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In-span learning: adapting reduced-order models using their own predictions

arXiv cs.LG · 2026-07-07 Cached

Introduces in-span learning, a method to adapt reduced-order models by streaming the model's own predictions through an incremental singular-value decomposition, reweighting and realigning the basis without changing the subspace. The approach is demonstrated on several dynamical systems and proposed as a computational-science analogue of in-context learning.

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