Error-Robust Quantum Signal Processing using Rydberg Atoms

ORAL

Abstract

Rydberg atom arrays have recently emerged as one of the most promising platforms for quantum simulation and quantum information processing. However, as is the case for other experimental platforms, the longer-term success of the Rydberg atom arrays in implementing quantum algorithms depends crucially on their robustness to gate-induced errors. Here we show that, for an idealized biased error model based on Rydberg atom dynamics, the implementation of QSP protocols can be made error-robust, in the sense that the asymptotic scaling of the gate-induced error probability is slower than that of gate complexity. Moreover, using experimental parameters reported in the literature, we show that QSP iterates made out of up to a hundred gates can be implemented with constant error probability.

*S.Z. acknowledges financial support from the Swiss National ScienceFoundation through the Early Postdoc.Mobility grant(P2EZP2 184320) and from the Army Research Office,ARO MURI (grant no W911NF1910517). S.S. and S.Z.acknowledges NTT Research for its financial and technical support

Publication: https://arxiv.org/abs/2201.04665

Presenters

  • Sina Zeytinoglu

    • NTT Research / Harvard University

Authors

  • Sina Zeytinoglu

    • NTT Research / Harvard University
  • Sho Sugiura

    • NTT Research