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A high threshold code for modular hardware with asymmetric noise

Quantum Physics 2019-12-11 v2

Abstract

We consider an approach to fault tolerant quantum computing based on a simple error detecting code operating as the substrate for a conventional surface code. We develop a customised decoder to process the information about the likely location of errors, obtained from the error detect stage, with an advanced variant of the minimum weight perfect matching algorithm. A threshold gate-level error rate of 1.42% is found for the concatenated code given highly asymmetric noise. This is superior to the standard surface code and remains so as we introduce a significant component of depolarising noise; specifically, until the latter is 70% the strength of the former. Moreover, given the asymmetric noise case, the threshold rises to 6.24% if we additionally assume that local operations have 20 times higher fidelity than long range gates. Thus for systems that are both modular and prone to asymmetric noise our code structure can be very advantageous.

Keywords

Cite

@article{arxiv.1812.01505,
  title  = {A high threshold code for modular hardware with asymmetric noise},
  author = {Xiaosi Xu and Qi Zhao and Xiao Yuan and Simon C. Benjamin},
  journal= {arXiv preprint arXiv:1812.01505},
  year   = {2019}
}

Comments

11 pages, 6 figures