Use of Shor states for the [7,1,3] quantum error-correcting code

Type: Article

Publication Date: 2012-11-30

Citations: 15

DOI: https://doi.org/10.1103/physreva.86.052336

Abstract

We explore the effect of Shor state construction methods on logical state encoding and quantum error correction for the [[7,1,3]] Calderbank-Shor-Steane quantum error correction code in a nonequiprobable error environment. We determine the optimum number of verification steps to be used in Shor state construction and whether Shor states without verification are usable for practical quantum computation. These results are compared to the same processes of encoding and error correction where Shor states are not used. We demonstrate that the construction of logical zero states with no first order error terms may not require the complete edifice of quantum fault tolerance. With respect to error correction, we show for a particular initial state that error correction using a single qubit for syndrome measurement yields a similar output state accuracy to error correction using Shor states as syndrome qubits. In addition, we demonstrate that error correction with Shor states has an inherent sensitivity to bit-flip errors. Finally, we suggest that in this type of error correction scenario one should always repeat a syndrome measurement until attaining an all zero readout (twice in row).

Locations

  • Physical Review A - View
  • arXiv (Cornell University) - View - PDF
  • DataCite API - View

Similar Works

Action Title Year Authors
+ Syndrome Measurement Order for the [[7,1,3]] Quantum Error Correction Code 2013 Yaakov S. Weinstein
+ PDF Chat Fidelity of an encoded [7,1,3] logical zero 2011 Yaakov S. Weinstein
+ Syndrome Measurement Strategies for the [[7,1,3]] Code 2015 Yaakov S. Weinstein
+ Measuring Non-Zero Syndromes 2013 Yaakov S. Weinstein
+ PDF Chat Improved performance of the Bacon-Shor code with Steane's syndrome extraction method 2024 Guillermo Escobar-Arrieta
Mauricio Gutiérrez
+ PDF Chat Fault-tolerant preparation of quantum polar codes encoding one logical qubit 2023 Ashutosh Goswami
Mehdi Mhalla
Valentin Savin
+ Short Shor-style syndrome sequences 2020 Nicolas Delfosse
Ben W. Reichardt
+ Fault-Tolerant Preparation of Quantum Polar Codes Encoding One Logical Qubit 2022 Ashutosh Goswami
Mehdi Mhalla
Valentin Savin
+ Short Shor-style syndrome sequences. 2020 Nicolas Delfosse
Ben W. Reichardt
+ PDF Chat Ability of stabilizer quantum error correction to protect itself from its own imperfection 2014 Yuichiro Fujiwara
+ Encoding an Arbitrary State in a [7,1,3] Quantum Error Correction Code 2011 Sidney Buchbinder
Channing L. Huang
Yaakov S. Weinstein
+ Encoding an Arbitrary State in a [7,1,3] Quantum Error Correction Code 2011 Sidney Buchbinder
Channing L. Huang
Yaakov S. Weinstein
+ PDF Chat Comparison of ancilla preparation and measurement procedures for the Steane [[7,1,3]] code on a model ion-trap quantum computer 2013 Yu Tomita
Mauricio Gutiérrez
Chingiz Kabytayev
Kenneth R. Brown
Michael R. Hutsel
A. P. Morris
Kelly E. Stevens
Greg Mohler
+ Transversal Diagonal Logical Operators for Stabiliser Codes 2023 Mark Webster
Armanda O. Quintavalle
Stephen D. Bartlett
+ Quantum Calderbank-Shor-Steane Stabilizer State Preparation by Classical Error-Correcting Codes 2016 Ching–Yi Lai
Yi-Cong Zheng
Todd A. Brun
+ PDF Chat Fault-tolerant preparation of stabilizer states for quantum Calderbank-Shor-Steane codes by classical error-correcting codes 2017 Ching–Yi Lai
Yi-Cong Zheng
Todd A. Brun
+ PDF Chat Syndrome measurement order for the [[7,1,3]] quantum error correction code 2015 Yaakov S. Weinstein
+ Comparing Shor and Steane Error Correction Using the Bacon-Shor Code 2023 Shilin Huang
Kenneth R. Brown
Marko Cetina
+ Quantum Error Correcting Codes and the Security Proof of the BB84 Protocol 2014 Ramesh Bhandari
+ PDF Chat Quantum-error-correction implementation after multiple gates 2013 Yaakov S. Weinstein