6–11 Jul 2025
PALAIS DU PHARO, Marseille, France
Europe/Paris timezone

Accurate Surrogate Amplitudes with Calibrated Uncertainties

Not scheduled
20m
PALAIS DU PHARO, Marseille, France

PALAIS DU PHARO, Marseille, France

Parallel T16 - AI for HEP (special topic 2025) T16

Speaker

Henning Bahl (Universität Heidelberg)

Description

Neural networks for LHC physics have to be accurate, reliable, and controlled. Using surrogate loop amplitudes as a use case, we first show how activation functions can be systematically tested with KANs. For reliability and control, we learn uncertainties together with the target amplitude over phase space. Systematic uncertainties can be learned by a heteroscedastic loss, but a comprehensive learned uncertainty requires Bayesian networks or repulsive ensembles. We compute pull distributions to show to what level learned uncertainties are calibrated correctly for cutting-edge precision surrogates.

Author

Henning Bahl (Universität Heidelberg)

Presentation materials

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