arXiv Analytics

Sign in

arXiv:0911.3202 [quant-ph]AbstractReferencesReviewsResources

Combining dynamical decoupling with fault-tolerant quantum computation

Hui Khoon Ng, Daniel A. Lidar, John Preskill

Published 2009-11-17, updated 2011-07-18Version 3

We study how dynamical decoupling (DD) pulse sequences can improve the reliability of quantum computers. We prove upper bounds on the accuracy of DD-protected quantum gates and derive sufficient conditions for DD-protected gates to outperform unprotected gates. Under suitable conditions, fault-tolerant quantum circuits constructed from DD-protected gates can tolerate stronger noise, and have a lower overhead cost, than fault-tolerant circuits constructed from unprotected gates. Our accuracy estimates depend on the dynamics of the bath that couples to the quantum computer, and can be expressed either in terms of the operator norm of the bath's Hamiltonian or in terms of the power spectrum of bath correlations; we explain in particular how the performance of recursively generated concatenated pulse sequences can be analyzed from either viewpoint. Our results apply to Hamiltonian noise models with limited spatial correlations.

Comments: 44 pages, 10 figures; v3 contains an expanded section on Eulerian dynamical decoupling
Journal: Phys. Rev. A 84, 012305 (2011)
Related articles: Most relevant | Search more
arXiv:quant-ph/9707021 (Published 1997-07-09)
Fault-tolerant quantum computation by anyons
arXiv:quant-ph/9802007 (Published 1998-02-02)
Fault-Tolerant Quantum Computation with Higher-Dimensional Systems
arXiv:quant-ph/9702029 (Published 1997-02-12, updated 1997-02-18)
A Theory of Fault-Tolerant Quantum Computation