Published April 15, 2025 | Version Published
Journal Article Open

Simulating quantum circuit expectation values by Clifford perturbation theory

  • 1. ROR icon California Institute of Technology

Abstract

The classical simulation of quantum circuits is of central importance for benchmarking near-term quantum devices. The fact that gates belonging to the Clifford group can be simulated efficiently on classical computers has motivated a range of methods that scale exponentially only in the number of non-Clifford gates. Here, we consider the expectation value problem for circuits composed of Clifford gates and non-Clifford Pauli rotations and introduce a heuristic perturbative approach based on the truncation of the exponentially growing sum of Pauli terms in the Heisenberg picture. Numerical results are shown on a quantum approximate optimization algorithm benchmark for the E3LIN2 problem, and we also demonstrate how this method can be used to quantify coherent and incoherent errors of local observables in Clifford circuits. Our results indicate that this systematically improvable perturbative method offers a viable alternative to exact methods for approximating expectation values of large near-Clifford circuits.

Copyright and License (English)

© 2025 Author(s). Published under an exclusive license by AIP Publishing.

Acknowledgement (English)

We acknowledge informative discussions with Steve Flammia, Ali Lavasani, David Gosset, Sergey Bravyi, and Alex Dalzell. T.B. and G.K.-L.C. were supported by the US Department of Energy, Office of Science, Office of Advanced Scientific Computing Research and Office of Basic Energy Sciences, Scientific Discovery through Advanced Computing (SciDAC) program under Award No. DE-SC0022088. T.B. acknowledges financial support from the Swiss National Science Foundation through the Postdoc Mobility Fellowship (Grant No. P500PN-214214). G.K.-L.C. is a Simons Investigator in Physics.

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Funding

Office of Advanced Scientific Computing Research
DE-SC0022088
Swiss National Science Foundation
P500PN-21421

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