Comparison of Two Optimization Methods for a Rydberg Quantum Gate

Fuente: arXiv
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Main Authors: Bosch, Luis S. Yagüe, Wimberger, Sandro
Format: Preprint
Published: 2025
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author Bosch, Luis S. Yagüe
Wimberger, Sandro
author_facet Bosch, Luis S. Yagüe
Wimberger, Sandro
contents A shortcut-to-adiabaticity is compared with a numerically optimized protocol for implementing a high-fidelity quantum gate on Rydberg atoms. The counterdiabatic method offers an analytical framework for accelerating high-fidelity gates by mimicking the time evolution of a counterdiabatic Hamiltonian using fast-oscillating fields. This approach is contrasted with a numerically optimized gate designed using the Boulder Opal platform. The numerically optimized gate achieves higher fidelities while demonstrating robustness against errors similar to that of the effective counterdiabatic gate. The study serves as an example of the performance of analytic shortcut-to-adiabatic-inspired protocols compared to brute-force numerical optimization techniques for state-of-the-art quantum computing platforms. It stresses the important role played by constraints on the optimized pulses in time and in amplitude that are crucial in determining the quality of the optimization method.
format Preprint
id arxiv_https___arxiv_org_abs_2511_08450
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Comparison of Two Optimization Methods for a Rydberg Quantum Gate
Bosch, Luis S. Yagüe
Wimberger, Sandro
Quantum Physics
Quantum Gases
A shortcut-to-adiabaticity is compared with a numerically optimized protocol for implementing a high-fidelity quantum gate on Rydberg atoms. The counterdiabatic method offers an analytical framework for accelerating high-fidelity gates by mimicking the time evolution of a counterdiabatic Hamiltonian using fast-oscillating fields. This approach is contrasted with a numerically optimized gate designed using the Boulder Opal platform. The numerically optimized gate achieves higher fidelities while demonstrating robustness against errors similar to that of the effective counterdiabatic gate. The study serves as an example of the performance of analytic shortcut-to-adiabatic-inspired protocols compared to brute-force numerical optimization techniques for state-of-the-art quantum computing platforms. It stresses the important role played by constraints on the optimized pulses in time and in amplitude that are crucial in determining the quality of the optimization method.
title Comparison of Two Optimization Methods for a Rydberg Quantum Gate
topic Quantum Physics
Quantum Gases
url https://arxiv.org/abs/2511.08450