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On leveraging pretrained GANs for generation with limited data

Publication ,  Conference
Zhao, M; Cong, Y; Carin, L
Published in: 37th International Conference on Machine Learning, ICML 2020
January 1, 2020

Recent work has shown generative adversarial networks (GANs) can generate highly realistic images, that are often indistinguishable (by humans) from real images. Most images so generated are not contained in the training dataset, suggesting potential for augmenting training sets with GAN-generated data. While this scenario is of particular relevance when there are limited data available, there is still the issue of training the GAN itself based on that limited data. To facilitate this, we leverage existing GAN models pretrained on large-scale datasets (like ImageNet) to introduce additional knowledge (which may not exist within the limited data), following the concept of transfer learning. Demonstrated by natural-image generation, we reveal that low-level filters (those close to observations) of both the generator and discriminator of pretrained GANs can be transferred to facilitate generation in a perceptuallydistinct target domain with limited training data. To further adapt the transferred filters to the target domain, we propose adaptive filter modulation (AdaFM). An extensive set of experiments is presented to demonstrate the effectiveness of the proposed techniques on generation with limited data.

Duke Scholars

Published In

37th International Conference on Machine Learning, ICML 2020

Publication Date

January 1, 2020

Volume

PartF168147-15

Start / End Page

11277 / 11288
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Zhao, M., Cong, Y., & Carin, L. (2020). On leveraging pretrained GANs for generation with limited data. In 37th International Conference on Machine Learning, ICML 2020 (Vol. PartF168147-15, pp. 11277–11288).
Zhao, M., Y. Cong, and L. Carin. “On leveraging pretrained GANs for generation with limited data.” In 37th International Conference on Machine Learning, ICML 2020, PartF168147-15:11277–88, 2020.
Zhao M, Cong Y, Carin L. On leveraging pretrained GANs for generation with limited data. In: 37th International Conference on Machine Learning, ICML 2020. 2020. p. 11277–88.
Zhao, M., et al. “On leveraging pretrained GANs for generation with limited data.” 37th International Conference on Machine Learning, ICML 2020, vol. PartF168147-15, 2020, pp. 11277–88.
Zhao M, Cong Y, Carin L. On leveraging pretrained GANs for generation with limited data. 37th International Conference on Machine Learning, ICML 2020. 2020. p. 11277–11288.

Published In

37th International Conference on Machine Learning, ICML 2020

Publication Date

January 1, 2020

Volume

PartF168147-15

Start / End Page

11277 / 11288