MVSplat360: Feed-Forward 360 Scene Synthesis from Sparse Views
Yuedong Chen, Chuanxia Zheng, Haofei Xu, Bohan Zhuang, Andrea Vedaldi, Tat-Jen Cham, Jianfei Cai
摘要
We introduce MVSplat360, a feed-forward approach for 360 novel view synthesis (NVS) of diverse real-world scenes, using only sparse observations. This setting is inherently ill-posed due to minimal overlap among input views and insufficient visual information provided, making it challenging for conventional methods to achieve high-quality results. Our MVSplat360 addresses this by effectively combining geometry-aware 3D reconstruction with temporally consistent video generation. Specifically, it refactors a feed-forward 3D Gaussian Splatting (3DGS) model to render features directly into the latent space of a pre-trained Stable Video Diffusion (SVD) model, where these features then act as pose and visual cues to guide the denoising process and produce photorealistic 3D-consistent views. Our model is end-to-end trainable and supports rendering arbitrary views with as few as 5 sparse input views. To evaluate MVSplat360's performance, we introduce a new benchmark using the challenging DL3DV-10K dataset, where MVSplat360 achieves superior visual quality compared to state-of-the-art methods on wide-sweeping or even 360 NVS tasks. Experiments on the existing benchmark RealEstate10K also confirm the effectiveness of our model. The video results are available on our project page: https://donydchen.github.io/mvsplat360.
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引用它的顶会 Paper9
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- Off The Grid: Detection of Primitives for Feed-Forward 3D Gaussian SplattingArthur Moreau, Richard Shaw, Michal Nazarczuk, Jisu Shin 等CVPR 2026 · 被引用 10 次
- LagerNVS: Latent Geometry for Fully Neural Real-time Novel View SynthesisStanislaw Szymanowicz, Minghao Chen, Jianyuan Wang, Christian Rupprecht 等CVPR 2026 · 被引用 6 次
- TextSplat: Text-Guided Semantic Fusion for Generalizable Gaussian SplattingZhicong Wu, Hongbin Xu, Gang Xu, Ping Nie 等ACM MM 2025 · 被引用 6 次
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