This paper presents updated Monte Carlo configurations used to model the production of single electroweak vector bosons (W, Z/gamma*) in association with jets in proton-proton collisions for the ATLAS experiment at the Large Hadron Collider. Improvements pertaining to the electroweak input scheme, parton-shower splitting kernels and scale-setting scheme are shown for multi-jet merged configurations accurate to next-to-leading order in the strong and electroweak couplings. The computational resources required for these set-ups are assessed, and approximations are introduced resulting in a factor three reduction of the per-event CPU time without affecting the physics modelling performance. Continuous statistical enhancement techniques are introduced by ATLAS in order to populate low cross-section regions of phase space and are shown to match or exceed the generated effective luminosity. This, together with the lower per-event CPU time, results in a 50% reduction in the required computing resources compared to a legacy set-up previously used by the ATLAS collaboration. The set-ups described in this paper will be used for future ATLAS analyses and lay the foundation for the next generation of Monte Carlo predictions for single vector-boson plus jets production.

Modelling and computational improvements to the simulation of single vector-boson plus jet processes for the ATLAS experiment / Aad, G., Abbott, B., Abbott, D.c., Abud, A.a., Abeling, K., Abhayasinghe, D.k., Abidi, S.h., Aboulhorma, A., Abramowicz, H., Abreu, H., Abulaiti, Y., Hoffman, A., Acharya, B.s., Achkar, B., Adam, L., Bourdarios, C.a., Adamczyk, L., Adamek, L., Addepalli, S.v., Adelman, J., et al.. - In: JOURNAL OF HIGH ENERGY PHYSICS. - ISSN 1029-8479. - 2022:8(2022). [10.1007/JHEP08(2022)089]

Modelling and computational improvements to the simulation of single vector-boson plus jet processes for the ATLAS experiment

Artoni, G;Bagnaia, P;Betti, A;Bini, C;Carnesale, M;Di Domenico, A;Gauzzi, P;Gentile, S;Giagu, S;Kado, M;Lacava, F;Li, C;Luci, C;Martinelli, L;
2022

Abstract

This paper presents updated Monte Carlo configurations used to model the production of single electroweak vector bosons (W, Z/gamma*) in association with jets in proton-proton collisions for the ATLAS experiment at the Large Hadron Collider. Improvements pertaining to the electroweak input scheme, parton-shower splitting kernels and scale-setting scheme are shown for multi-jet merged configurations accurate to next-to-leading order in the strong and electroweak couplings. The computational resources required for these set-ups are assessed, and approximations are introduced resulting in a factor three reduction of the per-event CPU time without affecting the physics modelling performance. Continuous statistical enhancement techniques are introduced by ATLAS in order to populate low cross-section regions of phase space and are shown to match or exceed the generated effective luminosity. This, together with the lower per-event CPU time, results in a 50% reduction in the required computing resources compared to a legacy set-up previously used by the ATLAS collaboration. The set-ups described in this paper will be used for future ATLAS analyses and lay the foundation for the next generation of Monte Carlo predictions for single vector-boson plus jets production.
2022
Hadron-Hadron Scattering
01 Pubblicazione su rivista::01a Articolo in rivista
Modelling and computational improvements to the simulation of single vector-boson plus jet processes for the ATLAS experiment / Aad, G., Abbott, B., Abbott, D.c., Abud, A.a., Abeling, K., Abhayasinghe, D.k., Abidi, S.h., Aboulhorma, A., Abramowicz, H., Abreu, H., Abulaiti, Y., Hoffman, A., Acharya, B.s., Achkar, B., Adam, L., Bourdarios, C.a., Adamczyk, L., Adamek, L., Addepalli, S.v., Adelman, J., et al.. - In: JOURNAL OF HIGH ENERGY PHYSICS. - ISSN 1029-8479. - 2022:8(2022). [10.1007/JHEP08(2022)089]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1655534
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