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In-context learning to predict critical transitions in dynamical systems

About

Critical transitions - abrupt, often irreversible changes in system dynamics - arise across human and natural systems, often with catastrophic consequences. Real-world observations of such shifts remain scarce, preventing the development of reliable early warning systems. Conventional statistical and spectral indicators, such as increasing variance, tend to fail under realistic conditions of limited data and correlated noise, whereas existing deep learning classifiers do not extrapolate beyond their training data distribution. In this work, we introduce TipPFN, an in-context learning (ICL) framework that uses a prior-data fitted network to infer a system's proximity to a critical transition. Trained on our novel synthetic data generator, which is based on canonical bifurcation scenarios coupled to diverse, randomized stochastic dynamics, TipPFN flexibly capitalizes on contexts of various sizes, complexity and dimensionalities. We demonstrate robust, state-of-the-art early detection of critical transitions in previously unseen tipping regimes, sim-to-real examples, and real-world observations in both ICL and zero-shot settings.

Yunus Sevinchan, Juan Nathaniel, Kai Ueltzh\"offer, Carla Roesch, Tobias Weber, Vaios Laschos, Hang Fan, Gregor Ramien, Johannes Haux, Pierre Gentine, Benjamin Herdeanu• 2026

Related benchmarks

TaskDatasetResultRank
Critical transition detectionB-Fold Canonical
AUROC95.5
9
Critical transition detectionB-Hopf Canonical
AUROC0.952
9
Critical transition detectionB-Trans Canonical
AUROC0.95
9
Critical transition detectionB-Harv. Semi-real
AUROC97.4
9
Critical transition detectionB-RM Semi-real
AUROC0.963
9
Critical transition detectionB-RM Hopf Semi-real
AUROC0.904
9
Critical transition detectionB-SEIRx Semi-real
AUROC90.5
9
Critical transition detectionR-Bautin Semi-real
AUROC0.7
9
Critical transition detectionR-SN Semi-real
AUROC0.892
9
Critical transition detectionR-Compost Semi-real
AUROC76.7
9
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