Multilevel distillation of magic states for quantum computing
Abstract
We develop a procedure for distilling magic states used in universal quantum computing that requires substantially fewer initial resources than prior schemes. Our distillation circuit is based on a family of concatenated quantum codes that possess a transversal Hadamard operation, enabling each of these codes to distill the eigenstate of the Hadamard operator. A crucial result of this design is that low-fidelity magic states can be consumed to purify other high-fidelity magic states to even higher fidelity, which we call "multilevel distillation." When distilling in the asymptotic regime of infidelity for each input magic state, the number of input magic states consumed on average to yield an output state with infidelity approaches , which comes close to saturating the conjectured bound in [Phys. Rev. A 86, 052329]. We show numerically that there exist multilevel protocols such that the average number of magic states consumed to distill from error rate to in the range to is about ; the efficiency of multilevel distillation dominates all other reported protocols when distilling Hadamard magic states from initial infidelity 0.01 to any final infidelity below . These methods are an important advance for magic-state distillation circuits in high-performance quantum computing, and they provide insight into the limitations of nearly resource-optimal quantum error correction.
Keywords
Cite
@article{arxiv.1210.3388,
title = {Multilevel distillation of magic states for quantum computing},
author = {Cody Jones},
journal= {arXiv preprint arXiv:1210.3388},
year = {2013}
}
Comments
10 pages, 4 figures