Restoration of Motion Blurred Image by Modified DeblurGAN for Enhancing the Accuracies of Finger-Vein Recognition

Among many available biometrics identification methods, finger-vein recognition has an advantage that is difficult to counterfeit, as finger veins are located under the skin, and high user convenience as a non-invasive image capturing device is used for recognition. However, blurring can occur when...

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Published inSensors (Basel, Switzerland) Vol. 21; no. 14; p. 4635
Main Authors Choi, Jiho, Hong, Jin Seong, Owais, Muhammad, Kim, Seung Gu, Park, Kang Ryoung
Format Journal Article
LanguageEnglish
Published Basel MDPI AG 06.07.2021
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Abstract Among many available biometrics identification methods, finger-vein recognition has an advantage that is difficult to counterfeit, as finger veins are located under the skin, and high user convenience as a non-invasive image capturing device is used for recognition. However, blurring can occur when acquiring finger-vein images, and such blur can be mainly categorized into three types. First, skin scattering blur due to light scattering in the skin layer; second, optical blur occurs due to lens focus mismatching; and third, motion blur exists due to finger movements. Blurred images generated in these kinds of blur can significantly reduce finger-vein recognition performance. Therefore, restoration of blurred finger-vein images is necessary. Most of the previous studies have addressed the restoration method of skin scattering blurred images and some of the studies have addressed the restoration method of optically blurred images. However, there has been no research on restoration methods of motion blurred finger-vein images that can occur in actual environments. To address this problem, this study proposes a new method for improving the finger-vein recognition performance by restoring motion blurred finger-vein images using a modified deblur generative adversarial network (modified DeblurGAN). Based on an experiment conducted using two open databases, the Shandong University homologous multi-modal traits (SDUMLA-HMT) finger-vein database and Hong Kong Polytechnic University finger-image database version 1, the proposed method demonstrates outstanding performance that is better than those obtained using state-of-the-art methods.
AbstractList Among many available biometrics identification methods, finger-vein recognition has an advantage that is difficult to counterfeit, as finger veins are located under the skin, and high user convenience as a non-invasive image capturing device is used for recognition. However, blurring can occur when acquiring finger-vein images, and such blur can be mainly categorized into three types. First, skin scattering blur due to light scattering in the skin layer; second, optical blur occurs due to lens focus mismatching; and third, motion blur exists due to finger movements. Blurred images generated in these kinds of blur can significantly reduce finger-vein recognition performance. Therefore, restoration of blurred finger-vein images is necessary. Most of the previous studies have addressed the restoration method of skin scattering blurred images and some of the studies have addressed the restoration method of optically blurred images. However, there has been no research on restoration methods of motion blurred finger-vein images that can occur in actual environments. To address this problem, this study proposes a new method for improving the finger-vein recognition performance by restoring motion blurred finger-vein images using a modified deblur generative adversarial network (modified DeblurGAN). Based on an experiment conducted using two open databases, the Shandong University homologous multi-modal traits (SDUMLA-HMT) finger-vein database and Hong Kong Polytechnic University finger-image database version 1, the proposed method demonstrates outstanding performance that is better than those obtained using state-of-the-art methods.
Author Choi, Jiho
Hong, Jin Seong
Park, Kang Ryoung
Owais, Muhammad
Kim, Seung Gu
AuthorAffiliation Division of Electronics and Electrical Engineering, Dongguk University, 30 Pildong-ro 1-gil, Jung-gu, Seoul 04620, Korea; choijh1027@dongguk.edu (J.C.); turtle1990@dgu.ac.kr (J.S.H.); owais2018@dongguk.edu (M.O.); ismysg104@dgu.ac.kr (S.G.K.)
AuthorAffiliation_xml – name: Division of Electronics and Electrical Engineering, Dongguk University, 30 Pildong-ro 1-gil, Jung-gu, Seoul 04620, Korea; choijh1027@dongguk.edu (J.C.); turtle1990@dgu.ac.kr (J.S.H.); owais2018@dongguk.edu (M.O.); ismysg104@dgu.ac.kr (S.G.K.)
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Snippet Among many available biometrics identification methods, finger-vein recognition has an advantage that is difficult to counterfeit, as finger veins are located...
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SubjectTerms Biometric recognition systems
Biometrics
Blurring
Cameras
CNN
Counterfeit
Discriminant analysis
Finger-vein recognition
Homology
Identification methods
Image acquisition
Image enhancement
Light scattering
Methods
modified DeblurGAN
motion blur image restoration
Principal components analysis
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Title Restoration of Motion Blurred Image by Modified DeblurGAN for Enhancing the Accuracies of Finger-Vein Recognition
URI https://www.proquest.com/docview/2554697656
https://search.proquest.com/docview/2555106947
https://pubmed.ncbi.nlm.nih.gov/PMC8309672
https://doaj.org/article/74ee43e19415447c8139b62a33a174fd
Volume 21
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