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Shaocheng Jin

1 accepted papers

2025

Learning to Normalize on the SPD Manifold under Bures-Wasserstein Geometry

CVPR 2025poster

Covariance matrices have proven highly effective across many scientific fields. Since these matrices lie within the Symmetric Positive Definite (SPD) manifold--a Riemannian space with intrinsic non-Euclidean geometry, the primary challenge in representation learning is to respect this underlying geo…