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From the 1 of 17 linked papers with an AI index.

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20242026
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stat.ML2026

Scale-Adaptive Generative Flows for Multiscale Scientific Data

Yifan Chen, Eric Vanden-Eijnden

Flow-based generative models can face numerical challenges on scientific data with multiscale Fourier spectra, often producing large errors at fine scales. We approach this problem…

stat.ML2026

Lipschitz-Guided Design of Interpolation Schedules in Generative Models

Yifan Chen, Eric Vanden-Eijnden, Jiawei Xu

We study the design of interpolation schedules in flow and diffusion-based generative models from both statistical and numerical perspectives. Within the stochastic interpolants fr…

stat.ML2025

Convergence of Unadjusted Langevin in High Dimensions: Delocalization of Bias

Yifan Chen, Xiaoou Cheng, Jonathan Niles-Weed +1

The unadjusted Langevin algorithm is commonly used to sample probability distributions in extremely high-dimensional settings. However, existing analyses of the algorithm for stron…

stat.ML2024

Gradient Flows for Sampling: Mean-Field Models, Gaussian Approximations and Affine Invariance

Yifan Chen, Daniel Zhengyu Huang, Jiaoyang Huang +2

Sampling a probability distribution with an unknown normalization constant is a fundamental problem in computational science and engineering. This task may be cast as an optimizati…

stat.ML2024

Gaussian Measures Conditioned on Nonlinear Observations: Consistency, MAP Estimators, and Simulation

Yifan Chen, Bamdad Hosseini, Houman Owhadi +1

The article presents a systematic study of the problem of conditioning a Gaussian random variable on nonlinear observations of the form where $ϕ: \mathcal{X}…