Surrogate optimization of variational quantum circuits

E Erik J. Gustafson (Universities Space Research Association) J Juha Tiihonen (Department of Physics) D Diana Chamaki (Department of Chemistry) F Farshud Sorourifar (Universities Space Research Association) J J. Wayne Mullinax (KBR Inc) A Andy C. Y. Li (Quantum Division) F Filip B. Maciejewski (Universities Space Research Association) N Nicolas P. D. Sawaya (Azulene Labs) J Jaron T. Krogel (Materials Science and Technology Division) D David E. Bernal Neira (Universities Space Research Association) N Norm M. Tubman (Applied Physics Group, NASA Ames Research Center)

Abstract

Variational quantum eigensolvers are touted as a near-term algorithm capable of impacting many applications. However, the potential has not yet been realized, with few claims of quantum advantage and high resource estimates, especially due to the need for optimization in the presence of noise. Finding algorithms and methods to improve convergence is important to accelerate the capabilities of near-term hardware for variational quantum eigensolver or more broad applications of hybrid methods in which optimization is required. To this goal, we look to use modern approaches developed in circuit simulations and stochastic classical optimization, which can be combined to form a surrogate optimization approach to quantum circuits. Using an approximate (classical central processing unit/graphical processing unit) state vector simulator as a surrogate model, we efficiently calculate an approximate Hessian, which is passed as input for a quantum processing unit or exact circuit simulator. This method will lend itself well to parallelization across quantum processing units. We demonstrate the capabilities of such an approach with and without sampling noise and a proof-of-principle demonstration on a quantum processing unit utilizing 40 qubits.

Article Details

Volume / Issue Vol. 122, Issue 36
Published September 09, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

E

Erik J. Gustafson

Universities Space Research Association

J

Juha Tiihonen

Department of Physics

D

Diana Chamaki

Department of Chemistry

F

Farshud Sorourifar

Universities Space Research Association

J

J. Wayne Mullinax

KBR Inc

A

Andy C. Y. Li

Quantum Division

F

Filip B. Maciejewski

Universities Space Research Association

N

Nicolas P. D. Sawaya

Azulene Labs

J

Jaron T. Krogel

Materials Science and Technology Division

D

David E. Bernal Neira

Universities Space Research Association

N

Norm M. Tubman

Applied Physics Group, NASA Ames Research Center