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Demonstration of a quantum error detection code using a square lattice of four superconducting qubits.


ABSTRACT: The ability to detect and deal with errors when manipulating quantum systems is a fundamental requirement for fault-tolerant quantum computing. Unlike classical bits that are subject to only digital bit-flip errors, quantum bits are susceptible to a much larger spectrum of errors, for which any complete quantum error-correcting code must account. Whilst classical bit-flip detection can be realized via a linear array of qubits, a general fault-tolerant quantum error-correcting code requires extending into a higher-dimensional lattice. Here we present a quantum error detection protocol on a two-by-two planar lattice of superconducting qubits. The protocol detects an arbitrary quantum error on an encoded two-qubit entangled state via quantum non-demolition parity measurements on another pair of error syndrome qubits. This result represents a building block towards larger lattices amenable to fault-tolerant quantum error correction architectures such as the surface code.

SUBMITTER: Corcoles AD 

PROVIDER: S-EPMC4421819 | biostudies-other | 2015

REPOSITORIES: biostudies-other

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Demonstration of a quantum error detection code using a square lattice of four superconducting qubits.

Córcoles A D AD   Magesan Easwar E   Srinivasan Srikanth J SJ   Cross Andrew W AW   Steffen M M   Gambetta Jay M JM   Chow Jerry M JM  

Nature communications 20150429


The ability to detect and deal with errors when manipulating quantum systems is a fundamental requirement for fault-tolerant quantum computing. Unlike classical bits that are subject to only digital bit-flip errors, quantum bits are susceptible to a much larger spectrum of errors, for which any complete quantum error-correcting code must account. Whilst classical bit-flip detection can be realized via a linear array of qubits, a general fault-tolerant quantum error-correcting code requires exten  ...[more]

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