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Proceedings of ISP RAS, 2022 Volume 34, Issue 6, Pages 117–126 (Mi tisp742)

Exploring the application of neural networks for facial image reconstruction in recognition systems

E. I. Markin, V. V. Zuparova, A. I. Martyshkin

Penza State Technological University

Abstract: Identifying a person in a digital image using computer vision is a crucial aspect of this field. The presence of external objects, such as medical masks that cover part of the face, can drastically reduce recognition accuracy and increase errors from 5% to 50%, depending on the algorithm. This paper investigates the use of neural networks, in particular the generative adversarial network (GAN), to solve the problem of reconstructing an image of a face covered by a medical mask to improve face recognition accuracy.

Keywords: computer vision, neural networks, generative adversarial networks, human face identification, digital image reconstruction

DOI: 10.15514/ISPRAS-2022-34(6)-8



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