Neural Inverse Rendering of an Indoor Scene From a Single Image
Soumyadip Sengupta, Jinwei Gu, Kihwan Kim, Guilin Liu, David W. Jacobs, Jan Kautz
摘要
Inverse rendering aims to estimate physical attributes of a scene, e.g., reflectance, geometry, and lighting, from image(s). Inverse rendering has been studied primarily for single objects or with methods that solve for only one of the scene attributes. We propose the first learning based approach that jointly estimates albedo, normals, and lighting of an indoor scene from a single image. Our key contribution is the Residual Appearance Renderer (RAR), which can be trained to synthesize complex appearance effects (e.g., inter-reflection, cast shadows, near-field illumination, and realistic shading), which would be neglected otherwise. This enables us to perform self-supervised learning on real data using a reconstruction loss, based on re-synthesizing the input image from the estimated components. We finetune with real data after pretraining with synthetic data. To this end, we use physically-based rendering to create a large-scale synthetic dataset, named SUNCG-PBR, which is a significant improvement over prior datasets. Experimental results show that our approach outperforms state-of-the-art methods that estimate one or more scene attributes.
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引用它的顶会 Paper56
- Hypersim: A Photorealistic Synthetic Dataset for Holistic Indoor Scene UnderstandingMike Roberts, Jason Ramapuram, Anurag Ranjan, Atulit Kumar 等ICCV 2021 · 被引用 633 次
- NeRD: Neural Reflectance Decomposition from Image CollectionsMark Boss, Raphael Braun, Varun Jampani, Jonathan T. Barron 等ICCV 2021 · 被引用 608 次
- Neural-PIL: Neural Pre-Integrated Lighting for Reflectance DecompositionMark Boss, Varun Jampani, Raphael Braun, Ce Liu 等NeurIPS 2021 · 被引用 270 次
- Modeling Indirect Illumination for Inverse RenderingYuanqing Zhang, Jiaming Sun, Xingyi He, Huan Fu 等CVPR 2022 · 被引用 140 次
- Learning Indoor Inverse Rendering with 3D Spatially-Varying LightingZian Wang, Jonah Philion, Sanja Fidler, Jan KautzICCV 2021 · 被引用 109 次
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