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Discriminator-quality evaluation GAN
Wang, Xuesong1,2; Jin, Ke1,2; Kong, Yi1,2; Chen, C. L.Philip3; Cheng, Yuhu1,2
2022-04-28
Source PublicationIEEE Transactions on Multimedia
ISSN1520-9210
Abstract

In existing generative adversarial networks (standard GAN and its variants), the discriminator is trained for recognizing the real data as positive while the generated data as negative. This kind of positive-negative classification criterion ignores the fact that the discriminator is a non-objective evaluator, which means that the image quality evaluated by the discriminator may fluctuate during the whole training progress. Considering this fact, we propose a novel GAN framework called Discriminator-Quality Evaluation GAN (DQE-GAN) by using the discriminator outputs to evaluate image quality. By dynamically classifying images into high discriminator-quality and low discriminator-quality samples, every adversarial iteration step can be more reasonable and objective. The convergence of DQEGAN framework can be theoretically proved. Through extensive experiments, we demonstrate DQE-GANs ability of achieving better generated images faster and more stable.

KeywordImage Quality Discriminatorquality Generative Adversarial Network Objective Function
DOI10.1109/TMM.2022.3171084
URLView the original
Language英語English
PublisherInstitute of Electrical and Electronics Engineers Inc.
Scopus ID2-s2.0-85129414187
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Document TypeJournal article
CollectionFaculty of Science and Technology
DEPARTMENT OF COMPUTER AND INFORMATION SCIENCE
Corresponding AuthorCheng, Yuhu
Affiliation1.e Engineering Research Center of Intelligent Control for Underground Space, Ministry of Education, China University of Mining and Technology, Xuzhou, 221116, China
2.School of Information and Control Engineering, China University of Mining and Technology, Xuzhou, 221116, China
3.School of Computer Science and Engineering, South China University of Technology, Guangzhou 510006, China
Recommended Citation
GB/T 7714
Wang, Xuesong,Jin, Ke,Kong, Yi,et al. Discriminator-quality evaluation GAN[J]. IEEE Transactions on Multimedia, 2022.
APA Wang, Xuesong., Jin, Ke., Kong, Yi., Chen, C. L.Philip., & Cheng, Yuhu (2022). Discriminator-quality evaluation GAN. IEEE Transactions on Multimedia.
MLA Wang, Xuesong,et al."Discriminator-quality evaluation GAN".IEEE Transactions on Multimedia (2022).
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