The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application

Abstract Recently, a general algorithm to extend the Matrix Element Method (MEM) by taking into account next-to-leading-order (NLO) corrections in quantum chromodynamics (QCD) has been presented. In this article, the algorithm is applied to the most general case that coloured partons are encountered...

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Main Authors: Till Martini, Peter Uwer
Format: Article
Language:English
Published: SpringerOpen 2018-05-01
Series:Journal of High Energy Physics
Subjects:
Online Access:http://link.springer.com/article/10.1007/JHEP05(2018)141
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spelling doaj-2456b6851ed24c2bbf8fe2bcfc39ffc82020-11-25T01:57:40ZengSpringerOpenJournal of High Energy Physics1029-84792018-05-012018516710.1007/JHEP05(2018)141The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example applicationTill Martini0Peter Uwer1Institut für Physik, Humboldt-Universität zu BerlinInstitut für Physik, Humboldt-Universität zu BerlinAbstract Recently, a general algorithm to extend the Matrix Element Method (MEM) by taking into account next-to-leading-order (NLO) corrections in quantum chromodynamics (QCD) has been presented. In this article, the algorithm is applied to the most general case that coloured partons are encountered in the initial as well as the final state. This represents a substantial extension compared to previous work. As a concrete example, the production of single top quarks at the LHC is studied. We present in detail the generation of unweighted events following the NLO predictions. By treating these events as the result of a toy experiment, we show the first proof-of-principle application of the Matrix Element Method at NLO QCD for hadronic jet production. As an illustration, we study the determination of the top-quark mass. We find that — apart from elevating the powerful MEM to a sound theoretical foundation at NLO — the inclusion of the NLO corrections can lead to sizeable effects compared to the Matrix Element Method relying on leading-order predictions only. Furthermore, we find that the incorporation of the NLO corrections is mandatory to obtain reliable estimates of the theoretical uncertainties. In addition, this work shows that measuring the top-quark mass using the MEM in single top-quark production offers an interesting alternative to mass measurements in top-quark pair production.http://link.springer.com/article/10.1007/JHEP05(2018)141NLO ComputationsQCD Phenomenology
collection DOAJ
language English
format Article
sources DOAJ
author Till Martini
Peter Uwer
spellingShingle Till Martini
Peter Uwer
The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
Journal of High Energy Physics
NLO Computations
QCD Phenomenology
author_facet Till Martini
Peter Uwer
author_sort Till Martini
title The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
title_short The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
title_full The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
title_fullStr The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
title_full_unstemmed The Matrix Element Method at next-to-leading order QCD for hadronic collisions: single top-quark production at the LHC as an example application
title_sort matrix element method at next-to-leading order qcd for hadronic collisions: single top-quark production at the lhc as an example application
publisher SpringerOpen
series Journal of High Energy Physics
issn 1029-8479
publishDate 2018-05-01
description Abstract Recently, a general algorithm to extend the Matrix Element Method (MEM) by taking into account next-to-leading-order (NLO) corrections in quantum chromodynamics (QCD) has been presented. In this article, the algorithm is applied to the most general case that coloured partons are encountered in the initial as well as the final state. This represents a substantial extension compared to previous work. As a concrete example, the production of single top quarks at the LHC is studied. We present in detail the generation of unweighted events following the NLO predictions. By treating these events as the result of a toy experiment, we show the first proof-of-principle application of the Matrix Element Method at NLO QCD for hadronic jet production. As an illustration, we study the determination of the top-quark mass. We find that — apart from elevating the powerful MEM to a sound theoretical foundation at NLO — the inclusion of the NLO corrections can lead to sizeable effects compared to the Matrix Element Method relying on leading-order predictions only. Furthermore, we find that the incorporation of the NLO corrections is mandatory to obtain reliable estimates of the theoretical uncertainties. In addition, this work shows that measuring the top-quark mass using the MEM in single top-quark production offers an interesting alternative to mass measurements in top-quark pair production.
topic NLO Computations
QCD Phenomenology
url http://link.springer.com/article/10.1007/JHEP05(2018)141
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