Gaussian Graph Network: Learning Efficient and Generalizable Gaussian Representations from Multi-view Images
Shengjun Zhang, Xin Fei, Fangfu Liu, Haixu Song, Yueqi Duan
Abstract
3D Gaussian Splatting (3DGS) has demonstrated impressive novel view synthesis performance. While conventional methods require per-scene optimization, more recently several feed-forward methods have been proposed to generate pixel-aligned Gaussian representations with a learnable network, which are generalizable to different scenes. However, these methods simply combine pixel-aligned Gaussians from multiple views as scene representations, thereby leading to artifacts and extra memory cost without fully capturing the relations of Gaussians from different images. In this paper, we propose Gaussian Graph Network (GGN) to generate efficient and generalizable Gaussian representations. Specifically, we construct Gaussian Graphs to model the relations of Gaussian groups from different views. To support message passing at Gaussian level, we reformulate the basic graph operations over Gaussian representations, enabling each Gaussian to benefit from its connected Gaussian groups with Gaussian feature fusion. Furthermore, we design a Gaussian pooling layer to aggregate various Gaussian groups for efficient representations. We conduct experiments on the large-scale RealEstate10K and ACID datasets to demonstrate the efficiency and generalization of our method. Compared to the state-of-the-art methods, our model uses fewer Gaussians and achieves better image quality with higher rendering speed.
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Cited by top-tier papers12
- ZPressor: Bottleneck-Aware Compression for Scalable Feed-Forward 3DGSWeijie Wang, Donny Y. Chen, Zeyu Zhang, Duochao Shi et al.NeurIPS 2025 · 31 citations
- EcoSplat: Efficiency-controllable Feed-forward 3D Gaussian Splatting from Multi-view ImagesJongmin Park, Minh-Quan Viet Bui, Juan Luis Gonzalez, Jaeho Moon et al.CVPR 2026 · 8 citations
- SparseSplat: Towards Applicable Feed-Forward 3D Gaussian Splatting with Pixel-Unaligned PredictionZicheng Zhang, Xiangting Meng, Ke Wu, Wenchao DingCVPR 2026 · 7 citations
- Learning Efficient Fuse-and-Refine for Feed-Forward 3D Gaussian SplattingYiming Wang, Lucy Chai, Xuan Luo, Michael Niemeyer et al.NeurIPS 2025 · 5 citations
- IDESplat: Iterative Depth Probability Estimation for Generalizable 3D Gaussian SplattingWei Long, Haifeng Wu, Shiyin Jiang, Jinhua Zhang et al.CVPR 2026 · 4 citations
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- 3D Gaussian Splatting for Real-Time Radiance Field RenderingBernhard Kerbl, Georgios Kopanas, Thomas Leimkühler, George DrettakisSIGGRAPH 2023 · 5,687 citations
- Instant neural graphics primitives with a multiresolution hash encodingThomas Müller, Alex Evans, Christoph Schied, Alexander KellerSIGGRAPH 2022 · 4,089 citations
- Mip-NeRF: A Multiscale Representation for Anti-Aliasing Neural Radiance FieldsJonathan T. Barron, Ben Mildenhall, Matthew Tancik, Peter Hedman et al.ICCV 2021 · 2,700 citations
- Neural Sparse Voxel FieldsLingjie Liu, Jiatao Gu, Kyaw Zaw Lin, Tat-Seng Chua et al.NeurIPS 2020 · 1,535 citations
- PlenOctrees for Real-time Rendering of Neural Radiance FieldsAlex Yu, Ruilong Li, Matthew Tancik, Hao Li et al.ICCV 2021 · 1,284 citations
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