Spatio-Focal Bidirectional Disparity Estimation from a Dual-Pixel Image
Donggun Kim, Hyeonjoong Jang, Inchul Kim, Min H. Kim
Abstract
Dual-pixel photography is monocular RGB-D photography with an ultra-high resolution, enabling many applications in computational photography. However, there are still several challenges to fully utilizing dual-pixel photography. Unlike the conventional stereo pair, the dual pixel exhibits a bidirectional disparity that includes positive and negative values, depending on the focus plane depth in an image. Furthermore, capturing a wide range of dual-pixel disparity requires a shallow depth of field, resulting in a severely blurred image, degrading depth estimation performance. Recently, several data-driven approaches have been proposed to mitigate these two challenges. However, due to the lack of the ground-truth dataset of the dual-pixel disparity, existing data-driven methods estimate either inverse depth or blurriness map. In this work, we propose a self-supervised learning method that learns bidirectional disparity by utilizing the nature of anisotropic blur kernels in dual-pixel photography. We observe that the dual-pixel left/right images have reflective-symmetric anisotropic kernels, so their sum is equivalent to that of a conventional image. We take a self-supervised training approach with the novel kernel-split symmetry loss accounting for the phenomenon. Our method does not rely on a training dataset of dual-pixel disparity that does not exist yet. Our method can estimate a complete disparity map with respect to the focus-plane depth from a dual-pixel image, outperforming the baseline dual-pixel methods.
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Install the CLIlune papers fulltext 8b17f25f-cb1e-4283-90e0-41252cd4f75eCited by top-tier papers5
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Builds on6
- Learning Single Camera Depth Estimation Using Dual-PixelsRahul Garg, Neal Wadhwa, Sameer Ansari, Jonathan T. BarronICCV 2019 · 123 citations
- Single-shot Hyperspectral-Depth Imaging with Learned Diffractive OpticsSeung-Hwan Baek, Hayato Ikoma, Daniel S. Jeon, Yuqi Li et al.ICCV 2021 · 109 citations
- Learning to Reduce Defocus Blur by Realistically Modeling Dual-Pixel DataAbdullah Abuolaim, Mauricio Delbracio, Damien Kelly, Michael S. Brown et al.ICCV 2021 · 72 citations
- Defocus Map Estimation and Deblurring from a Single Dual-Pixel ImageShumian Xin, Neal Wadhwa, Tianfan Xue, Jonathan T. Barron et al.ICCV 2021 · 47 citations
- Dual Pixel Exploration: Simultaneous Depth Estimation and Image RestorationLiyuan Pan, Shah Chowdhury, Richard Hartley, Miaomiao Liu et al.CVPR 2021
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