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Randomized benchmarking (RB) is a popular procedure used to gauge the performance of a set of gates useful for quantum information processing (QIP).
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“Scalable protocol for identification of correctable codes”
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“Randomized benchmarking of quantum gates”
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C. Dankert et al · 2009
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“Randomized benchmarking of single- and multi-qubit control in liquid-state NMR quantum information processing”
C. A. Ryan, M. Laforest and R. Laflamme · 2009
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“Randomized benchmarking and process tomography for gate errors in a solid-state qubit.”
J. M. Chow et al · 2009
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“Randomized benchmarking of atomic qubits in an optical lattice”
S. Olmschenk et al · 2010
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“Optimized driving of superconducting artificial atoms for improved single-qubit gates”
J. M. Chow et al · 2010
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“Scalable and robust randomized benchmarking of quantum processes”
E. Magesan, J. M. Gambetta and J. Emerson · 2011
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“Single-qubit-gate error below 10-4 in a trapped ion”
K. R. Brown et al · 2011
Cited alongside, same era.
“Characterizing Quantum Gates via Randomized Benchmarking”
E. Magesan, J. M. Gambetta and J. Emerson · 2012
Cited alongside, same era.
“Practical experimental certification of computational quantum gates using a twirling procedure.”
O. Moussa et al · 2012
Cited alongside, same era.
“Randomized benchmarking of multiqubit gates”
J. P. Gaebler et al · 2012
Cited alongside, same era.
“Efficient measurement of quantum gate error by interleaved randomized benchmarking”
E. Magesan et al · 2012
Cited alongside, same era.
“Characterization of addressability by simultaneous randomized benchmarking”
J. M. Gambetta et al · 2012
Cited alongside, same era.
“Electrically controlling single-spin qubits in a continuous microwave field”
A. Laucht et al · 2015
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“Quantifying the quantum gate fidelity of single-atom spin qubits in silicon by randomized benchmarking”
J. T. Muhonen et al · 2015
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“Nonexponential fidelity decay in randomized benchmarking with low-frequency noise”
M. A. Fogarty et al · 2015
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“Estimating the coherence of noise”
J. Wallman et al · 2015
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“Robust Characterization of Loss Rates”
J. J. Wallman, M. Barnhill and J. Emerson · 2015
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“Scalable randomised benchmarking of non-Clifford gates”
A. W. Cross et al · 2016
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“Process verification of two-qubit quantum gates by randomized benchmarking”
A. D. Córcoles et al · 2013
Cited alongside, same era.
“Rolling quantum dice with a superconducting qubit”
R. Barends et al · 2014
Cited alongside, same era.
“High-fidelity preparation, gates, memory, and readout of a trapped-ion quantum bit”
T. P. Harty et al · 2014
Cited alongside, same era.
“An addressable quantum dot qubit with fault-tolerant control-fidelity”
M. Veldhorst et al · 2014
Cited alongside, same era.
“Superconducting quantum circuits at the surface code threshold for fault tolerance”
R. Barends et al · 2014
Cited alongside, same era.
“Robust extraction of tomographic information via randomized benchmarking”
S. Kimmel et al · 2014
Cited alongside, same era.
“Gate fidelity and coherence of an electron spin in an Si/SiGe quantum dot with micromagnet”
E. Kawakami et al · 2016
Later among the works it cites.
“Randomized benchmarking of quantum gates implemented by electron spin resonance”
D. K. Park et al · 2016
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“Characterizing errors on qubit operations via iterative randomized benchmarking”
S. Sheldon et al · 2016
Later among the works it cites.
“Effect of noise correlations on randomized benchmarking”
H. Ball et al · 2016
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“Multi-qubit randomized benchmarking using few samples”
J. Helsen et al · 2017
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L. Zhang, C. Zhu and C. Pei · 2017
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“Logical randomized benchmarking”
J. Combes et al · 2017
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“Gate-error analysis in simulations of quantum computers with transmon qubits”
D. Willsch et al · 2017
Later among the works it cites.
“What Randomized Benchmarking Actually Measures”
T. Proctor et al · 2017
Later among the works it cites.
“Randomized benchmarking with gate-dependent noise”
J. J. Wallman · 2018
Closest in time.
“Randomized Benchmarking as Convolution: Fourier Analysis of Gate Dependent Errors”
S. T. Merkel, E. J. Pritchett and B. H. Fong · 2018
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“From randomized benchmarking experiments to gate-set circuit fidelity: how to interpret randomized benchmarking decay parameters”
A. Carignan-Dugas et al · 2018
Closest in time.