Impact and mitigation of Hamiltonian characterization errors in digital-analog quantum computation
Quantum Physics
2026-03-10 v2
Abstract
Digital-analog is a universal quantum computing paradigm which employs the natural entangling Hamiltonian of the system and single-qubit gates as resources. Here, we study the stability of these protocols against Hamiltonian characterization errors. For this, we bound the maximum separation between the target and the implemented Hamiltonians. Additionally, we obtain an upper bound for the deviation in the expected value of an observable. We further propose a protocol for mitigating calibration errors which resembles dynamical-decoupling techniques. These results open the possibility of scaling digital-analog to intermediate and large scale systems while having an estimation on the errors committed.
Cite
@article{arxiv.2505.03642,
title = {Impact and mitigation of Hamiltonian characterization errors in digital-analog quantum computation},
author = {Mikel Garcia-de-Andoin and Alatz Álvarez-Ahedo and Adrián Franco-Rubio and Mikel Sanz},
journal= {arXiv preprint arXiv:2505.03642},
year = {2026}
}
Comments
6+8 pages, 5 figures