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CoRe-GS: Coarse-to-Refined Gaussian Splatting with Semantic Object Focus

Published: September 5, 2025 | arXiv ID: 2509.04859v2

By: Hannah Schieber , Dominik Frischmann , Victor Schaack and more

Potential Business Impact:

Builds 3D scenes faster for important things.

Business Areas:
Geospatial Data and Analytics, Navigation and Mapping

Mobile reconstruction has the potential to support time-critical tasks such as tele-guidance and disaster response, where operators must quickly gain an accurate understanding of the environment. Full high-fidelity scene reconstruction is computationally expensive and often unnecessary when only specific points of interest (POIs) matter for timely decision making. We address this challenge with CoRe-GS, a semantic POI-focused extension of Gaussian Splatting (GS). Instead of optimizing every scene element uniformly, CoRe-GS first produces a fast segmentation-ready GS representation and then selectively refines splats belonging to semantically relevant POIs detected during data acquisition. This targeted refinement reduces training time to 25\% compared to full semantic GS while improving novel view synthesis quality in the areas that matter most. We validate CoRe-GS on both real-world (SCRREAM) and synthetic (NeRDS 360) datasets, demonstrating that prioritizing POIs enables faster and higher-quality mobile reconstruction tailored to operational needs.

Country of Origin
🇩🇪 🇨🇭 Switzerland, Germany

Page Count
8 pages

Category
Computer Science:
CV and Pattern Recognition