Digital Hologram Watermarking Based on Multiple Deep Neural Networks Training Reconstruction and Attack

Author:

Kang Ji-WonORCID,Lee Jae-EunORCID,Choi Jang-HwanORCID,Kim WoosukORCID,Kim Jin-KyumORCID,Kim Dong-WookORCID,Seo Young-HoORCID

Abstract

This paper proposes a method to embed and extract a watermark on a digital hologram using a deep neural network. The entire algorithm for watermarking digital holograms consists of three sub-networks. For the robustness of watermarking, an attack simulation is inserted inside the deep neural network. By including attack simulation and holographic reconstruction in the network, the deep neural network for watermarking can simultaneously train invisibility and robustness. We propose a network training method using hologram and reconstruction. After training the proposed network, we analyze the robustness of each attack and perform re-training according to this result to propose a method to improve the robustness. We quantitatively evaluate the results of robustness against various attacks and show the reliability of the proposed technique.

Funder

National Research Foundation of Korea

Ministry of Science and ICT, South Korea

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

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