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    Adaptive quantum dynamics with the time-dependent variational Monte Carlo method

    Raffaele Salioni1,*, Rocco Martinazzo2,†, Davide Emilio Galli1,‡, and Christian Apostoli1,§

    • *Contact author: raffaele.salioni@studenti.unimi.it
    • †Contact author: rocco.martinazzo@unimi.it
    • ‡Contact author: davide.galli@unimi.it
    • §Contact author: christian.apostoli@unimi.it

    Phys. Rev. B 113, 014408 – Published 8 January, 2026

    DOI: https://doi.org/10.1103/qz9c-rrvh

    Abstract

    We introduce an extension of the time-dependent variational Monte Carlo (tVMC) method that adaptively controls the expressivity of the variational quantum state during the simulation of the dynamics. This adaptive tVMC (atVMC) approach is specifically designed to enhance numerical stability when overparameterized variational ansätze lead to ill-conditioned equations of motion. Building on the concept of the local-in-time error (LITE)—a measure of the deviation between variational and exact evolution—we introduce a procedure to quantify each parameter's contribution to reducing the LITE, using only quantities already computed in standard tVMC simulations. These relevance estimates guide the selective evolution of only the most significant parameters at each time step, while maintaining a prescribed level of accuracy. We benchmark the algorithm on quantum quenches in the one-dimensional transverse-field Ising model using both spin-Jastrow and restricted Boltzmann machine wave functions, with an emphasis on overparameterized regimes. The adaptive scheme significantly improves numerical stability and reduces the need for strong regularization, enabling reliable simulations with highly expressive variational ansätze.

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