English

Demonstration of fidelity improvement using dynamical decoupling with superconducting qubits

Quantum Physics 2018-12-05 v2

Abstract

Quantum computers must be able to function in the presence of decoherence. The simplest strategy for decoherence reduction is dynamical decoupling (DD), which requires no encoding overhead and works by converting quantum gates into decoupling pulses. Here, using the IBM and Rigetti platforms, we demonstrate that the DD method is suitable for implementation in today's relatively noisy and small-scale cloud based quantum computers. Using DD, we achieve substantial fidelity gains relative to unprotected, free evolution of individual superconducting transmon qubits. To a lesser degree, DD is also capable of protecting entangled two-qubit states. We show that dephasing and spontaneous emission errors are dominant in these systems, and that different DD sequences are capable of mitigating both effects. Unlike previous work demonstrating the use of quantum error correcting codes on the same platforms, we make no use of post-selection and hence report unconditional fidelity improvements against natural decoherence.

Keywords

Cite

@article{arxiv.1807.08768,
  title  = {Demonstration of fidelity improvement using dynamical decoupling with superconducting qubits},
  author = {Bibek Pokharel and Namit Anand and Benjamin Fortman and Daniel Lidar},
  journal= {arXiv preprint arXiv:1807.08768},
  year   = {2018}
}

Comments

Main: 5 pages, 7 figures. Appendix: 7 pages, 9 figures. Corrected typos in Table III

R2 v1 2026-06-23T03:11:29.973Z