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Dimitra Maoutsa

1 accepted papers

2026

From geometry to dynamics: Learning overdamped Langevin dynamics from sparse observations with geometric constraints

ICML 2026poster

How can we learn the laws underlying the dynamics of stochastic systems when their trajectories are sampled sparsely in time? Existing methods either require temporally resolved high-frequency observations, or rely on geometric arguments that apply only to conservative systems, limiting the range of…

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