Investigating the limits of randomized benchmarking protocols
Abstract
In this paper, we analyze the performance of randomized benchmarking protocols on gate sets under a variety of realistic error models that include systematic rotations, amplitude damping, leakage to higher levels, and 1/f noise. We find that, in almost all cases, benchmarking provides better than a factor-of-two estimate of average error rate, suggesting that randomized benchmarking protocols are a valuable tool for verification and validation of quantum operations. In addition, we derive new models for fidelity decay curves under certain types of non-Markovian noise models such as 1/f and leakage errors. We also show that, provided the standard error of the fidelity measurements is small, only a small number of trials are required for high confidence estimation of gate errors.
Cite
@article{arxiv.1308.2928,
title = {Investigating the limits of randomized benchmarking protocols},
author = {Jeffrey M. Epstein and Andrew W. Cross and Easwar Magesan and Jay M. Gambetta},
journal= {arXiv preprint arXiv:1308.2928},
year = {2014}
}
Comments
13 pages, 11 figures