Combination of single image super resolution and digital Inpainting algorithms based on GANS for robust image completion

Sparik Hayrapetyan, Gevorg Karapetyan, Viacheslav Voronin, Hakob G. Sarukhanyan · Serbian Journal of Electrical Engineering · 2017

Image inpainting, a technique of completing missing or corrupted image regions in undetected form, is an open problem in digital image processing. Inpainting of large regions using Deep Convolutional Generative Adversarial Nets (DCGAN) is a new and powerful approach. In described approaches the size of generated image and size of input image should be the same. In this paper we propose a new method where the size of input image with corrupted region can be up to 4 times larger than generated image.

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