Finite-Volume Effects in (g-2)_{μ}^{HVP,LO}
Maxwell T Hansen1, Agostino Patella2
1Theoretical Physics Department, CERN, 1211 Geneva 23, Switzerland.
Physical Review Letters
|November 9, 2019
Summary
Finite-volume effects in lattice QCD calculations of the muon
Area of Science:
- Quantum Chromodynamics (QCD)
- Particle Physics
- Computational Physics
Background:
- The muon's magnetic moment anomaly is a key observable in particle physics.
- Lattice QCD calculations are crucial for theoretical predictions.
- Finite-volume effects can impact the accuracy of these calculations.
Purpose of the Study:
- To derive an analytic expression for leading-order finite-volume effects in lattice QCD.
- To analyze the hadronic-vacuum-polarization contribution to the muon's magnetic moment.
- To provide a quantitative understanding of volume dependence in lattice calculations.
Main Methods:
- Development of an analytic expression for finite-volume effects.
- Utilizing a Hamiltonian approach to study volume scaling.
- Decomposition of the Compton amplitude into pion form factor and multiparticle contributions.
- Employing chiral perturbation theory to determine multiparticle contributions.
Main Results:
- The leading finite-volume correction scales as exp[-MπL].
- The prefactor is related to the pion Compton amplitude and a muon-mass-dependent kernel.
- The multiparticle contribution is found to be negligible and universal, depending only on the pion decay constant.
Conclusions:
- An accurate analytic expression for leading-order finite-volume effects in lattice QCD is established.
- The derived formula provides insights into the volume dependence of the muon's magnetic moment calculation.
- The results simplify the analysis by showing the independence of low-energy constants in the multiparticle contribution.
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