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Four-quark final state in W-pair production: Case of signal and background

We discuss theoretical predictions for W-pair production and decay at LEP2 and higher energies in a form suitable for comparison with raw data. We present a practical framework for calculating uncertainties of predictions given by the KORALW and grc4f Monte Carlo programs. As an example we use obser...

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Detalles Bibliográficos
Autores principales: Ishikawa, T., Kurihara, Y., Skrzypek, M., Was, Z.
Lenguaje:eng
Publicado: 1997
Materias:
Acceso en línea:https://dx.doi.org/10.1007/s100529800742
https://dx.doi.org/10.1007/s100520050186
http://cds.cern.ch/record/319797
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author Ishikawa, T.
Kurihara, Y.
Skrzypek, M.
Was, Z.
author_facet Ishikawa, T.
Kurihara, Y.
Skrzypek, M.
Was, Z.
author_sort Ishikawa, T.
collection CERN
description We discuss theoretical predictions for W-pair production and decay at LEP2 and higher energies in a form suitable for comparison with raw data. We present a practical framework for calculating uncertainties of predictions given by the KORALW and grc4f Monte Carlo programs. As an example we use observables in the $s\bar s c\bar c$ decay channel: the total four-quark (four-jet) cross section and two-quark/jet invariant-mass distribution and cross section, in the case when the other two may escape detection. Effects of QED bremsstrahlung, effective couplings, running W and Z widths, Coulomb interaction and the complete tree level set of diagrams are discussed. We also revisit the question of technical precision of the new version 1.21 of the KORALW Monte Carlo code as well as of version 1.2(26) of the grc4f one. Finally we find predictions of the two programs to have an overall physical uncertainty of 2%. As a side result we show, on the example of an $s\bar s$ invariant mass distribution, the strong interplay of spin correlations and detector cut-offs in the case of four-fermion final states.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1997
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spelling cern-3197972023-03-14T19:51:48Zdoi:10.1007/s100529800742doi:10.1007/s100520050186http://cds.cern.ch/record/319797engIshikawa, T.Kurihara, Y.Skrzypek, M.Was, Z.Four-quark final state in W-pair production: Case of signal and backgroundParticle Physics - PhenomenologyWe discuss theoretical predictions for W-pair production and decay at LEP2 and higher energies in a form suitable for comparison with raw data. We present a practical framework for calculating uncertainties of predictions given by the KORALW and grc4f Monte Carlo programs. As an example we use observables in the $s\bar s c\bar c$ decay channel: the total four-quark (four-jet) cross section and two-quark/jet invariant-mass distribution and cross section, in the case when the other two may escape detection. Effects of QED bremsstrahlung, effective couplings, running W and Z widths, Coulomb interaction and the complete tree level set of diagrams are discussed. We also revisit the question of technical precision of the new version 1.21 of the KORALW Monte Carlo code as well as of version 1.2(26) of the grc4f one. Finally we find predictions of the two programs to have an overall physical uncertainty of 2%. As a side result we show, on the example of an $s\bar s$ invariant mass distribution, the strong interplay of spin correlations and detector cut-offs in the case of four-fermion final states.We discuss theoretical predictions for W-pair production and decay at LEP2 and higher energies in a form suitable for comparison with raw data. We present a practical framework for calculating uncertainties of predictions given by the KORALW and grc4f Monte Carlo programs. As an example we use observables in the $s\bar s c\bar c$ decay channel: the total four-quark (four-jet) cross section and two-quark/jet invariant-mass distribution and cross section, in the case when the other two may escape detection. Effects of QED bremsstrahlung, effective couplings, running W and Z widths, Coulomb interaction and the complete tree level set of diagrams are discussed. We also revisit the question of technical precision of the new version 1.21 of the KORALW Monte Carlo code as well as of version 1.2(26) of the grc4f one. Finally we find predictions of the two programs to have an overall physical uncertainty of 2%. As a side result we show, on the example of an $s\bar s$ invariant mass distribution, the strong interplay of spin correlations and detector cut-offs in the case of four-fermion final states.hep-ph/9702249CERN-TH-97-11KEK-CP-052KEK-PREPRINT-166CERN-TH-97-011KEK-CP-052oai:cds.cern.ch:3197971997-02-04
spellingShingle Particle Physics - Phenomenology
Ishikawa, T.
Kurihara, Y.
Skrzypek, M.
Was, Z.
Four-quark final state in W-pair production: Case of signal and background
title Four-quark final state in W-pair production: Case of signal and background
title_full Four-quark final state in W-pair production: Case of signal and background
title_fullStr Four-quark final state in W-pair production: Case of signal and background
title_full_unstemmed Four-quark final state in W-pair production: Case of signal and background
title_short Four-quark final state in W-pair production: Case of signal and background
title_sort four-quark final state in w-pair production: case of signal and background
topic Particle Physics - Phenomenology
url https://dx.doi.org/10.1007/s100529800742
https://dx.doi.org/10.1007/s100520050186
http://cds.cern.ch/record/319797
work_keys_str_mv AT ishikawat fourquarkfinalstateinwpairproductioncaseofsignalandbackground
AT kuriharay fourquarkfinalstateinwpairproductioncaseofsignalandbackground
AT skrzypekm fourquarkfinalstateinwpairproductioncaseofsignalandbackground
AT wasz fourquarkfinalstateinwpairproductioncaseofsignalandbackground