arXiv · 2609.31400
Counterdiabatic quantum optimization for efficient state preparation in the Schwinger model
Abstract
The Quantum Approximate Optimization Algorithm (QAOA), whose design is underpinned by the adiabatic theorem, is one of the leading variational quantum algorithms for preparing the ground states of gauge theories. A recently proposed variant, DC-QAOA, incorporates counterdiabatic driving to accelerate the adiabatic process, reducing both circuit depth and runtime. In this work, we present a systematic analysis, from both theoretical and computational perspectives, of DC-QAOA and related counterdiabatic variants for preparing the ground state of the Schwinger model, the paradigmatic (1+1)-dimensional lattice gauge theory. Benchmarking these methods against standard QAOA, we show that counterdiabatic driving improves ground-state preparation while lowering circuit depth requirements. Our results establish counterdiabatic protocols as a practical route towards efficient quantum simulation of gauge theories.
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Ethan Laval, Bipasha Chakraborty, Stefano Cipolla. 2026-09-25. Counterdiabatic quantum optimization for efficient state preparation in the Schwinger model. https://arxiv.org/abs/2609.31400
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