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    Nonadiabatic self-healing of Trotter errors in digitized counterdiabatic dynamics

    Mara Vizzuso1,*, Gianluca Passarelli1, Giovanni Cantele1, Procolo Lucignano1, Xi Chen2, and Koushik Paul3,4,†

    • *Contact author: mara.vizzuso@unina.it
    • †Contact author: koushikpal09@gmail.com

    Phys. Rev. A 113, 062432 – Published 11 June, 2026

    DOI: https://doi.org/10.1103/5ck5-tp69

    Abstract

    Trotter errors in digitized quantum dynamics arise from approximating time-ordered evolution under noncommuting Hamiltonian terms with a product formula. In the adiabatic regime, such errors are known to exhibit long-time self-healing [Phys. Rev. Lett. 131, 060602 (2023)], where discretization effects are effectively suppressed. Here we show that self-healing persists at finite evolution times once nonadiabatic errors induced by finite-speed ramps are compensated. Using counterdiabatic driving to cancel diabatic transitions and isolate discretization effects, we study both noninteracting and interacting spin models and characterize the finite-time scaling with the Trotter steps and the total evolution time. In the instantaneous eigenbasis of the driven (gapped) Hamiltonian, the leading digital error maps to an effective harmonic perturbation whose dominant Fourier component yields an analytic upper bound on the finite-time Trotter error and reveals the phase-cancellation mechanism underlying self-healing. Our results establish finite-time self-healing as a generic feature of digitized counterdiabatic protocols, clarify its mechanism beyond the long-time adiabatic limit, and provide practical guidance for high-fidelity state preparation on gate-based quantum processors.

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