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      Conditional GANs for Multi-Illuminant Color Constancy: Revolution or Yet Another Approach?

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          Abstract

          Non-uniform and multi-illuminant color constancy are important tasks, the solution of which will allow to discard information about lighting conditions in the image. Non-uniform illumination and shadows distort colors of real-world objects and mostly do not contain valuable information. Thus, many computer vision and image processing techniques would benefit from automatic discarding of this information at the pre-processing step. In this work we propose novel view on this classical problem via generative end-to-end algorithm, namely image conditioned Generative Adversarial Network. We also demonstrate the potential of the given approach for joint shadow detection and removal. Forced by the lack of training data, we render the largest existing shadow removal dataset and make it publicly available. It consists of approximately 6,000 pairs of wide field of view synthetic images with and without shadows.

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          Most cited references59

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          Image-to-Image Translation with Conditional Adversarial Networks

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            Photo-Realistic Single Image Super-Resolution Using a Generative Adversarial Network

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              A spatial processor model for object colour perception

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                Author and article information

                Journal
                15 November 2018
                Article
                1811.06604
                859d6a80-0c96-476d-b1f3-6ce106da2315

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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                Submitted to the conference
                cs.CV

                Computer vision & Pattern recognition
                Computer vision & Pattern recognition

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