English

Interoperability in encoded quantum repeater networks

Quantum Physics 2016-05-04 v1

Abstract

The future of quantum repeater networking will require interoperability between various error correcting codes. A few specific code conversions and even a generalized method are known, however, no detailed analysis of these techniques in the context of quantum networking has been performed. In this paper, we analyze a generalized procedure to create Bell pairs encoded heterogeneously between two separate codes used often in error corrected quantum repeater network designs. We begin with a physical Bell pair, then encode each qubit in a different error correcting code, using entanglement purification to increase the fidelity. We investigate three separate protocols for preparing the purified encoded Bell pair. We calculate the error probability of those schemes between the Steane [[7,1,3]] code, a distance three surface code and single physical qubits by Monte Carlo simulation under a standard Pauli error model, and estimate the resource efficiency of the procedures. A local gate error rate of 10310^{-3} allows us to create high-fidelity logical Bell pairs between any of our chosen codes. We find that a postselected model, where any detected parity flips in code stabilizers result in a restart of the protocol, performs the best.

Keywords

Cite

@article{arxiv.1508.04599,
  title  = {Interoperability in encoded quantum repeater networks},
  author = {Shota Nagayama and Byung-Soo Choi and Simon Devitt and Shigeya Suzuki and Rodney Van Meter},
  journal= {arXiv preprint arXiv:1508.04599},
  year   = {2016}
}

Comments

13 pages, 9 figures

R2 v1 2026-06-22T10:36:52.095Z