Error-Generator-Level Compression for Fast Quantum Gates
Abstract
Fast quantum gates in multilevel systems require suppressing many coherent-error channels using pulses that remain simple to implement. We introduce error-generator-level compression, a Magnus-based control principle that minimizes the complete projected error generator at a chosen perturbative order while restricting the implemented waveform to a few independently adjustable coefficients. This construction preserves all modeled computational and leakage errors rather than truncating the pulse by error channel, while its generator-level objective directly penalizes residual eigenphases that can signal departure from the perturbative regime. For fast transmon gates, a three-parameter pulse suppresses errors by orders of magnitude, outperforms grid-optimized leading- order DRAG over the gate-time range studied, and approaches a fully parameterized 17-parameter Magnus correction. The compressed pulse is also substantially less sensitive to the illustrative finite-bandwidth filtering model considered here.
Cite
@article{arxiv.2607.28922,
title = {Error-Generator-Level Compression for Fast Quantum Gates},
author = {Razvan Stanescu and Hugo Ribeiro},
journal= {arXiv preprint arXiv:2607.28922},
year = {2026}
}
Comments
19 pages, 4 figures