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Aleksandra Franz

3 accepted papers

2026

Plug-and-Play Benchmarking of Reinforcement Learning Algorithms for Large-Scale Flow Control

ICML 2026poster

Reinforcement learning (RL) has shown promising results in active flow control (AFC), yet progress in the field remains difficult to assess as existing studies rely on heterogeneous observation and actuation schemes, numerical setups, and evaluation protocols. Current AFC benchmarks attempt to addre…

Cited by 0SourceScholar
2025

INC: An Indirect Neural Corrector for Auto-Regressive Hybrid PDE Solvers

NeurIPS 2025poster

When simulating partial differential equations, hybrid solvers combine coarse numerical solvers with learned correctors. They promise accelerated simulations while adhering to physical constraints. However, as shown in our theoretical framework, directly applying learned corrections to solver output…

Cited by 0SourceScholar
2023

Learning to Estimate Single-View Volumetric Flow Motions without 3D Supervision

ICLR 2023poster

We address the challenging problem of jointly inferring the 3D flow and volumetric densities moving in a fluid from a monocular input video with a deep neural network. Despite the complexity of this task, we show that it is possible to train the corresponding networks without requiring any 3D ground…