When does numerical pulse optimization actually help? Error budgets,robustness tradeoffs, and calibration guidance for transmon single-qubit gates
Rylan Malarchick

TL;DR
This paper compares analytical and numerical pulse optimization methods for transmon qubits, showing that properly calibrated DRAG pulses are often sufficient, while GRAPE offers advantages at very short gate times or when extremely low errors are required.
Contribution
It provides a systematic comparison of Gaussian, DRAG, and GRAPE pulses, offering practical calibration guidance and analyzing regimes where numerical optimization offers real benefits.
Findings
DRAG pulses are near the decoherence limit for typical gate times.
GRAPE achieves near-perfect coherent error suppression at 20 ns gate time.
Robustness to detuning favors DRAG, while amplitude robustness favors GRAPE.
Abstract
Numerical optimal control (GRAPE) can in principle discover pulse shapes that suppress all coherent gate error to machine precision. But when does that capability actually matter? We present a systematic comparison of Gaussian, DRAG, and GRAPE pulses for single-qubit gates on a three-level transmon model parameterized by IQM Garnet hardware (s, s, MHz), with the explicit goal of identifying the regimes where numerical optimization provides genuine practical advantage over analytical methods. Our central finding is that properly calibrated DRAG already operates near the decoherence floor. At 20 ns gate time, GRAPE eliminates all coherent error (), but DRAG achieves in coherent error alone,and under full decoherence -- only above GRAPE's decoherence-limited…
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Taxonomy
TopicsQuantum Information and Cryptography · Laser-Matter Interactions and Applications · Optical Network Technologies
