arXiv Analytics

Sign in

arXiv:1911.08116 [quant-ph]AbstractReferencesReviewsResources

Performance enhancement of quantum annealing under the Lechner-Hauke-Zoller scheme by non-linear driving of the constraint term

Yuki Susa, Hidetoshi Nishimori

Published 2019-11-19Version 1

We analyze the performance of quantum annealing as formulated by Lechner, Hauke, and Zoller (LHZ), by which a Hamiltonian with all-to-all two-body interactions is reduced to a corresponding Hamiltonian with local many-body interactions. Mean-field analyses show that problematic first-order quantum phase transitions that exist in the original LHZ formulation can be avoided, and thus an exponential speedup is achieved, if we drive the coefficient of the many-body term, which represents the constraint, non-linearly as a function of time. This result applies not only to a simple ferromagnetic model but also to the spin glass problem if a parameter in the spin glass model is chosen appropriately. Numerical studies of small-size systems are consistent with the mean-field predictions.

Related articles: Most relevant | Search more
arXiv:1804.00371 [quant-ph] (Published 2018-04-02, updated 2018-05-04)
Quantum annealing and thermalization: insights from integrability
arXiv:0801.2193 [quant-ph] (Published 2008-01-15, updated 2008-03-24)
Quantum Annealing and Analog Quantum Computation
arXiv:1508.02831 [quant-ph] (Published 2015-08-12)
Singular-value decomposition using quantum annealing