A Dataset of Multi-Illumination Images in the Wild

October 17, 2019 Β· Declared Dead Β· πŸ› IEEE International Conference on Computer Vision

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Authors Lukas Murmann, Michael Gharbi, Miika Aittala, Fredo Durand arXiv ID 1910.08131 Category cs.CV: Computer Vision Citations 77 Venue IEEE International Conference on Computer Vision Last Checked 5 months ago
Abstract
Collections of images under a single, uncontrolled illumination have enabled the rapid advancement of core computer vision tasks like classification, detection, and segmentation. But even with modern learning techniques, many inverse problems involving lighting and material understanding remain too severely ill-posed to be solved with single-illumination datasets. To fill this gap, we introduce a new multi-illumination dataset of more than 1000 real scenes, each captured under 25 lighting conditions. We demonstrate the richness of this dataset by training state-of-the-art models for three challenging applications: single-image illumination estimation, image relighting, and mixed-illuminant white balance.
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