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Yi-Fan Chen

3 accepted papers

2023

Debias Coarsely, Sample Conditionally: Statistical Downscaling through Optimal Transport and Probabilistic Diffusion Models

NeurIPS 2023spotlight

We introduce a two-stage probabilistic framework for statistical downscaling using unpaired data. Statistical downscaling seeks a probabilistic map to transform low-resolution data from a biased coarse-grained numerical scheme to high-resolution data that is consistent with a high-fidelity scheme. O…

2023

Neural Ideal Large Eddy Simulation: Modeling Turbulence with Neural Stochastic Differential Equations

NeurIPS 2023poster

We introduce a data-driven learning framework that assimilates two powerful ideas: ideal large eddy simulation (LES) from turbulence closure modeling and neural stochastic differential equations (SDE) for stochastic modeling. The ideal LES models the LES flow by treating each full-order trajectory a…

Cited by 8SourcePDFScholar
2022

Policy Learning and Evaluation with Randomized Quasi-Monte Carlo

AISTATS 2022poster

Hard integrals arise frequently in reinforcement learning, for example when computing expectations in policy evaluation and policy iteration. They are often analytically intractable and typically estimated with Monte Carlo methods, whose sampling contributes to high variance in policy values and gra…

Cited by 8SourcePDFScholar