Abstract
Hadronic vacuum polarization (HVP) and light-by-light scattering (HLBL) are crucial for evaluating the Standard Model predictions concerning the muon’s anomalous magnetic moment. However, direct first-principle lattice gauge theory-based calculations of these observables in the timelike region remain challenging. Discrepancies persist between lattice quantum chromodynamics (QCD) calculations in the spacelike region and dispersive approaches relying on experimental data parametrization from the timelike region. Here, we introduce a methodology employing 1+1-dimensional quantum electrodynamics (QED), i.e. the Schwinger Model, to investigate the HVP and HLBL. To that end, we use both tensor network techniques, specifically matrix product states, and classical emulators of digital quantum computers. Demonstrating feasibility in a simplified model, our approach sets the stage for future endeavors leveraging digital quantum computers.
| Original language | English |
|---|---|
| Article number | 118 |
| Journal | Journal of High Energy Physics |
| Volume | 2025 |
| Issue number | 2 |
| DOIs | |
| State | Published - Feb 2025 |
ASJC Scopus Subject Areas
- Nuclear and High Energy Physics
Keywords
- Algorithms and Theoretical Developments
- Correlation Functions
- Other Lattice Field Theories
- Specific QCD Phenomenology
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