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Operator Learning in Mechanics with Robust Error Estimation, Control, and Generalization

23 June 2026 · Minisymposium 207, 20th US National Congress on Theoretical and Applied Mechanics · Pasadena, California

Organized minisymposium bringing together work on operator learning in mechanics where the emphasis is on reliability rather than raw accuracy: how to estimate the error a learned operator carries, how to control it, and what can be said about generalization beyond the distribution a surrogate was trained on.

Organized with Danial Faghihi and Serge Prudhomme. Two sessions on 23 June 2026, eight presentations, spanning Bayesian neural operators, residual-based error correction, reinforcement learning and robust generalization in mechanics.

Neural OperatorsError EstimationScientific Machine Learning