Deep Parametric Indoor Lighting Estimation
Marc-André Gardner, Yannick Hold-Geoffroy, Kalyan Sunkavalli, Christian Gagné, Jean-François Lalonde
摘要
We present a method to estimate lighting from a single image of an indoor scene. Previous work has used an environment map representation that does not account for the localized nature of indoor lighting. Instead, we represent lighting as a set of discrete 3D lights with geometric and photometric parameters. We train a deep neural network to regress these parameters from a single image, on a dataset of environment maps annotated with depth. We propose a differentiable layer to convert these parameters to an environment map to compute our loss; this bypasses the challenge of establishing correspondences between estimated and ground truth lights. We demonstrate, via quantitative and qualitative evaluations, that our representation and training scheme lead to more accurate results compared to previous work, while allowing for more realistic 3D object compositing with spatially-varying lighting.
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引用它的顶会 Paper51
- Neural-PIL: Neural Pre-Integrated Lighting for Reflectance DecompositionMark Boss, Varun Jampani, Raphael Braun, Ce Liu 等NeurIPS 2021 · 被引用 270 次
- Learning Indoor Inverse Rendering with 3D Spatially-Varying LightingZian Wang, Jonah Philion, Sanja Fidler, Jan KautzICCV 2021 · 被引用 109 次
- DIB-R++: Learning to Predict Lighting and Material with a Hybrid Differentiable RendererWenzheng Chen, Joey Litalien, Jun Gao, Zian Wang 等NeurIPS 2021 · 被引用 74 次
- EMLight: Lighting Estimation via Spherical Distribution ApproximationFangneng Zhan, Changgong Zhang, Yingchen Yu, Yuan Chang 等AAAI 2021 · 被引用 73 次
- Shadow Generation for Composite Image in Real-World ScenesYan Hong, Li Niu, Jianfu ZhangAAAI 2022 · 被引用 55 次
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