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AtlasGS: Brain MRI Spatial Resolution Harmonization With Shared Gaussian Geometry

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Splatting (GS)-based shared geometry framework adopts a two-stage training strategy, in which an explicit, subject-specific Gaussian scaffold encoding anatomical geometry is first learned from the isotropic structural scan and then reused to fit appearance for target modalities acquired with sparse slices. Experiments on the UK Biobank, GBM, and ABCD datasets for through-plane super-resolution across multiple modalities (T2-weighted, FLAIR, DWI, ASL), degradation factors ($\times 3$, $\times 5$, $\times 7$), and pathological abnormalities (glioblastoma) demonstrate state-of-the-art reconstruction fidelity. The shared Gaussian geometry enables arbitrary-view generation for target modalities with strong structural consistency and further shows potential for self-supervised in-plane super-resolution. This work establishes explicit geometry-guided representations as a novel, flexible, and interpretable pathway toward retrospective multi-contrast MRI harmonization and reliable clinical reference construction. Source code is available at: https://github.com/yfgao76/AtlasGS

Yifan Gao, Peiran Xu, Yimeng He, Haoran Li, Ziyang Long, Yufeng Wang, Ju Dong Yang, Debiao Li• 2026

Related benchmarks

TaskDatasetResultRank
Through-plane super-resolutionUK Biobank Flair
MAE40.16
21
Through-plane super-resolutionGBM T2w
MAE86.75
5
Through-plane super-resolutionGBM Flair
MAE27.36
5
Through-plane super-resolutionABCD ASL
MAE4.6
5
Through-plane super-resolutionABCD DWI
MAE7.22
5
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