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Surrogate Optimization for Quantum CircuitsVariational quantum Eigensolvers are touted as a near-term algorithm capable of impacting many applications. However, the potential has yet to be realized with few claims of quantum advantage and high resource estimates mainly due to the need for optimization in the presence of noise. Finding algorithms and methods to improve the convergence is essential to accelerate the capabilities of near-term hardware for VQE or more broad applications of hybrid methods in which optimization is required. To this goal we look to use modern approaches recently developed in circuit simulations and stochastic classical optimization that can be combined in a surrogate optimization approach to classical circuits. Using an approximate state vector simulator, we efficiently calculate an approximate Hessian, fed as an input for a detailed quantum circuit simulator. We demonstrate the capabilities of such an approach with and without sampling noise. We also show that this method outperforms Powell in the presence of quantum circuit shot noise by a factor of 2-4
Document ID
20230014136
Acquisition Source
Ames Research Center
Document Type
Presentation
Authors
Erik Joseph Gustafson
(Universities Space Research Association Columbia, Maryland, United States)
Juha Tiihonen
(Huld)
Diana Chamaki
(Universities Space Research Association Columbia, Maryland, United States)
Wayne Mullinax
(Wyle (United States) El Segundo, California, United States)
David Esteban Bernal Neira
(Universities Space Research Association Columbia, Maryland, United States)
Nicolas Sawaya
(Intel Corporation)
Filip Bartosz Maciejewski
(Universities Space Research Association Columbia, Maryland, United States)
Joonho Kim
(Rigetti Computing (United States) Berkeley, California, United States)
Jaron Krogel
(Oak Ridge National Laboratory Oak Ridge, Tennessee, United States)
Norman Tubman
(Ames Research Center Mountain View, California, United States)
Date Acquired
September 28, 2023
Subject Category
Chemistry and Materials (General)
Numerical Analysis
Meeting Information
Meeting: Americal Physical Society March Meeting
Location: Minneapolis, MN
Country: US
Start Date: March 3, 2024
End Date: March 8, 2024
Sponsors: American Physical Society
Funding Number(s)
CONTRACT_GRANT: DE-AC02-07CH11359
CONTRACT_GRANT: NNA16BD14C
CONTRACT_GRANT: NASA
PROJECT: NASA ARMD Transformational Tools and Technology (TTT) Project
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Keywords
quantum computing
electronic structure
variational quantum eigensolver
lattice models

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