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Improved Renormalization of Lattice Operators: A Critical Reappraisal

We systematically examine various proposals which aim at increasing the accuracy in the determination of the renormalization of two-fermion lattice operators. We concentrate on three finite quantities which are particularly suitable for our study: the renormalization constants of the vector and axia...

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Detalles Bibliográficos
Autores principales: Crisafulli, M., Lubicz, V., Vladikas, A.
Lenguaje:eng
Publicado: 1997
Materias:
Acceso en línea:https://dx.doi.org/10.1007/s100520050194
http://cds.cern.ch/record/330337
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author Crisafulli, M.
Lubicz, V.
Vladikas, A.
author_facet Crisafulli, M.
Lubicz, V.
Vladikas, A.
author_sort Crisafulli, M.
collection CERN
description We systematically examine various proposals which aim at increasing the accuracy in the determination of the renormalization of two-fermion lattice operators. We concentrate on three finite quantities which are particularly suitable for our study: the renormalization constants of the vector and axial currents and the ratio of the renormalization constants of the scalar and pseudoscalar densities. We calculate these quantities in boosted perturbation theory, with several running boosted couplings, at the "optimal" scale q*. We find that the results of boosted perturbation theory are usually (but not always) in better agreement with non-perturbative determinations of the renormalization constants than those obtained with standard perturbation theory. The finite renormalization constants of two-fermion lattice operators are also obtained non-perturbatively, using Ward Identities, both with the Wilson and the tree-level Clover improved actions, at fixed cutoff ($\beta$=6.4 and 6.0 respectively). In order to amplify finite cutoff effects, the quark masses (in lattice units) are varied in a large interval 0<am<1. We find that discretization effects are always large with the Wilson action, despite our relatively small value of the lattice spacing ($a^{-1} \simeq 3.7$ GeV). With the Clover action discretization errors are significantly reduced at small quark mass, even though our lattice spacing is larger ($a^{-1} \simeq 2$ GeV). However, these errors remain substantial in the heavy quark region. We have implemented a proposal for reducing O(am) effects, which consists in matching the lattice quantities to their continuum counterparts in the free theory. We find that this approach still leaves appreciable, mass dependent, discretization effects.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 1997
record_format invenio
spelling cern-3303372023-03-14T17:10:08Zdoi:10.1007/s100520050194http://cds.cern.ch/record/330337engCrisafulli, M.Lubicz, V.Vladikas, A.Improved Renormalization of Lattice Operators: A Critical ReappraisalParticle Physics - LatticeWe systematically examine various proposals which aim at increasing the accuracy in the determination of the renormalization of two-fermion lattice operators. We concentrate on three finite quantities which are particularly suitable for our study: the renormalization constants of the vector and axial currents and the ratio of the renormalization constants of the scalar and pseudoscalar densities. We calculate these quantities in boosted perturbation theory, with several running boosted couplings, at the "optimal" scale q*. We find that the results of boosted perturbation theory are usually (but not always) in better agreement with non-perturbative determinations of the renormalization constants than those obtained with standard perturbation theory. The finite renormalization constants of two-fermion lattice operators are also obtained non-perturbatively, using Ward Identities, both with the Wilson and the tree-level Clover improved actions, at fixed cutoff ($\beta$=6.4 and 6.0 respectively). In order to amplify finite cutoff effects, the quark masses (in lattice units) are varied in a large interval 0<am<1. We find that discretization effects are always large with the Wilson action, despite our relatively small value of the lattice spacing ($a^{-1} \simeq 3.7$ GeV). With the Clover action discretization errors are significantly reduced at small quark mass, even though our lattice spacing is larger ($a^{-1} \simeq 2$ GeV). However, these errors remain substantial in the heavy quark region. We have implemented a proposal for reducing O(am) effects, which consists in matching the lattice quantities to their continuum counterparts in the free theory. We find that this approach still leaves appreciable, mass dependent, discretization effects.We systematically examine various proposals which aim at increasing the accuracy in the determination of the renormalization of two-fermion lattice operators. We concentrate on three finite quantities which are particularly suitable for our study: the renormalization constants of the vector and axial currents and the ratio of the renormalization constants of the scalar and pseudoscalar densities. We calculate these quantities in boosted perturbation theory, with several running boosted couplings, at the "optimal" scale q*. We find that the results of boosted perturbation theory are usually (but not always) in better agreement with non-perturbative determinations of the renormalization constants than those obtained with standard perturbation theory. The finite renormalization constants of two-fermion lattice operators are also obtained non-perturbatively, using Ward Identities, both with the Wilson and the tree-level Clover improved actions, at fixed cutoff ($\beta$=6.4 and 6.0 respectively). In order to amplify finite cutoff effects, the quark masses (in lattice units) are varied in a large interval 0&lt;am&lt;1. We find that discretization effects are always large with the Wilson action, despite our relatively small value of the lattice spacing ($a^{-1} \simeq 3.7$ GeV). With the Clover action discretization errors are significantly reduced at small quark mass, even though our lattice spacing is larger ($a^{-1} \simeq 2$ GeV). However, these errors remain substantial in the heavy quark region. We have implemented a proposal for reducing O(am) effects, which consists in matching the lattice quantities to their continuum counterparts in the free theory. We find that this approach still leaves appreciable, mass dependent, discretization effects.hep-lat/9707025CERN-TH-97-015CERN-TH-97-15ROME-1163-1997ROM2F-97-23ROME-PREP.-1163-97CERN-TH-97-015ROMA-1-1163oai:cds.cern.ch:3303371997-07-21
spellingShingle Particle Physics - Lattice
Crisafulli, M.
Lubicz, V.
Vladikas, A.
Improved Renormalization of Lattice Operators: A Critical Reappraisal
title Improved Renormalization of Lattice Operators: A Critical Reappraisal
title_full Improved Renormalization of Lattice Operators: A Critical Reappraisal
title_fullStr Improved Renormalization of Lattice Operators: A Critical Reappraisal
title_full_unstemmed Improved Renormalization of Lattice Operators: A Critical Reappraisal
title_short Improved Renormalization of Lattice Operators: A Critical Reappraisal
title_sort improved renormalization of lattice operators: a critical reappraisal
topic Particle Physics - Lattice
url https://dx.doi.org/10.1007/s100520050194
http://cds.cern.ch/record/330337
work_keys_str_mv AT crisafullim improvedrenormalizationoflatticeoperatorsacriticalreappraisal
AT lubiczv improvedrenormalizationoflatticeoperatorsacriticalreappraisal
AT vladikasa improvedrenormalizationoflatticeoperatorsacriticalreappraisal