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October 8, 2026
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The 23rd Annual Meeting of the Valdai Discussion Club was held from September 28 to October 1, 2026 under the theme ‘Responsibility for the Future: Limits of the Possible, or Limitless Possibilities?’ The forum brought together 120 experts from 40 countries, including representatives of China, the United States, India, Brazil, the United Kingdom, Germany, Egypt, Iran, and Japan.
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Generalization error bound for denoising score matching under relaxed manifold assumption

P. 5824–5891.
Yakovlev K., Puchkin N.

We examine theoretical properties of the denoising score matching estimate. We model the density of observations with a nonparametric Gaussian mixture. We significantly relax the standard manifold assumption allowing the samples step away from the manifold. At the same time, we are still able to leverage a nice distribution structure. We derive non-asymptotic bounds on the approximation and generalization errors of the denoising score matching estimate. The rates of convergence are determined by the intrinsic dimension. Furthermore, our bounds remain valid even if we allow the ambient dimension grow polynomially with the sample size.

Language: English
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Keywords: diffusion modelsscore estimation

In book

Proceedings of Machine Learning Research Vol. 291: The Thirty Eighth Annual Conference on Learning Theory, 30-4 July 2025, Lyon, France
PMLR, 2025.
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