SurfaceNet: Adversarial SVBRDF Estimation from a Single Image
Giuseppe Vecchio, Simone Palazzo, Concetto Spampinato
摘要
In this paper we present SurfaceNet, an approach for estimating spatially-varying bidirectional reflectance distribution function (SVBRDF) material properties from a single image. We pose the problem as an image translation task and propose a novel patch-based generative adversarial network (GAN) that is able to produce high-quality, high-resolution surface reflectance maps. The employment of the GAN paradigm has a twofold objective: 1) allowing the model to recover finer details than standard translation models; 2) reducing the domain shift between synthetic and real data distributions in an unsupervised way. An extensive evaluation, carried out on a public benchmark of synthetic and real images under different illumination conditions, shows that SurfaceNet largely outperforms existing SVBRDF reconstruction methods, both quantitatively and qualitatively. Furthermore, SurfaceNet exhibits a remarkable ability in generating high-quality maps from real samples without any supervision at training time. Source code available at https://github.com/ perceivelab/surfacenet .
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引用它的顶会 Paper12
- MatFuse: Controllable Material Generation with Diffusion ModelsGiuseppe Vecchio, Renato Sortino, Simone Palazzo, Concetto SpampinatoCVPR 2024 · 被引用 26 次
- MatSynth: A Modern PBR Materials DatasetGiuseppe Vecchio, Valentin DeschaintreCVPR 2024 · 被引用 24 次
- Material Palette: Extraction of Materials from a Single ImageIvan Lopes, Fabio Pizzati, Raoul de CharetteCVPR 2024 · 被引用 14 次
- Deep SVBRDF Estimation from Single Image under Learned Planar LightingLianghao Zhang, Fangzhou Gao, Li Wang, Minjing Yu 等SIGGRAPH 2023 · 被引用 13 次
- MaterialSeg3D: Segmenting Dense Materials from 2D Priors for 3D AssetsZeyu Li, Ruitong Gan, Chuanchen Luo, Yuxi Wang 等ACM MM 2024 · 被引用 4 次
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