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Machine learning and LHC event generation

Academic Article
Publication Date:
2023
Citation:
Machine learning and LHC event generation / A. Butter, T. Plehn, S. Schumann, S. Badger, S. Caron, K. Cranmer, F. Armando Di Bello, E. Dreyer, S. Forte, S. Ganguly, D. Gon??alves, E. Gross, T. Heimel, G. Heinrich, L. Heinrich, A. Held, S. H??che, J.N. Howard, P. Ilten, J. Isaacson, T. Jan??en, S. Jones, M. Kado, M. Kagan, G. Kasieczka, F. Kling, S. Kraml, C. Krause, F. Krauss, K. Kr??ninger, R. Kumar Barman, M. Luchmann, V. Magerya, D. Maitre, B. Malaescu, F. Maltoni, T. Martini, O. Mattelaer, B. Nachman, S. Pitz, J. Rojo, M. Schwartz, D. Shih, F. Siegert, R. Stegeman, B. Stienen, J. Thaler, R. Verheyen, D. Whiteson, R. Winterhalder, J. Zupan. - In: SCIPOST PHYSICS. - ISSN 2542-4653. - 14:4(2023), pp. 079.1-079.32. [10.21468/scipostphys.14.4.079]
abstract:
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 predictions and interpretation. This review illustrates a wide range of applications of modern machine learning to event generation and simulation-based inference, including conceptional developments driven by the specific requirements of particle physics. New ideas and tools developed at the interface of particle physics and machine learning will improve the speed and precision of forward simulations, handle the complexity of collision data, and enhance inference as an inverse simulation problem.
IRIS type:
01 - Articolo su periodico
List of contributors:
A. Butter, T. Plehn, S. Schumann, S. Badger, S. Caron, K. Cranmer, F. Armando Di Bello, E. Dreyer, S. Forte, S. Ganguly, D. Gon??alves, E. Gross, T. Heimel, G. Heinrich, L. Heinrich, A. Held, S. H??che, J.N. Howard, P. Ilten, J. Isaacson, T. Jan??en, S. Jones, M. Kado, M. Kagan, G. Kasieczka, F. Kling, S. Kraml, C. Krause, F. Krauss, K. Kr??ninger, R. Kumar Barman, M. Luchmann, V. Magerya, D. Maitre, B. Malaescu, F. Maltoni, T. Martini, O. Mattelaer, B. Nachman, S. Pitz, J. Rojo, M. Schwartz, D. Shih, F. Siegert, R. Stegeman, B. Stienen, J. Thaler, R. Verheyen, D. Whiteson, R. Winterhalder, J. Zupan
Authors of the University:
FORTE STEFANO ( author )
WINTERHALDER RAMON PETER ( author )
Link to information sheet:
https://air.unimi.it/handle/2434/1019810
Full Text:
https://air.unimi.it/retrieve/handle/2434/1019810/2332165/SciPostPhys_14_4_079.pdf
Project:
Proton strucure for discovery at the Large Hadron Collider (NNNPDF)
  • Research Areas

Research Areas

Concepts (3)


Settore FIS/02 - Fisica Teorica, Modelli e Metodi Matematici

Settore INF/01 - Informatica

Settore ING-INF/05 - Sistemi di Elaborazione delle Informazioni
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