Stereo Magnification with Multi-Layer Images
Taras Khakhulin, Denis Korzhenkov, Pavel Solovev, Gleb Sterkin, Andrei-Timotei Ardelean, Victor Lempitsky
Abstract
Representing scenes with multiple semitransparent colored layers has been a popular and successful choice for real-time novel view synthesis. Existing approaches infer colors and transparency values over regularly spaced layers of planar or spherical shape. In this work, we introduce a new view synthesis approach based on multiple semitransparent layers with scene-adapted geometry. Our approach infers such representations from stereo pairs in two stages. The first stage produces the geometry of a small number of data-adaptive layers from a given pair of views. The second stage infers the color and transparency values for these layers, producing the final representation for novel view synthesis. Importantly, both stages are connected through a differentiable renderer and are trained end-to-end. In the experiments, we demonstrate the advantage of the proposed approach over the use of regularly spaced layers without adaptation to scene geometry. Despite being orders of magnitude faster during rendering, our approach also outperforms the recently proposed IBRNet system based on implicit geometry representation.
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Cited by top-tier papers3
- Tiled Multiplane Images for Practical 3D PhotographyNumair Khan, Lei Xiao, Douglas LanmanICCV 2023 · 15 citations
- Global Latent Neural RenderingThomas Tanay, Matteo MaggioniCVPR 2024 · 5 citations
- Efficient View Synthesis and 3D-based Multi-Frame Denoising with Multiplane Feature RepresentationsThomas Tanay, Ales Leonardis, Matteo MaggioniCVPR 2023
Builds on7
- Neural Sparse Voxel FieldsLingjie Liu, Jiatao Gu, Kyaw Zaw Lin, Tat-Seng Chua et al.NeurIPS 2020 · 1,535 citations
- Immersive light field video with a layered mesh representationMichael Broxton, John Flynn, Ryan S. Overbeck, Daniel Erickson et al.SIGGRAPH 2020 · 271 citations
- Worldsheet: Wrapping the World in a 3D Sheet for View Synthesis from a Single ImageRonghang Hu, Nikhila Ravi, Alexander C. Berg, Deepak PathakICCV 2021 · 97 citations
- IBRNet: Learning Multi-View Image-Based RenderingQianqian Wang, Zhicheng Wang, Kyle Genova, Pratul P. Srinivasan et al.CVPR 2021
- Single-View View Synthesis With Multiplane ImagesRichard Tucker, Noah SnavelyCVPR 2020
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