Multireference error mitigation for quantum computation of chemistry
Journal article, 2025

Quantum error mitigation (QEM) strategies are essential for improving the precision and reliability of quantum chemistry algorithms on noisy intermediate-scale quantum devices. Reference-state error mitigation (REM) is a cost-effective chemistry-inspired QEM method that performs well for weakly correlated problems. However, the effectiveness of REM is often limited when applied to strongly correlated systems. Here, we introduce multireference-state error mitigation (MREM), an extension of REM that systematically captures quantum hardware noise in strongly correlated ground states by utilizing multireference states. A pivotal aspect of MREM is using Givens rotations to efficiently construct quantum circuits to generate multireference states. To strike a balance between circuit expressivity and noise sensitivity, we employ compact wavefunctions composed of a few dominant Slater determinants. These truncated multireference states, engineered to exhibit substantial overlap with the target ground state, can effectively enhance error mitigation in variational quantum eigensolver experiments. We demonstrate the effectiveness of MREM through comprehensive simulations of molecular systems H2O, N2, and F2, underscoring its ability to realize significant improvements in computational accuracy compared to the original REM method. MREM broadens the scope of error mitigation to encompass a wider variety of molecular systems, including those exhibiting pronounced electron correlation.

Author

Hang Zou

University of Gothenburg

Chalmers, Computer Science and Engineering (Chalmers), Data Science and AI

Erika Magnusson

Chemistry and Biochemistry Phd Students and Postdocs

Hampus Brunander

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

Werner Barucha-Dobrautz

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

University of Gothenburg

Technische Universität Dresden

Martin Rahm

Chalmers, Chemistry and Chemical Engineering, Chemistry and Biochemistry

DIGITAL DISCOVERY

2635-098X (eISSN)

Vol. In Press

QC-SQUARED

European Commission (EC) (EC/HE/101062864), 2022-01-07 -- 2025-06-30.

Open Superconducting Quantum Computers (OpenSuperQPlus)

European Commission (EC) (EC/HE/101113946), 2023-03-01 -- 2026-08-31.

Subject Categories (SSIF 2025)

Theoretical Chemistry

Infrastructure

Chalmers e-Commons (incl. C3SE, 2020-)

DOI

10.1039/d5dd00202h

Related datasets

Multireference error mitigation for quantum computation of chemistry [dataset]

URI: https://doi.org/10.5281/zenodo.15827822

More information

Latest update

8/22/2025