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Geant4 detector simulations for future HEP experiments
The experimental programmes planned for the next decade are driving developments in the simulation domain: these include the High Luminosity LHC project (HL-LHC), neutrino experiments (LBNF/DUNE), and studies towards future facilities such as Linear Collider (ILC/CLIC) and Future Circular Collider (...
Autores principales: | , , , |
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Lenguaje: | eng |
Publicado: |
SISSA
2019
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.22323/1.340.0268 http://cds.cern.ch/record/2702930 |
_version_ | 1780964574606917632 |
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author | Hariri, Farah Novak, Mihaly Ivanchenko, Vladimir Ribon, Alberto |
author_facet | Hariri, Farah Novak, Mihaly Ivanchenko, Vladimir Ribon, Alberto |
author_sort | Hariri, Farah |
collection | CERN |
description | The experimental programmes planned for the next decade are driving developments in the simulation domain: these include the High Luminosity LHC project (HL-LHC), neutrino experiments (LBNF/DUNE), and studies towards future facilities such as Linear Collider (ILC/CLIC) and Future Circular Collider (FCC). The complex detectors of the future, with different module- or cell-level shapes, finer segmentation, and novel materials and detection techniques, require additional features in geometry tools and bring new demands on physics coverage and accuracy within the constraints of the available computing resources. In order to achieve the desired precision in physics measurements, while avoiding that simulation dominates the systematic uncertainties, more accurate simulations and larger Monte Carlo samples will be needed. Therefore, this sets the challenge to develop more accurate models of physics interactions with affordable computing time [1]. The widely used detector simulation toolkit Geant4 [2,3] is at the core of simulation in almost every HEP experiment. In this paper, we will discuss the status of Geant4 in the context of detector R&D; for present and future facilities. We highlight, in particular, the need to review some of the physics models’ assumptions, approximations and limitations in order to increase precision, and to extend the validity of models up to future circular collider energies of the order of 100 TeV. Examples of recent improvements in electromagnetic models will be presented in detail. |
id | oai-inspirehep.net-1748914 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2019 |
publisher | SISSA |
record_format | invenio |
spelling | oai-inspirehep.net-17489142022-08-10T12:27:25Zdoi:10.22323/1.340.0268http://cds.cern.ch/record/2702930engHariri, FarahNovak, MihalyIvanchenko, VladimirRibon, AlbertoGeant4 detector simulations for future HEP experimentsParticle Physics - PhenomenologyComputing and ComputersParticle Physics - ExperimentThe experimental programmes planned for the next decade are driving developments in the simulation domain: these include the High Luminosity LHC project (HL-LHC), neutrino experiments (LBNF/DUNE), and studies towards future facilities such as Linear Collider (ILC/CLIC) and Future Circular Collider (FCC). The complex detectors of the future, with different module- or cell-level shapes, finer segmentation, and novel materials and detection techniques, require additional features in geometry tools and bring new demands on physics coverage and accuracy within the constraints of the available computing resources. In order to achieve the desired precision in physics measurements, while avoiding that simulation dominates the systematic uncertainties, more accurate simulations and larger Monte Carlo samples will be needed. Therefore, this sets the challenge to develop more accurate models of physics interactions with affordable computing time [1]. The widely used detector simulation toolkit Geant4 [2,3] is at the core of simulation in almost every HEP experiment. In this paper, we will discuss the status of Geant4 in the context of detector R&D; for present and future facilities. We highlight, in particular, the need to review some of the physics models’ assumptions, approximations and limitations in order to increase precision, and to extend the validity of models up to future circular collider energies of the order of 100 TeV. Examples of recent improvements in electromagnetic models will be presented in detail.SISSAoai:inspirehep.net:17489142019 |
spellingShingle | Particle Physics - Phenomenology Computing and Computers Particle Physics - Experiment Hariri, Farah Novak, Mihaly Ivanchenko, Vladimir Ribon, Alberto Geant4 detector simulations for future HEP experiments |
title | Geant4 detector simulations for future HEP experiments |
title_full | Geant4 detector simulations for future HEP experiments |
title_fullStr | Geant4 detector simulations for future HEP experiments |
title_full_unstemmed | Geant4 detector simulations for future HEP experiments |
title_short | Geant4 detector simulations for future HEP experiments |
title_sort | geant4 detector simulations for future hep experiments |
topic | Particle Physics - Phenomenology Computing and Computers Particle Physics - Experiment |
url | https://dx.doi.org/10.22323/1.340.0268 http://cds.cern.ch/record/2702930 |
work_keys_str_mv | AT haririfarah geant4detectorsimulationsforfuturehepexperiments AT novakmihaly geant4detectorsimulationsforfuturehepexperiments AT ivanchenkovladimir geant4detectorsimulationsforfuturehepexperiments AT ribonalberto geant4detectorsimulationsforfuturehepexperiments |