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Event generators for high-energy physics experiments

  • J. M. Campbell
  • , M. Diefenthaler
  • , T. J. Hobbs
  • , S. Höche
  • , 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.Carloni 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. Ferrario 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. Gehrmann De Ridder, L. Gellersen, W. Giele, S. Gieseke, F. Giuli, E. W.N. Glover, M. Grazzini, A. Grohsjean, C. Gütschow, K. Hamilton, T. Han, R. Hatcher, G. Heinrich, I. Helenius, O. Hen, V. Hirschi, M. Höfer, 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. N. Lang, G. Lee, S. W. Li, M. A. Lim, J. M. Lindert, D. Lombardi, L. Lönnblad, M. Löschner, 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. Płaczek, S. Plätzer, 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. Rodriguez Garcia, S. Roiser, J. Rojo, L. Rottoli, G. P. Salam, M. Schönherr, S. Schuchmann, S. Schumann, R. Schürmann, L. Scyboz, M. H. Seymour, F. Siegert, A. Signer, G. Singh Chahal, A. Siódmok, T. Sjöstrand, 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. Z. Yang, E. Yazgan, G. Zanderighi, S. Zanoli, K. Zapp
  • Fermi National Accelerator Laboratory
  • Thomas Jefferson National Accelerator Facility
  • Illinois Institute of Technology
  • German Electron Synchrotron
  • University of Milan - Bicocca
  • Durham University
  • University of Liverpool
  • Rutherford Appleton Laboratory
  • SLAC National Accelerator Laboratory
  • Brookhaven National Laboratory
  • Tel Aviv University
  • Massachusetts Institute of Technology
  • University of Oxford
  • Northwestern University
  • Lund University
  • University of Göttingen
  • University of Glasgow
  • Heidelberg University 
  • University College London
  • University of Edinburgh
  • National Institute for Nuclear Physics
  • Karlsruhe Institute of Technology
  • University of Pavia
  • Argonne National Laboratory
  • University of Milan
  • Michigan State University
  • CAS - Institute of Theoretical Physics
  • University of Manchester
  • University of Würzburg
  • University of Pittsburgh
  • Paul Scherrer Institute
  • University of Zurich
  • Florida State University
  • Tufts University
  • Justus Liebig University Giessen
  • University of Bonn
  • Swiss Federal Institute of Technology Zurich
  • CERN
  • University of Jyväskylä
  • University of Helsinki
  • Ludwig Maximilian University of Munich
  • CNRS
  • University of Cincinnati
  • Polish Academy of Sciences
  • King's College London
  • University of Siegen
  • Lawrence Berkeley National Laboratory
  • Rutgers - The State University of New Jersey, New Brunswick
  • Korea University
  • Cornell University
  • University of Sussex
  • Max Planck Institute for Physics (Werner Heisenberg Institute)
  • Université catholique de Louvain
  • University of Bologna
  • University of Padua
  • Southern Methodist University
  • Royal Holloway University of London
  • University of Wrocław
  • Ghent University
  • City University of New York
  • University of Naples Federico II
  • University of Florida
  • Kennesaw State University
  • Wayne State University
  • University of Freiburg
  • Laboratory of Instrumentation and Experimental Particle Physics
  • University of Lisbon
  • Jagiellonian University in Kraków
  • University of Graz
  • University of Vienna
  • Université Grenoble Alpes
  • Vrije Universiteit Amsterdam
  • National Institute for Subatomic Physics
  • Johannes Gutenberg University Mainz
  • Technische Universität Dresden
  • Imperial College London
  • Monash University
  • University of Delaware
  • University of Oregon
  • Université Paris-Saclay
  • Los Alamos National Laboratory Theoretical Division
  • Nicolaus Copernicus Astronomical Center Polish Academy of Sciences
  • National Centre for Nuclear Research
  • University of Turin
  • University of Cambridge
  • Old Dominion University
  • University of Rochester
  • National Taiwan University

Research output: Contribution to journalArticlepeer-review

65 Scopus citations

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.

Original languageEnglish
Article number130
JournalSciPost Physics
Volume16
Issue number5
DOIs
StatePublished - May 2024

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