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Alena Brändle

3 accepted papers

2026

Continuous-Time Piecewise-Linear Recurrent Neural Networks

ICML 2026poster

In dynamical systems reconstruction (DSR) we aim to recover the dynamical system (DS) underlying observed time series. Specifically, we aim to learn a generative surrogate model which approximates the underlying, data-generating DS, and recreates its long-term properties (`climate statistics'). In s…

Cited by 0SourceScholar
2024

A scalable generative model for dynamical system reconstruction from neuroimaging data

NeurIPS 2024poster

Data-driven inference of the generative dynamics underlying a set of observed time series is of growing interest in machine learning and the natural sciences. In neuroscience, such methods promise to alleviate the need to handcraft models based on biophysical principles and allow to automatize the i…