Reverse engineering of one-qubit filter functions with dynamical invariants

We derive an integral expression for the filter-transfer function of an arbitrary one-qubit gate through the use of dynamical invariant theory and Hamiltonian reverse engineering. We use this result to define a cost function which can be efficiently optimized to produce one-qubit control pulses that...

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Veröffentlicht in:arXiv.org 2022-09
Hauptverfasser: Colmenar, R K L, Kestner, J P
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description We derive an integral expression for the filter-transfer function of an arbitrary one-qubit gate through the use of dynamical invariant theory and Hamiltonian reverse engineering. We use this result to define a cost function which can be efficiently optimized to produce one-qubit control pulses that are robust against specified frequency bands of the noise power spectral density. We demonstrate the utility of our result by generating optimal control pulses that are designed to suppress broadband detuning and pulse amplitude noise. We report an order of magnitude improvement in gate fidelity in comparison with known composite pulse sequences. More broadly, we also use the same theoretical framework to prove the robustness of nonadiabatic geometric quantum gates under specific error models and control constraints.
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subjects Broadband
Constraint modelling
Frequencies
Invariants
Optimal control
Physics - Quantum Physics
Power spectral density
Pulse amplitude
Qubits (quantum computing)
Reverse engineering
Robust control
Transfer functions
title Reverse engineering of one-qubit filter functions with dynamical invariants
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