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Soft gluon evolution and non-global logarithms

We consider soft-gluon evolution at the amplitude level. Our evolution algorithm applies to generic hard-scattering processes involving any number of coloured partons and we present a reformulation of the algorithm in such a way as to make the cancellation of infrared divergences explicit. We also e...

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Detalles Bibliográficos
Autores principales: Ángeles Martínez, René, De Angelis, Matthew, Forshaw, Jeffrey R., Plätzer, Simon, Seymour, Michael H.
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1007/JHEP05(2018)044
http://cds.cern.ch/record/2305787
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author Ángeles Martínez, René
De Angelis, Matthew
Forshaw, Jeffrey R.
Plätzer, Simon
Seymour, Michael H.
author_facet Ángeles Martínez, René
De Angelis, Matthew
Forshaw, Jeffrey R.
Plätzer, Simon
Seymour, Michael H.
author_sort Ángeles Martínez, René
collection CERN
description We consider soft-gluon evolution at the amplitude level. Our evolution algorithm applies to generic hard-scattering processes involving any number of coloured partons and we present a reformulation of the algorithm in such a way as to make the cancellation of infrared divergences explicit. We also emphasise the special role played by a Lorentz-invariant evolution variable, which coincides with the transverse momentum of the latest emission in a suitably defined dipole zero-momentum frame. Handling large colour matrices presents the most significant challenge to numerical implementations and we present a means to expand systematically about the leading colour approximation. Specifically, we present a systematic procedure to calculate the resulting colour traces, which is based on the colour flow basis. Identifying the leading contribution leads us to re-derive the Banfi-Marchesini-Smye equation. However, our formalism is more general and can systematically perform resummation of contributions enhanced by the t’Hooft coupling α$_{s}$N ∼ 1, along with successive perturbations that are parametrically suppressed by powers of 1/N . We also discuss how our approach relates to earlier work.
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spelling cern-23057872023-10-04T07:36:20Zdoi:10.1007/JHEP05(2018)044http://cds.cern.ch/record/2305787engÁngeles Martínez, RenéDe Angelis, MatthewForshaw, Jeffrey R.Plätzer, SimonSeymour, Michael H.Soft gluon evolution and non-global logarithmshep-phParticle Physics - PhenomenologyWe consider soft-gluon evolution at the amplitude level. Our evolution algorithm applies to generic hard-scattering processes involving any number of coloured partons and we present a reformulation of the algorithm in such a way as to make the cancellation of infrared divergences explicit. We also emphasise the special role played by a Lorentz-invariant evolution variable, which coincides with the transverse momentum of the latest emission in a suitably defined dipole zero-momentum frame. Handling large colour matrices presents the most significant challenge to numerical implementations and we present a means to expand systematically about the leading colour approximation. Specifically, we present a systematic procedure to calculate the resulting colour traces, which is based on the colour flow basis. Identifying the leading contribution leads us to re-derive the Banfi-Marchesini-Smye equation. However, our formalism is more general and can systematically perform resummation of contributions enhanced by the t’Hooft coupling α$_{s}$N ∼ 1, along with successive perturbations that are parametrically suppressed by powers of 1/N . We also discuss how our approach relates to earlier work.We consider soft-gluon evolution at the amplitude level. Our evolution includes Coulomb exchanges and applies to generic hard-scattering processes involving any number of coloured partons. We emphasise the special role played by a Lorentz-invariant evolution variable, which coincides with the transverse momentum of the latest emission in a suitably defined dipole zero-momentum frame. We also relate the evolution algorithm, which was used originally in the derivation of super-leading logarithms, to renormalization group evolution equations that have been encountered recently. Handling large colour matrices presents the most significant challenge to numerical implementations and we present a means to expand systematically about the leading colour approximation.arXiv:1802.08531MAN/HEP/2018/001CERN-TH-2018-037IFJPAN-IV-2018-4UWTHPH-2018-3MCnet-18-03MAN-HEP-2018-001MCNET-18-03oai:cds.cern.ch:23057872018-02-23
spellingShingle hep-ph
Particle Physics - Phenomenology
Ángeles Martínez, René
De Angelis, Matthew
Forshaw, Jeffrey R.
Plätzer, Simon
Seymour, Michael H.
Soft gluon evolution and non-global logarithms
title Soft gluon evolution and non-global logarithms
title_full Soft gluon evolution and non-global logarithms
title_fullStr Soft gluon evolution and non-global logarithms
title_full_unstemmed Soft gluon evolution and non-global logarithms
title_short Soft gluon evolution and non-global logarithms
title_sort soft gluon evolution and non-global logarithms
topic hep-ph
Particle Physics - Phenomenology
url https://dx.doi.org/10.1007/JHEP05(2018)044
http://cds.cern.ch/record/2305787
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