Detecting Errors in a Quantum Network with Pauli Checks
POSTER
Abstract
We apply the quantum error detection scheme Pauli check sandwiching (PCS) to quantum networks by turning it into a distributed multiparty protocol. PCS is a distance 1 code and requires less resource overhead than standard quantum error correction and detection methods. We provide analytical equations for the final fidelity and postselection rate. We also introduce a recursive version of PCS for entanglement purification that only scales polynomially in the resources required as a function of the number of recursions. The recursive PCS scheme generates a family of distance 2 quantum codes. Our analytical results are benchmarked against BBPSSW in comparable scenarios. We also perform simulations with noisy gates for entanglement swapping and attain substantial fidelity improvements. Lastly, we discuss various setups and graph state properties of PCS.
*This material is based upon work supported by the U.S. Department of Energy, Office Science, Advanced Scientific Computing Research (ASCR) program under contract number DE-AC02-06CH11357 as part of the InterQnet quantum networking project. B.L. and L.J. also acknowledge support from the ARO (W911NF23-1-0077), ARO MURI (W911NF-21-1-0325), AFOSR MURI (FA9550-19-1-0399, FA9550-21-1-0209, FA9550- 23-1-0338), DARPA (HR0011-24-9-0359, HR0011-24- 9-0361), NSF (OMA-1936118, ERC-1941583, OMA2137642, OSI-2326767, CCF-2312755), NTT Research, Packard Foundation (2020-71479).
Presenters
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Alvin Gonzales
- Argonne National Laboratory