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Jong Chul Ye

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#artificial intelligence Preprint Oct 2026

MaDeL: Manifold-Decomposed Feature Losses for Generative Modeling

Generative models are often trained with isotropic objectives such as mean-squared error. For data concentrated near a low-dimensional manifold, however, such losses conflate displacement along the manifold, which may represent valid variation, with displacement away from it, which produces invalid samples. This mismat...

Beomsu Kim, Jong Chul Ye, Kwanyoung Kim · 0 citations

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