TY - JOUR
T1 - Lp-WGAN
T2 - Using Lp-norm normalization to stabilize Wasserstein generative adversarial networks
AU - Zhou, Changsheng
AU - Zhang, Jiangshe
AU - Liu, Junmin
N1 - Publisher Copyright:
© 2018
PY - 2018/12/1
Y1 - 2018/12/1
N2 - Wasserstein generative adversarial networks (Wasserstein GANs, WGAN) improve the performance of GANs significantly by imposing the Lipschitz constraints on the critic, which is implemented by weight clipping. In this work, we argue that weight clipping could result in a side effect called area collapse by modifying orientations of weights heavily. To fix this issue, a novel method called Lp-WGAN is presented, where lp-norm normalization is employed to impose the constraints. This method restricts the searching space of weights within a low-dimensional manifold and focuses on searching orientations of weights. Experiments on toy datasets show that Lp-WGAN could spread probability mass and find the underlying distribution earlier than WGAN with weight clipping. Results on the LSUN bedroom dataset and CIFAR-10 dataset show that the proposed method could stabilize training better, generate competitive images earlier and get higher evaluation scores.
AB - Wasserstein generative adversarial networks (Wasserstein GANs, WGAN) improve the performance of GANs significantly by imposing the Lipschitz constraints on the critic, which is implemented by weight clipping. In this work, we argue that weight clipping could result in a side effect called area collapse by modifying orientations of weights heavily. To fix this issue, a novel method called Lp-WGAN is presented, where lp-norm normalization is employed to impose the constraints. This method restricts the searching space of weights within a low-dimensional manifold and focuses on searching orientations of weights. Experiments on toy datasets show that Lp-WGAN could spread probability mass and find the underlying distribution earlier than WGAN with weight clipping. Results on the LSUN bedroom dataset and CIFAR-10 dataset show that the proposed method could stabilize training better, generate competitive images earlier and get higher evaluation scores.
KW - Deep learning
KW - Generative adversarial networks
KW - Lipschitz constraints
KW - Normalization
UR - https://www.scopus.com/pages/publications/85053356887
U2 - 10.1016/j.knosys.2018.08.004
DO - 10.1016/j.knosys.2018.08.004
M3 - 文章
AN - SCOPUS:85053356887
SN - 0950-7051
VL - 161
SP - 415
EP - 424
JO - Knowledge-Based Systems
JF - Knowledge-Based Systems
ER -