Cargando…
Going off topics to demix quark and gluon jets in $\alpha_S$ extractions
Quantum chromodynamics is the theory of the strong interaction between quarks and gluons; the coupling strength of the interaction, α$_{S}$, is the least precisely-known of all interactions in nature. An extraction of the strong coupling from the radiation pattern within jets would provide a complem...
Autores principales: | , , |
---|---|
Lenguaje: | eng |
Publicado: |
2022
|
Materias: | |
Acceso en línea: | https://dx.doi.org/10.1007/JHEP02(2023)150 http://cds.cern.ch/record/2815203 |
_version_ | 1780973495603167232 |
---|---|
author | LeBlanc, Matt Nachman, Benjamin Sauer, Christof |
author_facet | LeBlanc, Matt Nachman, Benjamin Sauer, Christof |
author_sort | LeBlanc, Matt |
collection | CERN |
description | Quantum chromodynamics is the theory of the strong interaction between quarks and gluons; the coupling strength of the interaction, α$_{S}$, is the least precisely-known of all interactions in nature. An extraction of the strong coupling from the radiation pattern within jets would provide a complementary approach to conventional extractions from jet production rates and hadronic event shapes, and would be a key achievement of jet substructure at the Large Hadron Collider (LHC). Presently, the relative fraction of quark and gluon jets in a sample is the limiting factor in such extractions, as this fraction is degenerate with the value of α$_{S}$ for the most well-understood observables. To overcome this limitation, we apply recently proposed techniques to statistically demix multiple mixtures of jets and obtain purified quark and gluon distributions based on an operational definiton. We illustrate that studying quark and gluon jet substructure separately can significantly improve the sensitivity of such extractions of the strong coupling. We also discuss how using machine learning techniques or infrared- and collinear-unsafe information can improve the demixing performance without the loss of theoretical control. While theoretical research is required to connect the extract topics with the quark and gluon objects in cross section calculations, our study illustrates the potential of demixing to reduce the dominant uncertainty for the α$_{S}$ extraction from jet substructure at the LHC. |
id | cern-2815203 |
institution | Organización Europea para la Investigación Nuclear |
language | eng |
publishDate | 2022 |
record_format | invenio |
spelling | cern-28152032023-09-27T08:01:42Zdoi:10.1007/JHEP02(2023)150http://cds.cern.ch/record/2815203engLeBlanc, MattNachman, BenjaminSauer, ChristofGoing off topics to demix quark and gluon jets in $\alpha_S$ extractionsOther Fields of PhysicsParticle Physics - ExperimentParticle Physics - PhenomenologyQuantum chromodynamics is the theory of the strong interaction between quarks and gluons; the coupling strength of the interaction, α$_{S}$, is the least precisely-known of all interactions in nature. An extraction of the strong coupling from the radiation pattern within jets would provide a complementary approach to conventional extractions from jet production rates and hadronic event shapes, and would be a key achievement of jet substructure at the Large Hadron Collider (LHC). Presently, the relative fraction of quark and gluon jets in a sample is the limiting factor in such extractions, as this fraction is degenerate with the value of α$_{S}$ for the most well-understood observables. To overcome this limitation, we apply recently proposed techniques to statistically demix multiple mixtures of jets and obtain purified quark and gluon distributions based on an operational definiton. We illustrate that studying quark and gluon jet substructure separately can significantly improve the sensitivity of such extractions of the strong coupling. We also discuss how using machine learning techniques or infrared- and collinear-unsafe information can improve the demixing performance without the loss of theoretical control. While theoretical research is required to connect the extract topics with the quark and gluon objects in cross section calculations, our study illustrates the potential of demixing to reduce the dominant uncertainty for the α$_{S}$ extraction from jet substructure at the LHC.Quantum chromodynamics is the theory of the strong interaction between quarks and gluons; the coupling strength of the interaction, $\alpha_S$, is the least precisely-known of all interactions in nature. An extraction of the strong coupling from the radiation pattern within jets would provide a complementary approach to conventional extractions from jet production rates and hadronic event shapes, and would be a key achievement of jet substructure at the Large Hadron Collider (LHC). Presently, the relative fraction of quark and gluon jets in a sample is the limiting factor in such extractions, as this fraction is degenerate with the value of $\alpha_S$ for the most well-understood observables. To overcome this limitation, we apply recently proposed techniques to statistically demix multiple mixtures of jets and obtain purified quark and gluon distributions based on an operational definition. We illustrate that studying quark and gluon jet substructure separately can significantly improve the sensitivity of such extractions of the strong coupling. We also discuss how using machine learning techniques or infrared- and collinear-unsafe information can improve the demixing performance without the loss of theoretical control. While theoretical research is required to connect the extract topics with the quark and gluon objects in cross section calculations, our study illustrates the potential of demixing to reduce the dominant uncertainty for the $\alpha_S$ extraction from jet substructure at the LHC.arXiv:2206.10642oai:cds.cern.ch:28152032022-06-21 |
spellingShingle | Other Fields of Physics Particle Physics - Experiment Particle Physics - Phenomenology LeBlanc, Matt Nachman, Benjamin Sauer, Christof Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title | Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title_full | Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title_fullStr | Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title_full_unstemmed | Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title_short | Going off topics to demix quark and gluon jets in $\alpha_S$ extractions |
title_sort | going off topics to demix quark and gluon jets in $\alpha_s$ extractions |
topic | Other Fields of Physics Particle Physics - Experiment Particle Physics - Phenomenology |
url | https://dx.doi.org/10.1007/JHEP02(2023)150 http://cds.cern.ch/record/2815203 |
work_keys_str_mv | AT leblancmatt goingofftopicstodemixquarkandgluonjetsinalphasextractions AT nachmanbenjamin goingofftopicstodemixquarkandgluonjetsinalphasextractions AT sauerchristof goingofftopicstodemixquarkandgluonjetsinalphasextractions |