ABCAS: Adaptive Bound Control of spectral norm as Automatic Stabilizer

被引:1
作者
Hirose, Shota [1 ]
Maki, Shiori [1 ]
Wada, Naoki [1 ]
Katto, Jiro [1 ]
Sun, Heming [2 ,3 ]
机构
[1] Waseda Univ, Fac Sci & Engn, Sch Fundamental Sci & Engn, Tokyo, Japan
[2] Waseda Univ, Waseda Res Inst Sci & Engn, Tokyo, Japan
[3] JST, PRESTO, Saitama, Japan
来源
2023 IEEE INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS, ICCE | 2023年
关键词
Generative Adversarial Network; Spectral Normalization; Lipschitz constant; Adaptive Scheduling;
D O I
10.1109/ICCE56470.2023.10043368
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Spectral Normalization is one of the best methods for stabilizing the training of Generative Adversarial Network. Spectral Normalization limits the gradient of discriminator between the distribution between real data and fake data. However, even with this normalization, GAN's training sometimes fails. In this paper, we reveal that more severe restriction is sometimes needed depending on the training dataset, then we propose a novel stabilizer which offers an adaptive normalization method, called ABCAS. Our method decides discriminator's Lipschitz constant adaptively, by checking the distance of distributions of real and fake data. Our method improves the stability of the training of Generative Adversarial Network and achieved better Frechet Inception Distance score of generated images. We also investigated suitable spectral norm for three datasets. We show the result as an ablation study.
引用
收藏
页数:5
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