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@ARTICLE{Campbell:837690,
author = {Campbell, Earl T. and Terhal, Barbara M. and Vuillot,
Christophe},
title = {{R}oads towards fault-tolerant universal quantum
computation},
journal = {Nature},
volume = {549},
number = {7671},
issn = {1476-4687},
address = {London [u.a.]},
publisher = {Nature Publ. Group},
reportid = {FZJ-2017-06551},
pages = {172 - 179},
year = {2017},
abstract = {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.},
cin = {PGI-11},
ddc = {070},
cid = {I:(DE-Juel1)PGI-11-20170113},
pnm = {144 - Controlling Collective States (POF3-144)},
pid = {G:(DE-HGF)POF3-144},
typ = {PUB:(DE-HGF)16},
UT = {WOS:000410555900029},
pubmed = {pmid:28905902},
doi = {10.1038/nature23460},
url = {https://juser.fz-juelich.de/record/837690},
}