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Trapped Ion Quantum Computing Quantum Simulation

Improved Ising Meson Spectroscopy Simulation on a Noisy Digital Quantum Device

arXiv
Authors: Hao-Ti Hung, Isabel Nha Minh Le, Johannes Knolle, Ying-Jer Kao

Year

2025

Paper ID

16334

Status

Preprint

Abstract Read

~2 min

Abstract Words

125

Citations

N/A

Abstract

The transverse-field Ising model serves as a paradigm for studying confinement and excitation spectra, particularly the emergence of E8 symmetry near criticality. However, experimentally resolving the Ising meson spectroscopy required to verify these symmetries is challenging on near-term quantum hardware due to the depth of circuits required for real-time evolution. Here, we demonstrate improved spectroscopy of confined excitations using two distinct error-resilient circuit construction techniques on the IBM Torino device: first-order Trotter decomposition utilizing native fractional gates, and a tensor-network-based circuit compression via Riemannian optimization. By analyzing the Fourier spectrum of error-mitigated time-series data, we successfully identify key signatures of E8 symmetry despite hardware noise. These results validate the viability of both circuit compression and hardware-efficient compilation for probing complex topological phenomena on NISQ devices.

Why This Paper Matters

  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
  • It adds a 2025 reference point for readers tracking recent quantum research.
  • The transverse-field Ising model serves as a paradigm for studying confinement and excitation spectra, particularly the emergence of E8 symmetry near criticality.

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