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Quantum error mitigation in quantum annealing

delete2025-03-06
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OA
AI
J
Jack Raymond *
M
M. H. S. Amin
A
Andrew D. King
R
Richard Harris
W
William Bernoudy
A
A. J. Berkley
K
Kelly Boothby
A
Anatoly Yu. Smirnov
F
Fabio Altomare
M
Michael Babcock
C
Catia Baron
J
J. N. L. Connor
M
Martin H. Dehn
C
Colin Enderud
E
Emile Hoskinson
S
Shuiyuan Huang
M
Mark W. Johnson
E
E. Ladizinsky
T
T. Lanting
A
Allison MacDonald
G
G. Marsden
R
Reza Molavi
T
Travis Oh
G
Gabriel Poulin-Lamarre
H
Hugh Ramp
C
Chris Rich
B
Berta Trullas Clavera
N
Nicholas Tsai
M
Mark J. Volkmann
J
Jed D. Whittaker
J
Jason Yao
N
Niclas Heinsdorf
N
Nitin Kaushal
A
Alberto Nocera
M
Marcel Franz
J
Jacek Dziarmaga
DOI:10.1038/s41534-025-00977-3delete
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Abstract

Abstract

En 中文
Quantum error mitigation (QEM) presents a promising near-term approach to reducing errors when estimating expectation values in quantum computing. Here, we introduce QEM techniques tailored for quantum annealing, using zero-noise extrapolation (ZNE). We implement ZNE through zero-temperature and zero-time extrapolations. The practical zero-time extrapolation developed exploits the Kibble-Zurek mechanism so that only problem-Hamiltonian rescaling is required. We conduct experimental investigations into the quantum critical and post-critical dynamics of a transverse-field Ising spin chain by examining statistics with weak and strong post-critical dynamics. We demonstrate successful mitigation of thermal noise and non-thermal errors through both of these extrapolation techniques.

Journal

npj Quantum Information cover
npj Quantum Information
IF:
8.3
Papers:
1.4K
Citations:
8.1K

Organization

D
d wave quantum inc
Scholars:
31
Papers: 2
Citations: 1
U
Univ British Columbia
Scholars:
2.5K
Papers: 1.9K
Citations: 516