DOE OSTI · 3367330
Counterdiabatic Driving with Performance Guarantees
Abstract
Counterdiabatic (CD) driving has the potential to speed up adiabatic quantum state preparation by suppressing unwanted excitations. However, existing approaches either require intractable classical computations or are based on approximations that do not have performance guarantees. We propose and analyze a nonvariational, system-agnostic CD expansion method and analytically show that it converges exponentially quickly in the expansion order. In finite systems, the required resources scale inversely with the spectral gap, which we argue is asymptotically optimal. To extend our method to the thermodynamic limit and suppress errors stemming from high-frequency transitions, we leverage finite-time adiabatic protocols. In particular, we show that a time determined by the quantum speed limit is sufficient to prepare the desired ground state, without the need to optimize the adiabatic trajectory. Numerical tests of our method on the quantum Ising chain show that our method can outperform state-of-the-art variational CD approaches.
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Finžgar, Jernej Rudi [BMW AG, Munich (Germany); Technical Univ. Munich (Germany)] (ORCID:000000034393827X), Notarnicola, Simone [Harvard Univ., Cambridge, MA (United States); Università degli Studi di Padova (Italy); Istituto Nazionale di Fisica Nucleare (INFN), Padova (Italy)] (ORCID:0000000183646330), Cain, Madelyn [Harvard Univ., Cambridge, MA (United States)] (ORCID:0000000252983112), Lukin, Mikhail D. [Harvard Univ., Cambridge, MA (United States)], Sels, Dries [Flatiron Institute, New York, NY (United States); New York Univ. (NYU), NY (United States)]. 2025-10-29. Counterdiabatic Driving with Performance Guarantees. https://doi.org/10.1103/pqhl-nbtk
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