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Topological Out-of-Domain Generalization in Dynamical Systems Reconstruction [R]

AI 摘要

A recent #NeurIPS2026 paper, "Topological Out-of-Domain Generalization in Dynamical Systems Reconstruction," addresses a fundamental challenge in dynamical systems reconstruction (DSR) and time series forecasting (TSF). While many state-of-the-art models can generalize to new initial conditions or changing statistical properties, the more difficult problem is topological out-of-domain generalization (OODG). This occurs when the dynamical regime itself changes, for example, transitioning from cyclic to chaotic behavior.

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2026年10月2日 22:00
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