Best-case performance of quantum annealers on native spin-glass benchmarks: How chaos can affect success probabilities

ORAL

Abstract

Recent tests performed on the D-Wave Two quantum annealer reveal no clear evidence of speedup over conventional technologies. Here, we present results from classical parallel-tempering Monte Carlo simulations of the archetypal benchmark problem, an Ising spin glass, on the native chip topology. Using realistic uncorrelated noise models for the D-Wave Two quantum annealer, we study the best-case fidelity, i.e., the probability that the ground-state configuration is affected by random fields and random bond fluctuations found on the chip. We compute upper-bound success probabilities for different instance classes based on these simple error models and present strategies on how to develop robust and hard benchmark instances.

Authors

  • Zheng Zhu

    Texas A\&M University, Department of Physics and Astronomy, Texas A\&M University

  • Andrew J. Ochoa

    Texas A\&M University, Department of Physics and Astronomy, Texas A\&M University

  • Firas Hamze

    D-Wave Systems, Inc.

  • Stefan Schnabel

    Theoretical Physics Institute, Universitaet Leipzig

  • Helmut G. Katzgraber

    Texas A\&M University, Department of Physics and Astronomy, Texas A\&M University