Roads towards fault-tolerant universal quantum computation

A practical quantum computer must not merely store information, but also process it. To prevent errors introduced by noise from multiplying and spreading, a fault-tolerant computational architecture is required. Current experiments are taking the first steps toward noise-resilient logical qubits. Bu...

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Veröffentlicht in:Nature (London) 2017-09, Vol.549 (7671), p.172-179
Hauptverfasser: Campbell, Earl T., Terhal, Barbara M., Vuillot, Christophe
Format: Artikel
Sprache:eng
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Zusammenfassung:A practical quantum computer must not merely store information, but also process it. To prevent errors introduced by noise from multiplying and spreading, a fault-tolerant computational architecture is required. Current experiments are taking the first steps toward noise-resilient logical qubits. But to convert these quantum devices from memories to processors, it is necessary to specify how a universal set of gates is performed on them. The leading proposals for doing so, such as magic-state distillation and colour-code techniques, have high resource demands. Alternative schemes, such as those that use high-dimensional quantum codes in a modular architecture, have potential benefits, but need to be explored further. The leading proposals for converting noise-resilient quantum devices from memories to processors are compared, paying attention to the relative resource demands of each.
ISSN:0028-0836
1476-4687
DOI:10.1038/nature23460