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Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method

We apply the Lagrange Multiplier method to study the uncertainties of physical predictions due to the uncertainties of parton distribution functions (PDFs), using the cross section for W production at a hadron collider as an archetypal example. An effective chi-squared function based on the CTEQ glo...

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Detalles Bibliográficos
Autores principales: Stump, D., Pumplin, J., Brock, R., Casey, D., Huston, J., Kalk, J., Lai, H.L., Tung, W.K.
Lenguaje:eng
Publicado: 2001
Materias:
Acceso en línea:https://dx.doi.org/10.1103/PhysRevD.65.014012
http://cds.cern.ch/record/482703
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author Stump, D.
Pumplin, J.
Brock, R.
Casey, D.
Huston, J.
Kalk, J.
Lai, H.L.
Tung, W.K.
author_facet Stump, D.
Pumplin, J.
Brock, R.
Casey, D.
Huston, J.
Kalk, J.
Lai, H.L.
Tung, W.K.
author_sort Stump, D.
collection CERN
description We apply the Lagrange Multiplier method to study the uncertainties of physical predictions due to the uncertainties of parton distribution functions (PDFs), using the cross section for W production at a hadron collider as an archetypal example. An effective chi-squared function based on the CTEQ global QCD analysis is used to generate a series of PDFs, each of which represents the best fit to the global data for some specified value of the cross section. By analyzing the likelihood of these "alterative hypotheses", using available information on errors from the individual experiments, we estimate that the fractional uncertainty of the cross section due to current experimental input to the PDF analysis is approximately 4% at the Tevatron, and 10% at the LHC. We give sets of PDFs corresponding to these up and down variations of the cross section. We also present similar results on Z production at the colliders. Our method can be applied to any combination of physical variables in precision QCD phenomenology, and it can be used to generate benchmarks for testing the accuracy of approximate methods based on the error matrix.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2001
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spelling cern-4827032021-09-30T08:12:25Zdoi:10.1103/PhysRevD.65.014012http://cds.cern.ch/record/482703engStump, D.Pumplin, J.Brock, R.Casey, D.Huston, J.Kalk, J.Lai, H.L.Tung, W.K.Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier MethodParticle Physics - PhenomenologyWe apply the Lagrange Multiplier method to study the uncertainties of physical predictions due to the uncertainties of parton distribution functions (PDFs), using the cross section for W production at a hadron collider as an archetypal example. An effective chi-squared function based on the CTEQ global QCD analysis is used to generate a series of PDFs, each of which represents the best fit to the global data for some specified value of the cross section. By analyzing the likelihood of these "alterative hypotheses", using available information on errors from the individual experiments, we estimate that the fractional uncertainty of the cross section due to current experimental input to the PDF analysis is approximately 4% at the Tevatron, and 10% at the LHC. We give sets of PDFs corresponding to these up and down variations of the cross section. We also present similar results on Z production at the colliders. Our method can be applied to any combination of physical variables in precision QCD phenomenology, and it can be used to generate benchmarks for testing the accuracy of approximate methods based on the error matrix.We apply the Lagrange Multiplier method to study the uncertainties of physical predictions due to the uncertainties of parton distribution functions (PDFs), using the cross section for W production at a hadron collider as an archetypal example. An effective chi-squared function based on the CTEQ global QCD analysis is used to generate a series of PDFs, each of which represents the best fit to the global data for some specified value of the cross section. By analyzing the likelihood of these "alterative hypotheses", using available information on errors from the individual experiments, we estimate that the fractional uncertainty of the cross section due to current experimental input to the PDF analysis is approximately 4% at the Tevatron, and 10% at the LHC. We give sets of PDFs corresponding to these up and down variations of the cross section. We also present similar results on Z production at the colliders. Our method can be applied to any combination of physical variables in precision QCD phenomenology, and it can be used to generate benchmarks for testing the accuracy of approximate methods based on the error matrix.hep-ph/0101051MSU-HEP-07102CERN-TH-2000-359CERN-TH-2000-359oai:cds.cern.ch:4827032001-01-05
spellingShingle Particle Physics - Phenomenology
Stump, D.
Pumplin, J.
Brock, R.
Casey, D.
Huston, J.
Kalk, J.
Lai, H.L.
Tung, W.K.
Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title_full Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title_fullStr Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title_full_unstemmed Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title_short Uncertainties of Predictions from Parton Distribution Functions: 1, the Lagrange Multiplier Method
title_sort uncertainties of predictions from parton distribution functions: 1, the lagrange multiplier method
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1103/PhysRevD.65.014012
http://cds.cern.ch/record/482703
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