gan_cifar10_dcgan_wg100_wd100

To run the SlimGAN, we give the following example scripts.

  • SNResGAN (ResNet) based SlimGAN on CIFAR-10
python main.py --dataset cifar10 --arch resnet --setting G --alpha 20 --stepwise --n_share 2 --log_dir ./logs/slimgan_cifar10_resnet_alpha20_stepwise_nshare2
  • cGANpd based SlimGAN on CIFAR-10
python main.py --dataset cifar10 --arch resnet --setting G --cond --alpha 10 --stepwise --n_share 2 --log_dir ./logs/slimgan_cifar10_cganpd_alpha10_stepwise_nshare2

Cite

If you use this code, please cite

@inproceedings{hou2021slimmable,
  title={Slimmable Generative Adversarial Networks},
  author={Hou, Liang and Yuan, Zehuan and Huang, Lei and Shen, Huawei and Cheng, Xueqi and Wang, Changhu},
  booktitle={Proceedings of the AAAI Conference on Artificial Intelligence},
  volume={35},
  number={9},
  pages={7746--7753},
  year={2021}
}

Acknowledgments

This repository is developed based on mimicry and slimmable_networks.

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[AAAI 2021] Slimmable Generative Adversarial Networks

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