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Exploring Quantum Annealing Architectures: A Spin Glass Perspective

Quantum Physics 2025-01-09 v1

Abstract

We study the spin-glass transition in several Ising models of relevance for quantum annealers. We extract the spin-glass critical temperature by extrapolating the pseudo-critical properties obtained with Replica-Exchange Monte-Carlo for finite-size systems. We find a spin-glass phase for some random lattices (random-regular and small-world graphs) in good agreement with previous results. However, our results for the quasi-two-dimensional graphs implemented in the D-Wave annealers (Chimera, Zephyr, and Pegasus) indicate only a zero-temperature spin-glass state, as their pseudo-critical temperature drifts towards smaller values. This implies that the asymptotic runtime to find the low-energy configuration of those graphs is likely to be polynomial in system size, nevertheless, this scaling may only be reached for very large system sizes -- much larger than existing annealers -- as we observe an abrupt increase in the computational cost of the simulations around the pseudo-critical temperatures. Thus, two-dimensional systems with local crossings can display enough complexity to make unfeasible the search with classical methods of low-energy configurations.

Keywords

Cite

@article{arxiv.2307.13065,
  title  = {Exploring Quantum Annealing Architectures: A Spin Glass Perspective},
  author = {Gabriel Jaumà and Juan José García-Ripoll and Manuel Pino},
  journal= {arXiv preprint arXiv:2307.13065},
  year   = {2025}
}

Comments

13 pages

R2 v1 2026-06-28T11:39:02.754Z