Deep White-Balance Editing
Mahmoud Afifi, Michael S. Brown
摘要
We introduce a deep learning approach to realistically edit an sRGB image's white balance. Cameras capture sensor images that are rendered by their integrated signal processor (ISP) to a standard RGB (sRGB) color space encoding. The ISP rendering begins with a white-balance procedure that is used to remove the color cast of the scene's illumination. The ISP then applies a series of nonlinear color manipulations to enhance the visual quality of the final sRGB image. Recent work by [3] showed that sRGB images that were rendered with the incorrect white balance cannot be easily corrected due to the ISP's nonlinear rendering. The work in [3] proposed a k-nearest neighbor (KNN) solution based on tens of thousands of image pairs. We propose to solve this problem with a deep neural network (DNN) architecture trained in an end-to-end manner to learn the correct white balance. Our DNN maps an input image to two additional white-balance settings corresponding to indoor and outdoor illuminations. Our solution not only is more accurate than the KNN approach in terms of correcting a wrong white-balance setting but also provides the user the freedom to edit the white balance in the sRGB image to other illumination settings.
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引用它的顶会 Paper22
- STAR: A Structure-aware Lightweight Transformer for Real-time Image EnhancementZhaoyang Zhang, Yitong Jiang, Jun Jiang, Xiaogang Wang 等ICCV 2021 · 被引用 121 次
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- StarEnhancer: Learning Real-Time and Style-Aware Image EnhancementYuda Song, Hui Qian, Xin DuICCV 2021 · 被引用 59 次
- Lighting up NeRF via Unsupervised Decomposition and EnhancementHaoyuan Wang, Xiaogang Xu, Ke Xu, Rynson W. H. LauICCV 2023 · 被引用 55 次
- Multispectral illumination estimation using deep unrolling networkYuqi Li, Qiang Fu, Wolfgang HeidrichICCV 2021 · 被引用 43 次
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