Boosting quantum amplitude exponentially in variational quantum algorithms
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Published:2023-10-10
Issue:1
Volume:9
Page:01LT01
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ISSN:2058-9565
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Container-title:Quantum Science and Technology
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language:
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Short-container-title:Quantum Sci. Technol.
Author:
Kyaw Thi HaORCID,
Soley Micheline BORCID,
Allen BrandonORCID,
Bergold PaulORCID,
Sun ChongORCID,
Batista Victor SORCID,
Aspuru-Guzik AlánORCID
Abstract
Abstract
We introduce a family of variational quantum algorithms, which we coin as quantum iterative power algorithms (QIPAs), and demonstrate their capabilities as applied to global-optimization numerical experiments. Specifically, we demonstrate the QIPA based on a double exponential oracle as applied to ground state optimization of the H
2 molecule, search for the transmon qubit ground-state, and biprime factorization. Our results indicate that QIPA outperforms quantum imaginary time evolution (QITE) and requires a polynomial number of queries to reach convergence even with exponentially small overlap between an initial quantum state and the final desired quantum state, under some circumstances. We analytically show that there exists an exponential amplitude amplification at every step of the variational quantum algorithm, provided the initial wavefunction has non-vanishing probability with the desired state and that the unique maximum of the oracle is given by
λ
1
>
0
, while all other values are given by the same value
0
<
λ
2
<
λ
1
(here λ can be taken as eigenvalues of the problem Hamiltonian). The generality of the global-optimization method presented here invites further application to other problems that currently have not been explored with QITE-based near-term quantum computing algorithms. Such approaches could facilitate identification of reaction pathways and transition states in chemical physics, as well as optimization in a broad range of machine learning applications. The method also provides a general framework for adaptation of a class of classical optimization algorithms to quantum computers to further broaden the range of algorithms amenable to implementation on current noisy intermediate-scale quantum computers.
Funder
Center for Quantum Dynamics on Modular Quantum Devices
Yale Quantum Institute Postdoctoral Fellowship
Canada 150 Research Chairs Program
Google Focused Award
Canada Industrial Research Chair Program
Subject
Electrical and Electronic Engineering,Physics and Astronomy (miscellaneous),Materials Science (miscellaneous),Atomic and Molecular Physics, and Optics
Cited by
2 articles.
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