English

Average-computation benchmarking for local expectation values in digital quantum devices

Quantum Physics 2026-04-03 v3 Statistical Mechanics

Abstract

As quantum devices progress towards a quantum advantage regime, they become harder to benchmark. A particularly relevant challenge is to assess the quality of the whole computation, beyond testing the performance of each single operation. Here we introduce a scheme for this task that combines the target computation with variants of it, which, when averaged, allow for classically solvable correlation functions. Importantly, the variants exactly preserve the circuit architecture and depth, without simplifying the gates into a classically-simulable set. The method is based on replacing each gate by an ensemble of similar gates, which when averaged together form space-time channels [P. Kos and G. Styliaris, Quantum 7, 1020 (2023)]. We introduce explicit constructions for ensembles producing such channels, all applicable to arbitrary brickwork circuits, and provide a general recipe to find new ones through semidefinite programming. The resulting average computation retains important information about the original circuit and is able to detect noise beyond a Clifford benchmarking regime. Moreover, we provide evidence that estimating average-computation expectation values requires running only a limited number of different circuit realizations.

Keywords

Cite

@article{arxiv.2507.18708,
  title  = {Average-computation benchmarking for local expectation values in digital quantum devices},
  author = {Flavio Baccari and Pavel Kos and Georgios Styliaris},
  journal= {arXiv preprint arXiv:2507.18708},
  year   = {2026}
}

Comments

15 pages, 2 figures. v2: improved presentation, added a part of the end matter about 2+1D. v3: minimal changes

R2 v1 2026-07-01T04:17:39.890Z