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Skyfall-GS: Synthesizing Immersive 3D Urban Scenes from Satellite Imagery

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Synthesizing large-scale, explorable, and geometrically accurate 3D urban scenes is a challenging yet valuable task for immersive and embodied applications. The challenge lies in the lack of large-scale and high-quality real-world 3D scans for training generalizable generative models. In this paper, we take an alternative route to create large-scale 3D scenes by leveraging readily available satellite imagery for realistic coarse geometry and open-domain diffusion models for high-quality close-up appearance synthesis. We propose Skyfall-GS, a novel hybrid framework that synthesizes immersive city-block scale 3D urban scenes by combining satellite reconstruction with diffusion refinement, eliminating the need for costly 3D annotations, and also featuring real-time, immersive 3D exploration. We tailor a curriculum-driven iterative refinement strategy to progressively enhance geometric completeness and photorealistic texture. Extensive experiments demonstrate that Skyfall-GS provides improved cross-view consistent geometry and more realistic textures compared to state-of-the-art approaches. Project page: https://skyfall-gs.jayinnn.dev/

Jie-Ying Lee, Yi-Ruei Liu, Shr-Ruei Tsai, Wei-Cheng Chang, Chung-Ho Wu, Jiewen Chan, Zhenjun Zhao, Chieh Hubert Lin, Yu-Lun Liu• 2025

Related benchmarks

TaskDatasetResultRank
Surface ReconstructionOMA Building Only
MAEreg1.69
7
Surface ReconstructionJAX All Classes
MAE (Regression)1.78
7
Surface ReconstructionOMA All Classes
MAEreg1.22
7
Surface ReconstructionJAX Building Only
MAEreg1.45
7
Surface ReconstructionIARPA Building Only
MAE (Regression)2.05
7
Surface ReconstructionIARPA All Classes
MAE (Regression)2.55
7
Geometric AccuracyJAX Full Scene
MAE1.5
6
Geometric AccuracyJAX Buildings
MAE1.25
6
Geometric AccuracyOMA Buildings
MAE (reg)1.81
6
Geometric AccuracyOMA Full Scene
MAE (Registration)1.4
6
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