We provide an overview of the status of Monte-Carlo event generators for high-energy particle physics. Guided by the experimental needs and requirements, we highlight areas of active development, and opportunities for future improvements. Particular emphasis is given to physics models and algorithms that are employed across a variety of experiments. These common themes in event generator development lead to a more comprehensive understanding of physics at the highest energies and intensities, and allow models to be tested against a wealth of data that have been accumulated over the past decades. A cohesive approach to event generator development will allow these models to be further improved and systematic uncertainties to be reduced, directly contributing to future experimental success. Event generators are part of a much larger ecosystem of computational tools. They typically involve a number of unknown model parameters that must be tuned to experimental data, while maintaining the integrity of the underlying physics models. Making both these data, and the analyses with which they have been obtained accessible to future users is an essential aspect of open science and data preservation. It ensures the consistency of physics models across a variety of experiments.

Event generators for high-energy physics experiments / J.M. Campbell, M. Diefenthaler, T.J. Hobbs, S. Hoche, J. Isaacson, F. Kling, S. Mrenna, J. Reuter, S. Alioli, J.R. Andersen, C. Andreopoulos, A.M. Ankowski, E.C. Aschenauer, A. Ashkenazi, M.D. Baker, J.L. Barrow, M. Van Beekveld, G. Bewick, S. Bhattacharya, C. Bierlich, E. Bothmann, P. Bredt, A. Broggio, A. Buckley, A. Butter, J.M. Butterworth, E.P. Byrne, C.M.C. Calame, S. Chakraborty, X. Chen, M. Chiesa, J.T. Childers, J. Cruz-Martinez, J. Currie, N. Darvishi, M. Dasgupta, A. Denner, F.A. Dreyer, S. Dytman, B.K. El-Menoufi, T. Engel, S.F. Ravasio, D. Figueroa, L. Flower, J.R. Forshaw, R. Frederix, A. Friedland, S. Frixione, H. Gallagher, K. Gallmeister, S. Gardiner, R. Gauld, J. Gaunt, A. Gavardi, T. Gehrmann, A.G. De Ridder, L. Gellersen, W. Giele, S. Gieseke, F. Giuli, E.W.N. Glover, M. Grazzini, A. Grohsjean, C. Gutschow, K. Hamilton, T. Han, R. Hatcher, G. Heinrich, I. Helenius, O. Hen, V. Hirschi, M. Hofer, J. Holguin, A. Huss, P. Ilten, S. Jadach, A. Jentsch, S.P. Jones, W. Ju, S. Kallweit, A. Karlberg, T. Katori, M. Kerner, W. Kilian, M.M. Kirchgaesser, S. Klein, M. Knobbe, C. Krause, F. Krauss, J. Lang, J.-. Lang, G. Lee, S.W. Li, M.A. Lim, J.M. Lindert, D. Lombardi, L. Lonnblad, M. Loschner, N. Lurkin, Y. Ma, P. Machado, V. Magerya, A. Maier, I. Majer, F. Maltoni, M. Marcoli, G. Marinelli, M.R. Masouminia, P. Mastrolia, O. Mattelaer, J. Mazzitelli, J. Mcfayden, R. Medves, P. Meinzinger, J. Mo, P.F. Monni, G. Montagna, T. Morgan, U. Mosel, B. Nachman, P. Nadolsky, R. Nagar, Z. Nagy, D. Napoletano, P. Nason, T. Neumann, L.J. Nevay, O. Nicrosini, J. Niehues, K. Niewczas, T. Ohl, G. Ossola, V. Pandey, A. Papadopoulou, A. Papaefstathiou, G. Paz, M. Pellen, G. Pelliccioli, T. Peraro, F. Piccinini, L. Pickering, J. Pires, W. Placzek, S. Platzer, T. Plehn, S. Pozzorini, S. Prestel, C.T. Preuss, A.C. Price, S. Quackenbush, E. Re, D. Reichelt, L. Reina, C. Reuschle, P. Richardson, M. Rocco, N. Rocco, M. Roda, A.R. Garcia, S. Roiser, J. Rojo, L. Rottoli, G.P. Salam, M. Schonherr, S. Schuchmann, S. Schumann, R. Schurmann, L. Scyboz, M.H. Seymour, F. Siegert, A. Signer, G.S. Chahal, A. Siodmok, T. Sjostrand, P. Skands, J.M. Smillie, J.T. Sobczyk, D. Soldin, D.E. Soper, A. Soto-Ontoso, G. Soyez, G. Stagnitto, J. Tena-Vidal, O. Tomalak, F. Tramontano, S. Trojanowski, Z. Tu, S. Uccirati, T. Ullrich, Y. Ulrich, M. Utheim, A. Valassi, A. Verbytskyi, R. Verheyen, M. Wagman, D. Walker, B.R. Webber, L. Weinstein, O. White, J. Whitehead, M. Wiesemann, C. Wilkinson, C. Williams, R. Winterhalder, C. Wret, K. Xie, T.-. Yang, E. Yazgan, G. Zanderighi, S. Zanoli, K. Zapp. - In: SCIPOST PHYSICS. - ISSN 2542-4653. - 16:5(2024 May), pp. 130.1-130.225. [10.21468/SCIPOSTPHYS.16.5.130]

Event generators for high-energy physics experiments

R. Winterhalder;
2024

Abstract

We provide an overview of the status of Monte-Carlo event generators for high-energy particle physics. Guided by the experimental needs and requirements, we highlight areas of active development, and opportunities for future improvements. Particular emphasis is given to physics models and algorithms that are employed across a variety of experiments. These common themes in event generator development lead to a more comprehensive understanding of physics at the highest energies and intensities, and allow models to be tested against a wealth of data that have been accumulated over the past decades. A cohesive approach to event generator development will allow these models to be further improved and systematic uncertainties to be reduced, directly contributing to future experimental success. Event generators are part of a much larger ecosystem of computational tools. They typically involve a number of unknown model parameters that must be tuned to experimental data, while maintaining the integrity of the underlying physics models. Making both these data, and the analyses with which they have been obtained accessible to future users is an essential aspect of open science and data preservation. It ensures the consistency of physics models across a variety of experiments.
Settore PHYS-02/A - Fisica teorica delle interazioni fondamentali, modelli, metodi matematici e applicazioni
   Spanning TeV to GeV scales for collider discoveries and measurements
   PanScales
   European Commission
   Horizon 2020 Framework Programme
   788223

   Innovative Network for Monte Carlo Event Generators for LHC Physics
   MCnetITN3
   European Commission
   Horizon 2020 Framework Programme
   722104

   Future Circular Collider Innovation Study
   FCCIS
   European Commission
   Horizon 2020 Framework Programme
   951754
mag-2024
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/1174021
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