HQ-finGAN: High-Quality Synthetic Fingerprint Generation Using GANs

被引:0
|
作者
Ataher Sams
Homaira Huda Shomee
S. M. Mahbubur Rahman
机构
[1] Bangladesh University of Engineering and Technology,Department of Electrical and Electronic Engineering
[2] Brac University,Department of Computer Science and Engineering
关键词
Artificial fingerprint; CycleGAN; Fingerprint synthesis; Generative adversarial networks; Image quality; StyleGAN2;
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中图分类号
学科分类号
摘要
Artificial fingerprint synthesis can broaden the opportunity for researchers by generating a large number of realistic synthetic fingerprints without having to worry about legal issues or privacy concerns. This paper proposes StyleGAN2 and CycleGAN based dual generative adversarial networks (GAN) system, in which StyleGAN2 generates distinct fingerprint skeletons from preprocessed data and CycleGAN transforms these skeletons into realistic fingerprints. This model can generate high-quality 256 by 256 fingerprints that can be turned into a variety of realistic fingerprint styles. Synthesized fingerprints from this model also retain features of real fingerprints that can be used in the related search system. Experimentation of the model includes visual image quality, quantitative image quality, distinctiveness test, and human perception test. The proposed model can produce more realistic high-quality fingerprints in large quantity as compared to previously reported GAN-based systems.
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页码:6354 / 6369
页数:15
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