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Sebastian Pitz

4 papers

No researched profile yet.

papers

Publications (4)

hep-ph2025

Lorentz-Equivariance without Limitations

Luigi Favaro, Gerrit Gerhartz, Fred A. Hamprecht +5

Lorentz Local Canonicalization (LLoCa) ensures exact Lorentz-equivariance for arbitrary neural networks with minimal computational overhead. For the LHC, it equivariantly predicts…

hep-ph2022

Loop Amplitudes from Precision Networks

Simon Badger, Anja Butter, Michel Luchmann +2

Evaluating loop amplitudes is a time-consuming part of LHC event generation. For di-photon production with jets we show that simple, Bayesian networks can learn such amplitudes and…

stat.ML2025

Lorentz Local Canonicalization: How to Make Any Network Lorentz-Equivariant

Jonas Spinner, Luigi Favaro, Peter Lippmann +4

Lorentz-equivariant neural networks are becoming the leading architectures for high-energy physics. Current implementations rely on specialized layers, limiting architectural choic…

hep-ph2022

Machine Learning and LHC Event Generation

Anja Butter, Tilman Plehn, Steffen Schumann +48

First-principle simulations are at the heart of the high-energy physics research program. They link the vast data output of multi-purpose detectors with fundamental theory predicti…

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