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@ARTICLE{Jin:889692,
author = {Jin, Fengpin and Willsch, Dennis and Willsch, Madita and
Lagemann, Hannes and Michielsen, Kristel and De Raedt, Hans},
title = {{R}andom {S}tate {T}echnology},
journal = {Journal of the Physical Society of Japan},
volume = {90},
number = {1},
issn = {1347-4073},
address = {Tokyo},
publisher = {The Physical Society of Japan},
reportid = {FZJ-2021-00316},
pages = {012001 -},
year = {2021},
abstract = {We review and extend, in a self-contained way, the
mathematical foundations of numerical simulation methods
that are based on the use of random states. The power and
versatility of this simulation technology is illustrated by
calculations of physically relevant properties such as the
density of states of large single particle systems, the
specific heat, current–current correlations,
density–density correlations, and electron spin resonance
spectra of many-body systems. We explore a new field of
applications of the random state technology by showing that
it can be used to analyze numerical simulations and
experiments that aim to realize quantum supremacy on a noisy
intermediate-scale quantum processor. Additionally, we show
that concepts of the random state technology prove useful in
quantum information theory.},
cin = {JSC},
ddc = {530},
cid = {I:(DE-Juel1)JSC-20090406},
pnm = {511 - Computational Science and Mathematical Methods
(POF3-511) / 5111 - Domain-Specific Simulation $\&$ Data
Life Cycle Labs (SDLs) and Research Groups (POF4-511)},
pid = {G:(DE-HGF)POF3-511 / G:(DE-HGF)POF4-5111},
typ = {PUB:(DE-HGF)16},
UT = {WOS:000603299700001},
doi = {10.7566/JPSJ.90.012001},
url = {https://juser.fz-juelich.de/record/889692},
}