Martin Andrae, Linköping University: Flow-based generative models for data assimilation
Overview
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- Date:Starts 25 February 2026, 13:15Ends 25 February 2026, 14:00
- Location:MV:L14, Chalmers tvärgata 3
- Language:English
Abstract: Flow-based and diffusion generative models have emerged as powerful tools for sampling from complex, high-dimensional distributions, such as those found in image generation. In weather forecasting, they enable the generation of ensemble forecasts at a fraction of the computational cost of traditional numerical models. These models have also shown promise for solving inverse problems like data assimilation, offering advantages over classical methods in high-dimensional, nonlinear settings. In this talk, I will introduce the core ideas behind these approaches and present some of our recent results.
Akash Sharma
- Postdoc, Applied Mathematics and Statistics, Mathematical Sciences