Electronics · 2021 · 12 citations · 19 references
Much research and development have been made to implement deep neural networks for various purposes with hardware. We implement the deep learning algorithm with a dedicated processor. Watermarking technology for ultra-high resolution digital images and videos needs to be implemented in hardware for real-time or high-speed operation. We propose an optimization methodology to implement a deep learning-based watermarking algorithm in hardware. The proposed optimization methodology includes algorithm and memory optimization. Next, we analyze a fixed-point number system suitable for implementing neural networks as hardware for watermarking. Using these, a hardware structure of a dedicated processor for watermarking based on deep learning technology is proposed and implemented as an application-specific integrated circuit (ASIC).
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Image information and visual quality
Hamid R. Sheikh, Alan C. Bovik · IEEE Transactions on Image Processing · 2006 · 3.9K citations
A Novel Two-stage Separable Deep Learning Framework for Practical Blind Watermarking
Yang Liu, Mengxi Guo, Jian Zhang et al. · 2019 · 185 citations