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Energy Correlation Functions for Jet Substructure
We show how generalized energy correlation functions can be used as a powerful probe of jet substructure. These correlation functions are based on the energies and pair-wise angles of particles within a jet, with (N+1)-point correlators sensitive to N-prong substructure. Unlike many previous jet sub...
Autores principales: | , , |
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Lenguaje: | eng |
Publicado: |
2013
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Materias: | |
Acceso en línea: | https://dx.doi.org/10.1007/JHEP06(2013)108 http://cds.cern.ch/record/1545153 |
_version_ | 1780930053534646272 |
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author | Larkoski, Andrew J. Salam, Gavin P. Thaler, Jesse |
author_facet | Larkoski, Andrew J. Salam, Gavin P. Thaler, Jesse |
author_sort | Larkoski, Andrew J. |
collection | CERN |
description | We show how generalized energy correlation functions can be used as a powerful probe of jet substructure. These correlation functions are based on the energies and pair-wise angles of particles within a jet, with (N+1)-point correlators sensitive to N-prong substructure. Unlike many previous jet substructure methods, these correlation functions do not require the explicit identification of subjet regions. In addition, the correlation functions are better probes of certain soft and collinear features that are masked by other methods. We present three Monte Carlo case studies to illustrate the utility of these observables: 2-point correlators for quark/gluon discrimination, 3-point correlators for boosted W/Z/Higgs boson identification, and 4-point correlators for boosted top quark identification. For quark/gluon discrimination, the 2-point correlator is particularly powerful, as can be understood via a next-to-leading logarithmic calculation. For boosted 2-prong resonances the benefit depends on the mass of the resonance. |
id | cern-1545153 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2013 |
record_format | invenio |
spelling | cern-15451532023-10-04T07:57:57Zdoi:10.1007/JHEP06(2013)108http://cds.cern.ch/record/1545153engLarkoski, Andrew J.Salam, Gavin P.Thaler, JesseEnergy Correlation Functions for Jet SubstructureParticle Physics - PhenomenologyWe show how generalized energy correlation functions can be used as a powerful probe of jet substructure. These correlation functions are based on the energies and pair-wise angles of particles within a jet, with (N+1)-point correlators sensitive to N-prong substructure. Unlike many previous jet substructure methods, these correlation functions do not require the explicit identification of subjet regions. In addition, the correlation functions are better probes of certain soft and collinear features that are masked by other methods. We present three Monte Carlo case studies to illustrate the utility of these observables: 2-point correlators for quark/gluon discrimination, 3-point correlators for boosted W/Z/Higgs boson identification, and 4-point correlators for boosted top quark identification. For quark/gluon discrimination, the 2-point correlator is particularly powerful, as can be understood via a next-to-leading logarithmic calculation. For boosted 2-prong resonances the benefit depends on the mass of the resonance.We show how generalized energy correlation functions can be used as a powerful probe of jet substructure. These correlation functions are based on the energies and pair-wise angles of particles within a jet, with (N + 1)-point correlators sensitive to N-prong substructure. Unlike many previous jet substructure methods, these correlation functions do not require the explicit identification of subjet regions. In addition, the correlation functions are better probes of certain soft and collinear features that are masked by other methods. We present three Monte Carlo case studies to illustrate the utility of these observables: 2-point correlators for quark/gluon discrimination, 3-point correlators for boosted W /Z/Higgs boson identification, and 4-point correlators for boosted top quark identification. For quark/gluon discrimination, the 2-point correlator is particularly powerful, as can be understood via a next-to-leading logarithmic calculation. For boosted 2-prong resonances the benefit depends on the mass of the resonance.We show how generalized energy correlation functions can be used as a powerful probe of jet substructure. These correlation functions are based on the energies and pair-wise angles of particles within a jet, with (N+1)-point correlators sensitive to N-prong substructure. Unlike many previous jet substructure methods, these correlation functions do not require the explicit identification of subjet regions. In addition, the correlation functions are better probes of certain soft and collinear features that are masked by other methods. We present three Monte Carlo case studies to illustrate the utility of these observables: 2-point correlators for quark/gluon discrimination, 3-point correlators for boosted W/Z/Higgs boson identification, and 4-point correlators for boosted top quark identification. For quark/gluon discrimination, the 2-point correlator is particularly powerful, as can be understood via a next-to-leading logarithmic calculation. For boosted 2-prong resonances the benefit depends on the mass of the resonance.arXiv:1305.0007MIT-CTP-4446CERN-PH-TH-2013-066LPN13-026MIT-CTP 4446CERN-PH-TH-2013-066LPN13-026oai:cds.cern.ch:15451532013-05-02 |
spellingShingle | Particle Physics - Phenomenology Larkoski, Andrew J. Salam, Gavin P. Thaler, Jesse Energy Correlation Functions for Jet Substructure |
title | Energy Correlation Functions for Jet Substructure |
title_full | Energy Correlation Functions for Jet Substructure |
title_fullStr | Energy Correlation Functions for Jet Substructure |
title_full_unstemmed | Energy Correlation Functions for Jet Substructure |
title_short | Energy Correlation Functions for Jet Substructure |
title_sort | energy correlation functions for jet substructure |
topic | Particle Physics - Phenomenology |
url | https://dx.doi.org/10.1007/JHEP06(2013)108 http://cds.cern.ch/record/1545153 |
work_keys_str_mv | AT larkoskiandrewj energycorrelationfunctionsforjetsubstructure AT salamgavinp energycorrelationfunctionsforjetsubstructure AT thalerjesse energycorrelationfunctionsforjetsubstructure |