English

Scalable randomized benchmarking of non-Clifford gates

Quantum Physics 2016-05-20 v1

Abstract

Randomized benchmarking is a widely used experimental technique to characterize the average error of quantum operations. Benchmarking procedures that scale to enable characterization of nn-qubit circuits rely on efficient procedures for manipulating those circuits and, as such, have been limited to subgroups of the Clifford group. However, universal quantum computers require additional, non-Clifford gates to approximate arbitrary unitary transformations. We define a scalable randomized benchmarking procedure over nn-qubit unitary matrices that correspond to protected non-Clifford gates for a class of stabilizer codes. We present efficient methods for representing and composing group elements, sampling them uniformly, and synthesizing corresponding poly(n)\mathrm{poly}(n)-sized circuits. The procedure provides experimental access to two independent parameters that together characterize the average gate fidelity of a group element.

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Cite

@article{arxiv.1510.02720,
  title  = {Scalable randomized benchmarking of non-Clifford gates},
  author = {Andrew W. Cross and Easwar Magesan and Lev S. Bishop and John A. Smolin and Jay M. Gambetta},
  journal= {arXiv preprint arXiv:1510.02720},
  year   = {2016}
}

Comments

5+4 pages, 1 figure